EMI PROTECTIVE SLEEVE AND METHOD OF CONSTRUCTION THEREOF
20200154616 ยท 2020-05-14
Inventors
- Amelie Simeons-Seghers (Compiegne, FR)
- Alexa Woodruff (Ardmore, PA, US)
- Amel Fathallah (Claire Souilly, FR)
- Tianqi Gao (Exton, PA, US)
- Julien Deltor (Gennevilliers, FR)
Cpc classification
H05K9/0067
ELECTRICITY
Y10T442/30
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B60R16/0215
PERFORMING OPERATIONS; TRANSPORTING
International classification
H05K9/00
ELECTRICITY
D03D15/00
TEXTILES; PAPER
Abstract
A wrappable textile sleeve for protecting a conductive elongate member against at least one of EMI, RFI or ESD and method of construction thereof is provided. The sleeve includes a plurality of warp filaments and at least one weft filament woven with one another to form a woven substrate. The woven substrate has opposite sides extending lengthwise between opposite ends. The opposite sides are wrappable about a central longitudinal axis into overlapping relation with one another to circumferentially enclose the elongate member within a cavity of the sleeve. At least some of the warp filaments are provided as generally flat, thin conductive filaments shield the conductive elongate member against the effects of EMI, RFI and/or ESD.
Claims
1. A wrappable textile sleeve for protecting elongate members against at least one of EMI, RFI or ESD, comprising: a plurality of warp filaments; at least one weft filament; said warp filaments being woven with said at least one weft filament to form a woven substrate, said substrate having opposite sides extending lengthwise between opposite ends, said opposite sides being wrappable about a central longitudinal axis of said sleeve into overlapping relation with one another; and wherein at least some of said warp filaments are provided as generally flat conductive filaments.
2. The fabric sleeve of claim 1 wherein at least some of said weft filaments are heat-set to bias said opposite sides into overlapping relation with one another.
3. The fabric sleeve of claim 1 wherein at least some of said weft filaments are provided as conductive filaments.
4. The fabric sleeve of claim 3 wherein at least some of said weft conductive filaments are individually served or twisted with individual ones of said heat-set weft filaments.
5. The fabric sleeve of claim 1 wherein each of said warp filaments is provided as said generally flat conductive filaments.
6. The fabric sleeve of claim 1 wherein at least some of said warp filaments are provided as nonconductive filaments.
7. The fabric sleeve of claim 6 wherein said nonconductive filaments are provided as multifilaments.
8. The fabric sleeve of claim 7 wherein said nonconductive multifilaments extend along at least one of said opposite sides.
9. The fabric sleeve of claim 6 wherein said nonconductive filaments are provided as monofilaments.
10. The fabric sleeve of claim 9 wherein said nonconductive monofilaments extend along at least one of said opposite sides.
11. The fabric sleeve of claim 1 wherein at least some of said warp filaments are provided as round conductive filaments.
12. The fabric sleeve of claim 11 wherein at least some of said round conductive filaments are provided as a plurality of round conductive filaments grouped in substantially flat bundles.
13. The fabric sleeve of claim 12 wherein said substantially flat bundles extend adjacent said opposite sides.
14. The fabric sleeve of claim 12 further including at least one layer fixed to the woven substrate via stitches extending through said substantially flat bundles.
15. The fabric sleeve of claim 14 wherein said at least one layer includes an inner layer fixed to an inwardly facing surface of the woven substrate and an outer layer fixed to an outwardly facing surface of the woven substrate.
16. The fabric sleeve of claim 15 wherein said inner layer is an impervious sheet of material.
17. The fabric sleeve of claim 16 wherein said inner layer is a PTFE film.
18. The fabric sleeve of claim 15 wherein said outer layer is a textile layer of interlaced material.
19. The fabric sleeve of claim 18 wherein said outer layer is a textile layer including fire resistant filaments.
20. The fabric sleeve of claim 18 wherein said outer layer is a textile layer including PEEK filaments.
21. The fabric sleeve of claim 18 wherein said outer layer is a woven layer.
22. The fabric sleeve of claim 1 wherein said warp filaments and said weft filaments are woven in a pattern selected from the group consisting of a plain weave pattern, a basket weave pattern, a twill weave pattern, and a mock leno weave pattern.
