US20250120442A1 - Aerosol generating system and aerosol generating device - Google Patents
Aerosol generating system and aerosol generating device Download PDFInfo
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- US20250120442A1 US20250120442A1 US18/293,809 US202218293809A US2025120442A1 US 20250120442 A1 US20250120442 A1 US 20250120442A1 US 202218293809 A US202218293809 A US 202218293809A US 2025120442 A1 US2025120442 A1 US 2025120442A1
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- generation device
- vapor generation
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- size
- aerosol
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- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24F—SMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
- A24F40/00—Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
- A24F40/40—Constructional details, e.g. connection of cartridges and battery parts
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- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24F—SMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
- A24F40/00—Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
- A24F40/20—Devices using solid inhalable precursors
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24F—SMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
- A24F40/00—Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
- A24F40/40—Constructional details, e.g. connection of cartridges and battery parts
- A24F40/46—Shape or structure of electric heating means
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- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24F—SMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
- A24F40/00—Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
- A24F40/90—Arrangements or methods specially adapted for charging batteries thereof
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24F—SMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
- A24F40/00—Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
- A24F40/90—Arrangements or methods specially adapted for charging batteries thereof
- A24F40/95—Arrangements or methods specially adapted for charging batteries thereof structurally associated with cases
Definitions
- This application relates to the field of heat not burning electronic cigarette device technologies, and in particular, to a vapor generation system and a vapor generation device.
- Tobacco products (such as cigarettes, cigars, and the like) burn tobacco during use to produce tobacco smoke. Attempts are made to replace these tobacco-burning products by making products that release compounds without burning.
- the materials may be tobacco or other non-tobacco products. These non-tobacco products may include or not include nicotine.
- aerosol-providing articles for example, electrically heating smoking devices.
- An embodiment of this application provides a vapor generation system, including:
- the first plane is in a shape of a square.
- the outer surface of the vapor generation device has a side surface adjacent to the first plane; and the side surface is in a shape of a square.
- a side surface of the outer surface of the vapor generation device that is adjacent to the product box is in a shape of a square.
- a shape of the first plane is close to that of the largest plane of the outer surface of the product box.
- the first plane has a length size ranging from 70 mm to 80 mm and a width size ranging from 40 mm to 50 mm.
- the vapor generation device and/or the product box are/is basically in a shape of a cube.
- the vapor generation device and the product box have basically similar external sizes.
- the vapor generation device has a length size ranging from 70 mm to 80 mm, a width size ranging from 40 mm to 50 mm, and a thickness size ranging from 9.5 mm to 20 mm.
- a user when the first plane of the vapor generation device is in contact with the largest plane of the outer surface of the product box, a user simultaneously holds or operates the vapor generation device and the product box through one hand.
- Still another embodiment of this application further provides a vapor generation device, configured to heat an aerosol-generating product to generate an aerosol; and configured to heat the aerosol-generating product to generate the aerosol, where an outer surface of the vapor generation device has a first plane with a largest area; and
- Still another embodiment of this application further provides a vapor generation device, configured to heat an aerosol-generating product to generate an aerosol; and an outer surface of the vapor generation device has a first plane with a largest area; and the area of the first plane approximately ranges from 2800 mm 2 to 4000 mm 2 .
- the first plane has a length size ranging from 70 mm to 80 mm.
- a contact area is defined by a plane with a smaller area of the two planes.
- the vapor generation device further includes: a wireless charging coil, configured to charge accommodated in the vapor generation device, where
- Still another embodiment of this application further provides a vapor generation device, configured to heat an aerosol-generating product to generate an aerosol; and the vapor generation device has a length direction and a width direction perpendicular to the length direction; the vapor generation device has a proximal end and a distal end that are opposite to each other in the length direction, and a first side and a second side that are opposite to each other in the width direction; and the vapor generation device includes:
- a width size of the first space is between 1 ⁇ 3 and 2 ⁇ 3 of a width size of the vapor generation device.
- the first space has a length size ranging from 60 mm to 65 mm, a width size ranging from 15 mm to 25 mm, and a thickness size ranging from 5 mm to 10 mm.
- the vapor generation device further includes: the electric core accommodated in the first space, where the electric core is configured to supply power; and the electric core is basically in a shape of a cube with a length size greater than a width size and the width size greater than a thickness size.
- the electric core has a length ranging from 60 mm to 65 mm, a width ranging from 15 mm to 25 mm, and a thickness ranging from 5 mm to 10 mm.
- a width size of the second space and/or the third space is between 1 ⁇ 3 and 2 ⁇ 3 of the width size of the vapor generation device.
- a length size of the second space is greater than a length size of the third space.
- a length size of the second space is between 1 ⁇ 2 and 2 ⁇ 3 of a length size of the vapor generation device.
- a length size of the third space is between 1 ⁇ 3 and 1 ⁇ 2 of a length size of the vapor generation device.
- the second space has a length size ranging from 35 mm to 50 mm, a width size ranging from 15 mm to 25 mm, and a thickness size ranging from 5 mm to 10 mm.
- the third space has a length size ranging from 25 mm to 40 mm, a width size ranging from 15 mm to 25 mm, and a thickness size ranging from 5 mm to 10 mm.
- a thickness size of the vapor generation device is not less than 9.5 mm.
- the vapor generation device and the product box have basically similar external sizes.
- the vapor generation device further includes: a wireless charging coil, configured to charge the electric core accommodated in the first space.
- the wireless charging coil is a planar spiral coil.
- the wireless charging coil is arranged basically parallel to a plane defined by a length direction and a width direction of the vapor generation device.
- the wireless charging coil is arranged adjacent to a side of the vapor generation device in a thickness direction.
- the vapor generation device further includes:
- the foregoing vapor generation system and combination of the vapor generation device and the product box is advantageous for the user to hold or maintain.
- FIG. 1 is a schematic diagram of a vapor generation device according to an embodiment
- FIG. 2 is an exploded schematic diagram of a vapor generation device from still another perspective
- FIG. 3 is a schematic diagram of combination of a vapor generation device and a product box according to an embodiment
- FIG. 4 is a schematic diagram of a vapor generation device according to still another embodiment
- FIG. 5 is a schematic diagram of a specific structure of an embodiment of a vapor generation device in FIG. 1 ;
- FIG. 7 is a schematic diagram of a use state of a vapor generation device in FIG. 6 from one perspective;
- FIG. 10 is a schematic cross-sectional view of the vapor generation device in FIG. 6 ;
- FIG. 11 is a schematic diagram of an extractor in FIG. 10 in an operating state
- FIG. 12 is a schematic diagram of the extractor in FIG. 11 in an extraction state
- FIG. 13 is a schematic cross-sectional view of the extractor in FIG. 10 from one perspective
- FIG. 14 is a schematic diagram of a perspective after the extractor in FIG. 6 extracts an aerosol-generating product
- FIG. 15 is a schematic diagram of a use state of still another embodiment of the vapor generation device in FIG. 1 ;
- FIG. 16 is an exploded schematic diagram of each part of the vapor generation device in FIG. 15 from one perspective;
- FIG. 17 is an exploded schematic diagram of each part of the vapor generation device in FIG. 15 from still another perspective;
- FIG. 18 is a schematic cross-sectional view of the vapor generation device in FIG. 16 from one perspective;
- FIG. 19 is a schematic cross-sectional view of the extractor in FIG. 18 from still another perspective
- FIG. 20 is a schematic diagram after a blocking member in FIG. 15 is removed
- FIG. 21 is a schematic diagram of a vapor generation device in an extraction state according to still another embodiment.
- FIG. 22 is a schematic cross-sectional view of the vapor generation device in FIG. 21 in an operating state
- FIG. 23 is a schematic cross-sectional view of the vapor generation device in FIG. 21 in an extraction state.
- FIG. 24 is an enlarged view of a part B in FIG. 23 .
- An embodiment of this application provides a vapor generation device, configured to receive an aerosol-generating product to generate an aerosol.
- an aerosol-generating product preferably uses a tobacco-containing material that releases volatile compounds from a substrate when being heated; or may also be a non-tobacco material that may be adapted to be electrically heated for smoking after being heated.
- the aerosol-generating product preferably uses a solid substrate, which may include one or more powders, granules, fragments, thin strips, strips, or flakes of one or more of vanilla leaves, tobacco leaves, homogenized tobacco, and expanded tobacco; or a solid substrate may include additional tobacco or non-tobacco volatile flavor compounds that are released when the substrate is heated.
- the aerosol-generating product includes cigarettes in a shape of a slender cylinder.
- the vapor generation device 100 is configured to have a generally square shape.
- the vapor generation device 100 includes:
- the vapor generation device 100 defines:
- the first space 1100 , the second space 1200 , and the third space 1300 are basically airtightly sealed from each other, to prevent hot air or the aerosol from flowing in front of the first space 1100 , the second space 1200 , and the third space 1300 .
- FIG. 3 is a schematic diagram of a vapor generation system including a vapor generation device 100 and a product box 200 .
- the product box 200 such as a cigarette box, is usually configured in a shape of a square; and the product box 200 usually has an openable flip cover 300 , and by opening the flip cover 300 , the aerosol-generating product, such as cigarettes, accommodated inside the product box 200 may be accessed.
- the vapor generation device 100 basically has a shape and a volume size that are similar to that of the product box 200 such as the cigarette box. Therefore, it is conducive to being placed in combination with the product box 200 .
- an outer surface of the vapor generation device 100 has several planes, and a plane with a largest area is planar side surface located on two sides in a thickness direction; and the product box 200 , such as a cigarette box, also has a planar side surface located on two sides in the thickness direction, which is the plane with the largest area.
- a contact area between a side surface of the vapor generation device 100 in the thickness direction and a side surface of the product box 200 in the thickness direction is defined by the smaller plane of the two.
- an area or a shape of the largest plane on the outer surface of the vapor generation device 100 is basically the same as or close to an area or a shape of the largest plane on the outer surface of the product box 200 .
- an area or a shape of any side surface of the vapor generation device 100 in the thickness direction is basically the same as or close to an area or a shape of any side surface of the product box 200 in the thickness direction.
- the side surface of the vapor generation device 100 that is in contact with or is in combination with the product box 200 is in a shape of a square; any other side surfaces of the vapor generation device 100 adjacent to the side surface in contact with the product box 200 each are in a shape of a square; and for example, the side surfaces of the vapor generation device 100 in FIG. 3 in the length direction or the width direction are all in a shape of a square.
- the side surface of the vapor generation device 100 facing away from the product box 200 in the thickness direction, and the side surface of the product box 200 facing away from the vapor generation device 100 are exposed.
- a user may simultaneously keep the side surface of the vapor generation device 100 facing away from the product box 200 in the thickness direction with fingers, and the side surface of the product box 200 facing away from the vapor generation device 100 simultaneously keeps the vapor generation device 100 and the product box 200 ; and this is advantageous for portability.
- the vapor generation device 100 and the product box 200 basically have similar shapes, sizes, and volumes.
- the product box 200 has a length size approximately ranging from 70 mm to 80 mm, a width size approximately ranging from 40 mm to 50 mm, and a thickness size approximately ranging from 10 mm to 20 mm.
- the corresponding vapor generation device 100 may have a length L approximately ranging from 70 mm to 80 mm, a width W approximately ranging from 40 mm to 50 mm, and a thickness H approximately ranging from 9.5 mm to 20 mm.
- surfaces on two sides of the vapor generation device 100 in the thickness direction are the planes with the largest area, and the area approximately ranges from 2800 mm 2 to 4000 mm 2 .
- an extending length/thickness of the first space 1100 is basically close to a length L/thickness H of the vapor generation device 100 .
- a width of the first space 1100 is between 1 ⁇ 3 and 2 ⁇ 3 of a width W of the vapor generation device 100 ; and more preferably, a width of the first space 1100 is basically close to 1 ⁇ 2 of the width W of the vapor generation device 100 .
- the first space 1100 also has a length size approximately ranging from 60 mm to 65 mm, a width size approximately ranging from 15 mm to 25 mm, and a thickness size approximately ranging from 5 mm to 10 mm.
- the electric core 11 accommodated or assembled in the first space 1100 is configured to be basically in a shape of a square.
- a volume or a shape of the electric core 11 is basically the same as or similar to a volume or a shape of the first space 1100 .
- the electric core 11 has a length approximately ranging from 60 mm to 65 mm, a width approximately ranging from 15 mm to 25 mm, and a thickness approximately ranging from 5 mm to 10 mm.
- the second space 1200 has a length size approximately ranging from 35 mm to 50 mm, a width size ranging from 15 mm to 25 mm, and a thickness size approximately ranging from 5 mm to 10 mm.
- the third space 1300 has a length size approximately ranging from 25 mm to 40 mm, a width size ranging from 15 mm to 25 mm, and a thickness size approximately ranging from 5 mm to 10 mm.
- a width of the second space 1200 and/or the third space 1300 is between 1 ⁇ 3 and 2 ⁇ 3 of the width W of the vapor generation device 100 ; and more preferably, a width of the second space 1200 and/or the third space 1300 is basically close to 1 ⁇ 2 of the width W of the vapor generation device 100 .
- a thickness of the second space 1200 and/or the third space 1300 is basically close to the thickness H of the vapor generation device 100 .
- an extending length of the second space 1200 is greater than an extending length of the third space 1300 .
- the extending length of the second space 1200 is between 1 ⁇ 2 and 2 ⁇ 3 of the length of the vapor generation device 100 .
- the extending length of the third space 1300 is between 1 ⁇ 3 and 1 ⁇ 2 of the length of the vapor generation device 100 .
- a wireless charging coil 1400 close to at least one side in a thickness direction is arranged in the vapor generation device 100 ; and the wireless charging coil 1400 may be configured to be couple to an external wireless charging device, and then receive electromagnetic energy of the wireless charging device to generate a charging current to charge the electric core 11 .
- the wireless charging coil 1400 configured to wirelessly charge the electric core 11 is a planar spiral coil.
