Switch device

The switch device integrates a glass layer of 20-150 μm thickness with a 600-1500 μm clear layer to enhance presence and depth perception, addressing the loss of sense of depth in thinner glass layers.

JP2025153470APending Publication Date: 2025-10-10NITTO DENKO CORP
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Patent Information

Application Number
JP2024055967
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-03-29
Publication Date
2025-10-10

AI Technical Summary

Technical Problem

Existing switch devices with a glass layer thinner than 100 μm lose their presence and sense of depth due to elastic deformation, compromising their functionality.

Method used

A switch device design incorporating a glass layer of 20 μm to 150 μm thickness, paired with a clear layer of 600 μm to 1500 μm thickness, and a printed film, which elastically deform to switch between conductive and non-conductive states, enhancing the presence and depth perception.

Benefits of technology

The solution provides improved presence and sense of depth in the switch device, maintaining functionality and durability through the combination of glass and clear layers.

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Abstract

To provide a switch device with an improved glass layer presence.SOLUTION: A switch device includes a glass layer, a clear layer arranged on the underside of the glass layer, a printed film arranged on the underside of the clear layer, and a switch arranged on the underside of the printed film. The thickness of the glass layer is 20 μm or more and 150 μm or less. The thickness of the clear layer is 600 μm or more and 1500 μm or less. When the glass layer is pressed, the glass layer, the clear layer, and the printed film elastically deform, switching the switch between conductive and non-conductive states.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a switch device. [Background technology]

[0002] A known switch device includes a glass layer and a switch disposed on the underside of the glass layer, the glass layer being 20 μm to 150 μm thick. The switch has multiple contacts, including contacts that move up and down. When the glass layer is pressed, the glass layer elastically deforms, switching the multiple contacts between conductive and non-conductive. In such a switch device, the glass layer must be thinned to approximately 100 μm in thickness in order to be elastically deformed. As a result, the glass layer loses its presence and a sense of depth is diminished. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Publication No. 2022-166480 Summary of the Invention [Problem to be solved by the invention]

[0004] An object of the present invention is to provide a switch device in which the presence of a glass layer is improved. [Means for solving the problem]

[0005] A switch device according to one embodiment of the present disclosure includes a glass layer, a clear layer disposed on the underside of the glass layer, a printed film disposed on the underside of the clear layer, and a switch disposed on the underside of the printed film, wherein the thickness of the glass layer is 20 μm or more and 150 μm or less, and the thickness of the clear layer is 600 μm or more and 1500 μm or less, and when the glass layer is pressed, the glass layer, the clear layer, and the printed film elastically deform, switching the switch between conductive and non-conductive states. [Effects of the Invention]

[0006] According to the disclosed technology, it is possible to provide a switch device in which the presence of the glass layer is improved. [Brief explanation of the drawings]

[0007] [Figure 1] 1 is a cross-sectional view illustrating a switch device according to a first embodiment. [Figure 2] FIG. 2 is a plan view of the printed film shown in FIG. [Figure 3] 3A to 3C are diagrams illustrating the operation of the switch device according to the first embodiment. [Figure 4] 1A and 1B are diagrams illustrating examples and comparative examples. DETAILED DESCRIPTION OF THE INVENTION

[0008] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS The following describes the preferred embodiments of the present invention with reference to the accompanying drawings. In the drawings, the same components are designated by the same reference numerals, and redundant explanations may be omitted.

[0009] First Embodiment 1 is a cross-sectional view illustrating a switch device according to a first embodiment. As shown in FIG. 1, the switch device 1 includes a glass layer 10, a clear layer 20, a printed film 30, a bonding layer 40, a support portion 50, and a switch 60.

[0010] The components of the switch device 1 will be described below.

[0011] [Glass layer] The glass layer 10 has an upper surface 10a and a lower surface 10b opposite to the upper surface 10a. The upper surface 10a is a single continuous surface. The lower surface 10b is also a single continuous surface. The upper surface 10a side of the glass layer 10 forms the outermost surface of the switch device 1. The glass layer 10 preferably has high surface durability as determined by a pencil hardness test of 9H or higher and excellent dimensional stability.

