US20070280610A1 - Hybrid cables for communication networks - Google Patents

Hybrid cables for communication networks Download PDF

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Publication number
US20070280610A1
US20070280610A1 US11/446,544 US44654406A US2007280610A1 US 20070280610 A1 US20070280610 A1 US 20070280610A1 US 44654406 A US44654406 A US 44654406A US 2007280610 A1 US2007280610 A1 US 2007280610A1
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Prior art keywords
cable
jacket
electrical conductors
twisted pair
optical fibers
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US7310430B1 (en
Inventor
Arvind R. Mallya
Jack K. Swalley
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AT&T Intellectual Property I LP
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SBC Knowledge Ventures LP
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Assigned to SBC KNOWLEDGE VENTURES A NEVADA PARTNERSHIP reassignment SBC KNOWLEDGE VENTURES A NEVADA PARTNERSHIP ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: MALLYA, ARVIND R., SWALLEY, JACK K.
Priority to US11/875,569 priority patent/US20080037941A1/en
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    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/44Mechanical structures for providing tensile strength and external protection for fibres, e.g. optical transmission cables
    • G02B6/4401Optical cables
    • G02B6/4415Cables for special applications
    • G02B6/4416Heterogeneous cables
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01BCABLES; CONDUCTORS; INSULATORS; SELECTION OF MATERIALS FOR THEIR CONDUCTIVE, INSULATING OR DIELECTRIC PROPERTIES
    • H01B9/00Power cables
    • H01B9/005Power cables including optical transmission elements

Definitions

  • the present disclosure relates generally to communications systems and, more particularly, to hybrid cables for communication networks.
  • Telecommunication companies often upgrade existing communication networks implemented using copper cables by replacing the previously installed copper cables with optical fiber to provide relatively higher bandwidth to customers.
  • telecommunication companies have expanded existing networks using optical fiber.
  • optical fiber provides relatively higher bandwidth that enables many more types of data/voice communication services and the ability to serve more customers using fewer communication media.
  • one optical fiber can carry data/voice information corresponding to the same number of customers that would ordinarily require a plurality of electrical conductors.
  • a drawback to replacing electrical conductors with optical fiber or installing only optical fibers in new areas is lack of a medium to carry electrical power. That is, in network portions that use electrical conductors, the electrical conductors can carry electrical power to power telecommunications equipment (e.g., switches) located in remote areas.
  • power telecommunications equipment e.g., switches
  • power must be supplied from alternate sources such as, for example, power company power grids, batteries, etc.
  • tapping into power company power grids to obtain electrical power is an added expense.
  • the power grid fails, which often happens during inclement weather, customers may be left without voice and/or data communication services. Such outages are not acceptable according to Federal Communication Commission regulations that prohibit landline voice communications from failing for more than a specified amount of time per year, which is far less than the duration for which power grids fail per year.
  • FIG. 1 depicts an example network system that may be implemented using the example hybrid cables described herein.
  • FIG. 2 depicts another example network system that may be implemented using the example hybrid cables described herein.
  • FIG. 3 depicts a side view of an example hybrid cable.
  • FIG. 4 depicts a cross-sectional view of the example hybrid cable of FIG. 3 .
  • FIG. 5 depicts a cross-sectional view of another example hybrid cable.
  • FIG. 6 depicts a cross-sectional view of yet another example hybrid cable.
  • the example hybrid cables for communication networks described herein may be used to carry optical communication signals, electrical communication signals, and/or electrical power to power remotely located telecommunications equipment.
  • the telecommunications equipment may include switches, remote terminals, etc. used to implement a service provider's network and/or telecommunications equipment (e.g., telephones, network interface devices, modems, etc.) located at customer premises (e.g., customer houses, office buildings, etc.).
  • An example hybrid cable includes a plurality of electrical conductors (e.g., a bundle of electrical conductors) disposed along a central axis of the hybrid cable.
  • the plurality of electrical conductors may include a first twisted pair cable in a twisted configuration with a second twisted pair cable.
  • the first twisted pair cable may be configured to carry a communication signal and the second twisted pair cable may be configured to carry electricity without a communication signal.
  • the plurality of electrical conductors may include coaxial cables.
  • the example hybrid cable also includes a first jacket (e.g., a polyethylene jacket) surrounding the plurality of electrical conductors and a plurality of optical fibers adjacent to (e.g., about, next to, indirectly/directly on, etc.) an outer surface of the first jacket.