- the wireless charging coil 1400 is a generally planar spiral coil in a shape of a square, as shown in FIG. 4 .
- the wireless charging coil 1400 may be further configured as a planar spiral coil in a shape of a circle.
- the wireless charging coil 1400 is made of a wire material with a cross section in a shape of a circle or a rectangle; and the wire material includes, for example, a common copper wire, a nickel wire, and the like.
- the planar spiral coil of the wireless charging coil 1400 is in the form of a deposited, printed, or etched coating, track, or line; and for example, the wireless charging coil 1400 is in the form of a planar spiral coil with a coating or circuit made of a conductive material by printing and depositing on a substrate.
- the planar spiral coil of the wireless charging coil 1400 is in the form of a planar spiral coil formed by etching or cutting a piece of metal conductive substrate.
- FIG. 5 to FIG. 7 show a schematic diagram of a vapor generation device 100 of a specific embodiment.
- the vapor generation device 100 includes:
- the door cover 20 is designed to move, so that the door cover 20 has an open position and a closed position.
- the door cover 20 blocks or seals the third space 1300 .
- the vapor generation device 100 is locked and cannot be used; and when the door cover 20 is at the open position, for example, as shown in FIG. 6 and FIG. 7 , the third space 1300 is exposed, and then a user may receive an aerosol-generating product A into the vapor generation device 100 for inhaling, and clean the third space 1300 .
- a guide groove 11 is provided on the main housing 10 , and is configured to provide guidance for a movement process of the door cover 20 .
- the guide groove 11 is provided on a side surface of the main housing 10 in a thickness direction; and the guide groove 11 is configured as a slender groove extending in a width direction of the main housing 10 .
- the door cover 20 at least partially extends into the guide groove 11 , thereby engaging with the guide groove 11 to form guide for a movement process; and positions of end portions at two ends of the guide groove 11 are used to limit the movement of the door cover 20 .
- the guide groove 11 has a length approximately ranging from 30 mm to 40 mm.
- the door cover 20 includes:
- a first hook 221 is arranged at an end portion of the second blocking wall 220 facing away from the first blocking wall 210
- a second hook 231 is arranged at an end portion of the third blocking wall 230 facing away from the first blocking wall 210 ; and during use, the first hook 221 and/or the second hook 231 at least partially extend into the guide groove 11 , to provide guidance while remaining connected to the main housing 10 , thereby preventing the first hook 221 and/or the second hook 231 from protruding from the guide groove 11 and causing the door cover 20 to fall off from the main housing 10 .
- the first blocking wall 210 and/or the second blocking wall 220 and/or the third blocking wall 230 are in a shape of a rectangle.
- the first blocking wall 210 has a length size approximately ranging from 15 mm to 25 mm and a width size approximately ranging from 5 mm to 10 mm.
- the second blocking wall 220 and/or the third blocking wall 230 have a length size approximately ranging from 28 mm to 40 mm, and a width size approximately ranging from 15 mm to 25 mm.
- the door cover 20 is made of a highly heat conductive material, such as a metal material, which is conducive to promoting heat dissipation of a heating assembly in the third space 1300 and evenly transferring heat to other parts.
- the vapor generation device 100 includes:
- the receiving hole 41 is defined by an extractor 40 .
- the receiving hole 41 may be further defined by a main housing 10 or a bracket 30 , or the like.
- the vapor generation device 100 includes:
- the receiving cavity 430 is also defined by the extractor 40 .
- the receiving cavity 430 may be further defined by a main housing 10 or a bracket 30 , or the like.
- the vapor generation device 100 includes:
- the heater 50 may be further configured in a shape of a cylinder; and during use, an internal space of the heater 50 defines to form the receiving cavity 430 for receiving the aerosol-generating product A and generating an aerosol by heating a periphery of the aerosol-generating product A.
- the heater 50 is a resistance heater; or Alternatively, in some implementations, the heater 50 is a susceptor that is penetrated by a magnetic field and generates heat.
- the vapor generation device 100 includes:
- the bracket 30 generally has a shape of a square. In an implementation, specifically, the bracket 30 has a length size approximately ranging from 25 mm to 40 mm, a width size ranging from 15 mm to 25 mm, and a thickness size approximately ranging from 5 mm to 10 mm.
- the extractor 40 includes:
- the extractor 40 may be moved or removed relative to the main housing 10 , to present an operating position and an extraction position that are opposite to each other. Specifically,
- FIG. 11 is a schematic diagram of an extractor 40 at an operating position according to an embodiment.
- an aerosol-generating product A is received in a receiving portion 420 , and is supported by a supporting wall 421 of the receiving portion 420 ; and the heater 50 at least partially penetrates into a receiving cavity 430 defined by the receiving portion 420 through the supporting wall 421 , thereby heating the aerosol-generating product A.
- the operating position is basically an operating position formed by the heater 50 being inserted into the aerosol-generating product A.
- the extractor 40 remains connected to a main housing 10 .
- FIG. 12 is a schematic diagram of an extractor 40 at an extraction position according to an embodiment.
- the extractor 40 is moved or removed in a length direction relative to a main housing 10 , and then an aerosol-generating product A is separated from a heater 50 under support of a supporting wall 421 and is removed.
- the extraction position is formed by separation between the aerosol-generating product A and the heater 50 .
- the extractor 40 is also directly or indirectly connected to the main housing 10 at the extraction position, which is conducive to preventing the extractor 40 from being detached from the vapor generation device 100 .
- the extractor 40 is not directly or indirectly connected to the main housing 10 at the extraction position, and then the extractor 40 is detached from the main housing 10 and/or the bracket 30 at the extraction position, thereby facilitating direct removal or detachment from the vapor generation device 100 .
- the aerosol-generating product A has a length approximately ranging from 40 mm to 80 mm, and an outer diameter size approximately ranging from 4 mm to 8 mm.
- the receiving portion 420 of the extractor 40 has a length approximately ranging from 15 mm to 40 mm; and the receiving portion 420 correspondingly has an inner diameter approximately ranging from 4 mm to 8 mm.
- the extractor 40 further includes:
- a structure of the bracket 30 includes:
- the window 32 is directly in communication with the external air, and then the second hole 423 of the extractor 40 may be in communication with the external air through the window 32 ; and in an inhaling process, the external air directly enters the second hole 423 through the window 32 , and then enters the receiving cavity 430 along with the aerosol generated by the aerosol-generating product A and is jointly inhaled by the user, as shown by the arrow R 2 in FIG. 10 .
- a free front end of the heater 50 penetrates into the bracket 30 ; and an end of the heater 50 facing away from the free front end is fixed in the main housing 10 . Further, according to the implementation shown in the figure, the end of the heater 50 facing away from the free front end is surrounded and fixed by a fixing base 52 .
- the heater 50 has an exposed portion 51 exposed through the window 32 ; and certainly, the exposed portion 51 has a length approximately ranging from 2 mm to 5 mm.
- the exposed portion 51 of the heater 50 is visible through the window 32 .
- the exposed portion 51 is defined by a size or a position of the window 32 .
- the fixing base 52 is covered by the lower end wall 350 of the bracket 30 , and the exposed portion 51 of the heater 50 is completely defined by the bracket 30 ; and specifically, the fixing base 52 is defined by a part of the heater 50 located between the front side wall 330 and/or the lower end wall 350 of the rear side wall 340 in the length direction.
- the exposed portion 51 is close to an end of the fixing base 52 and/or the heater 50 . It may be learnt from FIG. 14 that a distance d 4 between the exposed portion 51 of the heater 50 and the free front end is approximately 12 mm. The exposed portion 51 is away from the free front end, and it is difficult for a cleaning tool to directly clean the exposed portion 51 from the receiving hole 41 of the extractor 40 . Generally, in an implementation, a distance d 4 between the exposed portion 51 of the heater 50 and the free front end is greater than 8 mm.
- the window 32 has a proper area, and by inserting some cleaning tools into the window 32 , the exposed portion 51 of the heater 50 is cleaned during use.
- the cleaning tools are, for example, a small brush, a steel wire strip, a scraper, and the like.
- the window 32 needs to be of a proper area, to provide a necessary size for the cleaning tools to insert into, but also needs to prevent fingers of the user from being burned by the heater 50 .
- an area of the window 32 is greater than 10 mm 2 and an area of the window 32 is less than 100 mm 2 . In a more preferred implementation, an area of the window 32 is greater than 30 mm 2 and an area of the window 32 is less than 80 mm 2 .
- the window 32 is basically in a shape of a square.
- the window 32 is in a shape of a strip in a width direction of the bracket 30 .
- a length size d 1 of the window 32 extending in the width direction of the bracket 30 approximately ranges from 10 mm to 20 mm; and a width size d 2 of the window 32 extending in a length direction of the bracket 30 approximately ranges from 3 mm to 6 mm.
- the length size d 1 of the window 32 is 17 mm; and the width size d 2 of the window 32 is approximately 4.2 mm.
- At least one of the length size dl and the width size d 2 of the window 32 shall not be greater than 10 mm, which is conducive to preventing the fingers of the user from inserting. In a more preferred implementation, at least one of the length size d 1 and the width size d 2 of the window 32 shall not be greater than 6 mm.
- a length of the exposed portion 51 of the heater 50 basically ranges from 3 mm to 6 mm.
- a length of the heater 50 penetrating into the receiving portion 420 of the extractor 40 approximately ranges from 10 mm to 18 mm.
- a length of the exposed portion 51 of the heater 50 does not exceed 1 ⁇ 3 of a total length of the heater 50 .
- the bracket 30 further has a first inner wall 360 and a second inner wall 370 .
- the first inner wall 360 and the second inner wall 370 are configured in a shape of an arc, and the first inner wall 360 and the second inner wall 370 are opposite to each other.
- the first inner wall 360 and the second inner wall 370 are in a shape of an arc that is curved outward in the width direction, and a guide accommodating space 31 is defined between the first inner wall 360 and the second inner wall 370 .
- a shape of the accommodating space 31 is basically the same as a shape of the receiving portion 420 of the extractor 40 , and a size volume of the accommodating space 31 is slightly greater than a volume of the receiving portion 420 .
- the first inner wall 360 and the second inner wall 370 provide guidance when the extractor 40 is stably assembled to the bracket 30 and during movement or removal.
- the accommodating space 31 between the first inner wall 360 and the second inner wall 370 is configured as a receiving cavity 430 configured to receive the aerosol-generating product A.
- the door cover 20 blocks or closes the window 32 at the closed position; and at the open position, the door cover 20 opens or reveals the window 32 a.
- the first heat insulation cavity 34 and/or the second heat insulation cavity 35 are empty and open, and are in communication with the external air, thereby forming heat insulation through low heat conduction of the air; the first heat insulation cavity 34 prevents heat of the heater 50 from being transferred outward in a radial direction to an electric core 11 in the first space 1100 ; and/or the second heat insulation cavity 35 prevents the heat of the heater 50 from being transferred outward in a radial direction to the right side wall 320 .
- first heat insulation cavity 34 and/or the second heat insulation cavity 35 are closed cavities, and internal pressures of the first heat insulation cavity 34 and the second heat insulation cavity 35 may be configured to be lower than the external pressure.
- first heat insulation cavity 34 and/or the second heat insulation cavity 35 have a vacuum degree; and this is conducive to preventing heat transfer.
- the first heat insulation cavity 34 and/or the second heat insulation cavity 35 are filled with some heat insulation materials, such as aerogel, porous polymer, porous polyurethane, foam cotton, and the like; and this is conducive to preventing heat transfer.
- some heat insulation materials such as aerogel, porous polymer, porous polyurethane, foam cotton, and the like.
- the receiving portion 420 of the extractor 40 is also at least partially exposed to the window 32 .
- a circuit board 12 that controls operation of the vapor generation device 100 is mounted in the second space 1200 of the vapor generation device 100 ; and a charging interface 13 located at a distal end 120 is electrically connected to the circuit board 12 during use, and then charges an electric core 11 after an external power supply device is connected.
- cleaning of the debris or aerosol condensate dropped from the aerosol-generating product A may include:
- bracket 30 is removed from the main housing 10 , as shown in FIG. 9 , so that the heater 50 is basically completely exposed, and the surface of the heater 50 may be deeply and completely cleaned through a cleaning tool.
- FIG. 15 to FIG. 18 show a schematic diagram of a structure of still another embodiment of a vapor generation device 100 ; and in this implementation, the vapor generation device 100 includes:
- the vapor generation device 100 further includes a limiting protrusion 17 a located between the main housing 10 a and the door cover 20 a; and during assembly, the limiting protrusion 17 a is located at the proximal end 110 a of the main housing 10 a, and at least partially protrudes relative to the main housing 10 a.
- the limiting protrusion 17 a is configured to provide a limit at the open position and the closed position of the door cover 20 a.
- the door cover 20 a covers or hides the limiting protrusion 17 a at any moving position.
- the limiting protrusion 17 a is not exposed to a surface of the vapor generation device 100 at any moving position of the door cover 20 a.
- the vapor generation device 100 further includes:
- a latching protrusion 43 a is arranged on the extractor 40 a; and the latching protrusion 43 a is configured to form a connection by engaging the extractor 40 a with the bracket 30 a at the operating position.
- a quantity of latching protrusions 43 a is more than one, and the latching protrusions 43 a are configured in the form of ridges located on an outer surface of the receiving portion 420 a of the extractor 40 a.
- the extractor 40 a further extracts the aerosol-generating product A through an operation of directly removing from the bracket 30 a in the length direction, as shown by the arrow R 3 in FIG. 16 .
- a first connecting hole 15 a and/or a second connecting hole 16 a are provided on the bracket 30 a.
- the first connecting hole 15 a is provided adjacent to the first space 1100 .
- connecting components such as a screw/bolt/screw are mounted in the first connection hole 15 a and/or the second connection hole 16 a to connect the bracket 30 a and the main housing 10 a.
- the first connecting hole 15 a is provided adjacent to the proximal end 110 a; and the second connecting hole 16 a is provided adjacent to the second space 1200 .