[0012] The glass layer 10 is not particularly limited, and an appropriate glass layer can be adopted depending on the purpose. The glass layer 10 can be classified by composition, for example, soda-lime glass, borate glass, aluminosilicate glass, or quartz glass. Furthermore, the glass layer 10 can be classified by alkali component, for example, alkali-free glass or low-alkali glass. The content of alkali metal components (e.g., Na2O, KO, or Li2O) in the glass is preferably 15 wt% or less, and more preferably 10 wt% or less.

[0013] Considering the surface hardness, airtightness, and corrosion resistance of glass, the thickness of the glass layer 10 is preferably 20 μm or more. Furthermore, because the glass layer 10 needs to have film-like flexibility and durability against repeated use, the thickness of the glass layer 10 is preferably 150 μm or less. The thickness of the glass layer 10 is more preferably 30 μm to 120 μm, and particularly preferably 50 μm to 100 μm.

[0014] The glass layer 10 preferably has a light transmittance of 85% or more at a wavelength of 550 nm. The glass layer 10 preferably has a refractive index of 1.4 to 1.65 at a wavelength of 550 nm. The glass layer 10 preferably has a density of 2.3 g / cm 3 ~3.0g / cm 3 and more preferably 2.3 g / cm 3 ~2.7g / cm 3 is.

[0015] The method for forming the glass layer 10 is not particularly limited, and an appropriate method can be adopted depending on the purpose. Typically, the glass layer 10 can be produced by melting a mixture containing a main raw material such as silica or alumina, an antifoaming agent such as mirabilite or antimony oxide, and a reducing agent such as carbon at a temperature of about 1400°C to 1600°C, forming it into a thin plate, and then cooling it. Examples of methods for forming the glass layer 10 include the slot downdraw method, the fusion method, and the float method. The glass layer formed into a plate by these methods may be chemically polished with a solvent such as hydrofluoric acid, as necessary, to make it thinner or to improve smoothness.

[0016] The glass layer 10 may be made of tempered glass. The tempered glass may be chemically tempered glass or thermally tempered glass, but chemically tempered glass having a compressive stress layer is easier to manufacture than thermally tempered glass. When the glass layer 10 is made of tempered glass, the compressive stress is preferably 600 MPa or more.

[0017] Chemical strengthening refers to the process of replacing ions near the surface of a glass sheet with ions with a larger ionic radius. This ion exchange creates a compressive stress layer on the surface of the glass sheet, resulting in chemically strengthened glass. The glass composition in the compressive stress layer is different from the glass composition inside the glass.

[0018] In chemically strengthened glass, the glass plate before strengthening can be, for example, soda-lime glass, aluminosilicate glass, borosilicate glass, aluminoborosilicate glass, etc. Soda-lime glass or soda-silicate glass is preferred, and soda-lime glass is more preferred, in that the depth of the compressive stress layer does not become too large more than necessary.

[0019] Ion exchange can be performed, for example, by substituting Li ions on the surface of the glass plate with Na ions and / or K ions. Alternatively, Na ions on the surface of the glass plate may be substituting K ions. This ion exchange forms a compressive stress layer on the surface of the glass plate.

[0020] To replace Na ions with K ions, for example, a glass plate containing sodium may be brought into contact with an inorganic molten salt containing potassium nitrate. The inorganic molten salt containing potassium nitrate preferably contains at least one salt selected from the group consisting of K2CO3, Na2CO3, KHCO3, NaHCO3, KOH, and NaOH.

[0021] A functional layer such as an antifouling layer, an anti-reflection layer, a conductive layer, a reflective layer, or a decorative layer may be provided on the upper surface 10a and / or the lower surface 10b of the glass layer 10. Braille may also be provided on the upper surface 10a of the glass layer 10. In the switch device according to this embodiment, the glass layer 10 is located on the outermost surface. Here, "the glass layer 10 is located on the outermost surface" means that the glass layer 10 is substantially located on the outermost surface, and even if an additional layer such as that described above is provided, this embodiment will still refer to the glass layer 10 as being located on the outermost surface.

[0022] [Clear layer] The clear layer 20 is disposed on the lower surface 10b side of the glass layer 10. The clear layer 20 is a layer necessary for improving the presence of the glass layer 10 and providing a sense of depth when the switch device 1 is viewed from above. From the viewpoint of improving the presence of the glass layer 10 and providing a good sense of depth, the clear layer 20 is preferably 600 μm or more and 1500 μm or less. The clear layer 20 is flexible.