  • a first jacket e.g., a polyethylene jacket
  • the example hybrid cable may include a water-blocking jacket surrounding the plurality of optical fibers to keep moisture out of the cable.
  • the plurality of optical fibers may be circumferentially spaced, in a radial configuration, braided, and/or twisted around the first jacket.
  • Cables are often implemented using strain relief members and/or compression relief members separate from electrical conductors or optical fibers to maintain structural integrity against external forces (e.g., wind, compacting dirt, under water currents, etc.) that act upon the cables.
  • the bundle of electrical conductors may function as the strain relief member and/or the compression relief member.
  • Carrying power on electrical conductors can increase the heat of the electrical conductors. Varying temperature of an electrical conductor can change its electrical conductivity properties or characteristics and its communication properties or characteristics. To substantially reduce, minimize, or eliminate the heat transfer from electrical conductors used to carry electrical power to electrical conductors used to communicate information, power-carrying conductors (e.g., a first twisted pair cable) and signal-carrying conductors (e.g., a second twisted pair cable) are arranged relative to one another to substantially reduce heat transfer from the power-carrying conductor to the signal-carrying conductor.
  • power-carrying conductors e.g., a first twisted pair cable
  • signal-carrying conductors e.g., a second twisted pair cable
  • An example method for using an example hybrid cable described herein involves transmitting an electrical communication signal via first conductors (e.g., twisted-pair conductors or coaxial cable conductors) in a plurality of conductors disposed along a central axis of the hybrid cable. Electrical power without a communication signal is then transmitted via second conductors (e.g., second twisted-pair conductors or coaxial cable conductors) in the plurality of conductors.
  • first conductors e.g., twisted-pair conductors or coaxial cable conductors
  • second conductors e.g., second twisted-pair conductors or coaxial cable conductors
  • an optical communication signal is transmitted via one of a plurality of optical fibers arranged adjacent to (e.g., about, next to, indirectly/directly on, etc.) the plurality of conductors (e.g., the plurality of optical fibers may be arranged in a radial configuration, circumferentially spaced, braided, and/or twisted around the plurality of conductors.
  • An example method for installing, repairing, and/or performing maintenance on an example hybrid cable involves coupling first conductors to an electrical signal communicator and coupling second conductors to an electricity supply or power source.
  • first and second twisted pair conductors form part of a bundle of conductors located along an axial center of the example hybrid cable.
  • One of a plurality of optical fibers can then be coupled to an optical signal communicator.
  • the plurality of optical fibers are adjacent to (e.g., about, next to, indirectly/directly on, etc.) the bundle of conductors (e.g., the plurality of optical fibers are arranged in a radial configuration, circumferentially spaced, twisted, and/or braided around or about the bundle of conductors).
  • the method may involve removing a water-blocking jacket surrounding the plurality of optical fibers and/or removing a polyethylene jacket surrounding the first and second twisted pair conductors.
  • a tool may be configured to facilitate carrying out the example method for installing, repairing, and/or performing maintenance on the example hybrid cable.
  • Another example hybrid cable includes a plurality of optical fibers (e.g., a bundle of optical fibers, an optical ribbon fiber bundle, etc.) disposed along a central axis of the cable and a jacket (e.g., a water-blocking jacket) surrounding the plurality of optical fibers.
  • the example hybrid cable also includes a plurality of bundles of electrical conductors (i.e., a plurality of electrical conductor bundles) circumferentially spaced around an outer surface of the jacket. At least some of the electrical conductors bundles are configured to carry at least one of information or electrical power.
  • the example hybrid cable includes a dry-core tube surrounding the plurality of optical fibers.
  • one or more of the electrical conductor bundles may form at least one of a strain relief member or a compression relief member.
  • one or more of the electrical conductor bundles may include twisted pair conductors and/or coaxial cable conductors.
  • the electrical conductors may be in a twisted configuration with one another (e.g., two or more twisted pair conductors and/or two or more coaxial cable conductors may be in a twisted configuration with one another).
  • Another example method for using an example hybrid cable involves transmitting an optical communication signal via one of a plurality of optical fibers (e.g., a bundle of optical fibers, an optical ribbon fiber bundle) disposed along a central axial portion of the cable.
  • the example method also involves transmitting an electrical communication signal via at least a first electrical conductor disposed in one of a plurality of electrical conductor bundles circumferentially spaced around the plurality of optical fibers.
