Optical broadband node cable
10048459 ยท 2018-08-14
Assignee
Inventors
- Justin Quinn (Boiling Springs, SC, US)
- Breti Villiger (Simpsonville, SC, US)
- Patrick Dobbins (Greer, SC, US)
Cpc classification
G02B6/44384
PHYSICS
H02G1/086
ELECTRICITY
H01B11/22
ELECTRICITY
International classification
G02B6/44
PHYSICS
H01B7/18
ELECTRICITY
Abstract
A reduced diameter composite microcable of low weight that is capable of withstanding a tensile load of at least 300 pounds with less than 0.6% fiber strain, is capable of operation between ?40 C and 70 C with less than 0.1 dB/km attenuation change at 1550 nm, and whose outer diameter is less than 15 mm is provided. The microcable includes at least one buffer tube, at least one electrical power conductor, at least one rigid strength member cabled together into a multi-unit core, wherein a plurality of optical fibers are placed within the at least one buffer tube.
Claims
1. A reduced diameter composite microcable of low weight that is capable of withstanding a tensile load of at least 300 pounds with less than 0.6% fiber strain, is capable of operation between ?40 C and 70 C with less than 0.1 dB/km attenuation change at 1550 nm, and whose outer diameter is less than 15 mm, the microcable comprising: at least one buffer tube; at least one electrical power conductor; at least one rigid strength member cabled together into a multi-unit core; and an outer jacket surrounding the multi-unit core, wherein the at least one buffer tube and the at least one electrical power conductor are directly adjacent the outer jacket with no intervening components therebetween, wherein a plurality of optical fibers are placed within the at least one buffer tube.
2. The microcable of claim 1, wherein the at least one electrical power conductor is Thermoplastic Heat and Water-resistant Nylon-coated (THWN) or Thermoplastic High Heat-resistant Nylon-coated (THHN).
3. The microcable of claim 2, wherein the at least one electrical power conductor is of 12-14 American Wire Gauge (AWG).
4. The microcable of claim 3, wherein the at least one electrical power conductor consists of multiple copper strands.
5. The microcable of claim 1, wherein the at least one electrical power conductor is Thermoplastic Flexible Fixture Wire Nylon (TFFN) coated.
6. The microcable of claim 5, wherein the at least one electrical power conductor is of 16-18 American Wire Gauge (AWG).
7. The microcable of claim 6, wherein the at least one electrical power conductor consists of multiple copper strands.
8. The microcable of claim 1, wherein the at least one buffer tube is constructed of a thermoplastic polymer.
9. The microcable of claim 8, wherein the at least one buffer tube is filled with gel.
10. The microcable of claim 8, wherein the at least one buffer tube is free of gel.
11. The microcable of claim 8, wherein the at least one buffer tube contains up to twenty four optical fibers.
12. The microcable of claim 1, wherein the outer jacket contains undulations to assist with jetting into a microduct.
13. The microcable of claim 1, wherein the outer jacket contains striations to assist with jetting into a microduct.
14. The microcable of claim 1, wherein the multi-unit core contains two gel-filled buffer tubes, each comprised of 24 optical fibers, and two 14 American Wire Gauge (AWG) Thermoplastic Heat and Water-resistant Nylon-coated (THWN) power conductors that are helically cabled over a 1.2 mm diameter rigid strength member, with an outer High-density Polyethylene (HDPE) sheath of 0.5 mm nominal wall thickness.
15. The microcable of claim 14, wherein the nominal cable outer diameter (OD) is 7.9 mm.
16. The microcable of claim 14, wherein the nominal cable weight is 82 kg/km.
17. The microcable of claim 1, wherein the multi-unit core contains three gel-filled buffer tubes, each comprised of 24 optical fibers, and two 16 American Wire Gauge (AWG) Thermoplastic Flexible Fixture Wire Nylon (TFFN) coated power conductors that are SZ cabled over a 2 mm diameter rigid strength member, with an outer High-density Polyethylene (HDPE) sheath of 0.5 mm nominal wall thickness.
18. The microcable of claim 17, wherein the nominal cable outer diameter (OD) is 8.0 mm.
19. The microcable of claim 17, wherein the nominal cable weight is 70 kg/km.
20. The microcable of claim 1, wherein the multi-unit core contains four gel-filled buffer tubes, each comprised of 24 optical fibers, two 16 American Wire Gauge (AWG) Thermoplastic Flexible Fixture Wire Nylon (TFFN) coated power conductors, and two 2.3 mm outer diameter (OD) fillers that are SZ cabled over a 4.3 mm diameter rigid strength member, with an outer High-density Polyethylene (HDPE) sheath of 0.5 mm nominal wall thickness.