[0023] The clear layer 20 preferably includes a transparent adhesive layer. The clear layer 20 may be composed of, for example, only a transparent adhesive layer. The clear layer 20 may have a laminated structure of a transparent resin layer and a transparent adhesive layer. In this case, the transparent resin layer is disposed on the glass layer 10 side. The transparent resin layer may have a laminated structure of a plurality of resin layers.

[0024] When the clear layer 20 has a laminated structure of a transparent resin layer and a transparent adhesive layer, it is preferable to make the thickness of the highly flexible transparent adhesive layer thicker than the transparent resin layer in order to maintain flexibility while improving the presence of the glass layer and providing a good sense of depth. The thickness of the transparent resin layer can be, for example, 50 μm or more and 150 μm or less. The thickness of the transparent adhesive layer can be, for example, 5 times or more the thickness of the transparent resin layer.

[0025] Examples of materials for the transparent resin layer that constitutes the clear layer 20 include polyester resins such as polyethylene terephthalate resins and polyethylene naphthalate resins, cycloolefin resins such as norbornene resins, polyethersulfone resins, polycarbonate resins, acrylic resins, polyolefin resins, polyimide resins, polyamide resins, polyimideamide resins, polyarylate resins, polysulfone resins, polyetherimide resins, urethane resins, etc. Examples of materials for the transparent adhesive layer that constitutes the clear layer 20 include OCA (optically transparent adhesive).

[0026] The clear layer 20 also has the function of improving the durability of the glass layer 10. Specifically, when the glass layer 10 and the clear layer 20 are laminated together, the clear layer 20 suppresses excessive deformation of the glass layer 10, which has the effect of suppressing cracking of the glass layer 10, and also realizes an appropriate amount of deformation, thereby improving the durability of the glass layer 10 when it is repeatedly elastically deformed. The amount of deformation of the glass layer 10 can be controlled by changing the thickness of the clear layer 20.

[0027] [Printed film] The printed film 30 is disposed on the underside of the clear layer 20. The printed film 30 is flexible. From the viewpoint of flexibility, the thickness of the printed film 30 can be, for example, 50 μm or more and 150 μm or less. In this case, the printed surface of the printed film 30 can be on either the top or bottom surface of the film. However, if it is on the bottom surface, the printed film 30 must be transparent, and there is no problem as long as it is made of the same material as the clear layer 20. If it is desired to further add the effect of a clear layer with a similar configuration, the printed surface is naturally disposed on the bottom.

[0028] The printed film 30 is a film on which a pictorial symbol related to the operation of the switch 60 is printed in a position overlapping the switch 60 when viewed from the top surface 10a of the glass layer 10 so that the symbol is visible. FIG. 2 is a plan view illustrating an example of a printed film. In the example of FIG. 2, the word "STOP" is printed on the surface of a resin film or the like. The word "STOP" can be clearly seen from the top surface 10a of the glass layer 10 through the glass layer 10 and the clear layer 20. From the viewpoint of visibility, the visible light transmittance of the glass layer 10 and the clear layer 20 is preferably 80% or more. The visible light transmittance can be measured in accordance with JIS K7361-1.

[0029] [Joining layer] The bonding layer 40 bonds the printing film 30 and the support part 50. Any pressure-sensitive adhesive or adhesive can be used as the bonding layer 40. The thickness of the bonding layer 40 can be, for example, 5 μm or more and 20 mm or less.

[0030] In this specification, a pressure-sensitive adhesive refers to a layer that has adhesive properties at room temperature and adheres to an adherend with light pressure. Therefore, even when an adherend that has been stuck to the pressure-sensitive adhesive is peeled off, the pressure-sensitive adhesive retains practical adhesive strength. On the other hand, an adhesive refers to a layer that can bond substances by being interposed between them. Therefore, when an adherend that has been stuck to the adhesive is peeled off, the adhesive loses practical adhesive strength.