  • electrical power without a communication signal is transmitted via at least a second electrical conductor disposed in any of the electrical conductor bundles.
  • Another example method for installing, repairing, and/or performing maintenance on an example hybrid cable involves coupling one of a plurality of optical fibers disposed along a central axial portion of the cable to an optical signal communicator.
  • the example method also involves coupling a first electrical conductor to an electrical signal communicator and a second electrical conductor to an electricity supply.
  • the first and second electrical conductors are disposed in one of a plurality of electrical conductor bundles circumferentially spaced around (e.g., in a radial configuration around) the plurality of optical fibers.
  • the method involves removing a water-blocking jacket and/or a dry-core tube surrounding the plurality of optical fibers.
  • a tool may be configured to facilitate carrying out the example method for installing, repairing, and/or performing maintenance on the example hybrid cable.
  • an example network system 100 includes a central office 102 that exchanges voice and data information with customer sites 104 (i.e., subscriber sites 104 ).
  • the central office 102 enables the customer sites 104 to transmit and/or receive voice and data information with each other and/or other entities.
  • the central office 102 may enable landline analog and/or digital telephone services, Internet services, data networking services, video services, television services, radio services, etc.
  • Example hybrid twisted-pair fiber cables described herein may be used to communicatively couple components within the central office 102 with communications equipment at the customer sites 104 (i.e., customer premises equipment (“CPE”)).
  • CPE customer premises equipment
  • Electrical signal communications may include, for example, plain old telephone service (“POTS”) communications, analog digital subscriber line (“ADSL”) communications, etc.
  • Optical signal communications may include, for example, wave division multiplexing (“WDM”) communications, dense WDM (“DWDM”) communications, synchronous optical network (“SONET”) communications, etc.
  • WDM wave division multiplexing
  • DWDM dense WDM
  • SONET synchronous optical network
  • the central office 102 includes an Ethernet asynchronous transfer mode (“ATM”) switch 106 , a voice gateway 108 , and a digital loop carrier at a central office terminal (“DLC CT”) 110 .
  • the Ethernet ATM switch 106 , the voice gateway 108 , and the DLC CT 110 are communicatively coupled to a fiber distribution frame (“FDF”) 112 via optical fibers 114 .
  • FDF fiber distribution frame
  • the central office 102 is also provided with a local digital switch (“LDS”) 116 .
  • LDS 116 is communicatively coupled with main distribution frame (“MDF”) 118 via a copper cable 120 .
  • MDF main distribution frame
  • the central office 102 is provided with a power source 122 .
  • Optical fibers 124 communicatively coupled to the FDF 112 and twisted pair copper cables 126 and 128 communicatively and/or electrically coupled to the MDF 118 are spliced with example hybrid twisted-pair fiber cables 130 and 132 at copper-fiber splice cases 134 a and 134 b .
  • the hybrid twisted-pair fiber cables 130 and 132 are used to deliver electrical power and carry voice and data information.
  • the hybrid twisted-pair fiber cables 130 and 132 may also be used to communicatively couple one or more remote nodes 136 (e.g., remote node digital subscriber line access multiplexers (“RN DSLAM's”)), DLC remote terminals (“RT's”) 138 , serving area interfaces (“SAI's”) 140 , and/or any other equipment to the central office 102 .
  • remote nodes 136 e.g., remote node digital subscriber line access multiplexers (“RN DSLAM's”)
  • RT's DLC remote terminals
  • SAI's serving area interfaces
  • an example hybrid twisted-pair fiber cable 142 is used to communicatively and/or electrically couple the SAI 140 to a secondary remote node 144 (e.g., an optical splitter/coupler and copper splicer).
  • Copper cables 146 are then used to communicatively and/or electrically couple the secondary remote node 144 to network interface devices (“NID's”) 148 at the customer sites 104 .
  • the secondary remote node 144 may be communicatively coupled to the NID's 148 using example hybrid cables substantially similar or identical to the example hybrid twisted-pair fiber cables 130 , 132 , and 142 . In this manner, relatively higher bandwidth capabilities may be provided to the customer sites 104 while simultaneously providing electrical power from the power source 122 at the central office 102 to the NID's 148 .
  • Providing electrical power from the power source 122 enables the NID's 148 to continue providing communication services at the customer sites 104 when power grid failures occur at the customer sites 104 .
