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WO2021234682A1 - Dispositif de traitement d'un mélange gazeux dans un champ magnétique - Google Patents

Dispositif de traitement d'un mélange gazeux dans un champ magnétique Download PDF

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Publication number
WO2021234682A1
WO2021234682A1 PCT/IB2021/055843 IB2021055843W WO2021234682A1 WO 2021234682 A1 WO2021234682 A1 WO 2021234682A1 IB 2021055843 W IB2021055843 W IB 2021055843W WO 2021234682 A1 WO2021234682 A1 WO 2021234682A1
Authority
WO
WIPO (PCT)
Prior art keywords
pipeline
inductors
permanent magnets
magnetic field
pair
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/IB2021/055843
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English (en)
Russian (ru)
Inventor
Валерий Геннадьевич ЮРЧИК
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Individual
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Individual
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Filing date
Publication date
Application filed by Individual filed Critical Individual
Publication of WO2021234682A1 publication Critical patent/WO2021234682A1/fr
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61MDEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
    • A61M16/00Devices for influencing the respiratory system of patients by gas treatment, e.g. ventilators; Tracheal tubes
    • A61M16/10Preparation of respiratory gases or vapours
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02MSUPPLYING COMBUSTION ENGINES IN GENERAL WITH COMBUSTIBLE MIXTURES OR CONSTITUENTS THEREOF
    • F02M27/00Apparatus for treating combustion-air, fuel, or fuel-air mixture, by catalysts, electric means, magnetism, rays, sound waves, or the like
    • F02M27/04Apparatus for treating combustion-air, fuel, or fuel-air mixture, by catalysts, electric means, magnetism, rays, sound waves, or the like by electric means, ionisation, polarisation or magnetism
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02TCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO TRANSPORTATION
    • Y02T10/00Road transport of goods or passengers
    • Y02T10/10Internal combustion engine [ICE] based vehicles
    • Y02T10/12Improving ICE efficiencies