[0031] Examples of the adhesive include adhesives having a base polymer such as an acrylic polymer, a silicone polymer, a polyester, a polyurethane, a polyamide, a polyether, a fluorine-based polymer, or a rubber-based polymer.

[0032] Examples of adhesives include polyester adhesives, polyurethane adhesives, polyvinyl alcohol adhesives, and epoxy adhesives. If the adhesive is a thermosetting adhesive, it can exhibit peel resistance by being heated and cured (solidified). If the adhesive is a light-curing adhesive such as an ultraviolet-curing adhesive, it can exhibit peel resistance by being cured by irradiating it with light such as ultraviolet light. If the adhesive is a moisture-curing adhesive, it can be cured by reacting with moisture in the air, and can therefore exhibit peel resistance by being left to stand.

[0033] [Support part] The support portion 50 has, for example, a rectangular shape in a plan view. The support portion 50 may have a shape other than a rectangular shape in a plan view. The support portion 50 can be made of, for example, resin or metal.

[0034] The support part 50 has an opening 50x and supports the glass layer 10 and the clear layer 20 outside the opening 50x. The opening 50x is, for example, circular in plan view. In the example of FIG. 1, the opening 50x is a recess that opens on the upper surface side (glass layer 10 side) of the support part 50. In the example of FIG. 1, the opening 50x exposes the lower surface of the printed film 30. Note that the cross-sectional view of FIG. 1 shows a cross section cut along a plane that passes through the center of the opening 50x and is perpendicular to the upper surface of the support part 50.

[0035] The support portion 50 may have a plurality of openings 50x spaced apart from one another. The plurality of openings 50x may be arranged, for example, in a matrix in plan view. A switch 60 may be disposed in each opening 50x. Furthermore, one glass layer 10, clear layer 20, and printed film 30 may be disposed so as to cover the plurality of openings 50x. The opening diameter of the opening 50x is preferably 25 mm or more. When the opening diameter is 25 mm or more, the glass layer 10 and the clear layer 20 are more likely to deform toward the switch 60.

[0036] [switch] The switch 60 is disposed on the underside of the printed film 30. The switch 60 is a switch that detects a physical change when pressed. At least a portion of the switch 60 is disposed inside the opening 50x of the support part 50. Operating the switch 60 provides a clicking sensation. In the example of FIG. 1, the switch 60 is a tactile switch that is disposed so that its movable part faces the underside of the printed film 30.

[0037] The switch 60 is not limited to a tactile switch, and may be any switch that provides a clicking sensation, such as a membrane switch. When the switch 60 is a membrane switch, two sheets are arranged opposite each other to form a space that serves as an opening, and two terminals are arranged facing each other above and below within the opening. In other words, when the switch 60 is a membrane switch, a member that constitutes the switch serves as a support, and part of the member that constitutes the switch (two terminals) is arranged within the opening of the support.

[0038] 1, a gap is provided between the lower surface of the printed film 30 and the movable part of the switch 60, but this gap does not have to be provided. It is preferable that the switch device 1 has a gap large enough to prevent the switch 60 from interfering with the flatness of the glass layer 10 and the clear layer 20.

[0039] Fig. 3 is a diagram illustrating the operation of the switch device according to the first embodiment. As shown in Fig. 3, in the switch device 1, when the glass layer 10 is pressed in the direction of the arrow, the glass layer 10, the clear layer 20, and the printed film 30 elastically deform to press the movable portion of the switch 60, switching the switch 60 between conductive and non-conductive states. When the pressing of the glass layer 10 is stopped, the glass layer 10, the clear layer 20, the printed film 30, and the switch 60 return to the state shown in Fig. 1.

[0040] A member that can move up and down independently of the glass layer 10 and the clear layer 20 may be sandwiched between the switch 60 and the underside of the printed film 30. This member is supported by the support part 50 via a spring or the like in a state that allows it to move up and down freely. When the glass layer 10 is pressed, the glass layer 10, the clear layer 20, and the printed film 30 elastically deform to press this member, thereby switching the switch between conductive and non-conductive states.

[0041] Examples and Comparative Examples Examples and comparative examples will be specifically described below, but the present invention is not limited to these examples.

[0042] [Example 1] A support with a tactile switch placed in the opening was prepared, and a printed film, a clear layer, and a glass layer were laminated on the support via a bonding layer to create a switch device with the structure shown in Figure 1, measuring 10 cm square in plan view.

