Pliant electrical interface connector and its associated method of manufacture
11394154 ยท 2022-07-19
Assignee
Inventors
Cpc classification
H01R12/7082
ELECTRICITY
International classification
Abstract
A connection device for interconnecting electrical components that uses a plurality of contact layers. Each of the contact layers includes a substrate of dielectric material with a top edge, a bottom edge and side surfaces. A plurality of conductive elements extends in parallel through the dielectric material. The various contact layers are stacked. The side surfaces of the contact layers interconnect through a matrix of connective pillars. The connective pillars provide a network of open spaces between each of the contact layers. When the overall connection device is compressed, the dielectric material compresses and widens. The open areas receive the deformation and prevent the deformations from propagating lateral forces that can act to displace the conducive elements.
Claims
1. A connection device for interconnecting electrical components, comprising: a plurality of contact layers, wherein each of said contact layers includes dielectric material with a top edge, a bottom edge and side surfaces, wherein conductive elements extend in parallel through said dielectric material from said top edge to said bottom edge, wherein each of said conductive elements has one end exposed along said top edge and a second end exposed along said bottom edge; wherein said plurality of contact layers are stacked and said side surfaces of said contact layers interconnect through a matrix of connective pillars that provide a network of open spaces around said connective pillars and between each of said contact layers.
2. The device according to claim 1, wherein said dielectric material is an elastomeric polymer.
3. The device according to claim 1, wherein said conductive elements are segments of metal wire.
4. The device according to claim 3, wherein each of said contact layers has a thickness between said side surfaces, and each of said segments of metal wire has a gauge diameter, wherein said gauge diameter is half of said thickness.
5. The device according to claim 3, wherein each of said segments of metal wire has a gauge diameter, and said segments of metal wire are spaced at a center-to-center spacing of twice said gauge diameter in each of said contact layers.
6. A connection device for interconnecting electrical components, comprising: a dielectric body having a top surface and an opposite bottom surface; a plurality of conductive elements that extend through said dielectric body in parallel from said top surface to said bottom surface, wherein said plurality of conductive elements are arranged in rows within said dielectric body, and wherein open spaces exist between said rows within said dielectric body that are traversed by a matrix of connective pillars.
7. The device according to claim 6, wherein said dielectric material is an elastomeric polymer.
8. The device according to claim 6, wherein said rows of said plurality of conductive elements are prefabricated as cured layers, wherein adhesive layers join said cured layers together.
9. The device according to claim 8, wherein said matrix of connective pillars is formed in said adhesive layers.
10. The device according to claim 8, wherein said conductive elements are segments of metal wire.
11. The device according to claim 10, wherein each of said contact layers has a thickness and each of said segments of metal wire has a gauge diameter, wherein said gauge diameter is half of said thickness.
12. The device according to claim 10, wherein each of said segments of metal wire has a gauge diameter, and said segments of metal wire are spaced at a center-to-center spacing of twice said gauge diameter in each of said cured layers.
13. A method of fabricating a connecting device, comprising the steps of: providing a plurality of contact layers, wherein each of said contact layers includes dielectric material with a top edge, a bottom edge, and side surfaces, wherein conductive elements extend in parallel through said dielectric material from said top edge to said bottom edge, and wherein each of said conductive elements has one end exposed along said top edge and a second end exposed along said bottom edge; providing perforated sheets of soluble material; adhering said perforated sheets of soluble material between said plurality of contact layers in an alternating pattern to form a stack; curing said stack; and dissolving said perforated sheets of soluble material from said stack with a solvent.
14. The method according to claim 13, wherein said dielectric material is a curable elastomeric polymer.
15. The method according to claim 13, wherein said perforated sheets of soluble material are adhered to said side surfaces of said contact layer with the same said curable elastomeric polymer as is used for said dielectric material.
16. The method according to claim 13, wherein providing the plurality of contact layers includes setting parallel lengths of said conductive elements into uncured elastomeric material and curing said elastomeric material.
17. The method according to claim 13, further including the step of cutting said connecting device from said stack.
18. The method according to claim 13, wherein said perforated sheets of soluble material are water soluble and said solvent is water.
19. The method according to claim 18, wherein said perforated sheets of soluble material are polyvinyl alcohol.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) For a better understanding of the present invention, reference is made to the following description of an exemplary embodiment thereof, considered in conjunction with the accompanying drawings, in which:
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DETAILED DESCRIPTION OF THE DRAWINGS
(9) Although the present invention pliant connector device can be embodied into many shapes and sizes, only one exemplary embodiment is illustrated. The exemplary embodiment is being shown for the purposes of explanation and description. The exemplary embodiment is selected in order to set forth one of the best modes for the invention. The illustrated embodiment, however, is merely exemplary and should not be considered a limitation when interpreting the scope of the appended claims.
(10) Referring to
(11) Aside from the exposed contact pads 20 on the top surface 12 and the bottom surface 14, each of the conductive elements 16 is completely insulated by the dielectric body 18 within the pliant connector device 10. The conductive elements 16 are all parallel as they extend from the top surface 12 to the bottom surface 14. The conductive elements 16 are arranged in rows 22. The rows 22, themselves, are parallel and travel in directions that are perpendicular to the lengths of the conductive elements 16. As will be explained, the dielectric body 18 is not solid. Rather, the rows 22 are coupled by a matrix of connective pillars 25. This creates a latticework of open spaces 24 around the connective pillars 25 and between each of the rows 22.
(12) The dielectric body 18 is made of an elastomeric material 26, such as silicone, thermoplastic rubber (TPR) or another synthetic dielectric rubber. Due to the durometer of the elastomeric material 26, the elastomeric material 26 is pliant and compresses when squeezed. Referring to
(13) Referring to
(14) The positioning of the conductive elements 16 into the ribbon 32 is accomplished by setting parallel lengths of conductive elements 16 into an adhesive layer of uncured elastomeric material 26. The elastomeric material 26 is then cured to complete the contact layer 30. The conductive elements 16 can be segments of wire, such as copper wire, having a given gauge diameter D1. However, any conductive material can be used. The ribbon 32 of elastomeric material 26 preferably has a thickness T1 that is approximately twice the thickness of the gauge diameter D1 of a conductive element 16. The conductive elements 16 are also preferably spaced apart at a pitch distance P1, from center to center, that is twice the thickness of the gauge diameter D1. Accordingly, if the conductive element 16 is a wire with a gauge diameter of 0.002 inches, the ribbon 32 of elastomeric material 26 would have a thickness of 0.004 inches and the center-to-center pitch of the conductive elements 16 would be 0.004 inches.
(15) Referring to
(16) Referring to
(17) Referring to
(18) Returning to
(19) It will be understood that the embodiment of the present invention that is illustrated and described is merely exemplary and that a person skilled in the art can make many variations to that embodiment. For instance, the size and shape of the pliant connector device can be varied. All such embodiments are intended to be included within the scope of the present invention as defined by the claims.