WO2025233105A1 - Vitre stratifiée avec capteur tactile actionné par force - Google Patents
Vitre stratifiée avec capteur tactile actionné par forceInfo
- Publication number
- WO2025233105A1 WO2025233105A1 PCT/EP2025/060623 EP2025060623W WO2025233105A1 WO 2025233105 A1 WO2025233105 A1 WO 2025233105A1 EP 2025060623 W EP2025060623 W EP 2025060623W WO 2025233105 A1 WO2025233105 A1 WO 2025233105A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- surface electrode
- disk
- sensor electronics
- recess
- electrically conductive
- 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.)
- Pending
Links
Classifications
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Definitions
- the invention relates to a composite disc with a force-actuated touch sensor, as well as a method for its manufacture and its use.
- the basic principle of force-actuated touch sensors has been known for a long time, and they form a subgroup of capacitive sensors.
- the sensor operates based on a change in the electrical capacitance of a capacitor formed by two spaced-apart surface electrodes. This change occurs when a force is applied to alter the distance between the two electrodes, and this change in capacitance is measured by sensor electronics.
- Touch sensors are used in a wide variety of devices. In smartphones, they enable operation by simply tapping the screen. In industry, they help simplify machine operation and increase safety. Modern vehicles also use touch sensors for infotainment systems and to control various functions. The main advantages of touch sensors are their intuitive usability and versatility. They enable seamless interaction without mechanical buttons, thus increasing the lifespan and reliability of devices. Furthermore, their compact size and design flexibility make them ideal for a wide range of applications. Touch sensors play a crucial role in the development of interactive technologies and have fundamentally changed the design and functionality of user interfaces. As technology advances, these sensors continue to be used innovatively to meet user needs and open up new possibilities in human-machine interaction.
- WO 2015/162108 A1 discloses a disc in which a heating layer located within the disc can be switched on or off via a switching area.
- the switching area is part of the disc, thus requiring no additional space for the user interface.
- the switching area This works, for example, using capacitive buttons. It is known that capacitive buttons can be formed by a line or a surface electrode, or by an arrangement of two coupled electrodes.
- WO2021/156430A1 discloses a disk arrangement with a capacitive switching range.
- the switching area comprises electrically separated sections. These sections are arranged in such a way as to minimize interference from external electromagnetic fields.
- the touch detection area is preferably connected to a terminal area via a 48 cm long lead wire.
- US20170034875A1 discloses an electrically heated disc that also has a capacitive switching area.
- touch sensors also faces challenges. These include ensuring functionality under various environmental conditions such as humidity, dirt, and temperature fluctuations. Furthermore, the technology must be designed to avoid false triggers while remaining sensitive enough to reliably detect actual touches. This is especially true when implementing such touch sensors in laminated glass panes.
- the object of the present invention is therefore to provide a composite disc with a force-actuated touch sensor, in which the Functionality under various environmental conditions such as humidity, dirt, and temperature fluctuations is improved. Furthermore, the force-actuated touch sensor in the laminated glass is designed to prevent false triggers while remaining sensitive enough to reliably detect actual touches.
- the composite disc with switching area comprises a first disc with an outer surface and an inner surface and a second disc with an outer surface and an inner surface, which are connected to each other by at least one thermoplastic intermediate layer, a recess is provided in the thermoplastic intermediate layer which is surrounded by a circumferential seal, and capacitive sensor electronics, wherein the following arrangement is included in the area of the recess: a first surface electrode arranged on the inner surface of the first disc, and an electrically conductive coating as a second surface electrode, applied to the inner surface of the second disc opposite the first surface electrode and electrically conductively contacted with the sensor electronics.
- the first surface electrode is applied to a flexible printed circuit board (PCB) and is conductively connected to the capacitive sensor electronics.
- PCB flexible printed circuit board
- the composite disc according to the invention provides a composite disc with a force-actuated touch sensor, the functionality of which is improved under various environmental conditions such as humidity, dirt, and temperature fluctuations.