23. The fabric sleeve of claim 1 wherein at least some of the generally flat conductive warp filaments include a plurality of generally flat conductive filaments stacked in overlapping relation with one another.
24. The fabric sleeve of claim 1 wherein at least some of said warp filaments are provided as round conductive filaments.
25. The fabric sleeve of claim 24 wherein at least some of said round conductive filaments are provided as a plurality of round conductive filaments grouped in substantially flat bundles.
26. The fabric sleeve of claim 25 wherein at least some of said substantially flat bundles extend adjacent said opposite sides.
27. The fabric sleeve of claim 26 wherein at least one of said substantially flat bundles extends generally intermediate said opposite sides.
28. The fabric sleeve of claim 26 further including at least one layer fixed to the woven substrate via stitches extending through said substantially flat bundles.
29. The fabric sleeve of claim 28 wherein said at least one layer includes an inner layer fixed to an inwardly facing surface of the woven substrate and an outer layer fixed to an outwardly facing surface of the woven substrate.
30. The fabric sleeve of claim 29 wherein said inner layer is an impervious sheet of material.
31. The fabric sleeve of claim 29 wherein said outer layer is a textile layer of interlaced material.
32. The fabric sleeve of claim 1 further including at least a pair of ground members woven with said weft filaments and extending between said opposite ends in overlapping relation with said generally flat conductive filaments, said ground members being extendable axially beyond said opposite ends for operable connection to a ground.
33. The fabric sleeve of claim 32 wherein at least some of said generally flat conductive filaments are stacked in overlying relation with one another, with said ground members being provided by one of said stacked generally flat conductive filaments.
34. The fabric sleeve of claim 33 wherein said generally flat conductive ground member is woven in a different weave pattern with said weft filaments from the remaining generally flat conductive filaments in stacked relation with said ground member.
35. A wrappable woven sleeve, comprising: a plurality of warp and weft filaments that are woven into a substrate extending longitudinally between opposite ends and laterally between opposite edges and being wrappable about at least one elongate member to be protected; and wherein at least some of said warp filaments include flat conductive filaments that extend continuously between said opposite ends.
36. The wrappable woven sleeve of claim 35 wherein at least some of said flat conductive filaments are stacked with one another.
37. The wrappable woven sleeve of claim 35 wherein at least some of said warp filaments include round monofilaments.
38. The fabric sleeve of claim 37 wherein at least some of said round monofilaments include a plurality of round conductive filaments.
39. The wrappable woven sleeve of claim 35 wherein at least some of said warp filaments are nonconductive filaments.
40. A wrappable woven sleeve, comprising: a plurality of warp and weft filaments that are woven into a substrate extending longitudinally between opposite ends and laterally between opposite edges and being wrappable about at least one elongate member to be protected; and wherein at least some of said warp filaments include flat conductive filaments which extend parallel to one another.
41. The wrappable woven sleeve of claim 40 wherein at least some of said flat conductive filaments are stacked with one another.
42. The wrappable woven sleeve of claim 40 wherein at least some of said warp filaments are round filaments.
43. The wrappable woven sleeve of claim 42 wherein at least some of said round filaments are conductive.
44. The fabric sleeve of claim 42 wherein at least some of said round filaments includes a plurality of round filaments grouped in substantially flat bundles.
