INSULATION DISPLACEMENT CONTACT CAPABLE OF SECURELY TERMINATING A WIDE RANGE OF ELECTRICAL CONDUCTORS
20240063559 ยท 2024-02-22
Inventors
Cpc classification
International classification
Abstract
An insulation displacement contact (IDC) is capable of securely terminating wires having a wide range of diameters. The IDC is also designed to withstand repeated terminations of wires having diameters at the large end of the supported size range while remaining capable of securely terminating wires having diameters at the small end of the range. To these ends, the IDC comprises two or more distinct flex regions. At least one of the flex regions has an associated mechanical stop that limits the degree of deformation that can be applied to that region as a wire is being terminated on the IDC. If the diameter of the wire being terminated on the IDC is large enough to deflect the first flex region to the end of its deflection range, the mechanical stop is engaged, causing further deflection to be transferred to the next flex region.
Claims
1. An insulation displacement contact, comprising: a base region; and a first blade and a second blade that extend from the base region and form a slot therebetween, wherein the first blade comprises a first flex region located between the base region and a top of the first blade, a portion of the first blade above the first flex region is configured to flex away from the second blade about the first flex region by a degree limited by a mechanical stop associated with the first flex region, and while the mechanical stop is engaged, the first blade is configured to flex away from the second blade about a second flex region located on the base region.
2. The insulation displacement contact of claim 1, wherein the first flex region comprises a hole formed through the first blade and a gap that traverses from a perimeter of the hole to an outer edge of the first blade.
3. The insulation displacement contact of claim 2, wherein the mechanical stop comprises facing edges of the gap, and the portion of the first blade above the first flex region is configured to flex away from the second blade until the facing edges contact one another.
4. The insulation displacement contact of claim 1, wherein the second blade comprises another first flex region located between the base region and a top of the second blade, and a portion of the second blade above the other first flex region is configured to flex away from the first blade about the other first flex region by a degree limited by another mechanical stop associated with the other first flex region.
5. The insulation displacement contact of claim 4, wherein the upper portion of the first blade and the upper portion of the second blade angle toward one another while the insulation displacement contact is at rest.
6. The insulation displacement contact of claim 1, wherein the first blade comprises multiple flex regions including the first flex region.
7. The insulation displacement contact of claim 1, wherein the portion of the first blade above the first flex region is configured to flex away from the second blade in response to insertion of a wire into the slot, and insertion, into the slot, of a wire having a diameter that exceeds a diameter threshold causes the mechanical stop to be engaged.
8. The insulation displacement contact of claim 1, wherein at least a portion of the slot has a width that is less than or equal to 6 mils.
9. A cable connector comprising at least one insulation displacement contact according to claim 1.
10. An insulation displacement contact, comprising: a first blade and a second blade that extend from a base region and define a slot therebetween, wherein, in response to insertion of a wire into the slot, an upper portion of the first blade pivots away from the second blade about a first flex region formed on the first blade between the base region and a top of the first blade, and in response to engagement of a mechanical stop associated with the first flex region while the upper portion of the first blade is pivoting away from the second blade, the first blade pivots away from the second blade about a second flex region located on the base region.
11. The insulation displacement contact of claim 10, wherein the mechanical stop comprises facing edges of a gap formed between a hole in the first blade and an outer edge of the first blade.
12. The insulation displacement contact of claim 11, wherein the portion of the first blade above the first flex region is configured to flex away from the second blade until the facing edges engage, and engagement of the facing edges transfers deformation stress of the first blade from the first flex region to the second flex region.
13. The insulation displacement contact of claim 10, wherein in response to the insertion of the wire into the slot, an upper portion of the second blade pivots away from the first blade about another first flex region formed on the second blade between the base region and a top of the second blade, and in response to engagement of another mechanical stop associated with the other first flex region while the upper portion of the second blade is pivoting away from the first blade, the second blade pivots away from the first blade about the second flex region.
14. The insulation displacement contact of claim 13, wherein the upper portion of the first blade and the upper portion of the second blade angle toward one another while the insulation displacement contact is at rest.