  • FIG. 2 depicts another example network system 200 that may be implemented using the example hybrid cables described herein.
  • the example network system 200 is implemented using example hybrid fiber coaxial cables to carry optical communication signals and electrical communication signals between a headend office 202 and customer sites 204 .
  • the headend office 202 includes an Ethernet ATM switch 206 , a voice gateway 208 , and a cable modem termination system (“CMTS”) 210 .
  • the Ethernet ATM switch 206 , the voice gateway 208 , and the CMTS 210 are communicatively coupled to a FDF 212 via optical fibers 214 .
  • the headend office 202 is provided with a power source 222 .
  • An optical fiber 224 communicatively coupled to the FDF 212 at the headend office 202 and a coaxial cable 226 communicatively and/or electrically coupled to the CMTS 210 at the headend office 202 are spliced with an example hybrid coaxial fiber cable 230 at a coaxial-fiber splice case 232 .
  • a copper cable 234 electrically coupled to the power source 222 and the hybrid coaxial fiber cable 230 are spliced at a copper-fiber splice case 236 .
  • the hybrid coaxial fiber cable 230 is used to deliver electrical power, data/video/audio communication information, etc.
  • the hybrid coaxial fiber cable 230 may also be used to communicatively couple a fiber coax node (“FCN”) 240 and/or any other communications equipment to the headend office 202 .
  • FCN fiber coax node
  • an example coaxial hybrid cable 242 is used to communicatively and/or electrically couple the VCN 240 to a fiber line amplifier 244 powered via the coaxial cable portion of the hybrid coaxial fiber cable 242 .
  • Coaxial cables 246 are then used to communicatively and/or electrically couple the fiber line amplifier 244 to NID's 248 at the customer sites 204 .
  • the fiber line amplifier 244 may be communicatively coupled to the NID's 248 using example hybrid cables substantially similar or identical to the example hybrid coaxial fiber cables 230 and 242 .
  • FIG. 3 depicts a side view of an example hybrid cable 300 and FIG. 4 depicts a cross-sectional view of the example hybrid cable 300 .
  • the example hybrid cable 300 may be used to implement the example hybrid twisted-pair fiber cables 130 , 132 , and 142 described above in connection with FIG. 1 .
  • the example hybrid cable 300 includes a plurality of electrical conductors 302 (e.g., a bundle of electrical conductors 302 ) disposed along a central axis 304 of the hybrid cable 300 .
  • the plurality of electrical conductors 302 are implemented using individually insulated twisted pair cables (e.g., two or more twisted pair cables) in a twisted or braided configuration and may be used to communicate data (e.g., voice, data, video, audio information) and/or carry electrical power (e.g., carry electricity without a communication/data signal).
  • the twisted-pair cables may be implemented using 19-26 AWG (i.e., American Wire Gauge) copper pairs.
  • the example hybrid cable 300 also includes a polyethylene jacket 306 (or a jacket made of any other suitable material) surrounding the plurality of electrical conductors 302 and a plurality of optical fiber bundles 308 adjacent to (e.g., about, next to, indirectly/directly on, etc.) an outer surface 310 of the polyethylene jacket 306 .
  • the optical fiber bundles 308 include a plurality of optical fibers 312 that may be used to communicate information (e.g., voice, data, video, audio, etc.).
  • the hybrid cable 300 does not include a separate strain relief member and/or a separate compression relief member. Instead, the plurality of electrical conductors 302 functions as a strain relief member and/or a compression relief member. By providing the plurality of electrical conductors 302 in a twisted or braided configuration, the plurality of electrical conductors 302 are provided with relatively more strength and/or resilience than one of the electrical conductors 302 would provide alone. In this manner, the plurality of electrical conductors 302 are suitably configured to provide strain relief and/or compression relief for the hybrid cable 300 .
  • the plurality of electrical conductors 302 are arranged to substantially reduce, minimize, or eliminate heat transfer from electrical power-carrying conductors to electrical signal-carrying conductors.
  • heat from one body is typically transferred to relatively cooler neighboring bodies.
  • heat typically radiates or transfers away from a central axis of the cable toward the outside of the cable because the external surface of the cable is relatively cooler than the internal portions of the cable.
  • the plurality of electrical conductors 302 is provided with electrical conductors 314 to carry communication signals (i.e., signal-carrying conductors 314 ) and electrical conductors 316 to carry electrical power (i.e., power-carrying conductors 316 ).
