LOW-PIM STACKING CABLE HANGER SPACER
20200109800 ยท 2020-04-09
Inventors
Cpc classification
H02G7/053
ELECTRICITY
F16L3/13
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L3/1058
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L3/221
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L3/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02G7/05
ELECTRICITY
F16L3/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A low-PIM, stackable polymeric cable hanger spacer that includes a polymeric base forming a rim that defines a latch surface for capturing locking metal barbs of interface brackets of a metal snap-in cable hanger. The spacer also includes polymeric legs extending from the polymeric base with polymeric barbs for latching to an adjacent snap-in cable hanger or other support member. The base allows the metal barbs to pass through the base when the metal barbs are deflected or compressed toward each other. and then allows the metal barbs to spring back to engage the latch surface and become captured by the polymeric spacer once the metal barbs clear of the rim. The base may have a round toroidal shape with rounded edges allowing the metal snap-in cable hanger to rotate with respect to the spacer.
Claims
1. A low-PIM, stackable polymeric cable hanger spacer, comprising: a polymeric base forming a rim that defines a latch surface for capturing locking metal barbs of interface brackets of a metal snap-in cable hanger; polymeric legs extending from the polymeric base with polymeric barbs for latching to an adjacent snap-in cable hanger or other support member.
2. The low-PIM, stackable polymeric cable hanger spacer of claim 1, wherein: the base is further configured to allow the metal barbs to pass through the base when the metal barbs are deflected or compressed toward each other when the metal barbs are inserted into the base; and the base is further configured to allow the metal barbs to spring back to engage the latch surface and become captured by the polymeric spacer once the metal barbs clear of the rim when the metal barbs are inserted further into the base.
3. The low-PIM, stackable polymeric cable hanger spacer of claim 1, wherein the base further comprises a round toroidal shape with rounded edges allowing the metal snap-in cable hanger to rotate with respect to the spacer.
4. The low-PIM, stackable polymeric cable hanger spacer of claim 1, wherein the rim has an internal diameter corresponding to a nominal spacing of the metal barbs of the cable hanger when the cable hanger is pinched closed around a cable that the cable hanger is designed to support.
5. The low-PIM, stackable polymeric cable hanger spacer of claim 1, wherein the rim has an internal diameter corresponding to a inch nominal spacing of the metal barbs of the cable hanger when the cable hanger is pinched closed around a nominal inch, inch, inch, 1 inch or 1 inch diameter cable that the cable hanger is designed to support.
6. The low-PIM, stackable polymeric cable hanger spacer of claim 1 comprising a UV-stable polymer.
7. The low-PIM, stackable polymeric cable hanger spacer of claim 1 comprising glass-filled Nylon.
8. The low-PIM, stackable polymeric cable hanger spacer of claim 1, further comprising two injection-molded sections that are solvent welded or adhesive bonded together to form a complete spacer.
9. The low-PIM, stackable polymeric cable hanger spacer of claim 1, further comprising injection-molded glass-filled Nylon sections that are solvent welded or adhesive bonded together to form a complete spacer.
10. A low-PIM, stackable polymeric cable hanger spacer, comprising: a polymeric base forming a rim that defines a latch surface for capturing locking metal barbs of interface brackets of a metal snap-in cable hanger, wherein the base allows the metal barbs to pass through the base when the metal barbs are deflected or compressed toward each other when the metal barbs are inserted into the base, and further allows the metal barbs to spring back to engage the latch surface and become captured by the polymeric spacer once the metal barbs clear of the rim when the metal barbs are inserted further into the base; polymeric legs extending from the polymeric base with polymeric barbs for latching to an adjacent snap-in cable hanger or other support member; wherein the base further comprises a round toroidal shape with rounded edges allowing the metal snap-in cable hanger to rotate with respect to the spacer, and the rim has an internal diameter corresponding to a nominal spacing of the metal barbs of the cable hanger when the cable hanger is pinched closed around a cable that the cable hanger is designed to support
11. The low-PIM, stackable polymeric cable hanger spacer of claim 11, wherein the base comprises glass-filled Nylon injection-molded sections that are solvent welded or adhesive bonded together to form a complete spacer.