- the first connecting hole 15 a is covered or hidden by the extractor 40 a. Specifically, the first connecting hole 15 a is covered by the operating portion 410 a of the extractor 40 a. In addition, after removing the extractor 40 a, the first connecting hole 15 a is exposed. In this case, the user may disassemble connecting components such as the screw/bolt/screw located in the first connecting hole 15 a by using tools such as a screwdriver; and further, a connection between the bracket 30 a and the main housing 10 a is released, so that the bracket 30 a may be disassembled from the main housing 10 a.
- the second connecting hole 16 a is exposed through the window 32 a; or the second connecting hole 16 a is visible through the window 32 a; and the user may insert the screwdriver into the second connecting hole 16 a through the window 32 a to disassemble connecting components such as the screw/bolt/screw.
- the exemplary vapor generation device 100 further includes:
- the blocking member 60 a is removably combined with the bracket 30 a to block or cover or close the window 32 a.
- the window 32 a is blocked or covered or closed.
- the blocking member 60 a is removed from the bracket 30 a, the window 32 a is opened.
- the blocking member 60 a is combined with the bracket 30 a in a width direction of the main housing 10 a, or is removed from the bracket 30 a in a width direction of the main housing 10 a.
- a guide rail 14 a extending in the width direction is further arranged on the main housing 10 a; and correspondingly, a guide groove 65 a is provided on the blocking member 60 a, to provide guidance during the operation of combining the blocking member 60 a with the bracket 30 a or removing the blocking member 60 a.
- the window 32 a is open on a front side and a rear side in a thickness direction of the main housing 10 a and on a right side facing away from the first space 1100 in the width direction.
- a length size d 11 is 20 mm; and a width size d 12 is approximately 6 mm.
- the window 32 a is at least partially defined by the bracket 30 a .
- the window 32 a is defined by a spacing space between the bracket 30 a in the length direction and the main housing 10 a.
- the bracket 30 a further defines an accommodating space 31 a that is at least partially configured to accommodate the extractor 40 a.
- the accommodating space 31 a extends in the length direction, and a shape of the accommodating space 31 a is basically the same as a shape of the receiving portion 420 a of the extractor 40 a.
- a size volume of the accommodating space 31 a is slightly greater than a volume of the receiving portion 420 a.
- An inner wall of the accommodating space 31 a is configured to provide guidance when the extractor 40 a is stably assembled onto the bracket 30 a, and during movement or removal.
- a receiving cavity configured to receive the aerosol-generating product A is defined by the receiving portion 420 a of the extractor 40 a in the foregoing implementation.
- the accommodating space 31 a may be mainly used as a receiving cavity configured to receive the aerosol-generating product A.
- the bracket 30 a has a protruding portion 34 a protruding away from the first space 1100 in the width direction, and a recessed portion 33 a is defined between the protruding portion 34 a and other parts of the bracket 30 a.
- the protruding portion 34 a is located at a proximal end 110 a, so that the recessed portion 33 a is formed adjacent to the window 32 a.
- the accommodating space 31 a avoids the protruding portion 34 a.
- the blocking member 60 a includes a main body portion 61 a extending in the length direction, and a first blocking arm 62 a and a second blocking arm 63 a that basically extend in the width direction from two sides in the thickness direction of the main body portion 61 a.
- the first blocking arm 62 a and the second blocking arm 63 a separately cover, block, or seal the window 32 a from two opposite sides in the thickness direction.
- the main body portion 61 a covers, blocks, or seals the window 32 a from the right side in the width direction.
- the main body portion 61 a is accommodated and kept in the recessed portion 33 a ; and a surface of the blocking member 60 a is flatly joined to the bracket 30 a.
- the guide groove 65 a is formed on the first blocking arm 62 a and/or the second blocking arm 63 a.
- a first magnetic member 36 a is further arranged on the bracket 30 a ; and certainly, in a preferred implementation, the first magnetic member 36 a is arranged in the protruding portion 34 a.
- a second magnetic member 64 a is further arranged on the blocking member 60 a, and is configured to magnetically attract the first magnetic member 36 a when combined with the bracket 30 a to block the window 32 a, thereby causing the blocking member 60 a to be stably kept on the bracket 60 a.
- the second magnetic member 64 a is accommodated on the main body portion 61 a of the blocking member 60 a.
- a third magnetic member 45 a is arranged on the extractor 40 a, and is configured to magnetically attract the first magnetic member 36 a at an operating position, thereby causing the extractor 40 a to be stably kept on the bracket 60 a.
- the first magnetic member 36 a has a first magnetic pole, such as an N pole, toward a proximal end 110 a, and a second magnetic pole, such as an S pole, toward a distal end.
- the second magnetic member 64 a also has a first magnetic pole, such as an N pole, toward the proximal end 110 a, and a second magnetic pole, such as an S pole, toward the distal end.
- the third magnetic member 45 a also has a first magnetic pole, such as an N pole, toward the proximal end 110 a, and a second magnetic pole, such as an S pole, toward the distal end.
- the first magnetic member 36 a may be simultaneously magnetically attracted to the second magnetic member 64 a and the second magnetic member 45 a that are located on an upper side and a lower side.
- the receiving portion 420 a of the extractor 40 a has a relatively greater length. Further, after assembly, the receiving portion 420 a of the extractor 40 a completely covers the heater 50 a, and the heater 50 a is not visible when the extractor 40 a is combined with the bracket 30 a. In a specific implementation, a front end of the receiving portion 420 a abuts against an upper surface 521 a of a fixing base 52 a facing the proximal end 110 a.
- a first air port 46 a that allows air from the window 32 a to enter the extractor 40 a is provided at the front end of the receiving portion 420 a of the extractor 40 a for allowing air to enter the receiving portion 420 a.
- the receiving portion 420 a has a supporting wall 421 a inside, configured to provide support to the aerosol-generating product A. Further, as shown in FIG. 18 and FIG. 19 , the extractor 40 a further has an extending wall 424 a extending from the receiving portion 420 a, and the extending wall 424 a abuts against the upper surface 521 a of the fixing base 52 a during assembly.
- the extending wall 424 a may block the exposed portion 51 a surrounding and blocking the heater 50 a exposed through the window 32 a; and on the other hand, more importantly, a specific space is formed between the fixing base 52 a and the supporting wall 421 a through the extending wall 424 a, to block or keep the air seeping or leaking from the first hole 422 a and/or the second hole 423 a, which is conducive to preventing the aerosol from seeping or leaking from the first hole 422 a and/or the second hole 423 a and being viewed by the user.
- the extending wall 424 a is open to the exposed portion 51 a of the heater 50 a after the extractor 40 a is moved or removed from the bracket 30 a to extract the aerosol-generating product A, and then the user may clean the exposed portion 51 a of the heater 50 a through the window 32 a by using the cleaning tool.
- the first air port 46 a is formed on the extending wall 424 a.
- the exposed portion 51 a of the heater 50 a is defined by the bracket 30 a and the fixing base 52 a that fixes the end of the heater 50 a .
- the exposed portion 51 a is defined by a part of the heater 50 a located between the bracket 30 a and the fixing base 52 a.
- the exposed portion 51 a is close to the end of the fixing base 52 a and/or the heater 50 a.
- a distance between the exposed portion 51 a of the heater 50 a and the free front end is approximately 12 mm.
- the exposed portion 51 a is away from the free front end, and it is difficult for a cleaning tool to directly clean the exposed portion 51 a from the receiving hole 41 a of the extractor 40 a.
- a first hole 422 a for the heater 50 a to pass through to the aerosol-generating product A is provided on the supporting wall 421 a; and a second hole 423 a for the air to enter the aerosol-generating product A.
- the external air enters the window 32 a through a gap between the bracket 30 a and/or the blocking member 60 a and the main housing 10 a.
- the air from the window 32 a enters the first air port 46 a in the extractor 40 a, enters the receiving portion 420 a of the extractor 40 a, and is inhaled into the aerosol-generating product A through the second hole 423 a until the air is inhaled.
- an airflow channel includes an air inlet portion extending toward the heater 50 a in a radial direction of the heater 50 a, and an air outlet portion extending in the length direction toward the proximal end 110 a in the receiving cavity.
- the air inlet portion passes through the first air port 46 a in the extractor 40 a that allows the air from the window 32 a to enter, and the air outlet portion passes through the second hole 423 a.
- a distance d 3 between the supporting wall 421 a and the front end of the receiving portion 420 a approximately ranges from 3 mm to 5 mm.
- the blocking member 60 a opens or blocks the window 32 a by moving or rotating at different positions on the bracket 30 a.
- the blocking member 60 a is configured to move in the length direction on the bracket 30 a, thereby blocking the window 32 a when moving close to the second space 1200 , and at least partially opening the window 32 a when moving away from the second space 1200 .
- the blocking member 60 a may be further in the width direction.
- a first heat insulation cavity 35 a is further defined in the bracket 30 a; and in arrangement, the first heat insulation cavity 35 a is located between a receiving cavity configured to receive the aerosol-generating product A and the first space 1100 in the width direction, which is conducive to preventing the heat of the heater 50 a from being transferred to an electric core 11 a in the first space 1100 .
- the first heat insulation cavity 35 a is a closed space, and the interior of the first heat insulation cavity 34 b may be filled with air, thereby forming heat insulation by using low heat conductivity of the air.
- the first heat insulation cavity 35 a is evacuated, so that pressure of the first heat insulation cavity 34 b is lower than the external pressure, to form heat insulation.
- the first heat insulation cavity 35 a is filled with a porous body, foam, aerogel, and the like, to improve heat insulation.
- cleaning of the debris or aerosol condensate dropped from the aerosol-generating product A may include:
- FIG. 21 to FIG. 24 show a schematic diagram of a vapor generation device 100 b according to still another embodiment.
- the vapor generation device 100 b is configured in a generally slender shape of a cylinder, has a length size approximately ranging from 90 mm to 110 mm, and an outer diameter size approximately ranging from 15 mm to 20 mm.
- the vapor generation device 100 b further includes a proximal end 110 b and a distal end 120 b that are opposite to each other in a length direction;
- the second housing 15 b adjacent to the proximal end 110 b is further arranged on the first housing 10 b; and correspondingly, the extractor 40 b includes an annular operating portion 410 b and a receiving portion 420 b in a shape of a cylinder located in the operating portion 410 b.
- the user may exert a force on the operating portion 410 b with a finger to perform an extraction operation; and the aerosol-generating product A is removably received in the receiving portion 420 b through the receiving hole 41 b defined by the operating portion 410 b.
- the operating portion 410 b is arranged around the second housing 15 b; in an operating state, the operating portion 410 b abuts against an end portion of the second housing 15 b toward the proximal end 110 b, and is stably kept on the second housing 15 b; and an outer surface of the second housing 15 b is further configured to provide guidance when performing the extraction operation on the extractor 40 b by the user.
- the receiving portion 420 b has a supporting wall 421 b configured to support the aerosol-generating product A; a first hole 422 b is provided on the supporting wall 421 b for a susceptor 50 b to pass through into the receiving portion 420 b, thereby facilitating the susceptor 50 b to be inserted into the aerosol-generating product A; and a second hole 423 b is further provided on the supporting wall 421 b, and is configured to allow air to enter the aerosol-generating product A of the receiving portion 420 b.
- the second housing 15 b is provided with:
- a free front end of the susceptor 50 b is located in the accommodating space 210 b, and is kept by the fixing base 70 b relative to an end of the free front end.
- the fixing base 70 b includes a first fixing base 71 b and a second fixing base 72 b that are sequentially arranged from the inside to the outside in a radial direction of the susceptor 50 b; and the first fixing base 71 b is preferably made of ceramics with low heat conductivity such as zirconia, and the second fixing base 72 b is preferably made of organic polymers with low heat conductivity such as PEEK.
- a first air inlet 151 b is provided on the second housing 15 b; and in terms of specific position arrangement, the first air inlet 151 b is located at a position at which the second housing 15 b is adjacent to the first housing 10 b, and is also adjacent to a position at which the operating portion 410 b of the extractor 40 b is joined to the first housing 10 b.
- the operating portion 410 b covers the first air inlet 151 b, and may expose the first air inlet 151 b when the aerosol-generating product A is extracted by operations such as removal/movement to the extraction position.
- the first air inlet 151 b is opposite to and in airflow communication with the gap.
- the external air enters the first air inlet 151 b through the joining gap between the operating portion 410 b and the first housing 10 b.
- the bracket 20 b further has an inner bottom wall 221 b defining the accommodating space 210 b; and there is a distance or gap approximately ranging from 1 mm to 3 mm between the inner bottom wall 221 b and the fixing base 70 b of the susceptor 50 b, and the inner bottom wall 221 b further has a second air port 222 b.
- the second air port 222 b is opposite to the second hole 423 b on the extractor 40 b.
- the external air enters the first air inlet 151 b through the joining gap between the operating portion 410 b and the first housing 10 b , flows from the first air inlet 151 b in the radial direction to the second air port 222 b through the gap between the bottom wall 221 b and the fixing base 70 b, and finally enters the aerosol-generating product A from the second air port 222 b through the second hole 423 b on the extractor 40 b and is then inhaled.
- an airflow path includes an air inlet portion extending from the first air inlet 151 b to the second air port 222 b basically in a radial direction of the susceptor 50 b; and an air outlet portion extending from the second air port 222 b in a length direction to the proximal end 110 b.
- the air inlet portion is basically vertical to the air outlet portion.
- the air outlet portion passes through the accommodating space 210 b and/or the receiving portion 420 b of the extractor 40 b.
- the second fixing base 72 b has a latching protrusion 721 b extending into the first air inlet 151 b, and the second housing 15 b is kept by the latching protrusion 721 b in the first air inlet 151 b; and when disassembly is required, the latching protrusion 721 b may be pressed to detach from the first air inlet 151 b, so that the second housing 15 b is disassembled or removed from the first housing 10 b.