  • the signal-carrying conductors 314 may be arranged substantially closer to the central axis 304 than the power-carrying conductors 316 .
  • heat generated by the power-carrying conductors 316 substantially radiates away from the signal-carrying conductors 314 and toward an outer surface 318 of the example hybrid cable 300 .
  • the signal-carrying conductors 314 may be twisted together or braided together separate from the power-carrying conductors 316 .
  • the power-carrying conductors 316 may be twisted, braided, or otherwise arranged around a bundle or a plurality of the signal-carrying conductors 314 .
  • the signal-carrying conductors 314 and the power-carrying conductors 316 may be braided or twisted together and the signal-carrying conductors 314 may be arranged substantially closer to the central axis 304 than the power-carrying conductors 316 .
  • the optical fiber bundles 308 may be arranged on outer surface 310 of the polyethylene jacket 306 .
  • optical fibers 308 may be circumferentially spaced, placed in a radial configuration, braided, and/or twisted around the polyethylene jacket 306 .
  • the example hybrid cable 300 is provided with a water-blocking jacket 320 (e.g., a water-blocking tape).
  • the example hybrid cable 300 is provided with a strength jacket 322 that surrounds the water-blocking jacket 320 and which may be implemented using a Kevlar-strength yarn.
  • the strength jacket 322 is then surrounded with an external polyethylene jacket 324 (or an external jacket made of any other suitable material).
  • the example hybrid cable 300 is also provided with a rip cord 326 between the strength jacket 322 and the external polyethylene jacket 324 to facilitate removal of the external polyethylene jacket 324 during installation or repair of the example hybrid cable 300 .
  • FIG. 5 depicts a cross-sectional view of another example hybrid cable 500 .
  • the example hybrid cable 500 may be used to implement the example hybrid coaxial fiber cables 230 and 242 described above in connection with FIG. 2 .
  • the example hybrid cable 500 includes a plurality of electrical conductors 502 (e.g., a bundle of electrical conductors 502 ) disposed along a central axis (not shown) (e.g., the central axis 304 shown in FIG. 3 ) of the example hybrid cable 500 .
  • the plurality of electrical conductors 502 may be implemented using individually insulated RG-6 (i.e., Radio Guide type-6 coaxial conductor) shielded double over-jacketed cable.
  • RG-6 i.e., Radio Guide type-6 coaxial conductor
  • other types of coaxial cable may be used instead.
  • the example hybrid cable 300 also includes a polyethylene jacket 506 (or a jacket made of any other suitable material) surrounding the plurality of electrical conductors 502 and a plurality of optical fiber bundles 508 on an outer surface 510 of the polyethylene jacket 506 .
  • the polyethylene jacket 506 may be substantially thicker and stronger than the polyethylene jacket 306 of the example hybrid cable 300 .
  • the optical fiber bundles 508 include a plurality of optical fibers 512 .
  • the electrical conductors 502 and the optical fibers 512 may be used to communicate information (e.g., voice, data, video, audio, etc.).
  • one or more of the electrical conductors 502 may be used to carry electrical power (e.g., carry electricity without a communication/data signal).
  • the plurality of electrical conductors 502 may include signal-carrying conductors 514 and electrical power carrying conductors 516 .
  • the signal-carrying conductors 514 may be arranged substantially closer to the central axis of the example hybrid cable 500 than the power-carrying conductors 516 so that heat generated by the power-carrying conductors 516 radiates substantially away from the signal-carrying conductors 514 and toward an outer surface 518 of the example hybrid cable 500 .
  • the example hybrid cable 500 is also provided with a water-blocking jacket 520 (e.g., a water-blocking tape), a strength jacket 522 , an external polyethylene jacket 524 (or an external jacket made of any other suitable material), and a rip cord 526 .
  • the water-blocking jacket 520 , the strength jacket 522 , the external polyethylene jacket 524 , and the rip cord 526 are substantially similar or identical to the water-blocking jacket 320 , the strength jacket 322 , the external polyethylene jacket 324 , and the rip cord 326 described, respectively, above in connection with FIG. 3 .
  • a network element (e.g., a coupling device, a receptacle, the DLC RT 138 of FIG. 1 , the SAI 140 of FIG. 1 , or any other communication device) may be configured to be coupled to the example hybrid cable 300 and/or the example hybrid cable 500 .