Definitions

  • the invention relates to devices for processing substances, in particular gaseous mixtures, in a magnetic field and can be used in various fields of technology, agriculture, medicine and veterinary medicine to increase the efficiency of technological processes, increase productivity, accelerate the normalization of impaired body functions and increase its adaptive capabilities ...
  • air magnetized in a magnetic field created with permanent magnets has a stable therapeutic effect that improves metabolism in the human body, helps stabilize blood pressure and normalize sleep, improves blood circulation in the nasal region, and also increases resistance to allergies. and strengthens human immunity.
  • a device for processing substances in a magnetic field including a pipeline for moving the processed substance and a pair of inductors installed in parallel planes on both sides of the pipeline, with each inductor containing a group of permanent magnets arranged in series in one plane and adjoining each other with opposite poles (see utility model patent RU N ° 19100, M. class F02M 27/04, C10G 32/02, publ. 08/10/2001).
  • the device is designed for processing and activating substances, in particular food products, in a magnetic field and contains a housing made of ferromagnetic material and a pipeline of non-magnetic material placed in it, made in the form of a coil containing one elbow.
  • the treated substance In the working area of the pipeline, the treated substance is exposed to a magnetic field induced by a pair of the above inductors, while the inductors located in parallel planes on both sides of the pipeline are offset relative to each other along the working area of the pipeline by an amount equal to half the length of one permanent magnet.
  • This displacement leads to a decrease in the intensity of the magnetic field induced by the inductors and acting on the treated substance in the working area of the pipeline, and to a decrease in the efficiency of the known device.
  • the disadvantage of the known device is the low efficiency of the magnetic treatment of the substance moved through the pipeline, made in the form of a coil, due to the unidirectional effect of the magnetic field on the processed substance.
  • the magnetic field lines that induce inductors placed in parallel planes cross the working area of the pipeline in one direction (top to bottom and / or bottom to top) and are located perpendicular to the flow of the processed substance, which does not allow creating a magnetic field of the required configuration and strength in the flow of the processed substance and not enough to effectively treat the substance transported through the pipeline.
  • a device for processing a gaseous mixture in a magnetic field including a pipeline for moving the processed mixture, and a pair of inductors installed oppositely in the working area of the pipeline on both sides of it, each inductor being made in the form of at least one permanent magnet and / or a group of permanent magnets arranged in series in the same plane with a gap and adjoining each other with opposite poles (see patent for invention RU N ° 2117434, M.cl. A23L 1/025, A23L 2/38, C02F 1/48, publ. ... 08/20/1998).
  • the device contains a body and a pipeline made in the form of a coil containing at least two elbows.
  • inductors In the working area of the pipeline, in which the processed gaseous mixture is exposed to a magnetic field, inductors are installed, which are located oppositely in parallel planes on both sides of the pipeline. Each inductor contains a group of permanent magnets, consisting of at least two permanent magnets arranged in series in one plane.
  • the disadvantage of the known device is the unidirectional effect of a magnetic field on the processed mixture, which moves through the pipeline.
  • the magnetic field lines which induce inductors placed in parallel planes, cross the working area of the pipeline, made in the form of a coil, in the same direction (from top to bottom and / or from bottom to top) and are located perpendicular to the flow of the processed gaseous mixture, which does not allow creating the magnetic field of the optimal configuration and the required strength in the flow of the processed mixture is not sufficient for efficient processing of the gaseous mixture transported through the pipeline.
  • one pair of flat inductors placed in parallel planes which creates a magnetic field of unidirectional orientation, does not allow creating a magnetic field of the desired configuration in the working area of a pipeline made in the form of a coil.
  • the objective of the claimed invention is to create a device for processing a gaseous mixture in a magnetic field, which eliminates the disadvantages of the prototype and increases the efficiency of magnetic processing of a gaseous mixture by providing a multidirectional effect of a magnetic field on the gaseous mixture that moves through the pipeline, by installing additional pairs of inductors and creating a magnetic fields of the required intensity and optimal configuration in the working area of the pipeline and in the flow of the processed gaseous mixture.
  • the problem is solved by the fact that in the known device for processing a gaseous mixture in a magnetic field, including a pipeline for moving the processed mixture and the (first) pair of inductors, oppositely installed in the working area of the pipeline on both sides of it, with each inductor made in the form of one a permanent magnet and / or a group of permanent magnets arranged in series in one plane and adjacent to each other with opposite poles, according to the invention, it is equipped with at least one additional (second) pair of inductors, oppositely installed on both sides of the working area of the pipeline, located at an angle a with respect to the aforementioned (first) pair of inductors, while the angle a is selected in the range from 15 ° to 165 °, mainly from 30 ° to 150 °, and the length of the working zone of the pipeline, in which the gaseous mixture is exposed to a magnetic field, is selected in according to the following mathematical relationship:
  • L is the length of the pipeline working area in which the gaseous mixture is exposed to the magnetic field, mm.
  • Dependence (1) determines the length of the pipeline working zone in which the gaseous mixture is exposed to a magnetic field.
  • the specified length of the working area of the pipeline is determined by the choice of the optimal geometric parameters of the claimed device, namely, the distance (H) between the inductors in each pair of inductors and the length (L) of the working area of the pipeline.
  • the distance (gap) between the permanent magnets included in the group of permanent magnets located sequentially in the same plane and adjacent to each other is selected in accordance with the following relationship:
  • t is the distance (gap) between permanent magnets located in the same plane, which are included in the same group of permanent magnets, mm.
  • Dependence (2) determines the gap (t) between the permanent magnets included in one group of permanent magnets that form each inductor.
  • the specified distance (t) is selected in accordance with the optimal geometric dimensions of the claimed device, namely, from the distance (H) between the inductors.
  • the pipeline is equipped with a body that covers it throughout the working area and is made of non-magnetic material.
  • the housing allows you to install inductors, both the first and additional pair (s) of inductors, in the working area of the pipeline in such a way as to provide the necessary orientation of the permanent magnets included in each inductor, and, accordingly, the magnetic field, which they induce.
  • the housing is made of a dielectric material, for example, ceramics, or glass, or food grade plastic.
  • the body of the pipeline is equipped with pockets for placing permanent magnets in them, each of which has a rectangular shape and is made in the form of a parallelepiped.
  • pockets in the body of the pipeline eliminates direct contact of the surface of the permanent magnets included in each inductor with the processed gaseous mixture that moves through the pipeline, which protects the permanent magnets from corrosion and other damage
  • the pipeline body is equipped with pockets, open from the user's side, for placing permanent magnets in them, each of which is made with two parallel bases, which are its magnetic poles N and S, and has the shape of, for example, a cylinder, or prisms, or cube, which allows you to expand the arsenal of component parts in the manufacture of the device.
  • At least one permanent magnet is made of a neodymium alloy, which ensures the creation of a magnetic field of increased strength.
  • the pipeline is equipped with a connecting flange for connecting the claimed device to other equipment, for example, a ventilator.
  • the technical result provided by the claimed invention consists in increasing the efficiency of magnetizing the gaseous mixture by creating a multidirectional orientation and optimal configuration of a magnetic field in the working area of the pipeline.
  • FIG. 1 shows a general view of a device for processing a gaseous mixture in a magnetic field
  • FIG. 2 - section A-A Fig. 1
  • FIG. 3 - section b-b Fig. 1
  • FIG. 4 - section C-C Fig. 2
  • FIG. 5 is an isometric view of the claimed device with three pockets for each 1 inductor, recruited from three permanent magnets
  • FIG. 6 is a front view.
  • FIG. 1 in FIG. 7 - image of the inventive device with inductors, each of which is made in the form of one permanent magnet
  • FIG. 8 is an isometric view of the claimed device with five pockets for each inductor, which consists of five permanent magnets
  • FIG. 1 shows a general view of a device for processing a gaseous mixture in a magnetic field
  • FIG. 2 - section A-A Fig. 1
  • FIG. 3 - section b-b Fig. 1
  • FIG. 4 - section C-C Fig. 2
  • the device for processing a gaseous mixture in a magnetic field contains a pipeline 1 for moving the processed mixture and a (first) pair of inductors 2, oppositely installed in the working area of the pipeline 1 on both sides of it.
  • Each inductor 2 is made in the form of one permanent magnet 2i or a group of magnets, consisting of at least two permanent magnets 2g, to create a magnetic field acting directly on the gaseous mixture in the working area 3 of the pipeline 1.
  • Inductors 2 are located oppositely in the working area 3 in parallel planes on both sides with respect to the pipeline 1.
  • Each inductor 2, including a group of magnets, consists of at least two permanent magnets 2d arranged in series in one plane and facing each other with opposite and / or like poles.
  • the inventive device also contains at least one additional (second) pair of inductors 4, oppositely installed on both sides of the working area 3 of pipeline 1.
  • Each inductor 4 made in the form of one permanent magnet 4i or a group of magnets 4g, creates a magnetic field acting directly on the gaseous mixture in the working area 3 of pipeline 1.
  • Each inductor 4, consisting of a group of magnets 4g, includes at least two permanent magnets arranged in series in one plane and facing each other with opposite and / or like poles.
  • An additional pair of inductors 4 is placed at an angle a with respect to the aforementioned (first) pair of inductors 2, while the angle a is selected in the range from 15 ° to 165 °, preferably from 30 ° to 150 °, and the distance (H) between the inductors 2 in the first pair inductors and inductors 4 in an additional pair of inductors are selected in accordance with the following mathematical relationship:
  • L is the length of the working zone 3 of pipeline 1, in which the gaseous mixture is exposed to a magnetic field, mm.
  • the pipeline 1 is equipped with a body 5, covering it throughout the working zone 3 and made of non-magnetic material, in as which can be used ceramics, or glass, or food grade plastic, as well as other dielectric materials.
  • a rigid case 5 allows you to install inductors 2, forming the first pair of inductors, and inductors 4 of an additional pair of inductors, in the working area 3 of the pipeline 1 in such a way as to provide the necessary orientation of the permanent magnets 2i or a group of permanent magnets 2d and permanent magnets 4i or a group of permanent magnets 4d.