Landscapes
- Catching Or Destruction (AREA)
- Disinfection, Sterilisation Or Deodorisation Of Air (AREA)
- Resistance Heating (AREA)
Abstract
This application provides a vapor generation system and a vapor generation device, where the vapor generation system includes: a product box, configured to store an aerosol-generating product; a vapor generation device, configured to heat the aerosol-generating product to generate an aerosol, where an outer surface of the vapor generation device has a first plane with a largest area; and when the first plane of the vapor generation device is in contact with a largest plane of an outer surface of the product box, a contact area is defined by a plane with a smaller area of the two planes. The foregoing vapor generation system and combination of the vapor generation device and the product box is advantageous for the user to hold or maintain.
Description
- This application claims priority to Chinese Patent Application No. 202110882128.5, entitled “AEROSOL GENERATING SYSTEM AND AEROSOL GENERATING DEVICE” filed with the China National Intellectual Property Administration on Aug. 2, 2021, which is incorporated herein by reference in its entirety.
- This application relates to the field of heat not burning electronic cigarette device technologies, and in particular, to a vapor generation system and a vapor generation device.
- Tobacco products (such as cigarettes, cigars, and the like) burn tobacco during use to produce tobacco smoke. Attempts are made to replace these tobacco-burning products by making products that release compounds without burning.
- An example of this type of products is a heating apparatus that releases compounds by heating rather than burning materials. For example, the materials may be tobacco or other non-tobacco products. These non-tobacco products may include or not include nicotine. As another example, there are aerosol-providing articles, for example, electrically heating smoking devices.
- An embodiment of this application provides a vapor generation system, including:
-
- a product box, configured to store an aerosol-generating product; and
- a vapor generation device, configured to heat the aerosol-generating product to generate an aerosol, where an outer surface of the vapor generation device has a first plane with a largest area; and
- when the first plane of the vapor generation device is in contact with a largest plane of an outer surface of the product box, a contact area is defined by a plane with a smaller area of the two planes.
- In a preferred implementation, the first plane is in a shape of a square.
- In a preferred implementation, the outer surface of the vapor generation device has a side surface adjacent to the first plane; and the side surface is in a shape of a square.
- In a preferred implementation, when the first plane of the vapor generation device is in contact with the largest plane of the outer surface of the product box, a side surface of the outer surface of the vapor generation device that is adjacent to the product box is in a shape of a square.
- In a preferred implementation, a shape of the first plane is close to that of the largest plane of the outer surface of the product box.
- In a preferred implementation, the first plane has a length size ranging from 70 mm to 80 mm and a width size ranging from 40 mm to 50 mm.
- In a preferred implementation, the vapor generation device and/or the product box are/is basically in a shape of a cube.
- In a preferred implementation, the vapor generation device and the product box have basically similar external sizes.
- In a preferred implementation, the vapor generation device has a length size ranging from 70 mm to 80 mm, a width size ranging from 40 mm to 50 mm, and a thickness size ranging from 9.5 mm to 20 mm.
- In a preferred implementation, when the first plane of the vapor generation device is in contact with the largest plane of the outer surface of the product box, a user simultaneously holds or operates the vapor generation device and the product box through one hand.
- Still another embodiment of this application further provides a vapor generation device, configured to heat an aerosol-generating product to generate an aerosol; and configured to heat the aerosol-generating product to generate the aerosol, where an outer surface of the vapor generation device has a first plane with a largest area; and
-
- when the first plane of the vapor generation device is in contact with a largest plane of an outer surface of the product box, a contact area is defined by a plane with a smaller area of the two planes.
- Still another embodiment of this application further provides a vapor generation device, configured to heat an aerosol-generating product to generate an aerosol; and an outer surface of the vapor generation device has a first plane with a largest area; and the area of the first plane approximately ranges from 2800 mm2 to 4000 mm2.
- In a preferred implementation, the first plane has a length size ranging from 70 mm to 80 mm.
- In a preferred implementation, when the first plane of the vapor generation device is in contact with a largest plane of an outer surface of the product box, a contact area is defined by a plane with a smaller area of the two planes.
- In a preferred implementation, the vapor generation device further includes: a wireless charging coil, configured to charge accommodated in the vapor generation device, where
-
- the wireless charging coil is a planar spiral coil parallel to the first plane.
- Still another embodiment of this application further provides a vapor generation device, configured to heat an aerosol-generating product to generate an aerosol; and the vapor generation device has a length direction and a width direction perpendicular to the length direction; the vapor generation device has a proximal end and a distal end that are opposite to each other in the length direction, and a first side and a second side that are opposite to each other in the width direction; and the vapor generation device includes:
-
- a first space, close to the first side in the width direction, and basically extending from the proximal end to the distal end, where the first space is used to accommodate an electric core that supplies power;
- a second space, close to the second side in the width direction, and close to the distal end in the length direction, where the second space is used to accommodate and assemble a circuit board; and
- a third space, close to the second side in the width direction, and close to the proximal end in the length direction, where the third space defines a heating space used to receive the aerosol-generating product during use.
- In a preferred implementation, a width size of the first space is between ⅓ and ⅔ of a width size of the vapor generation device.
- In a preferred implementation, the first space has a length size ranging from 60 mm to 65 mm, a width size ranging from 15 mm to 25 mm, and a thickness size ranging from 5 mm to 10 mm.
- In a preferred implementation, the vapor generation device further includes: the electric core accommodated in the first space, where the electric core is configured to supply power; and the electric core is basically in a shape of a cube with a length size greater than a width size and the width size greater than a thickness size.
- In a preferred implementation, the electric core has a length ranging from 60 mm to 65 mm, a width ranging from 15 mm to 25 mm, and a thickness ranging from 5 mm to 10 mm.
- In a preferred implementation, a width size of the second space and/or the third space is between ⅓ and ⅔ of the width size of the vapor generation device.
- In a preferred implementation, in the length direction of the vapor generation device, a length size of the second space is greater than a length size of the third space.
- In a preferred implementation, a length size of the second space is between ½ and ⅔ of a length size of the vapor generation device.
- In a preferred implementation, a length size of the third space is between ⅓ and ½ of a length size of the vapor generation device.
- In a preferred implementation, the second space has a length size ranging from 35 mm to 50 mm, a width size ranging from 15 mm to 25 mm, and a thickness size ranging from 5 mm to 10 mm.
- In a preferred implementation, the third space has a length size ranging from 25 mm to 40 mm, a width size ranging from 15 mm to 25 mm, and a thickness size ranging from 5 mm to 10 mm.
- In a preferred implementation, a thickness size of the vapor generation device is not less than 9.5 mm.
- In a preferred implementation, the vapor generation device and the product box have basically similar external sizes.
-
- the first space, the second space, and the third space are airtightly sealed from each other.
- In a preferred implementation, the vapor generation device further includes: a wireless charging coil, configured to charge the electric core accommodated in the first space.
- In a preferred implementation, the wireless charging coil is a planar spiral coil.
- In a preferred implementation, the wireless charging coil is arranged basically parallel to a plane defined by a length direction and a width direction of the vapor generation device.
- In a preferred implementation, the wireless charging coil is arranged adjacent to a side of the vapor generation device in a thickness direction.
- In a preferred implementation, the vapor generation device further includes:
-
- a heater, at least partially extending in the third space, to heat the aerosol-generating product,
- where the heater has a free front end configured to be inserted into the aerosol-generating product; and
- a window, at least partially surrounding the heater and avoiding the free front end, to cause the heater to have an exposed portion exposed through the window, where a user cleans the exposed portion of the heater through the window.
- The foregoing vapor generation system and combination of the vapor generation device and the product box is advantageous for the user to hold or maintain.
- One or more embodiments are exemplarily described with reference to the corresponding figures in the accompanying drawings, and the descriptions are not to be construed as limiting the embodiments. Elements in the accompanying drawings that have same reference numerals are represented as similar elements, and unless otherwise particularly stated, the figures in the accompanying drawings are not drawn to scale.
-
FIG. 1 is a schematic diagram of a vapor generation device according to an embodiment; -
FIG. 2 is an exploded schematic diagram of a vapor generation device from still another perspective; -
FIG. 3 is a schematic diagram of combination of a vapor generation device and a product box according to an embodiment; -
FIG. 4 is a schematic diagram of a vapor generation device according to still another embodiment; -
FIG. 5 is a schematic diagram of a specific structure of an embodiment of a vapor generation device inFIG. 1 ; -
FIG. 6 is a schematic diagram of a structure of a door cover inFIG. 5 being moved to open a heating assembly; -
FIG. 7 is a schematic diagram of a use state of a vapor generation device inFIG. 6 from one perspective; -
FIG. 8 is a schematic diagram of a structure of a door cover from still another perspective; -
FIG. 9 is an exploded schematic diagram of each part of the vapor generation device inFIG. 6 ; -
FIG. 10 is a schematic cross-sectional view of the vapor generation device inFIG. 6 ; -
FIG. 11 is a schematic diagram of an extractor inFIG. 10 in an operating state; -
FIG. 12 is a schematic diagram of the extractor inFIG. 11 in an extraction state; -
FIG. 13 is a schematic cross-sectional view of the extractor inFIG. 10 from one perspective; -
FIG. 14 is a schematic diagram of a perspective after the extractor inFIG. 6 extracts an aerosol-generating product; -
FIG. 15 is a schematic diagram of a use state of still another embodiment of the vapor generation device inFIG. 1 ; -
FIG. 16 is an exploded schematic diagram of each part of the vapor generation device inFIG. 15 from one perspective; -
FIG. 17 is an exploded schematic diagram of each part of the vapor generation device inFIG. 15 from still another perspective; -
FIG. 18 is a schematic cross-sectional view of the vapor generation device inFIG. 16 from one perspective; -
FIG. 19 is a schematic cross-sectional view of the extractor inFIG. 18 from still another perspective; -
FIG. 20 is a schematic diagram after a blocking member inFIG. 15 is removed; -
FIG. 21 is a schematic diagram of a vapor generation device in an extraction state according to still another embodiment; -
FIG. 22 is a schematic cross-sectional view of the vapor generation device inFIG. 21 in an operating state; -
FIG. 23 is a schematic cross-sectional view of the vapor generation device inFIG. 21 in an extraction state; and -
FIG. 24 is an enlarged view of a part B inFIG. 23 . - For ease of understanding of this application, this application is described in further detail below with reference to the accompanying drawings and specific implementations.
- An embodiment of this application provides a vapor generation device, configured to receive an aerosol-generating product to generate an aerosol.
- Further, in an optional implementation, an aerosol-generating product preferably uses a tobacco-containing material that releases volatile compounds from a substrate when being heated; or may also be a non-tobacco material that may be adapted to be electrically heated for smoking after being heated. The aerosol-generating product preferably uses a solid substrate, which may include one or more powders, granules, fragments, thin strips, strips, or flakes of one or more of vanilla leaves, tobacco leaves, homogenized tobacco, and expanded tobacco; or a solid substrate may include additional tobacco or non-tobacco volatile flavor compounds that are released when the substrate is heated.
- Further, in an optional implementation, the aerosol-generating product includes cigarettes in a shape of a slender cylinder.
- Further, refer to
FIG. 1 andFIG. 2 , in one embodiment, thevapor generation device 100 is configured to have a generally square shape. - In the implementation shown in
FIG. 1 , thevapor generation device 100 includes: -
- a
proximal end 110 and adistal end 120 that are opposite to each other in a length direction, where according to requirements of normal use, theproximal end 110 is configured as an end for a user to inhale an aerosol. During use, the aerosol-generating product is at least partially received into thevapor generation device 100 through theproximal end 110 and is heated to generate the aerosol.
- a
- Further, refer to
FIG. 1 andFIG. 2 , thevapor generation device 100 defines: -
- a
first space 1100, basically extending from theproximal end 110 to thedistal end 120, where thefirst space 1100 is located on a side of thevapor generation device 100 in a width direction; and during use, thefirst space 1100 is a space used to accommodate and assemble anelectric core 11 for power supply; - a
second space 1200, basically located at a position close to thedistal end 120, and being opposite to or adjacent to a part of thefirst space 1100 in the width direction, where during use, thesecond space 1200 is a space used to accommodate and assemble a circuit board, such as a PCB board; and - a
third space 1300, basically located at a position close to theproximal end 110, being opposite to thesecond space 1200 in a length direction, and being opposite to or adjacent to the part of thefirst space 1100 close to theproximal end 110 in the width direction, where during use, thethird space 1300 is an at least partially defined heating space, to receive and heat at least a part of the aerosol-generating product, to generate an aerosol for inhaling.