15. The insulation displacement contact of claim 10, wherein the first blade comprises multiple flex regions including the first flex region.
16. The insulation displacement contact of claim 10, wherein at least a portion of the slot has a width that is less than or equal to 6 mils.
17. A cable connector comprising at least one insulation displacement contact according to claim 10.
18. A method for terminating a wire on an insulation displacement contact, comprising: in response to receipt of a wire in a gap between a first blade and a second blade that extend from a base region of the insulation displacement contact, deflecting, about a first flex region of the first blade, a portion of the first blade above the first flex region, wherein the deflecting is enabled by a gap that traverses from a hole formed through the first blade and an outer edge of the first blade; and in response to engagement of facing edges of the gap during the deflecting, deflecting the first blade away from the second blade about a second flex region located on the base region.
19. The method of claim 18, further comprising, in response to the receipt of the wire, deflecting, about another first flex region of the second blade, a portion of the second blade above the other first flex.
20. The method of claim 19, wherein the upper portion of the first blade and the upper portion of the second blade angle toward one another while the insulation displacement contact is at rest.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
[0017] The subject disclosure is now described with reference to the drawings wherein like reference numerals are used to refer to like elements throughout. In the following description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the subject disclosure. It may be evident, however, that the subject disclosure may be practiced without these specific details. In other instances, well-known structures and devices are shown in block diagram form in order to facilitate describing the subject disclosure.
[0018] Some reference numbers used herein to label illustrated components are suffixed with letters to delineate different instances of a same or similar component. In general, if a reference number without an appended letter is used within this disclosure, the descriptions ascribed to the reference number are to be understood to be applicable to all instances of that reference number with or without an appended letter unless described otherwise.
[0019]
[0020]
[0021] In the case of multi-strand wire 108, the pressure applied to the wire 108 by the blades 106a and 106b may compress the conductors 110 into a narrower arrangement at the termination location. In the example depicted in
[0022] To address these and other issues, one or more embodiments described herein provide an IDC capable of securely terminating wires having a wide range of diameters. The IDC is also designed to withstand repeated terminations of wires having diameters at the large end of the supported size range while remaining capable of securely terminating wires having diameters at the small end of the range. To these ends, the IDC comprises two or more distinct flex regions. At least one of the flex regions has an associated mechanical stop that limits the degree of deformation that can be applied to that region as a wire is being terminated on the IDC. If the diameter of the wire being terminated on the IDC is large enough to deflect the first flex region to the end of its deflection range, the mechanical stop is engaged, causing further deflection to be transferred to the next flex region. This configuration allows the IDC gap to have a narrow resting width in order to accommodate small conductors (or an extreme compression of a multi-strand wire), while also permitting one or more additional stages of deflection to accommodate larger wire diameters. These additional stages of deflection are triggered when wires of larger diameters are terminated on the IDC.
[0023]
[0024] In contrast to IDC 102 described above in connection with
[0025] Whereas each blade 206a and 206b has its own, individual first flex regionregions 214a and 214b, respectivelythe second flex region 224 is a single flex region that is common to both blades 206a and 206b. The second flex region 224 is located on the base region 218 of the IDC 202 at the meeting point of the two blades 206a and 206b, and is created by the inclusion of another round hole 216 formed at the bottom of the slot 208 between the two blades 206a and 206b. As will be described in more detail below, the deformation stress caused by deflection of the blades 208 is staged sequentially through the first and second flex regions as the blades 206a and 206b are spread apart by a wire. When the first flex regions 214a, 214b have reached the end of their permitted degree of deformation, as determined by the width of the gaps 210a and 210b, further deformation of the blades 206 is transferred to the second flex region 224 such that the blades 206 pivot about the base region 218.
[0026] The width of the slot 208 while the IDC 202 is at rest can be designed to be sufficiently small (e.g., approximately 3-6 mils) to ensure secure termination of small wires (e.g., approximately 6 mils in diameter), and also to reliably accommodate scenarios in which conductors of a multi-strand wire are compressed into a narrower, vertically stacked arrangement during termination (as illustrated in
[0027] Behavior of the IDC 202 as a wire is being terminated is now described.