  • the number of permanent magnets included in the group 2g and included in the group of permanent magnets 4g as part of each inductor 2 and inductor 4, respectively, can be selected depending on the specific conditions of use of the claimed device.
  • FIG. 7 shows a device, each inductor 2 and an inductor 4, which each contains one permanent magnet 2i and one permanent magnet 4i, respectively.
  • FIG. 1 shows a device, each inductor 2 and inductor 4 of which contains a group of three permanent magnets 2g and a group of three permanent magnets 4g, respectively.
  • FIG. 8 to FIG. 11 shows a device containing an inductor 2 and an inductor 4, each of which consists of five permanent magnets 2g and five permanent magnets 4g, respectively.
  • FIG. 12 and FIG. 13 shows a device containing an inductor 2 and an inductor 4, each of which consists of ten permanent magnets 2g and ten permanent magnets 4g, respectively.
  • the body 5 of the pipeline 1 is equipped with pockets 6 to accommodate permanent magnets 2i or 2d and permanent magnets 4i or 4d, which are part of each inductor 2 and inductor 4, respectively.
  • Each of the permanent magnets 2i, 2d and permanent magnets 4i, 4d has a rectangular shape and is made in the form of a parallelepiped (see Fig. 1, Fig. 2, Fig. 7) with two parallel bases, which are its magnetic poles N and S ...
  • pockets 6 are open from the user's side to accommodate permanent magnets 2- ⁇ , 2i, 4i, 4d, both made in the form of a parallelepiped, and those that have a different form, for example, the shape of a prism, or a cylinder, or a cube (on not shown in the drawings).
  • the distance (t) (gap) between the permanent magnets 2g included in the groups of magnets that form each of the inductors 2 (or between the permanent magnets 4g included in the group of magnets that form each of the inductors 4), located in series in one plane and those that are adjacent to each other, is selected in accordance with the following relationship:
  • t is the distance (gap) between permanent magnets 2g or permanent magnets 4g, included in one group of magnets forming each inductor 2 or each inductor 4, respectively, mm.
  • the above dependence (2) determines the distance (t) between the permanent magnets 2g or the permanent magnets 4g, included in one group of permanent magnets and forming each inductor 2 or each inductor 4, respectively.
  • At least one permanent magnet from the number of permanent magnets 2i, 2i, 4i, 4d, is made of a neodymium alloy, which creates a magnetic field of increased strength, which induces both a pair of inductors 2 and an additional pair of inductors 4.
  • Permanent magnets 2i, 2i, 4i, 4d used in the claimed device, are made of neodymium alloy and are powerful permanent magnets, which consist of an alloy of the rare earth element neodymium, boron and iron, and have a chemical composition that corresponds to the following chemical formula - NcbFe- B.
  • the housing is made of a dielectric material, for example, ceramics or glass, or food grade plastic.
  • the claimed device is equipped 5 with two pairs of additional inductors 4 and 4 ', installed along the working zone 3 of the pipeline 1 (see Fig. 14).
  • the first pair of additional inductors 4 is located at an angle a equal to 60 ° relative to the first pair of inductors 2, and the second pair of additional inductors 4 'is placed at an angle a' equal to 120 ° relative to the first pair of 10 inductors 2.
  • the claimed device is equipped with 15 three pairs of additional inductors 4, 4 'and 4 ", installed around the working area 3 of the pipeline 1 (see Fig. 15).
  • the first pair of additional inductors 4 is placed at an angle a equal to 45 ° relative to the first pair of inductors 2
  • the second pair of additional inductors 4 ' is placed at an angle a' equal to 90 ° relative to the first pair of inductors 20
  • the third pair of additional inductors 4 " is placed at an angle a" equal to 135 ° relative to the first pair of inductors 2.
  • the housing 5 is equipped with a connecting flange 7 (see Fig. 1 - Fig. 10, Fig. 12), designed to connect it to other items of equipment, for example, a ventilator.
  • the specified flange 7 can also be attached to a respirator worn on the user's face, which makes it possible to ionize the air supplied to the consumer and increase the concentration in it. oxygen. This is especially important when carrying out production activities in highly dusty premises, carrying out preventive and therapeutic procedures for medical purposes, as well as improving the quality of the air supplied to the consumer when wearing a respirator for a long time during quarantine measures.
  • a device for processing a gaseous mixture in a magnetic field is used as follows.
  • the gaseous mixture in particular air, which is magnetized, is passed through the pipeline 1 in the direction from the beginning of the pipeline 1, opposite to the location of the flange 7, towards the flange 7.
  • the air moves along the longitudinal axis of the pipeline 1 perpendicular to the direction of the magnetic field lines induced by the first a pair of inductors 2 and an additional pair (s) of inductors 4 (4 ', 4 ").
  • Passing the working zone 3 of pipeline 1 structural transformations occur in the magnetized air, which lead to its ionization and an increase in oxygen concentration.
  • the claimed device makes it possible to process the gaseous mixture by creating in the working zone 3 of the pipeline 1 a magnetic field of a multidirectional orientation and optimal configuration, which makes it possible to increase the efficiency of magnetizing the gaseous mixture, in particular air, in the inventive device.
  • the technical result of the invention consists in increasing the efficiency of magnetization of the gaseous mixture, due to the creation in the working area of the pipeline of a magnetic field of a multidirectional orientation and optimal configuration, which makes it possible to increase the efficiency of magnetization of the gaseous mixture, in particular, atmospheric air, processed using the inventive device.