- a
- In a preferred implementation, the
first space 1100, thesecond space 1200, and thethird space 1300 are basically airtightly sealed from each other, to prevent hot air or the aerosol from flowing in front of thefirst space 1100, thesecond space 1200, and thethird space 1300. - Further,
FIG. 3 is a schematic diagram of a vapor generation system including avapor generation device 100 and aproduct box 200. As shown inFIG. 3 , theproduct box 200, such as a cigarette box, is usually configured in a shape of a square; and theproduct box 200 usually has anopenable flip cover 300, and by opening theflip cover 300, the aerosol-generating product, such as cigarettes, accommodated inside theproduct box 200 may be accessed. - Further, as shown in
FIG. 3 , thevapor generation device 100 basically has a shape and a volume size that are similar to that of theproduct box 200 such as the cigarette box. Therefore, it is conducive to being placed in combination with theproduct box 200. - Further, as shown in
FIG. 3 , an outer surface of thevapor generation device 100 has several planes, and a plane with a largest area is planar side surface located on two sides in a thickness direction; and theproduct box 200, such as a cigarette box, also has a planar side surface located on two sides in the thickness direction, which is the plane with the largest area. When a side surface of thevapor generation device 100 in the thickness direction is combined with a side surface of theproduct box 200 in the thickness direction, a contact area between a side surface of thevapor generation device 100 in the thickness direction and a side surface of theproduct box 200 in the thickness direction is defined by the smaller plane of the two. - Certainly, in some implementations, an area or a shape of the largest plane on the outer surface of the
vapor generation device 100 is basically the same as or close to an area or a shape of the largest plane on the outer surface of theproduct box 200. Alternatively, in some implementations, an area or a shape of any side surface of thevapor generation device 100 in the thickness direction is basically the same as or close to an area or a shape of any side surface of theproduct box 200 in the thickness direction. - In addition, as shown in
FIG. 3 , the side surface of thevapor generation device 100 that is in contact with or is in combination with theproduct box 200 is in a shape of a square; any other side surfaces of thevapor generation device 100 adjacent to the side surface in contact with theproduct box 200 each are in a shape of a square; and for example, the side surfaces of thevapor generation device 100 inFIG. 3 in the length direction or the width direction are all in a shape of a square. - In addition, as shown in
FIG. 3 , when thevapor generation device 100 is combined with theproduct box 200 in the thickness direction, the side surface of thevapor generation device 100 facing away from theproduct box 200 in the thickness direction, and the side surface of theproduct box 200 facing away from thevapor generation device 100 are exposed. During use, a user may simultaneously keep the side surface of thevapor generation device 100 facing away from theproduct box 200 in the thickness direction with fingers, and the side surface of theproduct box 200 facing away from thevapor generation device 100 simultaneously keeps thevapor generation device 100 and theproduct box 200; and this is advantageous for portability. - As shown in
FIG. 3 , thevapor generation device 100 and theproduct box 200 basically have similar shapes, sizes, and volumes. In an implementation, theproduct box 200 has a length size approximately ranging from 70 mm to 80 mm, a width size approximately ranging from 40 mm to 50 mm, and a thickness size approximately ranging from 10 mm to 20 mm. - According to
FIG. 3 , the correspondingvapor generation device 100 may have a length L approximately ranging from 70 mm to 80 mm, a width W approximately ranging from 40 mm to 50 mm, and a thickness H approximately ranging from 9.5 mm to 20 mm. In an implementation, surfaces on two sides of thevapor generation device 100 in the thickness direction are the planes with the largest area, and the area approximately ranges from 2800 mm2 to 4000 mm2. - Further, in some optional implementations, an extending length/thickness of the
first space 1100 is basically close to a length L/thickness H of thevapor generation device 100. A width of thefirst space 1100 is between ⅓ and ⅔ of a width W of thevapor generation device 100; and more preferably, a width of thefirst space 1100 is basically close to ½ of the width W of thevapor generation device 100. In some implementations, thefirst space 1100 also has a length size approximately ranging from 60 mm to 65 mm, a width size approximately ranging from 15 mm to 25 mm, and a thickness size approximately ranging from 5 mm to 10 mm. - Correspondingly, as shown in
FIG. 2 , theelectric core 11 accommodated or assembled in thefirst space 1100 is configured to be basically in a shape of a square. Correspondingly, in some implementations, a volume or a shape of theelectric core 11 is basically the same as or similar to a volume or a shape of thefirst space 1100. In some implementations, theelectric core 11 has a length approximately ranging from 60 mm to 65 mm, a width approximately ranging from 15 mm to 25 mm, and a thickness approximately ranging from 5 mm to 10 mm. - Further, in some optional implementations, the
second space 1200 has a length size approximately ranging from 35 mm to 50 mm, a width size ranging from 15 mm to 25 mm, and a thickness size approximately ranging from 5 mm to 10 mm. - Further, in some optional implementations, the
third space 1300 has a length size approximately ranging from 25 mm to 40 mm, a width size ranging from 15 mm to 25 mm, and a thickness size approximately ranging from 5 mm to 10 mm. - In some other implementations, a width of the
second space 1200 and/or thethird space 1300 is between ⅓ and ⅔ of the width W of thevapor generation device 100; and more preferably, a width of thesecond space 1200 and/or thethird space 1300 is basically close to ½ of the width W of thevapor generation device 100. - A thickness of the
second space 1200 and/or thethird space 1300 is basically close to the thickness H of thevapor generation device 100. - In some other implementations, an extending length of the
second space 1200 is greater than an extending length of thethird space 1300. In some other implementations, the extending length of thesecond space 1200 is between ½ and ⅔ of the length of thevapor generation device 100. In some other implementations, the extending length of thethird space 1300 is between ⅓ and ½ of the length of thevapor generation device 100. - Further, as shown in
FIG. 4 , in still another optional implementation, awireless charging coil 1400 close to at least one side in a thickness direction is arranged in thevapor generation device 100; and thewireless charging coil 1400 may be configured to be couple to an external wireless charging device, and then receive electromagnetic energy of the wireless charging device to generate a charging current to charge theelectric core 11. - Further, as shown in
FIG. 4 , thewireless charging coil 1400 configured to wirelessly charge theelectric core 11 is a planar spiral coil. In some implementations, thewireless charging coil 1400 is a generally planar spiral coil in a shape of a square, as shown inFIG. 4 . Alternatively, in some implementations, thewireless charging coil 1400 may be further configured as a planar spiral coil in a shape of a circle. - In some optional implementations, the
wireless charging coil 1400 is made of a wire material with a cross section in a shape of a circle or a rectangle; and the wire material includes, for example, a common copper wire, a nickel wire, and the like. Alternatively, in some other optional implementations, the planar spiral coil of thewireless charging coil 1400 is in the form of a deposited, printed, or etched coating, track, or line; and for example, thewireless charging coil 1400 is in the form of a planar spiral coil with a coating or circuit made of a conductive material by printing and depositing on a substrate. Alternatively, in some other optional implementations, the planar spiral coil of thewireless charging coil 1400 is in the form of a planar spiral coil formed by etching or cutting a piece of metal conductive substrate. - Further,
FIG. 5 toFIG. 7 show a schematic diagram of avapor generation device 100 of a specific embodiment. In this embodiment, thevapor generation device 100 includes: -
- a
main housing 10, where themain housing 10 mainly serves as a housing component of thevapor generation device 100, and further defines afirst space 1100, asecond space 1200, and athird space 1300 inside themain housing 10; and therefore, in an implementation, themain housing 10 generally has requirements of a shape and a size of thevapor generation device 100 described above; and - a
door cover 20, located at aproximal end 110 of themain housing 10 and/or thevapor generation device 100, and being configured to be movable relative to themain housing 10 in an implementation, where certainly, according to the preferred embodiment shown inFIG. 5 andFIG. 6 , movement of thedoor cover 20 relative to themain housing 10 is sliding in a width direction of themain housing 10, as shown by the arrow RI inFIG. 6 ; or Alternatively, in other variation implementations, movement of thedoor cover 20 relative to themain housing 10 may be in the form of rotation around a specific axis.
- a
- As shown in
FIG. 5 toFIG. 7 , thedoor cover 20 is designed to move, so that thedoor cover 20 has an open position and a closed position. When thedoor cover 20 is at the closed position, for example, as shown inFIG. 5 , the door cover 20 blocks or seals thethird space 1300. In this case, thevapor generation device 100 is locked and cannot be used; and when thedoor cover 20 is at the open position, for example, as shown inFIG. 6 andFIG. 7 , thethird space 1300 is exposed, and then a user may receive an aerosol-generating product A into thevapor generation device 100 for inhaling, and clean thethird space 1300. - Further, as shown in
FIG. 5 toFIG. 7 , aguide groove 11 is provided on themain housing 10, and is configured to provide guidance for a movement process of thedoor cover 20. Specifically, in a preferred implementation, theguide groove 11 is provided on a side surface of themain housing 10 in a thickness direction; and theguide groove 11 is configured as a slender groove extending in a width direction of themain housing 10. During use, thedoor cover 20 at least partially extends into theguide groove 11, thereby engaging with theguide groove 11 to form guide for a movement process; and positions of end portions at two ends of theguide groove 11 are used to limit the movement of thedoor cover 20. - In the implementation shown in the figure, the
guide groove 11 has a length approximately ranging from 30 mm to 40 mm. - For a shape or a structure of the
door cover 20, refer toFIG. 8 . Thedoor cover 20 includes: -
- a
first blocking wall 210, basically parallel to an upper side surface of themain housing 10, where thethird space 1300 is blocked or closed at aproximal end 110 when in a use state at the closed position; and - a
second blocking wall 220 and athird blocking wall 230, extending in a length direction of themain housing 10, where thesecond blocking wall 220 and thethird blocking wall 230 are connected to thefirst blocking wall 210 at theproximal end 110. Thesecond blocking wall 220 and thethird blocking wall 230 are separately arranged on two sides of themain housing 10 in a thickness direction; and further, during use, thesecond blocking wall 220 and thethird blocking wall 230 separately block or seal thethird space 1300 from two sides of themain housing 10 in a thickness direction.
- a
- Further, a
first hook 221 is arranged at an end portion of thesecond blocking wall 220 facing away from thefirst blocking wall 210, and/or asecond hook 231 is arranged at an end portion of thethird blocking wall 230 facing away from thefirst blocking wall 210; and during use, thefirst hook 221 and/or thesecond hook 231 at least partially extend into theguide groove 11, to provide guidance while remaining connected to themain housing 10, thereby preventing thefirst hook 221 and/or thesecond hook 231 from protruding from theguide groove 11 and causing thedoor cover 20 to fall off from themain housing 10. - In the preferred implementation shown in
FIG. 8 , thefirst blocking wall 210 and/or thesecond blocking wall 220 and/or thethird blocking wall 230 are in a shape of a rectangle. In a more preferred implementation, thefirst blocking wall 210 has a length size approximately ranging from 15 mm to 25 mm and a width size approximately ranging from 5 mm to 10 mm. In addition, thesecond blocking wall 220 and/or thethird blocking wall 230 have a length size approximately ranging from 28 mm to 40 mm, and a width size approximately ranging from 15 mm to 25 mm. - In a more preferred implementation, the
door cover 20 is made of a highly heat conductive material, such as a metal material, which is conducive to promoting heat dissipation of a heating assembly in thethird space 1300 and evenly transferring heat to other parts. - Further, refer to
FIG. 6 andFIG. 7 , thevapor generation device 100 includes: -
- a receiving
hole 41, located at aproximal end 110, where an aerosol-generating product A may be at least partially received in thevapor generation device 100 through the receivinghole 41.
- a receiving
- In the preferred implementation shown in
FIG. 10 , the receivinghole 41 is defined by anextractor 40. Alternatively, in other variation implementations, when thevapor generation device 100 does not have theextractor 40, the receivinghole 41 may be further defined by amain housing 10 or abracket 30, or the like. - In addition, refer to
FIG. 10 , correspondingly, thevapor generation device 100 includes: -
- a receiving
cavity 430, where at least a part of the aerosol-generating product A is removably received in the receivingcavity 430; and the receivingcavity 430 is in communication with the receivinghole 41.
- a receiving
- In the preferred implementation shown in
FIG. 10 , the receivingcavity 430 is also defined by theextractor 40. Alternatively, in other variation implementations, when thevapor generation device 100 does not have theextractor 40, the receivingcavity 430 may be further defined by amain housing 10 or abracket 30, or the like. - Further, refer to
FIG. 9 andFIG. 10 , thevapor generation device 100 includes: -
- a
heater 50, configured in a shape of a pin, a needle, a sheet, and the like, such as a shape of a needle shown inFIG. 9 ; and when the aerosol-generating product A is received in thevapor generation device 100, theheater 50 may be inserted into the aerosol-generating product A for heating. In some optional implementations, the pin-shaped or needle-shapedheater 50 has a length size approximately ranging from 12 mm to 19 mm and an outer diameter size approximately ranging from 2 mm to 5 mm. In some other optional implementations, the sheet-shapedheater 50 may have a length size approximately ranging from 12 mm to 19 mm, a width size approximately ranging from 3 mm to 6 mm, and a thickness size approximately ranging from 0.4 mm to 1 mm. Accordingly, as shown inFIG. 10 , theheater 50 at least partially extends in the receivingcavity 430, thereby being conducive to being inserted into the aerosol-generating product A for heating.
- a
- In other variation implementations, the
heater 50 may be further configured in a shape of a cylinder; and during use, an internal space of theheater 50 defines to form the receivingcavity 430 for receiving the aerosol-generating product A and generating an aerosol by heating a periphery of the aerosol-generating product A. - In some optional implementations, the
heater 50 is a resistance heater; or Alternatively, in some implementations, theheater 50 is a susceptor that is penetrated by a magnetic field and generates heat. - Further, refer to
FIG. 9 andFIG. 10 , thevapor generation device 100 includes: -
- a
bracket 30, configured to support theextractor 40 in an implementation. In addition, thebracket 30 is further configured to surround or block theheater 50 to protect theheater 50. Specifically, - on one hand, the
bracket 30 is arranged in thethird space 1300 in a detachable manner. When theextractor 40 is connected to thevapor generation device 100, theextractor 40 is supported or kept by thebracket 30. On the other hand, if thebracket 30 at least partially surrounds or blocks theheater 50, theheater 50 may at least be prevented from being completely exposed in thethird space 1300, which is conducive to preventing the user from being in contact with or touching theheater 50.
- a
- In a preferred implementation, the
bracket 30 generally has a shape of a square. In an implementation, specifically, thebracket 30 has a length size approximately ranging from 25 mm to 40 mm, a width size ranging from 15 mm to 25 mm, and a thickness size approximately ranging from 5 mm to 10 mm. - Further, refer to
FIG. 9 andFIG. 10 , theextractor 40 includes: -
- a receiving
portion 420 in a shape of a cylinder, where an internal space of the receivingportion 420 is configured as a receivingcavity 430 configured to receive the aerosol-generating product A; and - an operating
portion 410, where during use, the user operates the operatingportion 410 to move or remove theextractor 40 and extract the aerosol-generating product A by operating the operatingportion 410 with a finger, or the like. When theextractor 40 is assembled in thevapor generation device 100, the operatingportion 410 is connected to themain housing 10, so that theextractor 40 is stably kept on thevapor generation device 100. Certainly, in some implementations, the operatingportion 410 may be directly or indirectly connected to themain housing 10. Alternatively, in the preferred implementation shown inFIG. 9 andFIG. 10 , the operatingportion 410 is fixed and kept in thevapor generation device 100 by abutting against and being connected to an upper end portion of thebracket 30.
