Claims
- 1. A membrane switch for use in patient monitoring, comprising:
(a) an upper polyester member, said upper polyester member having an inner surface and an outer surface; (b) a first polyethylene bonding member having an upper surface and a lower surface,
said first bonding member upper surface being positionable to be in contact with said upper member inner surface, and, at least a portion of said first bonding member lower surface being electrically conductive; (c) a second polyethylene bonding member having an upper surface and a lower surface, said second bonding member upper surface facing said first bonding member lower surface,
at least a portion of said second bonding member upper surface being electrically conductive, (d) a nonconductive polyester central spacer positionable to be between said first bonding member and said second bonding member, said central spacer
separating said electrically conductive portions of said first and second bonding members, and, allowing said electrically conductive portions of said first and second bonding members to come into contact when pressure is applied to said membrane switch; (e) a lower outer member made of polyester, said lower outer member having an inner surface and an outer surface, said inner surface of said lower outer member being positionable to be in contact with said lower surface of said second bonding member; and, (f) an electrical line in electrical communication with said conductive portions of said first and said second bonding members, said electrical line having at least two electrically isolated conductors therein, wherein a first electrically isolated conductor is in electrical communication with said conductive portion of said first bonding member, and wherein a second electrically isolated conductor is in electrical communication with said conductive portion of said second bonding member.
- 2. A membrane switch according to claim 1, wherein said upper and lower polyester members, said first and second bonding members, and said central spacer are bonded together into a unit by heat.
- 3. A membrane switch according to claim 1, wherein said central spacer has at least one aperture therethrough, at least one of said at least one aperture allowing said electrically conductive portions of said first and second bonding members to come into contact through said at least one aperture when pressure is applied to said membrane switch.
- 4. A membrane switch according to claim 3, further comprising:
(g) at least one electrically conductive snap dome positionable within at least one of said at least one apertures and between said upper polyester member and said lower polyester member.
- 5. A switch bank, said switch bank comprising a plurality of membrane switches according to claim 1.
- 6. A switch bank according to claim 5, wherein at least two of said plurality of membrane switches are interconnected by one or more air passages.
- 7. A switch bank according to claim 6, wherein said air passages interconnecting said one or membrane switches indicate a preferred order in which said one or more membrane switches should be activated.
- 8. A method of manufacturing a membrane switch, comprising the steps of:
(a) obtaining an upper member, said upper member having an outer surface and an inner surface,
wherein said upper member outer surface is electrically nonconductive, and, wherein at least a portion of said upper member inner surface is electrically conductive; (b) obtaining a membrane switch lower member, said lower member having an inner surface and an outer surface,
wherein said lower member outer surface is electrically nonconductive, and, at least a portion of said lower member inner surface is electrically conductive; (c) obtaining a nonconductive central spacer,
said central spacer having at least one aperture therethrough; (d) placing said central spacer between said upper member and said lower member, wherein said conductive surfaces of said upper and lower members face each other across said central spacer; (e) placing a first conductor in electrical communication with at least a portion of said upper member conductive region and placing a second conductor in electrical communication with at least a portion of said lower member conductive region; (f) compressing together and heating said upper member, said lower member, and said central spacer; and, (g) applying vacuum pressure to said outer surface of said upper member sufficient to form at least one protuberance therein, wherein one ore more of said at least one protuberance forms a membrane switch.
- 9. A method according to claim 8 wherein the step of compressing together and heating said upper member, said lower member, and said central spacer includes the step of heating said upper member, said lower member, and said central spacer to a glass transition temperature.
- 10. A method according to claim 8, comprising the further step of:
(h) cooling said upper member, said lower member, and said central spacer to a temperature above said glass transition temperature.
- 11. A method according to claim 8, wherein said upper member inner surface contains a plurality of electrically isolated conductive regions thereon and said lower member inner surface contains a matching plurality of electrically isolated conductive regions, wherein step (e) comprises the steps of:
(e1) placing a first conductor in electrical communication with one of said electrically isolated conductive regions on said upper member inner surface, (e2) placing a second conductor in electrical communication with a matching one of said electrically isolated conductive regions on said lower member inner surface (e3) performing steps (e1) and (e2) at least twice for at least two different matching pairs of conductive regions on said upper and lower member inner surfaces.
- 12. An apparatus for manufacturing membrane switches, comprising:
(a) a vacuum source; (b) an upper heating platen mold, said upper platen mold containing at least one depression therein and said upper heating platen mold at least for heating said membrane switch, said at least one depressions being in fluid communication with said vacuum source; (c) a lower platen mold, said upper and lower platen molds being positionable together to contain said membrane switch therebetween, wherein said membrane switch has an interior, said interior of said membrane switch being in fluid communication with the atmosphere while between said upper and lower mold platens at least during heating; (d) an upper cooling mold, said upper cooling mold containing a plurality of depressions matching said upper heating platen mold, said upper cooling mold at least for cooling said membrane switch after heating; and, (e) a lower cooling mold, said lower cooling mold positionable to be proximate to said upper cooling mold, said lower cooling mold at least for cooling said membrane switch after heating.
- 13. An apparatus for manufacturing membrane switches according to claim 12, wherein said lower platen mold is a heating platen mold, thereby resulting in the application of bi-directional heat.
- 14. An apparatus for manufacturing membrane switches according to claim 12, wherein said lower platen mold contains at least one depression therein, said at least one depression being in fluid communication with said vacuum source.
- 15. An apparatus for manufacturing membrane switches according to claim 13, wherein said lower platen mold contains a plurality of depressions matched to said plurality of depressions in said upper heating platen mold, wherein each of said plurality of depressions is in fluid communication with said vacuum source.
- 16. An apparatus for manufacturing membrane switches according to claim 12, wherein at least one of said upper platen mold and said lower platen mold contains an arbitrary 3-D surface formed therein.
- 17. An apparatus for manufacturing membrane switches according to claim 12, wherein at said upper platen mold and said lower platen mold are configured to form at least one switch bank therein, said at least one switch bank comprising a plurality of membrane switches for use together in a particular application.
- 18. An apparatus for manufacturing membrane switches according to claim 17, wherein at least two of said plurality of membrane switches are interconnected by one or more air passages.
- 19. An apparatus for manufacturing membrane switches according to claim 17, wherein said air passages interconnecting said one or membrane switches indicate a preferred order in which said one or more membrane switches should be activated.
Parent Case Info
[0001] This application is a continuation-in-part application of U.S. patent application Ser. No. 09/878,088, filed Jun. 7, 2001, which application is incorporated herein by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09878088 |
Jun 2001 |
US |
Child |
10701581 |
Nov 2003 |
US |