45. The wrappable woven sleeve of claim 40 wherein at least some of said warp filaments are nonconductive filaments.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0053] These and other features and advantages will become readily apparent to those skilled in the art in view of the following detailed description of the presently preferred embodiments and best mode, appended claims, and accompanying drawings, in which:
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0070] Referring in more detail to the drawings,
[0071] In accordance with a further aspect of the invention, the sleeve 10 can be constructed as a self-wrapping sleeve, such that the wall 16 is automatically biased to curl about the central longitudinal axis 22 to bring the opposite sides 18, 20 into their overlapping relation. The self-wrapping bias can be imparted within the wall 16 of the sleeve 10 via heat-setting at least one weft filament 14 or a plurality of weft filaments 14. Accordingly, at least one or a plurality of the weft filaments 14 can be provided as a heat-settable polymeric filament or filaments, wherein the heat-settable weft filament or filaments 14, whether some of all, are preferably monofilaments of a thermoplastic, such as, by way of example and without limitation, polyester, thereby allowing the sleeve 10 to be heat-set or otherwise biased into a tubular form.
[0072] In accordance with a further aspect of the invention, at least some of the warp and/or weft filaments 12, 14 can be provided as non-conductive filaments 12', whether monofilaments, which would primarily enhance resistance of the wall 16 to abrasion, and/or multifilaments, which would primarily provide the wall 16 with enhanced barrier protection, also referred to as coverage, to inhibit the ingress of contaminants into the cavity 30, softer texture, enhanced drape, and enhanced noise dampening characteristics. Depending on the application, the non-conductive filaments can be formed from, by way of example and without limitations, polyester, nylon, polypropylene, polyethylene, acrylic, cotton, rayon, and fire retardant (FR) versions of all the aforementioned materials, though high temperature ratings are generally not required if provided as FR materials. If high temperature ratings are desired along with FR capabilities, then some presently preferred non-conductive members include m-aramid (Nomex, Conex, Kermel), p-aramid (Kevlar, Twaron, Technora), PEI (Ultem), PPS, and PEEK, for example.
[0073] In accordance with a further aspect of the invention, at least some of the weft filaments 14 can be provided as conductive weft filaments 14 to further enhance EMI, RFI and/or ESD protection. If at least some of the weft filaments 14 are provided as conductive weft filaments 14, the conductive weft filaments 14 are preferably provided as relatively fine, round wire filaments or conductive yarns, such as metallized yarns, by way of example and without limitation, to facilitate the sleeve's ability to self-wrap into the tubular configuration and reduce weight. To enhance the strength and manufacturability, the conductive weft filaments 14 can further include a fine wire filament 31 served or twisted about a non-conductive weft filament 14, such as a non-conductive monofilament or non-conductive multifilament, both of which can be provided as being heat-settable filaments 29 (
[0074] In addition to the flat, relatively thin conductive warp filaments 12, in accordance with a further aspect of the invention, at least some of the warp filaments 12 can be provided as round conductive warp filaments 12 of fine wire, and further yet, at least some of the warp filaments 12 can be provided as non-conductive warp filaments 12, whether monofilaments and/or multifilaments, which has been found to improve the manufacturability of the wall 16. The flat conductive warp filaments 12 can be provided between about 90-100 percent content, thereby providing the vast majority of EMI, RFI and/or ESD protection to the sleeve 10, and the conductive round warp filaments 12 can be provided between about 10-0 percent content, mainly to facilitate manufacture of a multilayered sleeve, as discussed further below. In
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[0077] It is to be recognized that each embodiment discussed above and illustrated in
[0078] The thin, flat conductive warp filaments 12 can be provided as any suitable solid, flattened conductive strips or bands of metal material, with copper having been found to be a particularly effective material in performing the EMI, ESD, RFI function. To facilitate flexibility and reduced weight, the thin, flat conductive warp filaments 12 can be provided having a thickness between about 0.01-0.06 mm and a width between about 0.1-1.2 mm, by way of example and without limitation.