- a receiving
- Further, in a more preferred implementation, the
extractor 40 may be moved or removed relative to themain housing 10, to present an operating position and an extraction position that are opposite to each other. Specifically, -
FIG. 11 is a schematic diagram of anextractor 40 at an operating position according to an embodiment. When theextractor 40 is at the operating position, an aerosol-generating product A is received in a receivingportion 420, and is supported by a supportingwall 421 of the receivingportion 420; and theheater 50 at least partially penetrates into a receivingcavity 430 defined by the receivingportion 420 through the supportingwall 421, thereby heating the aerosol-generating product A. The operating position is basically an operating position formed by theheater 50 being inserted into the aerosol-generating product A. At the operating position, theextractor 40 remains connected to amain housing 10. -
FIG. 12 is a schematic diagram of anextractor 40 at an extraction position according to an embodiment. At the extraction position, when an operatingportion 410 performs operation, theextractor 40 is moved or removed in a length direction relative to amain housing 10, and then an aerosol-generating product A is separated from aheater 50 under support of a supportingwall 421 and is removed. The extraction position is formed by separation between the aerosol-generating product A and theheater 50. - In an optional implementation, the
extractor 40 is also directly or indirectly connected to themain housing 10 at the extraction position, which is conducive to preventing theextractor 40 from being detached from thevapor generation device 100. Alternatively, in still another optional implementation, theextractor 40 is not directly or indirectly connected to themain housing 10 at the extraction position, and then theextractor 40 is detached from themain housing 10 and/or thebracket 30 at the extraction position, thereby facilitating direct removal or detachment from thevapor generation device 100. - In an optional implementation, the aerosol-generating product A has a length approximately ranging from 40 mm to 80 mm, and an outer diameter size approximately ranging from 4 mm to 8 mm.
- In still another preferred implementation, the receiving
portion 420 of theextractor 40 has a length approximately ranging from 15 mm to 40 mm; and the receivingportion 420 correspondingly has an inner diameter approximately ranging from 4 mm to 8 mm. - Further, refer to
FIG. 13 , theextractor 40 further includes: -
- a
first hole 422, located on the supportingwall 421, where an inner diameter is basically adapted to theheater 50 and is slightly greater, to allow theheater 50 to pass through thefirst hole 422 and then to be inserted into the receivingportion 420; and when adapted to a pin-shaped or needle-shapedheater 50, for example, as shown inFIG. 13 , thefirst hole 422 is in a shape of a circle, and has an inner diameter approximately ranging from 3 mm to 6 mm; and - a
second hole 423, located on the supportingwall 421 and configured to allow external air to enter the aerosol-generating product A through thesecond hole 423 in an inhaling process, as shown by the arrow R2 inFIG. 13 . In an implementation, thesecond hole 423 has an inner diameter approximately ranging from 1 mm to 2 mm. In addition, a quantity ofsecond holes 423 may be more than one, and thesecond holes 423 are provided around thefirst hole 422.
- a
- Further, refer to
FIG. 9 andFIG. 10 , a structure of thebracket 30 includes: -
- a
left side wall 310 and aright side wall 320 that are opposite to each other in a width direction, where during assembly, theleft side wall 310 is a side wall adjacent to thefirst space 1100, and is connected to themain housing 10 in a detachable manner such as a buckle; theright side wall 320 is at least partially exposed outside thevapor generation device 100 after assembly, and at least partially defines an outer surface of thevapor generation device 100 in the width direction; - a
lower end wall 350 is adjacent to thesecond space 1200 in a length direction, athird hole 33 is formed on thelower end wall 350, and during assembly, theheater 50 penetrates thethird hole 33 from below into thebracket 30 in the length direction; and - a
front side wall 330 and a rear side wall 340 are opposite to each other in a thickness direction, and awindow 32 is arranged at a position close to thelower end wall 350 of thefront side wall 330 and the rear side wall 340. In an optional implementation, thefront side wall 330 and the rear side wall 340 are not connected to or in contact with thelower end wall 350. In an implementation, thewindow 32 is defined by a distance between thefront side wall 330 and/or the rear side wall 340 and thelower end wall 350.
- a
- In an implementation, the
window 32 is directly in communication with the external air, and then thesecond hole 423 of theextractor 40 may be in communication with the external air through thewindow 32; and in an inhaling process, the external air directly enters thesecond hole 423 through thewindow 32, and then enters the receivingcavity 430 along with the aerosol generated by the aerosol-generating product A and is jointly inhaled by the user, as shown by the arrow R2 inFIG. 10 . - Further, as shown in
FIG. 9 ,FIG. 10 , andFIG. 14 , a free front end of theheater 50 penetrates into thebracket 30; and an end of theheater 50 facing away from the free front end is fixed in themain housing 10. Further, according to the implementation shown in the figure, the end of theheater 50 facing away from the free front end is surrounded and fixed by a fixingbase 52. - In addition, the
heater 50 has an exposed portion 51 exposed through thewindow 32; and certainly, the exposed portion 51 has a length approximately ranging from 2 mm to 5 mm. The exposed portion 51 of theheater 50 is visible through thewindow 32. Certainly, after assembly, the exposed portion 51 is defined by a size or a position of thewindow 32. Specifically, in this implementation, the fixingbase 52 is covered by thelower end wall 350 of thebracket 30, and the exposed portion 51 of theheater 50 is completely defined by thebracket 30; and specifically, the fixingbase 52 is defined by a part of theheater 50 located between thefront side wall 330 and/or thelower end wall 350 of the rear side wall 340 in the length direction. - Certainly, the exposed portion 51 is close to an end of the fixing
base 52 and/or theheater 50. It may be learnt fromFIG. 14 that a distance d4 between the exposed portion 51 of theheater 50 and the free front end is approximately 12 mm. The exposed portion 51 is away from the free front end, and it is difficult for a cleaning tool to directly clean the exposed portion 51 from the receivinghole 41 of theextractor 40. Generally, in an implementation, a distance d4 between the exposed portion 51 of theheater 50 and the free front end is greater than 8 mm. - In still another implementation, the
window 32 has a proper area, and by inserting some cleaning tools into thewindow 32, the exposed portion 51 of theheater 50 is cleaned during use. In some implementations, the cleaning tools are, for example, a small brush, a steel wire strip, a scraper, and the like. - In some preferred implementations, the
window 32 needs to be of a proper area, to provide a necessary size for the cleaning tools to insert into, but also needs to prevent fingers of the user from being burned by theheater 50. - In a preferred implementation, an area of the
window 32 is greater than 10 mm2 and an area of thewindow 32 is less than 100 mm2. In a more preferred implementation, an area of thewindow 32 is greater than 30 mm2 and an area of thewindow 32 is less than 80 mm2. - In the preferred implementation shown in
FIG. 9 andFIG. 14 , thewindow 32 is basically in a shape of a square. For example, thewindow 32 is in a shape of a strip in a width direction of thebracket 30. In a more preferred implementation, a length size d1 of thewindow 32 extending in the width direction of thebracket 30 approximately ranges from 10 mm to 20 mm; and a width size d2 of thewindow 32 extending in a length direction of thebracket 30 approximately ranges from 3 mm to 6 mm. - In a specific implementation shown in
FIG. 14 , the length size d1 of thewindow 32 is 17 mm; and the width size d2 of thewindow 32 is approximately 4.2 mm. - In addition, in still another optional implementation, at least one of the length size dl and the width size d2 of the
window 32 shall not be greater than 10 mm, which is conducive to preventing the fingers of the user from inserting. In a more preferred implementation, at least one of the length size d1 and the width size d2 of thewindow 32 shall not be greater than 6 mm. - Correspondingly, a length of the exposed portion 51 of the
heater 50 basically ranges from 3 mm to 6 mm. In a preferred implementation, a length of theheater 50 penetrating into the receivingportion 420 of theextractor 40 approximately ranges from 10 mm to 18 mm. In a preferred implementation, a length of the exposed portion 51 of theheater 50 does not exceed ⅓ of a total length of theheater 50. - Further, refer to
FIG. 9 andFIG. 10 , to facilitate guide of theextractor 40 and thebracket 30 during assembly, movement, or removal; and thebracket 30 further has a firstinner wall 360 and a secondinner wall 370. As shown in the figure, the firstinner wall 360 and the secondinner wall 370 are configured in a shape of an arc, and the firstinner wall 360 and the secondinner wall 370 are opposite to each other. In addition, the firstinner wall 360 and the secondinner wall 370 are in a shape of an arc that is curved outward in the width direction, and aguide accommodating space 31 is defined between the firstinner wall 360 and the secondinner wall 370. A shape of theaccommodating space 31 is basically the same as a shape of the receivingportion 420 of theextractor 40, and a size volume of theaccommodating space 31 is slightly greater than a volume of the receivingportion 420. The firstinner wall 360 and the secondinner wall 370 provide guidance when theextractor 40 is stably assembled to thebracket 30 and during movement or removal. - Alternatively, in another variation implementation, when the
vapor generation device 100 does not have components of theextractor 40, theaccommodating space 31 between the firstinner wall 360 and the secondinner wall 370 is configured as a receivingcavity 430 configured to receive the aerosol-generating product A. - In addition, as shown in
FIG. 5 andFIG. 6 , the door cover 20 blocks or closes thewindow 32 at the closed position; and at the open position, thedoor cover 20 opens or reveals thewindow 32 a. - In the preferred implementation shown in
FIG. 9 andFIG. 10 , there is a distance between the firstinner wall 360 and theleft side wall 310 of thebracket 30, thereby forming a firstheat insulation cavity 34 between the firstinner wall 360 and theleft side wall 310 of thebracket 30; and there is a distance between the secondinner wall 370 and theright side wall 320 of thebracket 30, thereby forming a secondheat insulation cavity 35 between the second inner wall 70 and theright side wall 320 of thebracket 30. - In the implementation shown in the figure, the first
heat insulation cavity 34 and/or the secondheat insulation cavity 35 are empty and open, and are in communication with the external air, thereby forming heat insulation through low heat conduction of the air; the firstheat insulation cavity 34 prevents heat of theheater 50 from being transferred outward in a radial direction to anelectric core 11 in thefirst space 1100; and/or the secondheat insulation cavity 35 prevents the heat of theheater 50 from being transferred outward in a radial direction to theright side wall 320. - In some variation implementations, the first
heat insulation cavity 34 and/or the secondheat insulation cavity 35 are closed cavities, and internal pressures of the firstheat insulation cavity 34 and the secondheat insulation cavity 35 may be configured to be lower than the external pressure. In other words, the firstheat insulation cavity 34 and/or the secondheat insulation cavity 35 have a vacuum degree; and this is conducive to preventing heat transfer. - Alternatively, in some other variation implementations, the first
heat insulation cavity 34 and/or the secondheat insulation cavity 35 are filled with some heat insulation materials, such as aerogel, porous polymer, porous polyurethane, foam cotton, and the like; and this is conducive to preventing heat transfer. - Further, refer to
FIG. 9 andFIG. 10 , the receivingportion 420 of theextractor 40 is also at least partially exposed to thewindow 32. - Further, in the preferred implementation shown in
FIG. 10 , acircuit board 12 that controls operation of thevapor generation device 100 is mounted in thesecond space 1200 of thevapor generation device 100; and a charginginterface 13 located at adistal end 120 is electrically connected to thecircuit board 12 during use, and then charges anelectric core 11 after an external power supply device is connected. - For the foregoing
vapor generation device 100, cleaning of the debris or aerosol condensate dropped from the aerosol-generating product A may include: -
- when the
extractor 40 is not removed, cleaning an inner wall of the receivingportion 420 and a part of a surface of theheater 50 by extending tools such as a brush through a receivinghole 41; - after removing the
extractor 40, continuing to perform cleaning by extending tools such as a brush into the inner wall of theaccommodating space 31; and cleaning the exposed portion 51 of theheater 50 by extending the tools through thewindow 32.
- when the
- Further, the
bracket 30 is removed from themain housing 10, as shown inFIG. 9 , so that theheater 50 is basically completely exposed, and the surface of theheater 50 may be deeply and completely cleaned through a cleaning tool. - Further,
FIG. 15 toFIG. 18 show a schematic diagram of a structure of still another embodiment of avapor generation device 100; and in this implementation, thevapor generation device 100 includes: -
- a
main housing 10 a; - a
door cover 20 a, positioned at aproximal end 110 a of themain housing 10 a, and movable between an open position and a closed position relative to themain housing 10 a; and for example, moving or rotating in a width direction of themain housing 10 a.
- a
- In addition, refer to
FIG. 18 , thevapor generation device 100 further includes a limitingprotrusion 17 a located between themain housing 10 a and the door cover 20 a; and during assembly, the limitingprotrusion 17 a is located at theproximal end 110 a of themain housing 10 a, and at least partially protrudes relative to themain housing 10 a. When the door cover 20 a moves relative to themain housing 10 a in a width direction, the limitingprotrusion 17 a is configured to provide a limit at the open position and the closed position of the door cover 20 a. Certainly, in a more preferred implementation, the door cover 20 a covers or hides the limitingprotrusion 17 a at any moving position. The limitingprotrusion 17 a is not exposed to a surface of thevapor generation device 100 at any moving position of the door cover 20 a. - In addition, the
vapor generation device 100 further includes: -
- a
bracket 30 a, at least partially defines awindow 32 a with themain housing 10 a; aheater 50 a, at least partially exposed in thewindow 32 a; and - an
extractor 40 a, supported and kept by thebracket 30 a. During use, theextractor 40 a is configured to extract the aerosol-generating product A received in the vapor generation device 100 a.