- the touch sensor in the composite disc is designed so that it does not register false triggers and is simultaneously sensitive enough to reliably detect actual touches. For example, it can be easily operated even with gloves, without the gloves needing to be made of a specially conductive material.
- the operating principle of the circuit section according to the invention is generally known.
- a reduction in the distance between the first and second surface electrodes is detected by a change in the capacitance of the capacitor formed by the two electrodes.
- the change in capacitance is measured by sensor electronics connected to the first surface electrode via the flexible printed circuit board, and the switching signal is triggered when a threshold value is exceeded.
- the reduction in the distance between the two opposing surface electrodes is generated by a force-actuated deformation of the second disk and, optionally, of the thermoplastic intermediate layer in the circuit section.
- the force-actuated touch sensor arrangement of the present invention is not affected by the conductivity of the human operator.
- the sensor electronics measure the influence of the human finger on the capacitance of the surface electrodes to ground or the capacitance of the capacitor formed by two coupled electrodes.
- the finger always serves as a conductive mass sufficient to change the electric field of the electrode and thus measurably influence the capacitance.
- the change in capacitance of a capacitor formed by the two surface electrodes is measured solely by the change in the distance between the two surface electrodes.
- This change in distance can be triggered not only by a finger but also by any other applied force.
- the measurement is therefore not dependent on the conductivity of the Finger-dependent.
- This significant difference in the operating principle of the touch sensor allows the operator to trigger a circuit even with gloves or using objects. Furthermore, this significantly reduces the sensitivity of the touch sensor to dirt and weather conditions.
- the glazing according to the invention is designed as a laminated pane, in particular as a laminated glass pane, and comprises a first pane with an outer and inner surface and a second pane with an inner and outer surface, which are firmly bonded together by at least one thermoplastic intermediate layer (adhesive layer).
- the second pane can be designated as the outer or inner pane, and the first pane accordingly as the inner or outer pane, depending on whether the switching area is installed facing outwards or inwards.
- the surfaces or sides of the two individual panes are usually designated, from the outside inwards, as side I, side II, side III, and side IV.
- the pane preferably contains tempered, partially tempered, or non-tempered glass, particularly preferably flat glass, float glass, quartz glass, borosilicate glass, soda-lime glass, or clear plastics, preferably rigid clear plastics, in particular polyethylene, polypropylene, polycarbonate, polymethyl methacrylate, polystyrene, polyamide, polyester, polyvinyl chloride, and/or mixtures thereof. Examples of suitable glass are known from DE 697 31 268 T2, page 8, paragraph [0053].
- the thickness of the panes can vary widely and thus be ideally adapted to the requirements of the individual case. Panes with standard thicknesses of 1.0 mm to 10 mm and particularly preferably from 1.6 mm to 3 mm are used.
- the size of the panes can vary widely, for example from 0.4 m x 0.4 m to 3.2 m x 6 m.
- the panes can have any three-dimensional shape.
- the substrates are preferably planar or slightly or strongly curved in one or more directions in space. Planar substrates are particularly suitable.
- the panes can be colorless or tinted, preferably gray or green.
- the thermoplastic interlayer contains or consists of at least one thermoplastic polymer, preferably polyvinyl butyral (PVB), ethylene vinyl acetate (EVA) and/or polyethylene terephthalate (PET).
- the thermoplastic interlayer It can also contain, for example, polyurethane (PU), polypropylene (PP), polyacrylate, polyethylene (PE), polycarbonate (PC), polymethyl methacrylate, polyvinyl chloride, polyacetate resin, casting resin, acrylate, fluorinated ethylene propylene, polyvinyl fluoride and/or ethylene tetrafluoroethylene, or a copolymer or mixture thereof.
- the thermoplastic interlayer can be formed by one or more thermoplastic films arranged one above the other, the thickness of each thermoplastic film preferably being from 0.25 mm to 1 mm, typically 0.38 mm or 0.76 mm.