  • the network element may include a first interface to connect to at least one of a plurality of electrical conductors (e.g., the plurality of electrical conductors 314 and 316 of FIG. 4 or 514 and 516 of FIG. 5 ) disposed along a central axis (e.g., the central axis 304 of FIG. 3 ) of a cable (e.g., one of the cables 300 or 500 ).
  • the network element may also include a second interface to connect to one of a plurality of optical fibers (e.g., the optical fibers 312 of FIGS. 3 and 4 or the optical fibers 512 of FIG. 5 ) adjacent to (e.g., in a radial configuration around, circumferentially spaced around, etc.) the plurality of electrical conductors.
  • the network element may be configured to be powered via one of the plurality of electrical conductors.
  • the network element may be configured to receive a communication signal via the at least one of the plurality of electrical conductors or via at least one of the plurality of optical fibers.
  • FIG. 6 depicts a cross-sectional view of another example hybrid cable 600 .
  • the example hybrid cable 600 may be used to implement the example network systems 100 and/or 200 of FIGS. 1 and 2 .
  • the example hybrid cable 600 includes a plurality of optical fibers 602 (e.g., an optical ribbon fiber bundle) disposed along a central axis (not shown) (e.g., the central axis 304 shown in FIG. 3 ) of the example hybrid cable 600 .
  • the example hybrid cable 600 also includes a dry-core central tube 604 that insulates and protects the optical fibers 602 and keeps the optical fibers 602 substantially free from water and moisture.
  • the dry-core central tube 604 is surrounded by a water-blocking jacket 606 .
  • the example hybrid cable 600 is also provided with a plurality of electrical conductor bundles 608 on an outer surface 610 of the water-blocking jacket 606 .
  • the electrical conductor bundles 608 are circumferentially spaced or in a radial configuration around the water-blocking jacket 606 .
  • the electrical conductor bundles 608 may additionally or alternatively be twisted or braided around the water-blocking jacket 606 .
  • the electrical conductor bundles 608 include a plurality of electrical conductors 612 that may be implemented using individually insulated 19-26 AWG twisted pair copper conductors and/or RG-6 coaxial cable conductors.
  • the plurality of electrical conductors 612 may be implemented using other types of electrical conductors.
  • the optical fibers 602 and the electrical conductors 612 may be used to communicate information (e.g., voice, data, video, audio, etc.).
  • one or more of the electrical conductors 612 may be used to carry electrical power (e.g., carry electricity without a communication/data signal).
  • the electrical conductors may be arranged as described above in connection with FIGS. 3 and 5 so that heat from power-carrying conductors dissipates substantially away from signal-carrying conductors.
  • the electrical conductor bundles 608 are also used to provide strain relief and/or compression relief for the example hybrid cable 600 . That is, in addition to carrying communication signals and/or electrical power, the electrical conductor bundles 608 may also function as strain relief members and/or compression relief members for the example hybrid cable 600 . For example, twisting or braiding the electrical conductors 612 provides the electrical conductor bundles 608 with relatively more strength and/or resilience than one electrical conductor 612 would have alone. In this manner, one or more of the electrical conductor bundles 608 are suitably configured to provide strain relief and/or compression relief for the example hybrid cable 600 .
  • the example hybrid cable 600 is also provided with a strength jacket 622 , an external polyethylene jacket 624 (or an external jacket made of any other suitable material), and a rip cord 626 .
  • the strength jacket 622 , the external polyethylene jacket 624 , and the rip cord 626 are substantially similar or identical to the strength jacket 622 , the external polyethylene jacket 624 , and the rip cord 626 , respectively, described above in connection with FIG. 3 .
  • a network element (e.g., a coupling device, a receptacle, the DLC RT 138 of FIG. 1 , the SAI 140 of FIG. 1 , or any other communication device) may be configured to be coupled to the example hybrid cable 600 .
  • the network element may include a first interface to connect to at least one of the plurality of optical fibers 602 disposed along a central axis of the cable 600 .
  • the network element may also include a second interface to connect to at least one of the electrical conductors 612 within one of the electrical conductor bundles 608 .
  • the network element may be configured to be powered via at least one of the electrical conductors 612 .
  • the network element may be configured to receive a communication signal via one of the electrical conductors and/or one of the optical fibers 602 .

Abstract

Hybrid cables for communication networks are disclosed. An example cable includes a plurality of electrical conductors disposed along a central axis of the cable. The plurality of electrical conductors includes a first twisted pair cable in a twisted configuration with a second twisted pair cable. The cable also includes a first jacket surrounding the plurality of electrical conductors and a plurality of optical fibers adjacent to an outer surface of the first jacket.