- a
- Further, as shown in
FIG. 16 , to facilitate theextractor 40 a to maintain a stable connection with thebracket 30 a at the operating position, a latchingprotrusion 43 a is arranged on theextractor 40 a; and the latchingprotrusion 43 a is configured to form a connection by engaging theextractor 40 a with thebracket 30 a at the operating position. In the preferred implementation shown inFIG. 16 , a quantity of latchingprotrusions 43 a is more than one, and the latchingprotrusions 43 a are configured in the form of ridges located on an outer surface of the receivingportion 420 a of theextractor 40 a. - In this embodiment, the
extractor 40 a further extracts the aerosol-generating product A through an operation of directly removing from thebracket 30 a in the length direction, as shown by the arrow R3 inFIG. 16 . - Further, refer to
FIG. 16 , a first connectinghole 15 a and/or a second connectinghole 16 a are provided on thebracket 30 a. Certainly, the first connectinghole 15 a is provided adjacent to thefirst space 1100. During use, connecting components such as a screw/bolt/screw are mounted in thefirst connection hole 15 a and/or thesecond connection hole 16 a to connect thebracket 30 a and themain housing 10 a. Specifically, the first connectinghole 15 a is provided adjacent to theproximal end 110 a; and the second connectinghole 16 a is provided adjacent to thesecond space 1200. - Further, according to the preferred implementation shown in the figure, when the
extractor 40 a is kept on thebracket 30 a, the first connectinghole 15 a is covered or hidden by theextractor 40 a. Specifically, the first connectinghole 15 a is covered by the operatingportion 410 a of theextractor 40 a. In addition, after removing theextractor 40 a, the first connectinghole 15 a is exposed. In this case, the user may disassemble connecting components such as the screw/bolt/screw located in the first connectinghole 15 a by using tools such as a screwdriver; and further, a connection between thebracket 30 a and themain housing 10 a is released, so that thebracket 30 a may be disassembled from themain housing 10 a. - In addition, the second connecting
hole 16 a is exposed through thewindow 32 a; or the second connectinghole 16 a is visible through thewindow 32 a; and the user may insert the screwdriver into the second connectinghole 16 a through thewindow 32 a to disassemble connecting components such as the screw/bolt/screw. - Further, refer to
FIG. 15 toFIG. 17 , the exemplaryvapor generation device 100 further includes: -
- a blocking
member 60 a, configured to block or cover or close thewindow 32 a. Further, when there is no need to open thewindow 32 a for the sake of inhaling, safety protection, and the like, thewindow 32 a is blocked or covered or closed by the blockingmember 60 a. When the exposed portion of theheater 50 a exposed through thewindow 32 a needs to be cleaned, or when connecting components such as the screw/bolt/screw in the second connectinghole 16 a need to be disassembled, thewindow 32 a may be opened by moving or removing the blockingmember 60 a.
- a blocking
- Further, according to the preferred embodiment shown in
FIG. 15 toFIG. 17 , the blockingmember 60 a is removably combined with thebracket 30 a to block or cover or close thewindow 32 a. When the blockingmember 60 a is combined with thebracket 30 a, thewindow 32 a is blocked or covered or closed. When the blockingmember 60 a is removed from thebracket 30 a, thewindow 32 a is opened. - Further, as shown in
FIG. 15 toFIG. 17 , when the blockingmember 60 a is combined with thebracket 30 a, a surface of the blockingmember 60 a is flatly joined to a surface of thebracket 30 a. - In the preferred implementation shown in the figure, the blocking
member 60 a is combined with thebracket 30 a in a width direction of themain housing 10 a, or is removed from thebracket 30 a in a width direction of themain housing 10 a. - In a more preferred implementation, a
guide rail 14 a extending in the width direction is further arranged on themain housing 10 a; and correspondingly, aguide groove 65 a is provided on the blockingmember 60 a, to provide guidance during the operation of combining the blockingmember 60 a with thebracket 30 a or removing the blockingmember 60 a. - In this embodiment, the
window 32 a is open on a front side and a rear side in a thickness direction of themain housing 10 a and on a right side facing away from thefirst space 1100 in the width direction. - Further, as shown in
FIG. 20 , in an open size of thewindow 32 a on two sides in the thickness direction, a length size d11 is 20 mm; and a width size d12 is approximately 6 mm. - In this embodiment, the
window 32 a is at least partially defined by thebracket 30 a. Specifically, thewindow 32 a is defined by a spacing space between thebracket 30 a in the length direction and themain housing 10 a. - Further, refer to
FIG. 16 andFIG. 17 , thebracket 30 a further defines anaccommodating space 31 a that is at least partially configured to accommodate theextractor 40 a. Theaccommodating space 31 a extends in the length direction, and a shape of theaccommodating space 31 a is basically the same as a shape of the receivingportion 420 a of theextractor 40 a. A size volume of theaccommodating space 31 a is slightly greater than a volume of the receivingportion 420 a. An inner wall of theaccommodating space 31 a is configured to provide guidance when theextractor 40 a is stably assembled onto thebracket 30 a, and during movement or removal. - Similarly, a receiving cavity configured to receive the aerosol-generating product A is defined by the receiving
portion 420 a of theextractor 40 a in the foregoing implementation. When there are not components of theextractor 40 a, theaccommodating space 31 a may be mainly used as a receiving cavity configured to receive the aerosol-generating product A. - Further, refer to
FIG. 16 andFIG. 17 , thebracket 30 a has a protrudingportion 34 a protruding away from thefirst space 1100 in the width direction, and a recessedportion 33 a is defined between the protrudingportion 34 a and other parts of thebracket 30 a. Certainly, as shown in the figure, the protrudingportion 34 a is located at aproximal end 110 a, so that the recessedportion 33 a is formed adjacent to thewindow 32 a. - As shown in the figure, the
accommodating space 31 a avoids the protrudingportion 34 a. - Correspondingly, the blocking
member 60 a includes amain body portion 61 a extending in the length direction, and afirst blocking arm 62 a and asecond blocking arm 63 a that basically extend in the width direction from two sides in the thickness direction of themain body portion 61 a. After assembly, thefirst blocking arm 62 a and thesecond blocking arm 63 a separately cover, block, or seal thewindow 32 a from two opposite sides in the thickness direction. Themain body portion 61 a covers, blocks, or seals thewindow 32 a from the right side in the width direction. In addition, after assembly, themain body portion 61 a is accommodated and kept in the recessedportion 33 a; and a surface of the blockingmember 60 a is flatly joined to thebracket 30 a. - As shown in the figure, the
guide groove 65 a is formed on thefirst blocking arm 62 a and/or thesecond blocking arm 63 a. - Further, refer to
FIG. 18 , a firstmagnetic member 36 a is further arranged on thebracket 30 a; and certainly, in a preferred implementation, the firstmagnetic member 36 a is arranged in the protrudingportion 34 a. - Correspondingly, a second
magnetic member 64 a is further arranged on the blockingmember 60 a, and is configured to magnetically attract the firstmagnetic member 36 a when combined with thebracket 30 a to block thewindow 32 a, thereby causing the blockingmember 60 a to be stably kept on thebracket 60 a. In a preferred implementation, the secondmagnetic member 64 a is accommodated on themain body portion 61 a of the blockingmember 60 a. - Correspondingly, a third
magnetic member 45 a is arranged on theextractor 40 a, and is configured to magnetically attract the firstmagnetic member 36 a at an operating position, thereby causing theextractor 40 a to be stably kept on thebracket 60 a. - Further, in the preferred implementation shown in the figure, after assembly, in the length direction, magnetic pole arrangement directions of the first
magnetic member 36 a, the secondmagnetic member 64 a, and the secondmagnetic member 45 a are the same. For example, in the preferred embodiment shown in the figure, the firstmagnetic member 36 a has a first magnetic pole, such as an N pole, toward aproximal end 110 a, and a second magnetic pole, such as an S pole, toward a distal end. In addition, the secondmagnetic member 64 a also has a first magnetic pole, such as an N pole, toward theproximal end 110 a, and a second magnetic pole, such as an S pole, toward the distal end. Correspondingly, the thirdmagnetic member 45 a also has a first magnetic pole, such as an N pole, toward theproximal end 110 a, and a second magnetic pole, such as an S pole, toward the distal end. - After assembly, the first
magnetic member 36 a may be simultaneously magnetically attracted to the secondmagnetic member 64 a and the secondmagnetic member 45 a that are located on an upper side and a lower side. - Further, refer to
FIG. 19 andFIG. 20 , the receivingportion 420 a of theextractor 40 a has a relatively greater length. Further, after assembly, the receivingportion 420 a of theextractor 40 a completely covers theheater 50 a, and theheater 50 a is not visible when theextractor 40 a is combined with thebracket 30 a. In a specific implementation, a front end of the receivingportion 420 a abuts against anupper surface 521 a of a fixingbase 52 a facing theproximal end 110 a. - Further, a
first air port 46 a that allows air from thewindow 32 a to enter theextractor 40 a is provided at the front end of the receivingportion 420 a of theextractor 40 a for allowing air to enter the receivingportion 420 a. - In this implementation, the receiving
portion 420 a has a supportingwall 421 a inside, configured to provide support to the aerosol-generating product A. Further, as shown inFIG. 18 andFIG. 19 , theextractor 40 a further has an extendingwall 424 a extending from the receivingportion 420 a, and the extendingwall 424 a abuts against theupper surface 521 a of the fixingbase 52 a during assembly. During use, on one hand, the extendingwall 424 a may block the exposedportion 51 a surrounding and blocking theheater 50 a exposed through thewindow 32 a; and on the other hand, more importantly, a specific space is formed between the fixingbase 52 a and the supportingwall 421 a through the extendingwall 424 a, to block or keep the air seeping or leaking from thefirst hole 422 a and/or thesecond hole 423 a, which is conducive to preventing the aerosol from seeping or leaking from thefirst hole 422 a and/or thesecond hole 423 a and being viewed by the user. - Certainly, the extending
wall 424 a is open to the exposedportion 51 a of theheater 50 a after theextractor 40 a is moved or removed from thebracket 30 a to extract the aerosol-generating product A, and then the user may clean the exposedportion 51 a of theheater 50 a through thewindow 32 a by using the cleaning tool. - Correspondingly, the
first air port 46 a is formed on the extendingwall 424 a. - Further, in this embodiment, as shown in
FIG. 16 , the exposedportion 51 a of theheater 50 a is defined by thebracket 30 a and the fixingbase 52 a that fixes the end of theheater 50 a. Specifically, in this implementation, the exposedportion 51 a is defined by a part of theheater 50 a located between thebracket 30 a and the fixingbase 52 a. Certainly, the exposedportion 51 a is close to the end of the fixingbase 52 a and/or theheater 50 a. - Similarly, a distance between the exposed
portion 51 a of theheater 50 a and the free front end is approximately 12 mm. The exposedportion 51 a is away from the free front end, and it is difficult for a cleaning tool to directly clean the exposedportion 51 a from the receiving hole 41 a of theextractor 40 a. - Similarly, a
first hole 422 a for theheater 50 a to pass through to the aerosol-generating product A is provided on the supportingwall 421 a; and asecond hole 423 a for the air to enter the aerosol-generating product A. - In an inhaling process, for the flow of airflow, refer to the arrow R2 shown in
FIG. 15 toFIG. 20 . The external air enters thewindow 32 a through a gap between thebracket 30 a and/or the blockingmember 60 a and themain housing 10 a. The air from thewindow 32 a enters thefirst air port 46 a in theextractor 40 a, enters the receivingportion 420 a of theextractor 40 a, and is inhaled into the aerosol-generating product A through thesecond hole 423 a until the air is inhaled. - As shown in the figure, in the preferred implementation, an airflow channel includes an air inlet portion extending toward the
heater 50 a in a radial direction of theheater 50 a, and an air outlet portion extending in the length direction toward theproximal end 110 a in the receiving cavity. Certainly, the air inlet portion passes through thefirst air port 46 a in theextractor 40 a that allows the air from thewindow 32 a to enter, and the air outlet portion passes through thesecond hole 423 a. - In the implementation shown in
FIG. 19 , a distance d3 between the supportingwall 421 a and the front end of the receivingportion 420 a approximately ranges from 3 mm to 5 mm. - Alternatively, in another variation implementation, the blocking
member 60 a opens or blocks thewindow 32 a by moving or rotating at different positions on thebracket 30 a. For example, the blockingmember 60 a is configured to move in the length direction on thebracket 30 a, thereby blocking thewindow 32 a when moving close to thesecond space 1200, and at least partially opening thewindow 32 a when moving away from thesecond space 1200. Certainly, in more variation implementations, the blockingmember 60 a may be further in the width direction. - Further, according to
FIG. 18 , a firstheat insulation cavity 35 a is further defined in thebracket 30 a; and in arrangement, the firstheat insulation cavity 35 a is located between a receiving cavity configured to receive the aerosol-generating product A and thefirst space 1100 in the width direction, which is conducive to preventing the heat of theheater 50 a from being transferred to an electric core 11 a in thefirst space 1100. - In the optional implementation, the first
heat insulation cavity 35 a is a closed space, and the interior of the first heat insulation cavity 34 b may be filled with air, thereby forming heat insulation by using low heat conductivity of the air. Alternatively, in some other implementations, the firstheat insulation cavity 35 a is evacuated, so that pressure of the first heat insulation cavity 34 b is lower than the external pressure, to form heat insulation. Alternatively, in some other implementations, the firstheat insulation cavity 35 a is filled with a porous body, foam, aerogel, and the like, to improve heat insulation. - For the foregoing
vapor generation device 100, cleaning of the debris or aerosol condensate dropped from the aerosol-generating product A may include: -
- when the
extractor 40 a is not removed, performing cleaning by extending tools such as a brush into an inner wall of the receivingportion 420 a and a part of a surface of theheater 50 a through a receiving hole 41 a; - after removing the
extractor 40 a, continuing to clean the inner wall of theaccommodating space 31 a by extending tools such as a brush; - after continuing to remove the blocking
member 60 a, exposing the exposedportion 51 a of theheater 50 a through thewindow 32 a, and then cleaning the exposedportion 51 a of theheater 50 through the cleaning tool being inserted into thewindow 32 a; and - after removing screws in the first connecting
hole 15 a and the second connectinghole 16 a with a screwdriver, removing thebracket 30 a, so that theheater 50 a is basically completely exposed, and then a surface of theheater 50 a may be deeply and completely cleaned with a cleaning tool.