- the thermoplastic interlayer incorporates a recess surrounded by a circumferential seal.
- This recess can be created, for example, by punching or cutting, and its size is adapted to the dimensions of the circuit area.
- the circumferential seal of the recess is made of materials such as Teflon or butyral and serves to prevent both the flow of thermoplastic material from the interlayer into the recess and the ingress of air from the recess into the thermoplastic interlayer during the joining process of the composite disc manufacturing process.
- a sensor electronics system for a capacitive sensor switch is known, for example, from DE 20 2005 010 379 U1.
- the capacitance of the circuit area is measured by a capacitance-to-voltage converter.
- the second surface electrode is charged to a predetermined voltage by the sensor electronics.
- the current flow required for charging is measured and converted into a voltage signal.
- the change in capacitance caused by a change in the distance between the first and second surface electrodes is measured by the change in the voltage signal.
- Changes in the voltage signal can be amplified by a differentiator and compared to a threshold value via a comparator. If the change in the voltage signal exceeds a threshold value, the comparator outputs a signal. This output signal is preferably fed to a further Control electronics are supplied, tailored to the specific application. These control electronics can, for example, trigger a mechanism to open or close a door.
- a change in capacitance can also be detected by a non-oscillating oscillator, which is set into oscillation by the change in capacitance.
- an oscillating oscillator can be damped so strongly that its oscillation ceases.
- Sensor electronics with an oscillator are known from EP 0 899 882 A1.
- the composite disc with switching area of the present invention comprises the following arrangement: A first surface electrode, arranged on the inner surface of the first disc, and an electrically conductive coating as a second surface electrode, applied to the inner surface of the second disc opposite the first surface electrode and electrically conductively contacted with the sensor electronics.
- the first surface electrode is applied to a flexible printed circuit board (PCB) and is conductively connected to the capacitive sensor electronics.
- PCB printed circuit board
- a flexible printed circuit board uses a dielectric base layer made of a flexible polymer material such as polyimide or polyester. Conductive copper traces are laminated onto the flexible base layer to create a thin, flexible PCB. Since there is no rigid glass fiber reinforcement, the flexible PCB can be dynamically bent and deformed during use. Key characteristics of flexible PCBs include their flexibility, light weight, dynamic behavior, durability, integration with components, space-saving design, and adaptability.
- the first surface electrode is applied to this base layer.
- the first surface electrode can be made of any suitable material and with any suitable pattern. Round or elliptical surface electrodes are preferred.
- the surface electrode preferably has an area of 1 cm2 to 100 cm2 , and particularly 5 cm2 to 15 cm2 , for example in the form of a circular disc.
- the surface electrode is usually covered with an insulating layer, for example an insulating plastic film.
- the second surface electrode arranged opposite the first, is applied to the inner surface of the second disc as an electrically conductive coating, according to the invention. It can be transparent, opaque, or optionally colored. Electrically conductive coatings are known to those skilled in the art in the field of laminated discs and are frequently used, in particular, as functional layers. The electrically conductive coating can be applied to the inner surface of the disc, for example, by printing, by a PVD (physical vapor deposition) process, or by baking. The introduction of separation lines is only necessary if the same surface of the second disc would additionally have an electrically conductive, full-surface coating. However, this is not preferred.
- an electrically non-conductive material conventionally used for a masking strip, to which an electrically conductive material is added preferably at least one metal, such as silver, gold, copper, nickel, and/or chromium, or a metal alloy, can be used to form the second surface electrode.
- an electrically conductive paste preferably a silver-containing screen-printing paste, can be used for this purpose.
- the electrically conductive layer can be protected from corrosion by a dielectric layer. Both the insulating layer and the dielectric layer prevent galvanic contact between the two electrodes. Due to the small distance and the surface area of the electrode and the electrically conductive layer, capacitive coupling occurs.