12. A method for creating a low-PIM, stackable interface between a metal snap-in cable hanger and an adjacent metal surface, comprising providing a polymeric cable hanger spacer comprising a polymeric base forming a rim that defines a latch surface for capturing locking metal barbs of interface brackets of the metal snap-in cable hanger, and polymeric legs extending from the polymeric base with polymeric barbs for latching to the adjacent metal surface; latching the metal barbs of interface brackets of the metal snap-in cable hanger to the latch surface of the spacer; latching the polymeric barbs of the spacer to a receptacle hole of the adjacent metal surface.
13. The method of claim 12, further comprising: deflecting or compressing the metal barbs toward each other; inserting the metal barbs into the base; allowing the metal barbs to spring back to engage the latch surface and become captured by the polymeric spacer once the metal barbs clear of the rim.
14. The method of claim 12, wherein the base further comprises a round toroidal shape with rounded edges allowing the metal snap-in cable hanger to rotate with respect to the spacer.
15. The method of claim 12, wherein the rim has an internal diameter corresponding to a nominal spacing of the metal barbs of the cable hanger when the cable hanger is pinched closed around a cable that the cable hanger is designed to support.
16. The method of claim 12, wherein the rim has an internal diameter corresponding to a inch nominal spacing of the metal barbs of the cable hanger when the cable hanger is pinched closed around a nominal inch, inch, inch, 1 inch or 1 inch diameter cable that the cable hanger is designed to support.
17. The method of claim 12, wherein the spacer comprises a UV-stable polymer.
18. The method of claim 12, wherein the spacer of claim 1 comprises glass-filled Nylon.
19. The method of claim 12, further comprising injection-molding sections that are solvent welded or adhesive bonded together to form a complete spacer.
20. The method of claim 12, further comprising injection-molding glass-filled Nylon sections that are solvent welded or adhesive bonded together to form a complete spacer.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0015] The numerous advantages of the embodiments of the invention may be better understood with reference to the accompanying figures.
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DETAILED DESCRIPTION
[0029] Embodiments of the invention include a low-PIM polymeric spacer for use with a conventional metal snap-in cable hanger and an assembly including a polymeric spacer and a metal snap-in cable hanger. These embodiments may be utilized in concert with other techniques to reduce PIM at cellular base stations, such as the low-PIM cable bracket described in commonly owned U.S. patent application Ser. Nos. 16/450,925 and 16/581,597, which are incorporated by reference.
[0030] An illustrative embodiment of the polymeric spacer Includes a base forming a rim that defines a latch surface configured to capture the locking metal barbs of the interface brackets of the metal snap-in cable hanger. For example, the base may be a collar, plate or other suitable structure. The base allows the metal barbs to pass through when they are deflected or compressed toward each other. Once they clear of the rim, the metal barbs of the cable hanger spring back to engage the latch surface and become captured by the polymeric spacer. The base of the spacer has a round toroidal shape with rounded edges allowing the cable hanger to rotate freely at the interface with the spacer. Similarly, the spacer also includes polymeric legs with polymeric barbs configured to latch to the flange of an adjacent snap-in cable hanger. The flange allows the polymeric barbs to pass through when they are deflected or compressed toward each other. Once clear of the flange, the polymeric barbs of the spacer spring back to engage the flange and become captured by the adjacent snap-in cable hanger. The polymeric barbs allow the adjacent cable hanger to rotate freely at the interface with the spacer.
[0031] The latch surface typically forms a middle section below the rim that has a larger internal diameter allowing the locking barbs of the metal snap-in cable hanger to expand outward to become captured by the latch surface. This secures the cable hanger to the spacer preventing vertical separation. The bottom section of the spacer includes polymeric legs designed to secure the spacer to the receptacle hole in an adjacent metal snap-in cable hanger or other mounting member. The rim of the spacer may have an internal diameter corresponding to a nominal spacing of the metal barbs of the cable hanger when the cable hanger is pinched closed around a cable that the cable hanger is designed to support.