Description

    FIELD OF THE DISCLOSURE
  • The present disclosure relates generally to communications systems and, more particularly, to hybrid cables for communication networks.
  • BACKGROUND
  • Telecommunication companies often upgrade existing communication networks implemented using copper cables by replacing the previously installed copper cables with optical fiber to provide relatively higher bandwidth to customers. In addition, in newly developed areas (e.g., new residential areas or new business areas) telecommunication companies have expanded existing networks using optical fiber. Unlike traditional electrically conductive cables (e.g., copper cables), optical fiber provides relatively higher bandwidth that enables many more types of data/voice communication services and the ability to serve more customers using fewer communication media. For example, one optical fiber can carry data/voice information corresponding to the same number of customers that would ordinarily require a plurality of electrical conductors.
  • A drawback to replacing electrical conductors with optical fiber or installing only optical fibers in new areas is lack of a medium to carry electrical power. That is, in network portions that use electrical conductors, the electrical conductors can carry electrical power to power telecommunications equipment (e.g., switches) located in remote areas. However, without the electrical conductors, power must be supplied from alternate sources such as, for example, power company power grids, batteries, etc. However, tapping into power company power grids to obtain electrical power is an added expense. Additionally, if the power grid fails, which often happens during inclement weather, customers may be left without voice and/or data communication services. Such outages are not acceptable according to Federal Communication Commission regulations that prohibit landline voice communications from failing for more than a specified amount of time per year, which is far less than the duration for which power grids fail per year.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 depicts an example network system that may be implemented using the example hybrid cables described herein.
  • FIG. 2 depicts another example network system that may be implemented using the example hybrid cables described herein.
  • FIG. 3 depicts a side view of an example hybrid cable.
  • FIG. 4 depicts a cross-sectional view of the example hybrid cable of FIG. 3.
  • FIG. 5 depicts a cross-sectional view of another example hybrid cable.
  • FIG. 6 depicts a cross-sectional view of yet another example hybrid cable.
  • DETAILED DESCRIPTION
  • The example hybrid cables for communication networks described herein may be used to carry optical communication signals, electrical communication signals, and/or electrical power to power remotely located telecommunications equipment. The telecommunications equipment may include switches, remote terminals, etc. used to implement a service provider's network and/or telecommunications equipment (e.g., telephones, network interface devices, modems, etc.) located at customer premises (e.g., customer houses, office buildings, etc.).
  • An example hybrid cable includes a plurality of electrical conductors (e.g., a bundle of electrical conductors) disposed along a central axis of the hybrid cable. In an example implementation, the plurality of electrical conductors may include a first twisted pair cable in a twisted configuration with a second twisted pair cable. In some example implementations, the first twisted pair cable may be configured to carry a communication signal and the second twisted pair cable may be configured to carry electricity without a communication signal. In another example implementation, the plurality of electrical conductors may include coaxial cables. The example hybrid cable also includes a first jacket (e.g., a polyethylene jacket) surrounding the plurality of electrical conductors and a plurality of optical fibers adjacent to (e.g., about, next to, indirectly/directly on, etc.) an outer surface of the first jacket. Also, the example hybrid cable may include a water-blocking jacket surrounding the plurality of optical fibers to keep moisture out of the cable. In addition, the plurality of optical fibers may be circumferentially spaced, in a radial configuration, braided, and/or twisted around the first jacket.
  • Cables are often implemented using strain relief members and/or compression relief members separate from electrical conductors or optical fibers to maintain structural integrity against external forces (e.g., wind, compacting dirt, under water currents, etc.) that act upon the cables. Unlike known cables that require a separate strain relief member and/or compression member often implemented using a strengthened nylon member, in the example hybrid cables described herein, the bundle of electrical conductors may function as the strain relief member and/or the compression relief member.
  • Carrying power on electrical conductors can increase the heat of the electrical conductors. Varying temperature of an electrical conductor can change its electrical conductivity properties or characteristics and its communication properties or characteristics. To substantially reduce, minimize, or eliminate the heat transfer from electrical conductors used to carry electrical power to electrical conductors used to communicate information, power-carrying conductors (e.g., a first twisted pair cable) and signal-carrying conductors (e.g., a second twisted pair cable) are arranged relative to one another to substantially reduce heat transfer from the power-carrying conductor to the signal-carrying conductor.