- the electrically conductive coating, serving as the second surface electrode, is contacted with the sensor electronics, preferably via a contact point outside the recess in the thermoplastic intermediate layer.
- the electrical contact point of the second surface electrode is located in the edge region of the composite disc.
- the second surface electrode is designed as a transparent, electrically conductive coating and contains at least one metal, preferably silver, nickel, chromium, niobium, tin, titanium, copper, palladium, zinc, gold, cadmium, aluminum, silicon, tungsten or alloys thereof, and/or at least one metal oxide, preferably tin-doped indium oxide (ITO), aluminum-doped zinc oxide (AZO), fluorine-doped tin oxide (FTO, SnO2:F), antimony-doped tin oxide (ATO, SnO2:Sb), and/or carbon nanotubes and/or optically transparent, electrically conductive polymers, preferably poly(3,4-ethylenedioxythiophene), polystyrene sulfonate, poly(4,4-dioctylcyclopentadithiophene), 2,3-dichloro-5,6-dicyano
- Transparent, electrically conductive layers are known, for example, from DE 20 2008 017 611 U1 and EP 0 847 965 B1. They consist, for example, of a metal layer such as a silver layer or a layer of a silver-containing metal alloy. Typical silver layers preferably have thicknesses of 5 nm to 15 nm, particularly preferably of 8 nm to 12 nm.
- the metal layer can be embedded between at least two layers of dielectric material of the metal oxide type.
- the metal oxide preferably contains zinc oxide, tin oxide, indium oxide, titanium oxide, silicon oxide, aluminum oxide, or the like, as well as combinations of one or more thereof.
- the dielectric material can also contain silicon nitride, silicon carbide, aluminum nitride, or combinations of one or more thereof.
- the layer structure is generally obtained by a series of deposition processes carried out by a vacuum process such as magnetic field-assisted sputtering or by chemical vapor deposition (CVD).
- Very thin metal layers, containing in particular titanium or niobium, can also be provided on both sides of the silver layer.
- the lower metal layer serves as an adhesion and crystallization layer.
- the upper metal layer serves as a protective and getter layer to prevent changes to the silver during subsequent process steps.
- the transparent, electrically conductive layer according to the invention is transparent to electromagnetic radiation, preferably electromagnetic radiation with a wavelength of 300 nm to 1,300 nm, especially visible light. "Transparent" means that the transmission of the transparent, electrically conductive layer is preferably > 50%. and in particular > 70%.
- the thickness of the transparent, electrically conductive layer can vary widely and be adapted to the requirements of the individual
- Transparent, electrically conductive layers preferably have a sheet resistance of 0.1 ohm/square to 200 ohms/square, particularly preferably from 1 ohm/square to 50 ohms/square, and most preferably from 1 ohm/square to 10 ohms/square.
- the sheet resistance of a conductor layer can be measured, for example, using the four-point method or as a non-contact measurement with an eddy current tester. In non-contact sheet resistance/sheet resistance measurement with a special eddy current tester, an alternating magnetic field is generated in the material, and the measuring sensor evaluates the opposing field generated by the eddy current.
- the "EddyCus®" TF series device from Suragus is an example of a suitable measuring instrument.
- the seal is electrically insulating. This further improves the durability and insulation of the second surface electrode on the one hand and the printed circuit board (PCB) with the first surface electrode on the other.
- PCB printed circuit board
- the distance between the first surface electrode and the second surface electrode is from 0.01 mm to 10 mm, preferably from 0.2 mm to 5 mm, particularly preferably from 0.5 mm to 1.6 mm.
- the distance between the surface electrodes is determined by the thickness of the thermoplastic intermediate layer used.
- the capacitive sensor electronics are applied to the flexible printed circuit board (PCB) and arranged outside the recess.
- the flexible circuit board serves not only as a carrier for the sensor electronics but also as a signal conductor from the first surface electrode to the sensor electronics.