[0079] The sleeve 10 further includes a plurality of drain members, also referred to as ground members 36, woven as warp members, and ultimately extending between the opposite ends 24, 26. The ground members 36 can be provided as a wire material as desired for the intended application, such as twisted round wires, braided round wires, flat wires, and can include a tin coated copper or nickel coated copper material, by way of example and without limitation, and can be provided having any desired diameter, such as between about 0.1-2 mm, by way of example and without limitation. The plurality of ground members 36 are provided in a group or groups of two or more woven ground members 36 in side-by-side, abutting relation with one another. If provided a multiple groups, the groups can be dispersed about the circumference of the sleeve 10, 10, as desired. With the ground members 36 being formed in groups or two or more ground members 36, in application, the grouped ground members 36 always maintain contact with one another, particularly upon pulling an end of separate ones of the ground members 36 in opposite axial directions from one another to extend a free end of the separate ground members axially outwardly from the ends 24, 26 of the sleeve 10 for attachment to a source of ground, as described in U.S. Pat. No. 6,639,148, which is incorporated herein by reference in its entirety. An important enhancement is provided by the ground members 36 as a result of their being woven in overlying or underlying relation with a conductive warp filament 12, 12, whether separately therefrom or in combination therewith. As a result of being radially aligned with one at least of the conductive warp filaments 12, 12, upon pulling the individual ground members 36 to their axially extended, installed position, there are no openings or voids formed in the wall 16 of the sleeve 10 which would allow EMI, RFI, ESD to pass through. Accordingly, enhanced protection against EMI, RFI, ESD is provided by the wall 16, even upon extending the ground members to their extended in-use position, as a result of the presence of an underlying or overlying conductive warp filament 12, 12.
[0080] In addition to providing the ground members 36 as separated wires, as described above, the ground members 36 can be provided via one of the generally flat, thin conductive filaments 12 woven in the stacked bundles 35 of conductive warped filaments 12. Upon cutting the wall 16 to length, one of the flat conductive filaments 12 can be pulled axially outwardly from each end 24, 26 for attachment to ground. To further facilitate pulling the ground members 36 outwardly for attachment to ground, the conductive filaments 12 for use as the ground member 36 within a bundle 35 can be woven having a different weave pattern from the remaining flat conductive filaments 12 in the bundle 35. By way of example and without limitation, the selected flat conductive filament 12 intended to be used as the ground member 36 can be woven in a twill, basket or satin weave pattern, while the remaining flat conductive filament or filaments 12 in the stacked bundle 35 can be woven in a more tight weave pattern, such as a plain weave pattern, wherein the various types of weave patterns are shown in
[0081] It should be recognized that sleeves 10 constructed in accordance with the invention can be constructed to take on any desired protective sleeve form, such as generally flat, or round, for example. Accordingly, the invention is not limited to the profile of the sleeve, and thus, contemplates the manufacture and construction of any profile sleeve that provides a secure, durable, flexible covering for organizing and protecting elongate members 28, such as cables and wiring, from EMI, RFI and/or ESD.
[0082] Sleeves 10 constructed in accordance with the invention have been found empirically to provide optimal resistivity and EMI, ESD, RFI shielding at low and high frequencies to elongate members 28 contained therein while also having a low mass, reduced cross-section profile, and increased flexibility as a result of the flat, thin conductive warp filaments 12 that provide a high level of surface coverage and protection against EMI, ESD and/or RFI. The reduction in mass and increase in flexibility comes from the increase in surface area coverage and reduced relative thickness and mass of the flat, thin conductive warp filaments 12 as compared to round wires providing an equivalent degree of protection against EMI, ESD and/or RFI. Further, the flat, thin conductive warp filaments 12 have an increased tensile strength compared to fine round wire, thereby reducing the risk of damage and possible arcing in use. Sleeves 10, 10 constructed in accordance with the invention are further economical in manufacture and can be made to conform to a multitude of widths, heights and lengths and configurations for use in a variety of applications.
[0083] Obviously, many modifications and variations of the present invention are possible in light of the above teachings. It is, therefore, to be understood that within the scope of the appended claims, the invention may be practiced otherwise than as specifically described.