[0043] A 50 μm thick glass film (OA-10 manufactured by Nippon Electric Glass Co., Ltd.) was used as the glass layer. A laminate of a 600 μm thick transparent resin layer and a transparent adhesive layer was used as the clear layer. A 100 μm thick PET film (Cosmoshine A4160 manufactured by Toyobo Co., Ltd.) was used as the transparent resin layer. A 500 μm thick OCA was used as the transparent adhesive layer. An epoxy adhesive was used as the bonding layer.

[0044] (Rating 1: Pressing sensation) The glass layer of the fabricated switch device was pressed to evaluate whether the switch could be pressed in. If the switch could be pressed in (if the switch switched between conductive and non-conductive states), it was marked with an O, and if it could not be pressed in (if the switch did not switch between conductive and non-conductive states), it was marked with an X.

[0045] (Rating 2: Surface hardness) The pencil hardness of the fabricated switch devices was measured in accordance with the pencil hardness test of JIS K 5600-5-4:1999 (with a load of 500 g). The pencil hardness, in order from softest to softest, was 6B, 5B, 4B, 3B, 2B, B, HB, F, H, 2H, 3H, 4H, 5H, 6H, 7H, 8H, and 9H. A pencil hardness of 9H or more was evaluated as "Good" and a pencil hardness of less than 9H was evaluated as "Poor."

[0046] (Rating 3: Depth) The characters printed on the printed film of the fabricated switch device were visually inspected from the glass layer side, and the sense of depth was evaluated sensorily. 20 men and women were randomly selected and asked to confirm the sense of depth. If 10 or more people answered that they perceived depth, they were marked with a circle, and if 9 or fewer people answered that they perceived depth, they were marked with an X.

[0047] [Example 2] A switch device was produced in the same manner as in Example 1, except that a laminate of a transparent resin layer and a transparent adhesive layer having a thickness of 1100 μm was used as the clear layer, and evaluations were performed in the same manner as in Example 1. The thickness of the transparent resin layer was 100 μm, and the thickness of the transparent adhesive layer was 1000 μm.

[0048] [Example 3] A switching device was produced in the same manner as in Example 2, except that the thickness of the glass layer was set to 100 μm, and the same evaluation as in Example 2 was carried out.

[0049] [Example 4] A switch device was produced in the same manner as in Example 1, except that the thickness of the glass layer was 100 μm and only a transparent adhesive layer having a thickness of 1500 μm was used as the clear layer, and evaluations were performed in the same manner as in Example 1.

[0050] [Comparative Example 1] A switch device was produced in the same manner as in Example 1, except that the thickness of the glass layer was 100 μm and a laminate of a transparent resin layer and a transparent adhesive layer having a thickness of 150 μm was used as the clear layer, and evaluations were performed in the same manner as in Example 1. The thickness of the transparent resin layer was 100 μm, and the thickness of the transparent adhesive layer was 50 μm.

[0051] Comparative Example 2 A switch device was produced in the same manner as in Example 1, except that the thickness of the glass layer was 100 μm and an acrylic plate with a thickness of 900 μm was used as the clear layer, and evaluations were carried out in the same manner as in Example 1.

[0052] Comparative Example 3 A switch device was produced in the same manner as in Example 1, except that a laminate of a transparent resin layer and a transparent adhesive layer having a thickness of 1000 μm was used as the clear layer instead of using a glass layer, and evaluations were performed in the same manner as in Example 1. The thickness of the transparent resin layer was 100 μm, and the thickness of the transparent adhesive layer was 900 μm.

[0053] [Evaluation results] The examples and comparative examples are summarized in FIG.

[0054] As shown in FIG. 4, when the glass layer was provided and the thickness of the clear layer was 600 μm or more and 1500 μm or less, the touch feeling, surface hardness, and sense of depth were all rated as good.

[0055] In contrast, when the clear layer was thin, as in Comparative Example 1, the push feeling and surface hardness were rated as good, but the sense of depth was rated as bad. In other words, in order to improve the presence of the glass layer and obtain a good sense of depth, a relatively thick clear layer such as those shown in Examples 1 to 4 is necessary.