- Arranging the sensor electronics outside the recess, and particularly preferably outside the edge of the composite disk, is advantageous because it allows the use of electronics with a thickness that is too great for the composite disk, and also due to the sensitivity of the electronics to mechanical stress and environmental influences.
- the edge region and/or the area in which the flexible printed circuit board is guided is covered by a printed overlay on the inner and/or outer surfaces of the disc, so that it is not visible from the outside. Further markings or symbols can be printed, affixed, or otherwise arranged on the inner and outer surfaces.
- the invention extends to a method for manufacturing a composite disk with a switching area comprising at least the following steps:
- first disc with an outer surface and an inner surface
- second disc with an outer surface and an inner surface
- thermoplastic intermediate layer to the inner surface of the first disk, wherein the thermoplastic intermediate layer has a recess and wherein at least the area of the first surface electrode of the flexible printed circuit board (PCB) is arranged in the recess, Inserting a circumferential seal around the edge of the recess,
- a first disk with an outer surface and an inner surface and a second disk with an outer surface and an inner surface are provided; then, at a suitable location, the inner surface of the second disk is coated with an electrically conductive layer as a second surface electrode.
- Masking of the disks can be carried out for this purpose.
- a first surface electrode is applied to a flexible printed circuit board (PCB), and the flexible printed circuit board (PCB) thus formed is applied to the inner surface of the first disk.
- PCB flexible printed circuit board
- thermoplastic interlayer is applied to the inner surface of the first disk, wherein the thermoplastic interlayer has a recess and wherein at least the area of the first surface electrode of the flexible printed circuit board (PCB) is positioned in the recess.
- a circumferential seal is inserted to surround the recess.
- capacitive sensor electronics are applied to an area of the flexible printed circuit board (PCB) that is not located within the disk, and an electrically conductive connection is established between the sensor electronics and the first surface electrode, in particular through the conductor paths of the PCB.
- the second surface electrode is electrically contacted, establishing an electrically conductive connection with the sensor electronics.
- the contacting of the second surface electrode preferably takes place outside the area of the recess, particularly preferably in an edge region of the composite disk. Since the second surface electrode is designed as an electrically conductive coating (see above), the methods for contacting the second surface electrode are familiar to those skilled in the art from the technical field of electrically conductive functional layers of composite disks, and reference can be made to them in this respect.
- the process includes, as further steps, joining the first and second discs in such a way that the second surface electrode and the first surface electrode are arranged opposite each other, and laminating the composite disc.
- the sensor electronics are connected to a functional element to be switched, either directly or indirectly.
- Indirect connection involves, for example, signal transmission to a control unit, which in turn only transmits a switching signal to the functional element when a threshold value is exceeded.
- the invention extends to the use of the composite pane with switching area according to the invention as an insulating glass pane with a capacitive switch, as a built-in component in furniture and appliances, in particular electronic appliances with cooling or heating function, for glazing buildings, in particular in the access or window area, or for glazing in a vehicle for transport on land, in the air or on water, in particular in motor vehicles, for example as Vehicle door or vehicle roof, in buses, trams, subways, trains for public or private local or long-distance passenger transport.
- a capacitive switch as a built-in component in furniture and appliances, in particular electronic appliances with cooling or heating function, for glazing buildings, in particular in the access or window area, or for glazing in a vehicle for transport on land, in the air or on water, in particular in motor vehicles, for example as Vehicle door or vehicle roof, in buses, trams, subways, trains for public or private local or long-distance passenger transport.
- Fig. 1 shows a cross-sectional view of an embodiment of the composite disk according to the invention with a switching area
- Fig. 2 shows a cross-sectional view of an actuated variant of the design shown in Fig. 1, and
- Fig. 3 shows a top view of a flexible printed circuit board for use in the circuit area of the composite disk.
- Figure 1 shows a cross-sectional view of an embodiment of the composite disk 1 according to the invention in a simplified, schematic representation.