[0032] In a particular embodiment, the rim of the base of the spacer has an internal diameter of about inches, which matches the diameter of typical metal snap-in cable hanger interface brackets. In other word, the internal diameter of the rim is sufficiently close to inches to effectively latch the barbs of a typical metal snap-in cable hanger with interface brackets having nominal inch spacing when the cable hanger is pinched closed around a nominal inch, inch, inch, 1 inch or 1 inch diameter cable. In addition, the rim also has a thickness slightly less than the clearance of the metal barb head from the body of the snap-in hanger to form a loose fitting latch allowing the spacer to rotate with respect to the snap-in cable hanger. The polymeric legs include locking polymeric barbs that are compressed inward as the barbs are inserted into the inch diameter receptacle in the adjacent cable hanger or other support member. Once through the hole, the polymeric barbs of the spacer expand outward, securing the spacer to the cable support hanger or other support member, preventing vertical separation.
[0033] The polymeric spacer may be manufactured from a UV-stable polymeric material suitable for use as a low-PIM interface between a metal snap-in cable hanger and another metal snap-in cable hanger or other metal support member. The polymeric spacer can also be used to attach a number of metal cable hangers to each other in a stacked configuration. In a particular illustrative embodiment, the spacer is injection-molded, glass-filled Nylon. The polymeric spacer may be molded in sections (e.g., halves) that are solvent welded or adhesive bonded together to form a complete spacer.
[0034] Another approach would be to integrally form the spacer onto the cable hanger itself (i.e., create a combined hanger-spacer product). Because each hanger is configured for a specific cable diameter, this approach would require a different hanger-spacer product for every different diameter of cable. The present spacer has the advantages of working with existing cable hangers independent of the cable diameter for a significant range of cable diameters (e.g., half-inch to one-inch diameter cables).
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[0037] Similarly, the spacer also includes polymeric legs 24, 25 extending from the base 21 with polymeric barbs 26, 27 configured to latch to the flange 17 of an adjacent snap-in cable hanger 10 or similar receptacle hole in another support member. In the stacked cable hanger example, the flange 17 allows the polymeric barbs 26, 27 to pass through when they are deflected or compressed toward each other. Once clear of the flange 17, the polymeric barbs 26, 27 spring back to engage the flange 17 and become captured by the adjacent snap-in cable hanger. The polymeric barbs 26, 27 allow the adjacent cable hanger to easily rotate at the interface with the spacer 20. In different embodiments, the polymeric spacer may include different numbers of polymeric legs with corresponding barbs. For example, illustrative polymeric spacer may include two, three, four or five polymeric legs with corresponding barbs.
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[0040] To provide an illustrative example,
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[0044] While particular aspects of the present subject matter have been shown and described in detail, it will be apparent to those skilled in the art that, based upon the teachings of this disclosure, changes and modifications may be made without departing from the subject matter described in this disclosure and its broader aspects and, therefore, the appended claims are to encompass within their scope all such changes and modifications as are within the true spirit and scope of the subject matter described in this disclosure. Although particular embodiments of this disclosure have been illustrated, it is apparent that various modifications and embodiments of the disclosure may be made by those skilled in the art without departing from the scope and spirit of the disclosure.
[0045] It is believed that the present disclosure and many of its attendant advantages will be understood by the foregoing description, and it will be apparent that various changes may be made in the form, construction and arrangement of the components without departing from the disclosed subject matter or without sacrificing all of its material advantages. The form described is merely explanatory, and it is the intention of the following claims to encompass and include such changes. The disclosure is defined by the following claims, which should be construed to encompass one or more structures or function of one or more of the illustrative embodiments described above, equivalents and obvious variations. It will therefore be appreciated that the present invention provides significant improvements. The foregoing relates only to the exemplary embodiments of the present invention, and that numerous changes may be made therein without departing from the spirit and scope of the invention as defined by the following claims.