HEAT DISSIPATING CABLE JACKET
20180012680 · 2018-01-11
Inventors
Cpc classification
International classification
Abstract
A cable is provided, configured for tandem communication and power transmission. The cable has a plurality of twisted pair conductors and a jacket surrounding said twisted pair conductors. The jacket includes a plurality of either ridges, valleys or both, disposed substantially perpendicular to the longitudinal axis of the cable, the ridges and/or valleys are dimensioned and spaced apart in a manner sufficient to create an air passage when the cable is arranged adjacent to and abutting other cables.
Claims
1. A cable, configured for tandem communication and power transmission, said cable comprising: a plurality of twisted pair conductors; and a jacket surrounding said twisted pair conductors, wherein said jacket includes a plurality of ridges disposed substantially perpendicular to the longitudinal axis of said cable said ridges dimensioned and spaced apart in a manner sufficient to create an air passage when said cable is arranged adjacent to and abutting other cables.
2. The cable as claimed in claim 1, wherein said cable has four twisted pair conductors.
3. The cable as claimed in claim 1, wherein said jacket is a polymer jacket.
4. The cable as claimed in claim 1, wherein said ridges extend from the surface of said jacket substantially 50%-100% of a thickness of said jacket.
5. The cable as claimed in claim 1, wherein said ridges are formed on said jacket as additional material deposited onto said jacket directly after extrusion when said jacket is in a semi-molten state.
6. The cable as claimed in claim 1, wherein said ridges are formed on said jacket as an additional material of jacket polymer surged periodically during the extrusion of said jacket.
7. The cable as claimed in claim 1, wherein said ridges are formed independently of said jacket in a second stage after said jacket is extruded and cooled.
8. The cable as claimed in claim 1, wherein said ridges are disposed as spaced apart ridges, each extending entirely around the circumference of said jacket, substantially perpendicular to the longitudinal axis of said cable
9. The cable as claimed in claim herein said ridges are disposed as spaced apart ridges, each extending part way around the circumference of said jacket in partial arcs, substantially perpendicular to the longitudinal axis of said cable.
10. A cable, configured for tandem communication and power transmission, said cable comprising: a plurality of twisted pair conductors; and a jacket surrounding said twisted pair conductors, wherein said jacket includes a plurality of valleys disposed substantially perpendicular to the longitudinal axis of said cable said valleys dimensioned and spaced apart in a manner sufficient to create an air passage when said cable is arranged adjacent to and abutting other cables.
11. The cable as claimed in claim 10, wherein said cable has four twisted pair conductors.
12. The cable as claimed in claim 10, wherein said jacket is a polymer jacket.
13. The cable as claimed in claim 10, wherein said valleys are cut into the surface of said jacket substantially 50% of a thickness of said jacket.
14. The cable as claimed in claim 10, wherein said valleys are cut into said jacket directly after extrusion when said jacket is in a molten state.
15. The cable as claimed in claim 10, wherein said valleys formed on said jacket are cut after said jacket is extruded and cooled.
16. The cable as claimed in claim 10, wherein said valleys are disposed as spaced apart valleys, each extending entirely around the circumference of said jacket, substantially perpendicular to the longitudinal axis of said cable.
17. The cable as claimed in claim 10, wherein said valleys are disposed as spaced apart valleys, each extending part way around the circumference of said jacket in partial arcs, substantially perpendicular to the longitudinal axis of said cable.
18. A cable, configured for tandem communication and power transmission, said cable comprising: a plurality of twisted pair conductors; and a jacket surrounding said twisted pair conductors, wherein said jacket includes a plurality of ridges and valleys disposed substantially perpendicular to the longitudinal axis of said cable said ridges and valleys dimensioned and spaced apart in a manner sufficient to create an air passage when said cable is arranged adjacent to and abutting other cables.
Description
BRIEF DESCRIPTION OF THE DRAWINGS:
[0011] The present invention can be best understood through the following description and accompanying drawings, wherein:
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DETAILED DESCRIPTION
[0018] In one embodiment of the present arrangement,
[0019] As illustrated more clearly in
[0020] In the embodiment shown in
[0021] In each arrangement, ridges 20 or valleys 22 are arranged perpendicular to the longitudinal axis of cable 10 and are spaced apart in a manner that is sufficient to generate the desired air passages between cables 10, when arranged next to other cables, and are otherwise structured and spaced so that either ridges 20 or valleys 22 of jacket 18 do not deform under the weight of the cable itself or allow for the desired air passages to close.
[0022] In one embodiment ridges 20 are ideally constructed to a thickness of approximately 50%-100% of the thickness of jacket 18. Valleys 22 are ideally approximately 50% of the thickness of jacket 18. The shape of ridges 20 and/or valleys 22 are not critical (e.g. can be triangular, squared, irregular etc . . . ) as long as they create the desired air pathways between jackets 18 of adjacently arranged and abutting cables.
[0023] In one embodiment, ridges 20 and valleys 22 can be made from a rotating drum that is located closely after jacket 18 is extruded onto cable 10. Such a drum would have its own ridges or cutters that would imprint/cut such ridges 20/valleys 22 into jacket 18 while jacket 18 is still warm and malleable (semi-molten). In another embodiment, to forms ridges 20, a second extruder head can be aligned after the primary jacket 18 extruder so that a “surge” of additional material can be periodically applied onto the still hot jacket 18. In a third possibility, ridges 20 or valleys 22 can be formed after jacket 18 is cooled, in an additional step where ridges 20 can be applied/deposited, or valleys 22 cut, independent from the primary jacket extrusion process.
[0024] To illustrate the desired effect of the present arrangement,
[0025] These convection pathways allow for warm aft to exit upwards and draw cool aft into the cable 10 bundle. It is further noted that, generally speaking, shielded cables generally dissipate heat better than UTP (Unshielded twisted pair) cables. However, shields or tapes add weight and cost to the overall cable design. In some cases where the LAN cable is to be used for tandem power/data communications, installers choose shielded cables, not for their electrical shielding benefits but for their heat dissipation advantage. The present arrangement could mitigate or negate the need to use shields for their heat dissipation properties even though such jackets 18 as described herein would be obviously beneficial for shielded cables as well.
[0026] While only certain features of the invention have been illustrated and described herein, many modifications, substitutions, changes or equivalents will now occur to those skilled in the art. It is therefore, to be understood that this application is intended to cover all such modifications and changes that fall within the true spirit of the invention.