- the laminated glass pane with switching area 1 is designed as a laminated glass pane and comprises a first pane 2 (e.g., inner pane) and a second pane 3 (e.g., outer pane), which are firmly bonded together by a thermoplastic interlayer 4.
- the laminated glass pane 1 can be installed in a building or motor vehicle and separates an interior space from an external environment.
- the laminated glass pane is the windshield of a motor vehicle.
- the first pane 2 and the second pane 3 each consist of glass, preferably thermally tempered soda-lime glass, and are transparent to visible light.
- the thermoplastic intermediate layer 4 consists of a thermoplastic polymer, preferably polyvinyl butyral (PVB), ethylene vinyl acetate (EVA) and/or polyethylene terephthalate (PET).
- the outer surface IV of the second pane 3 preferably faces the external environment and is simultaneously the outer surface of the laminated pane 1.
- the inner surface II of the first pane 2 and the inner surface III of the second pane 3 each face the intermediate layer 4.
- the inner surface III of the second pane 3 preferably faces the exterior of the building or vehicle and is simultaneously the inner surface of the laminated pane 1.
- the laminated pane 1 can have any suitable geometric shape and/or curvature.
- the laminated pane 1 typically has a convex curvature.
- the panes typically have a thickness of 1.6 mm or 2.1 mm.
- a recess 5 is formed in the thermoplastic intermediate layer 4 and separated from the material of the intermediate layer 4 by a circumferential seal 6.
- the circumferential seal 6 can be made of an electrically insulating material, preferably Teflon or Butyral. It serves to seal the air-filled recess opening 5 from the thermoplastic material of the intermediate layer 4, which becomes fluid under the conditions of manufacturing by compression and/or lamination and therefore should not penetrate the recess.
- the disk 1 according to the invention comprises the following arrangement in the present embodiment: A first surface electrode 8 is arranged on the inner surface II of the first disk 2. An electrically conductive coating is applied as a second surface electrode 9 opposite the first surface electrode 8 on the inner surface III of the second disk 3.
- the second surface electrode 9, arranged opposite the first surface electrode 8, is designed as an electrically conductive coating. It can be transparent, opaque, or optionally colored.
- the second surface electrode 9 is preferably designed as a transparent, electrically conductive coating and contains at least one metal, preferably silver, nickel, chromium, niobium, tin, titanium, copper, palladium, zinc, gold, cadmium, aluminum, silicon, tungsten or alloys thereof, and/or at least one metal oxide, preferably tin-doped indium oxide (ITO), aluminum-doped zinc oxide (AZO), fluorine-doped tin oxide (FTO, SnO2:F), antimony-doped tin oxide (ATO, SnO2:Sb), and/or carbon nanotubes and/or optically transparent, electrically conductive polymers, preferably poly(3,4- ethylenedioxythiophene), polystyrene sulfonate, poly(4,4-dioct
- the first surface electrode 8 is mounted on a flexible printed circuit board (PCB) 10 and conductively connected to the capacitive sensor electronics 7.
- the capacitive sensor electronics are mounted on an area of the flexible PCB 10 that is not located within the disk 1, and an electrically conductive connection between the sensor electronics 7 and the first surface electrode 8 is established, in particular, by the PCB's conductive paths.
- the flexible PCB 10 serves not only as a carrier for the sensor electronics 7 but also as a signal conductor from the first surface electrode 8 to the sensor electronics 7.
- the arrangement of the sensor electronics 7 outside the recess 5, and especially preferably outside the edge of the composite disk 1, is advantageous because it allows the use of electronic components with a thickness that would be too great for the composite disk, and also due to the sensitivity of the electronics to mechanical stress and environmental influences.
- the edge region and/or the region in which the flexible printed circuit board 10 is guided is covered by a printed overlay (not shown) on the inner and/or outer surfaces of the disks 2 and/or 3, so that it is not visible from the outside. Further markings or symbols can be printed, affixed, or otherwise arranged on the inner and outer surfaces.