21. The microcable of claim 20, wherein the nominal cable outer diameter (OD) is 10.3 mm.
22. The microcable of claim 20, wherein the nominal cable weight is 95 kg/km.
23. The microcable of claim 1, wherein the multi-unit core contains six gel-filled buffer tubes, each comprised of 24 optical fibers, and three 16 American Wire Gauge (AWG) Thermoplastic Flexible Fixture Wire Nylon (TFFN) coated power conductors that are SZ cabled over a 5.2 mm diameter rigid strength member, with an outer High-density Polyethylene (HDPE) sheath of 0.5 mm nominal wall thickness.
24. The microcable of claim 23, wherein the nominal cable outer diameter (OD) is 11.2 mm.
25. The microcable of claim 23, wherein the nominal cable weight is 133 kg/km.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1)
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(5)
(6)
DETAILED DESCRIPTION
(7) The following detailed description is provided to assist the reader in gaining a comprehensive understanding of the methods, apparatuses and/or systems described herein. Various changes, modifications, and equivalents of the systems, apparatuses and/or methods described herein will suggest themselves to those of ordinary skill in the art. Descriptions of well-known functions and structures are omitted to enhance clarity and conciseness.
(8) The terms used in the description are intended to describe embodiments only, and shall by no means be restrictive. Unless clearly used otherwise, expressions in a singular form include a meaning of a plural form. In the present description, an expression such as comprising or including is intended to designate a characteristic, a number, a step, an operation, an element, a part or combinations thereof, and shall not be construed to preclude any presence or possibility of one or more other characteristics, numbers, steps, operations, elements, parts or combinations thereof.
(9) Referring to the drawings,
(10) The design may consist of gel filled polybutylene terephthalate (PBT) buffer tubes, cabled with Thermoplastic Heat and Water-resistant Nylon-coated (THWN) conductors with a constant pitch to allow operation at temperatures as low as ?40 C and as high as 75 C and withstand installation loads of up to 600 lbs. without damaging any of the cable elements, according to an exemplary embodiment. A high density polyethylene outer jacket may be used to provide significant protection to the core components and allow the cable to be blown into the duct.
(11) According to an exemplary embodiment, the composite cable may consist of two 2.7 mm, gel filled buffer tubes ?1.95 mm ID for 12 fibers and 2.1 mm ID for 24 fibersand two 14 American Wire Gauge (AWG) Thermoplastic High Heat-resistant Nylon-coated (THHN)THWN conductors that are helically cabled over a center strength member (CSM) with a 120 mm right hand lay, as depicted in
(12) One of the applications of the optical broadband node cable is that the inner conductor and dielectric member of installed coax cables will be removed, leaving a buried duct, following which the composite cable is jetted into the duct, in-turn supplying power to nodes (90 VAC) via copper conductors and supplying additional bandwidth to the home through fiber.
(13)
(14) Referring to
(15) On performing the bending test at low and high temp on the test cable, the test cable passed. The test cable was conditioned at ?30 C and +70 C, and wrapped around a mandrel 20 times the cable's outside diameter (OD). No measurable attenuation increase was observed, and the conductors maintained electrical continuity after the testing.
(16) On performing the impact resistance test, the test cable passed. The test cable was subjected to two 4.4 Nm impacts at three locations. No measurable attenuation increase was observed, and the conductors maintained electrical continuity after the testing.
(17) On performing the compressive strength test, the test cable passed. The test cable was subjected to an initial load of 220 N/cm that was subsequently reduced to 110 N/cm. No measurable attenuation increase was observed prior to the release of the 110 N/cm load, and the conductors maintained electrical continuity after the testing.
(18) On performing the cable twist test, the test cable passed. A 1 meter length of the test cable was subjected to 10 twist cycles with no measurable attenuation increase. The conductors maintained electrical continuity after the testing.
(19) On performing the cable cyclic flexing test, the test cable passed. The test cable was flexed for 25 cycles over a mandrel 20 times the cables OD. No measurable attenuation increase was observed during or after the test, and the conductors maintained electrical continuity after the testing.
(20)
(21) Referring to
(22)
(23) Referring to
(24)
(25) Referring to
(26)
(27) Referring to
(28) On performing the water penetration test, the test cable passed. The test was conducted with the conductors capped. The conductors are not water tight, so water will flow through the conductors. However, the cable can be designed to be water tight per the requirements.
(29) Based on the test results conducted and depicted in
(30) Advantages and benefits of the composite optical broadband node cable, as described with reference to
(31) Although benefits of composite optical broadband node cable are listed above, the benefits are not limited thereto.
(32) As mentioned above, the embodiments described above are merely exemplary and the general inventive concept should not be limited thereto. While this specification contains many features, the features should not be construed as limitations on the scope of the disclosure or the appended claims. Certain features described in the context of separate embodiments can also be implemented in combination. Conversely, various features described in the context of a single embodiment can also be implemented in multiple embodiments separately or in any suitable sub-combination.