- when the
- Further,
FIG. 21 toFIG. 24 show a schematic diagram of avapor generation device 100 b according to still another embodiment. In this implementation, thevapor generation device 100 b is configured in a generally slender shape of a cylinder, has a length size approximately ranging from 90 mm to 110 mm, and an outer diameter size approximately ranging from 15 mm to 20 mm. - Further, the
vapor generation device 100 b further includes aproximal end 110 b and adistal end 120 b that are opposite to each other in a length direction; and -
- a
first housing 10 b, close to thedistal end 120 b, where - a
second housing 15 b adjacent to theproximal end 110 b is further arranged on thefirst housing 10 b; and - an
extractor 40 b, located on theproximal end 110 b, and configured to extract the aerosol-generating product A, where in the preferred implementation, theextractor 40 b extracts the aerosol-generating product A by being directly removed from thesecond housing 10 b.
- a
- Further, as shown in
FIG. 22 andFIG. 23 , thesecond housing 15 b adjacent to theproximal end 110 b is further arranged on thefirst housing 10 b; and correspondingly, theextractor 40 b includes anannular operating portion 410 b and a receivingportion 420 b in a shape of a cylinder located in the operatingportion 410 b. In an implementation, the user may exert a force on the operatingportion 410 b with a finger to perform an extraction operation; and the aerosol-generating product A is removably received in the receivingportion 420 b through the receivinghole 41 b defined by the operatingportion 410 b. During assembly, the operatingportion 410 b is arranged around thesecond housing 15 b; in an operating state, the operatingportion 410 b abuts against an end portion of thesecond housing 15 b toward theproximal end 110 b, and is stably kept on thesecond housing 15 b; and an outer surface of thesecond housing 15 b is further configured to provide guidance when performing the extraction operation on theextractor 40 b by the user. - Further, as shown in
FIG. 24 , the receivingportion 420 b has a supportingwall 421 b configured to support the aerosol-generating product A; a first hole 422 b is provided on the supportingwall 421 b for asusceptor 50 b to pass through into the receivingportion 420 b, thereby facilitating thesusceptor 50 b to be inserted into the aerosol-generating product A; and a second hole 423 b is further provided on the supportingwall 421 b, and is configured to allow air to enter the aerosol-generating product A of the receivingportion 420 b. - Further, the
second housing 15 b is provided with: -
- a
bracket 20 b, basically in a shape of a tube extending in a length direction of thesecond housing 15 b, where thebracket 20 b is basically coaxially arranged with thesecond housing 15 b, and is located in thesecond housing 15 b; and anaccommodating space 210 b is defined and formed in thebracket 20 b, and during use, the receivingportion 420 b of theextractor 40 b is received in theaccommodating space 210 b to form an operating state of the heatable aerosol-generating product A; - a magnetic field generator, such as an
induction coil 30 b surrounding thebracket 20 b, configured to generate a changing magnetic field; and - a
susceptor 50 b, configured to generate heat when the changing magnetic field penetrates thesusceptor 50 b to heat the aerosol-generating product A, where thesusceptor 50 b is preferably configured in a shape of a pin, a needle, or a sheet that extends in an axial direction at least partially from theaccommodating space 210 b, which is conducive to being inserted into the aerosol-generating product A when theextractor 40 b is received in theaccommodating space 210 b.
- a
- Further, according to
FIG. 24 , a free front end of thesusceptor 50 b is located in theaccommodating space 210 b, and is kept by the fixing base 70 b relative to an end of the free front end. Specifically, the fixing base 70 b includes a first fixing base 71 b and a second fixing base 72 b that are sequentially arranged from the inside to the outside in a radial direction of thesusceptor 50 b; and the first fixing base 71 b is preferably made of ceramics with low heat conductivity such as zirconia, and the second fixing base 72 b is preferably made of organic polymers with low heat conductivity such as PEEK. - In terms of the design of the inhaling airflow, further, refer to
FIG. 21 toFIG. 24 , afirst air inlet 151 b is provided on thesecond housing 15 b; and in terms of specific position arrangement, thefirst air inlet 151 b is located at a position at which thesecond housing 15 b is adjacent to thefirst housing 10 b, and is also adjacent to a position at which theoperating portion 410 b of theextractor 40 b is joined to thefirst housing 10 b. After assembly, when being kept in thesecond housing 15 b, the operatingportion 410 b covers thefirst air inlet 151 b, and may expose thefirst air inlet 151 b when the aerosol-generating product A is extracted by operations such as removal/movement to the extraction position. At the operating position, there is a joining gap of approximately 2 mm between the operatingportion 410 b of theextractor 40 b and thefirst housing 10 b, and thefirst air inlet 151 b is opposite to and in airflow communication with the gap. In an inhaling process, the external air enters thefirst air inlet 151 b through the joining gap between the operatingportion 410 b and thefirst housing 10 b. - The
bracket 20 b further has aninner bottom wall 221 b defining theaccommodating space 210 b; and there is a distance or gap approximately ranging from 1 mm to 3 mm between theinner bottom wall 221 b and the fixing base 70 b of thesusceptor 50 b, and theinner bottom wall 221 b further has asecond air port 222 b. In an implementation, thesecond air port 222 b is opposite to the second hole 423 b on theextractor 40 b. - During inhalation, as shown by the arrow R2 in the figure, the external air enters the
first air inlet 151 b through the joining gap between the operatingportion 410 b and thefirst housing 10 b, flows from thefirst air inlet 151 b in the radial direction to thesecond air port 222 b through the gap between thebottom wall 221 b and the fixing base 70 b, and finally enters the aerosol-generating product A from thesecond air port 222 b through the second hole 423 b on theextractor 40 b and is then inhaled. - It may be learnt from the figure that an airflow path includes an air inlet portion extending from the
first air inlet 151 b to thesecond air port 222 b basically in a radial direction of thesusceptor 50 b; and an air outlet portion extending from thesecond air port 222 b in a length direction to theproximal end 110 b. Basically, the air inlet portion is basically vertical to the air outlet portion. Certainly, in an implementation, the air outlet portion passes through theaccommodating space 210 b and/or the receivingportion 420 b of theextractor 40 b. - Further, in a more preferred implementation, as shown in
FIG. 24 , the second fixing base 72 b has a latchingprotrusion 721 b extending into thefirst air inlet 151 b, and thesecond housing 15 b is kept by the latchingprotrusion 721 b in thefirst air inlet 151 b; and when disassembly is required, the latchingprotrusion 721 b may be pressed to detach from thefirst air inlet 151 b, so that thesecond housing 15 b is disassembled or removed from thefirst housing 10 b. - It should be noted that, the specification of this application and the accompanying drawings thereof illustrate preferred embodiments of this application, but this application is not limited to the embodiments described in the specification. Further, a person of ordinary skill in the art may make improvements or variations according to the foregoing descriptions, and such improvements and variations shall all fall within the protection scope of the appended claims of this application.
Claims (19)
1.-15. (canceled)
16. A vapor generation device, configured to heat an aerosol-generating product to generate an aerosol, wherein the vapor generation device has a length direction and a width direction perpendicular to the length direction; the vapor generation device has a proximal end and a distal end that are opposite to each other in the length direction, and a first side and a second side that are opposite to each other in the width direction; and the vapor generation device comprises:
a first space, close to the first side in the width direction, and basically extending from the proximal end to the distal end, wherein the first space is used to accommodate an electric core that supplies power;
a second space, close to the second side in the width direction, and close to the distal end in the length direction, wherein the second space is used to accommodate and assemble a circuit board; and
a third space, close to the second side in the width direction, and close to the proximal end in the length direction, wherein the third space defines a heating space used to receive the aerosol-generating product during use.
17. The vapor generation device according to claim 16 , wherein a width size of the first space is between ⅓ and ⅔ of a width size of the vapor generation device.
18. The vapor generation device according to claim 16 , wherein the first space has a length size ranging from 60 mm to 65 mm, a width size ranging from 15 mm to 25 mm, and a thickness size ranging from 5 mm to 10 mm.
19. The vapor generation device according to claim 16 , further comprising: the electric core accommodated in the first space, wherein the electric core is configured to supply power; and
the electric core is basically in a shape of a cube with a length size greater than a width size and the width size greater than a thickness size.
20. The vapor generation device according to claim 19 , wherein the electric core has a length ranging from 60 mm to 65 mm, a width ranging from 15 mm to 25 mm, and a thickness ranging from 5 mm to 10 mm.
21. The vapor generation device according to claim 16 , wherein a width size of the second space and/or the third space is between ⅓ and ⅔ of the width size of the vapor generation device.
22. The vapor generation device according to claim 16 , wherein in the length direction of the vapor generation device, a length size of the second space is greater than a length size of the third space.
23. The vapor generation device according to claim 16 , wherein a length size of the second space is between ½ and ⅔ of a length size of the vapor generation device.
24. The vapor generation device according to claim 16 , wherein a length size of the third space is between ⅓ and ½ of a length size of the vapor generation device.
25. The vapor generation device according to claim 16 , wherein the second space has a length size ranging from 35 mm to 50 mm, a width size ranging from 15 mm to 25 mm, and a thickness size ranging from 5 mm to 10 mm.
26. The vapor generation device according to claim 16 , wherein the third space has a length size ranging from 25 mm to 40 mm, a width size ranging from 15 mm to 25 mm, and a thickness size ranging from 5 mm to 10 mm.
27. The vapor generation device according to claim 16 , wherein a thickness size of the vapor generation device is not less than 9.5 mm.
28. The vapor generation device according to claim 16 , wherein the vapor generation device and the product box have basically similar external sizes.
29. The vapor generation device according to claim 16 , wherein the first space, the second space, and the third space are airtightly sealed from each other.
30. The vapor generation device according to claim 16 , further comprising: a wireless charging coil, configured to charge the electric core accommodated in the first space.
31. The vapor generation device according to claim 30 , wherein the wireless charging coil is a planar spiral coil.
32. The vapor generation device according to claim 31 , wherein the wireless charging coil is arranged adjacent to a side of the vapor generation device in a thickness direction.
33. The vapor generation device according to claim 16 , further comprising:
a heater, at least partially extending in the third space, to heat the aerosol-generating product, wherein the heater has a free front end configured to be inserted into the aerosol-generating product; and
a window, at least partially surrounding the heater and avoiding the free front end, to cause the heater to have an exposed portion exposed through the window, wherein a user cleans the exposed portion of the heater through the window.
Applications Claiming Priority (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202110882128.5 | 2021-08-02 | ||
| CN202110882128.5A CN115701331A (en) | 2021-08-02 | 2021-08-02 | Aerosol generating system and aerosol generating device |
| PCT/CN2022/109779 WO2023011497A1 (en) | 2021-08-02 | 2022-08-02 | Aerosol generating system and aerosol generating device |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| US20250120442A1 true US20250120442A1 (en) | 2025-04-17 |
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ID=85142504
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US18/293,809 Pending US20250120442A1 (en) | 2021-08-02 | 2022-08-02 | Aerosol generating system and aerosol generating device |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US20250120442A1 (en) |
| EP (1) | EP4381973A4 (en) |
| CN (1) | CN115701331A (en) |
| WO (1) | WO2023011497A1 (en) |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US11253003B2 (en) * | 2017-01-18 | 2022-02-22 | Kt&G Corporation | Aerosol generating device, method for controlling same, and charging system including same |
| KR102184703B1 (en) * | 2018-08-01 | 2020-11-30 | 주식회사 케이티앤지 | Method for controlling heater temperature and aerosol generating device thereof |
| CN209376679U (en) * | 2018-09-28 | 2019-09-13 | 深圳市合元科技有限公司 | Bake smoking set |
| WO2020149634A2 (en) * | 2019-01-15 | 2020-07-23 | 주식회사 케이티앤지 | Aerosol generation system and operation method therefor |
| CN211211445U (en) * | 2019-10-28 | 2020-08-11 | 深圳市康柏特科技开发有限公司 | Circumferential heating non-combustion smoking set and heat insulation system of heating assembly thereof |
| CN211910553U (en) * | 2020-01-16 | 2020-11-13 | 深圳市合元科技有限公司 | low temperature smoking set |
| CN212306813U (en) * | 2020-03-25 | 2021-01-08 | 深圳麦时科技有限公司 | Heating device and aerosol-forming device |
| CN213344346U (en) * | 2020-07-14 | 2021-06-04 | 深圳市合元科技有限公司 | Aerosol generating device |
| CN213604392U (en) * | 2020-09-25 | 2021-07-06 | 深圳市合元科技有限公司 | Aerosol generating device |
| CN216147259U (en) * | 2021-08-02 | 2022-04-01 | 深圳市合元科技有限公司 | Aerosol generator |
| CN216147260U (en) * | 2021-08-02 | 2022-04-01 | 深圳市合元科技有限公司 | Aerosol generator |
| CN216701662U (en) * | 2021-08-02 | 2022-06-10 | 深圳市合元科技有限公司 | Aerosol generator |
| CN215958316U (en) * | 2021-08-02 | 2022-03-08 | 深圳市合元科技有限公司 | Gas mist generating system and gas mist generating device |
-
2021
- 2021-08-02 CN CN202110882128.5A patent/CN115701331A/en active Pending
-
2022
- 2022-08-02 EP EP22852209.0A patent/EP4381973A4/en active Pending
- 2022-08-02 WO PCT/CN2022/109779 patent/WO2023011497A1/en not_active Ceased
- 2022-08-02 US US18/293,809 patent/US20250120442A1/en active Pending
Also Published As
| Publication number | Publication date |
|---|---|
| EP4381973A1 (en) | 2024-06-12 |
| WO2023011497A1 (en) | 2023-02-09 |
| EP4381973A4 (en) | 2024-12-18 |
| CN115701331A (en) | 2023-02-10 |
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