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  • Engineering & Computer Science (AREA)
  • Health & Medical Sciences (AREA)
  • Chemical & Material Sciences (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • General Health & Medical Sciences (AREA)
  • Biomedical Technology (AREA)
  • Heart & Thoracic Surgery (AREA)
  • Hematology (AREA)
  • Pulmonology (AREA)
  • Animal Behavior & Ethology (AREA)
  • Anesthesiology (AREA)
  • Public Health (AREA)
  • Veterinary Medicine (AREA)
  • Emergency Medicine (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Physical Or Chemical Processes And Apparatus (AREA)

Abstract

L'invention concerne un dispositif de traitement de mélange gazeux dans un champ magnétique, qui comprend un conduit 1 pour placer un mélange à traiter et une paire d'inducteurs 2 disposés face à face dans la zone de travail du conduit 1 des deux côtés de celui-ci. Chaque inducteur 2 se présente sous forme d'un aimant permanent 21 et/ou d'un groupe d'aimants permanents 22 disposés en série dans un même plan et orientés les uns vers les autres par leurs pôles opposés. Le dispositif comprend également au moins une paire supplémentaire d'inducteurs 4 disposés face à face des deux côtés de la zone de travail 3 du conduit 1. La paire supplémentaire d'inducteurs 4 est disposée à un certain angle par rapport à la paire d'inducteurs 2, et l'angle est choisi dans une plage de 15° à 165°, de préférence de 30° à150°. Le résultat technique consiste en une augmentation de l'efficacité de magnétisation du mélange gazeux grâce à la création dans la zone de travail du conduit d'un champ magnétique ayant une orientation opposée et une configuration optimale.
PCT/IB2021/055843 2020-08-18 2021-06-30 Dispositif de traitement d'un mélange gazeux dans un champ magnétique Ceased WO2021234682A1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
UAA202005360 2020-08-18
UAA202005360 2020-08-18

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WO2021234682A1 true WO2021234682A1 (fr) 2021-11-25

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PCT/IB2021/055843 Ceased WO2021234682A1 (fr) 2020-08-18 2021-06-30 Dispositif de traitement d'un mélange gazeux dans un champ magnétique

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Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
RU2117434C1 (ru) * 1997-10-06 1998-08-20 Лаптев Борис Иннокентьевич Устройство для обработки веществ в магнитном поле
RU2137718C1 (ru) * 1998-08-17 1999-09-20 Закрытое акционерное общество "Машстроймеханизация" Устройство для магнитной обработки жидкости
US20020056679A1 (en) * 2000-10-27 2002-05-16 Takashi Sato Liquid magnetic processing unit
RU2572895C2 (ru) * 2010-09-02 2016-01-20 Жан-Мишель БОДУЭН Устройство и способ обработки газообразной среды и применение указанного устройства для обработки газообразной среды, жидкости, твердого тела, поверхности или любого их сочетания

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
RU2117434C1 (ru) * 1997-10-06 1998-08-20 Лаптев Борис Иннокентьевич Устройство для обработки веществ в магнитном поле
RU2137718C1 (ru) * 1998-08-17 1999-09-20 Закрытое акционерное общество "Машстроймеханизация" Устройство для магнитной обработки жидкости
US20020056679A1 (en) * 2000-10-27 2002-05-16 Takashi Sato Liquid magnetic processing unit
RU2572895C2 (ru) * 2010-09-02 2016-01-20 Жан-Мишель БОДУЭН Устройство и способ обработки газообразной среды и применение указанного устройства для обработки газообразной среды, жидкости, твердого тела, поверхности или любого их сочетания

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