- the distance between the first surface electrode 8 and the second surface electrode 9 is, for example, from 0.01 mm to 10 mm, preferably from 0.2 mm to 5 mm, and particularly preferably from 0.5 mm to 1.6 mm.
- the distance between the surface electrodes is determined by the thickness of the thermoplastic intermediate layer 4 used.
- Several intermediate layers 4 and, optionally, functional layers can also be arranged between the disks 2 and 3.
- FIG. 2 shows the embodiment of the composite disk 1 according to the invention from Figure 1.
- a force F acts on the surface in a deforming manner.
- IV of the second disk 3. This changes the distance between the second surface electrode 9 and the first surface electrode 8.
- This change in distance also alters the capacitance between the two electrodes 8 and 9, which is detected by the capacitive sensor electronics 7.
- the sensor electronics 7 are connected, either directly or indirectly, to a switching functional element (not shown). Indirect connection includes, for example, signal transmission to a control unit, which in turn only transmits a switching signal to the functional element when a threshold value is exceeded.
- Figure 3 shows a schematic detail section as a top view of a flexible printed circuit board 10 with applied surface electrode 8, conductor paths and sensor electronics 7, as applied to the inner surface II of the first disk 2 from Figures 1 and 2.
- the composite disc 1 provides a composite disc with a force-actuated touch sensor, the functionality of which is improved under various environmental conditions such as humidity, dirt, and temperature fluctuations. Furthermore, the touch sensor in the composite disc 1 is designed so that it does not register false triggers and is simultaneously sensitive enough to reliably detect actual touches. For example, it can be easily operated even with gloves, without the gloves being made of a specially conductive material, since it depends solely on the applied force and thus the change in distance between the surface electrodes, and not on the change in capacitance caused by the application of a conductive material.
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- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Physics & Mathematics (AREA)
- Thermal Sciences (AREA)
- Switches That Are Operated By Magnetic Or Electric Fields (AREA)
Abstract
L'invention concerne une vitre stratifiée (1) avec une zone de commutation comprenant : - une première vitre (2) dotée d'une surface externe (I) et d'une surface interne (II) et une seconde vitre (3) dotée d'une surface externe (IV) et d'une surface interne (III), qui sont reliées les unes aux autres par au moins une couche intermédiaire thermoplastique (4), - un évidement (5) dans la couche intermédiaire thermoplastique (4), qui est bordé par un joint circonférentiel (6), - un élément électronique de capteur capacitif (7), l'agencement suivant étant inclus dans la région de l'évidement (5) : - une première électrode plate (8) agencée sur la surface interne (II) de la première vitre (2), - un revêtement électroconducteur en tant que seconde électrode plate (9), appliqué à la surface interne (III) de la seconde vitre (3) opposée à la première électrode plate (8) et en contact électroconducteur avec l'élément électronique de capteur capacitif (7), la première électrode plate (8) étant appliquée à une carte de circuit imprimé souple (10) et étant connectée de manière conductrice à l'élément électronique de capteur capacitif (7), et concerne également un procédé pour sa production et son utilisation.