[0056] Furthermore, it was found that if the clear layer is made of only a relatively thick resin, as in Comparative Example 2, flexibility is reduced, resulting in a poor pressing feel. In other words, it is preferable that the clear layer includes a relatively soft transparent adhesive layer such as OCA.

[0057] Furthermore, when no glass layer was provided, as in Comparative Example 3, the outermost surface of the switch device was a clear layer, and the required surface hardness could not be obtained. In other words, the presence of a glass layer is essential.

[0058] Thus, it was found that in order to obtain good evaluation results in all of the pressing feel, surface hardness, and sense of depth, it is necessary to provide a clear layer below the glass layer and set the thickness of the clear layer to 600 μm or more and 1500 μm or less.

[0059] It is also preferable that the clear layer be made of only OCA or a combination of a relatively thin resin and a relatively thick OCA.

[0060] Furthermore, when Example 2 and Example 3 are compared, it can be said that the thickness of the glass layer does not significantly affect the evaluation of the pressing feeling, surface hardness, and sense of depth at least in the range of 50 μm to 100 μm.

[0061] Although the preferred embodiments have been described in detail above, the present invention is not limited to the above-described embodiments, and various modifications and substitutions can be made to the above-described embodiments without departing from the scope of the claims.

[0062] In addition to the above-described embodiments, the following supplementary notes are also disclosed. (Appendix 1) A glass layer; a clear layer disposed on the lower surface side of the glass layer; A printed film disposed on the lower surface side of the clear layer; a switch disposed on the lower surface side of the printed film, The thickness of the glass layer is 20 μm or more and 150 μm or less, The thickness of the clear layer is 600 μm or more and 1500 μm or less, When the glass layer is pressed, the glass layer, the resin layer, and the printed film are elastically deformed, switching the switch between conductive and non-conductive states. (Appendix 2) 2. The switch device of claim 1, wherein the clear layer includes a transparent adhesive layer. (Appendix 3) The clear layer has a laminated structure of a transparent resin layer and a transparent adhesive layer, 3. The switch device according to claim 2, wherein the transparent resin layer is disposed on the glass layer side. (Appendix 4) 4. The switch device according to claim 3, wherein the transparent adhesive layer is thicker than the transparent resin layer. (Appendix 5) 5. The switch device according to claim 4, wherein the transparent adhesive layer has a thickness that is at least five times the thickness of the transparent resin layer. (Appendix 6) 6. The switch device according to claim 3, wherein the transparent resin layer has a thickness of 50 μm or more and 150 μm or less. (Appendix 7) 7. The switch device according to claim 1, wherein the glass layer has a thickness of 50 μm or more and 100 μm or less. [Explanation of symbols]

[0063] 1 Switching device 10 Glass Layers 10a top surface 10b Bottom side 20 Clear Layer 30 Printing Film 40 Bonding layer 50 Support part 50x aperture 60 Switch

Claims

1. A glass layer; a clear layer disposed on the lower surface side of the glass layer; A printed film disposed on the lower surface side of the clear layer; a switch disposed on the lower surface side of the printed film, The thickness of the glass layer is 20 μm or more and 150 μm or less, The thickness of the clear layer is 600 μm or more and 1500 μm or less, When the glass layer is pressed, the glass layer, the clear layer, and the printed film are elastically deformed, switching the switch between conductive and non-conductive states.

2. The switch device of claim 1 , wherein the clear layer includes a transparent adhesive layer.

3. The clear layer has a laminated structure of a transparent resin layer and a transparent adhesive layer, The switch device according to claim 2 , wherein the transparent resin layer is disposed on the glass layer side.

4. The switch device according to claim 3 , wherein the transparent adhesive layer is thicker than the transparent resin layer.

5. The switch device according to claim 4 , wherein the transparent adhesive layer has a thickness that is at least five times the thickness of the transparent resin layer.

6. 4. The switch device according to claim 3, wherein the transparent resin layer has a thickness of 50 [mu]m or more and 150 [mu]m or less.

7. The switch device according to claim 1 , wherein the glass layer has a thickness of 50 μm or more and 100 μm or less.

Citation Information

Patent Citations

  • Switch device

    JP2022166480A