[0028]
[0029] The widths of the gaps 210a, 210b formed on the blades 206a, 206b determine the maximum degree of deformation permitted by the first flex regions 214a, 214b. As the upper portions of the blades 206a, 206b are deflected outward by the wire 302, the facing edges of the gaps 210a, 210b that is, the edges that define the two sides of each gap 210, and which face each other across the gap 210are moved closer together. If the diameter of the wire 302 is sufficiently small, the deflection of the blades 206a and 206b will not be sufficient to cause the facing edges of the gaps 210a and 210b to contact one another even when the wire 302 is pressed fully into the slot 208, and deflection will not be transferred from the first flex region 214 to the second flex region 224. In the example depicted in
[0030] The facing edges of the gaps 210a and 210b act as mechanical stops for the first flex regions 214a, 214b. If the diameter of the wire 302 is large enough to exceed the deflection capacity of the first flex regions 214a, 214b, as in the scenario depicted in
[0031] Although the example IDC 202 illustrated in
[0032] In another example embodiments, one of the two blades 206a or 206b may be designed with no flex regions other than the common flex region located in the base region 218, while the other blade 206a or 206b includes one or more flex regions. By this arrangement, the blade 206 without flex regions remains relatively stationary as a wire 302 is being terminated, while the blade 206 including the one or more flex regions assumes most or all of the deflection.
[0033] The design of IDC 202 described herein can accommodate a wider range of wire diameters relative to conventional IDCs, such as IDC 102 depicted in
[0034]
[0035]
[0036] At 406, a determination is made as to whether the facing edges of the gap become engaged while the portion of the first blade is being deflected by the wire. If the facing edges are not engaged (NO at step 406), as in the case of a wire whose diameter is less than a maximum deflection threshold of the first flex region, the portion of the first blade continues to deflect until the wire is terminated in the gap. Alternatively, if the facing edges of the gap become engaged during deflection (YES at step 406), as in the case of a wire whose diameter exceeds the maximum deflection threshold of the first flex region, the methodology proceeds to step 408, where the first blade is deflected away from the second blade about a second flex region located on a base region of the IDC.
[0037] The above description of illustrated embodiments of the subject disclosure, including what is described in the Abstract, is not intended to be exhaustive or to limit the disclosed embodiments to the precise forms disclosed. While specific embodiments and examples are described herein for illustrative purposes, various modifications are possible that are considered within the scope of such embodiments and examples, as those skilled in the relevant art can recognize.
[0038] In this regard, while the disclosed subject matter has been described in connection with various embodiments and corresponding figures, where applicable, it is to be understood that other similar embodiments can be used or modifications and additions can be made to the described embodiments for performing the same, similar, alternative, or substitute function of the disclosed subject matter without deviating therefrom. Therefore, the disclosed subject matter should not be limited to any single embodiment described herein, but rather should be construed in breadth and scope in accordance with the appended claims below.
[0039] In addition, the term or is intended to mean an inclusive or rather than an exclusive or. That is, unless specified otherwise, or clear from context, X employs A or B is intended to mean any of the natural inclusive permutations. That is, if X employs A; X employs B; or X employs both A and B, then X employs A or B is satisfied under any of the foregoing instances. Moreover, articles a and an as used in the subject specification and annexed drawings should generally be construed to mean one or more unless specified otherwise or clear from context to be directed to a singular form.
[0040] What has been described above includes examples of systems and methods illustrative of the disclosed subject matter. It is, of course, not possible to describe every combination of components or methodologies here. One of ordinary skill in the art may recognize that many further combinations and permutations of the claimed subject matter are possible. Furthermore, to the extent that the terms includes, has, possesses, and the like are used in the detailed description, claims, appendices and drawings such terms are intended to be inclusive in a manner similar to the term comprising as comprising is interpreted when employed as a transitional word in a claim.