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP24174450.7 | 2024-05-07 | ||
| EP24174450 | 2024-05-07 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2025233105A1 true WO2025233105A1 (fr) | 2025-11-13 |
Family
ID=91030165
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/EP2025/060623 Pending WO2025233105A1 (fr) | 2024-05-07 | 2025-04-17 | Vitre stratifiée avec capteur tactile actionné par force |
Country Status (1)
| Country | Link |
|---|---|
| WO (1) | WO2025233105A1 (fr) |
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|---|---|---|---|---|
| EP0899882A1 (fr) | 1997-06-26 | 1999-03-03 | captron electronic gmbh | Circuit pour un interrupteur capacitif de proximité |
| US6452514B1 (en) | 1999-01-26 | 2002-09-17 | Harald Philipp | Capacitive sensor and array |
| EP0847965B1 (fr) | 1996-12-12 | 2004-10-20 | Saint-Gobain Glass France | Vitrage comprenant un substrat muni d'un empilement de couches minces pour la protection solaire et-ou l'isolation thermique |
| DE202005010379U1 (de) | 2005-07-01 | 2005-09-29 | Captron Electronic Gmbh | Türgriff mit kapazitivem Sensor |
| DE202006006192U1 (de) | 2006-04-18 | 2006-07-27 | Captron Electronic Gmbh | Türbetätigungstaster |
| DE202008017611U1 (de) | 2008-12-20 | 2010-04-22 | Saint-Gobain Sekurit Deutschland Gmbh & Co. Kg | Scheibenförmiges, transparentes, elektrisch beheizbares Verbundmaterial |
| WO2015162108A1 (fr) | 2014-04-24 | 2015-10-29 | Saint-Gobain Glass France | Vitre électriquement chauffante comprenant une zone de commande |
| WO2019206772A1 (fr) | 2018-04-25 | 2019-10-31 | Saint-Gobain Glass France | Vitre feuilletée munie d'un élément fonctionnel à commande électrique dans une couche intermédiaire thermoplastique |
| WO2021156430A1 (fr) | 2020-02-07 | 2021-08-12 | Saint-Gobain Glass France | Ensemble vitre présentant une région de commutation capacitive |
| WO2021209391A1 (fr) | 2020-04-15 | 2021-10-21 | Saint-Gobain Glass France | Vitrage pourvu d'un bouton capteur |
-
2025
- 2025-04-17 WO PCT/EP2025/060623 patent/WO2025233105A1/fr active Pending
Patent Citations (12)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP0847965B1 (fr) | 1996-12-12 | 2004-10-20 | Saint-Gobain Glass France | Vitrage comprenant un substrat muni d'un empilement de couches minces pour la protection solaire et-ou l'isolation thermique |
| DE69731268T2 (de) | 1996-12-12 | 2006-09-28 | Saint-Gobain Glass France | Für den Sonnenschutz und/oder zur Wärmeisolierung dienende Verglasung bestehend aus einem mit dünnen Lagen mehrfach beschichtetem Substrat |
| EP0899882A1 (fr) | 1997-06-26 | 1999-03-03 | captron electronic gmbh | Circuit pour un interrupteur capacitif de proximité |
| US6452514B1 (en) | 1999-01-26 | 2002-09-17 | Harald Philipp | Capacitive sensor and array |
| DE202005010379U1 (de) | 2005-07-01 | 2005-09-29 | Captron Electronic Gmbh | Türgriff mit kapazitivem Sensor |
| DE202006006192U1 (de) | 2006-04-18 | 2006-07-27 | Captron Electronic Gmbh | Türbetätigungstaster |
| DE202008017611U1 (de) | 2008-12-20 | 2010-04-22 | Saint-Gobain Sekurit Deutschland Gmbh & Co. Kg | Scheibenförmiges, transparentes, elektrisch beheizbares Verbundmaterial |
| WO2015162108A1 (fr) | 2014-04-24 | 2015-10-29 | Saint-Gobain Glass France | Vitre électriquement chauffante comprenant une zone de commande |
| US20170034875A1 (en) | 2014-04-24 | 2017-02-02 | Saint-Gobain Glass France | Electrically heatable pane with switch region |
| WO2019206772A1 (fr) | 2018-04-25 | 2019-10-31 | Saint-Gobain Glass France | Vitre feuilletée munie d'un élément fonctionnel à commande électrique dans une couche intermédiaire thermoplastique |
| WO2021156430A1 (fr) | 2020-02-07 | 2021-08-12 | Saint-Gobain Glass France | Ensemble vitre présentant une région de commutation capacitive |
| WO2021209391A1 (fr) | 2020-04-15 | 2021-10-21 | Saint-Gobain Glass France | Vitrage pourvu d'un bouton capteur |
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