  • An example method for using an example hybrid cable described herein involves transmitting an electrical communication signal via first conductors (e.g., twisted-pair conductors or coaxial cable conductors) in a plurality of conductors disposed along a central axis of the hybrid cable. Electrical power without a communication signal is then transmitted via second conductors (e.g., second twisted-pair conductors or coaxial cable conductors) in the plurality of conductors. Also, an optical communication signal is transmitted via one of a plurality of optical fibers arranged adjacent to (e.g., about, next to, indirectly/directly on, etc.) the plurality of conductors (e.g., the plurality of optical fibers may be arranged in a radial configuration, circumferentially spaced, braided, and/or twisted around the plurality of conductors.
  • An example method for installing, repairing, and/or performing maintenance on an example hybrid cable involves coupling first conductors to an electrical signal communicator and coupling second conductors to an electricity supply or power source. In an example implementation, first and second twisted pair conductors form part of a bundle of conductors located along an axial center of the example hybrid cable. One of a plurality of optical fibers can then be coupled to an optical signal communicator. The plurality of optical fibers are adjacent to (e.g., about, next to, indirectly/directly on, etc.) the bundle of conductors (e.g., the plurality of optical fibers are arranged in a radial configuration, circumferentially spaced, twisted, and/or braided around or about the bundle of conductors). In some example implementations, the method may involve removing a water-blocking jacket surrounding the plurality of optical fibers and/or removing a polyethylene jacket surrounding the first and second twisted pair conductors. In an example implementation, a tool may be configured to facilitate carrying out the example method for installing, repairing, and/or performing maintenance on the example hybrid cable.
  • Another example hybrid cable includes a plurality of optical fibers (e.g., a bundle of optical fibers, an optical ribbon fiber bundle, etc.) disposed along a central axis of the cable and a jacket (e.g., a water-blocking jacket) surrounding the plurality of optical fibers. The example hybrid cable also includes a plurality of bundles of electrical conductors (i.e., a plurality of electrical conductor bundles) circumferentially spaced around an outer surface of the jacket. At least some of the electrical conductors bundles are configured to carry at least one of information or electrical power.
  • In some example implementations, the example hybrid cable includes a dry-core tube surrounding the plurality of optical fibers. In addition, one or more of the electrical conductor bundles may form at least one of a strain relief member or a compression relief member. In some example implementations, one or more of the electrical conductor bundles may include twisted pair conductors and/or coaxial cable conductors. Also, the electrical conductors may be in a twisted configuration with one another (e.g., two or more twisted pair conductors and/or two or more coaxial cable conductors may be in a twisted configuration with one another).
  • Another example method for using an example hybrid cable involves transmitting an optical communication signal via one of a plurality of optical fibers (e.g., a bundle of optical fibers, an optical ribbon fiber bundle) disposed along a central axial portion of the cable. The example method also involves transmitting an electrical communication signal via at least a first electrical conductor disposed in one of a plurality of electrical conductor bundles circumferentially spaced around the plurality of optical fibers. In addition, electrical power without a communication signal is transmitted via at least a second electrical conductor disposed in any of the electrical conductor bundles.
  • Another example method for installing, repairing, and/or performing maintenance on an example hybrid cable involves coupling one of a plurality of optical fibers disposed along a central axial portion of the cable to an optical signal communicator. The example method also involves coupling a first electrical conductor to an electrical signal communicator and a second electrical conductor to an electricity supply. The first and second electrical conductors are disposed in one of a plurality of electrical conductor bundles circumferentially spaced around (e.g., in a radial configuration around) the plurality of optical fibers. In some example implementations, the method involves removing a water-blocking jacket and/or a dry-core tube surrounding the plurality of optical fibers. In an example implementation, a tool may be configured to facilitate carrying out the example method for installing, repairing, and/or performing maintenance on the example hybrid cable.
  • Turning to FIG. 1, an example network system 100 includes a central office 102 that exchanges voice and data information with customer sites 104 (i.e., subscriber sites 104). The central office 102 enables the customer sites 104 to transmit and/or receive voice and data information with each other and/or other entities. For example, the central office 102 may enable landline analog and/or digital telephone services, Internet services, data networking services, video services, television services, radio services, etc. Example hybrid twisted-pair fiber cables described herein may be used to communicatively couple components within the central office 102 with communications equipment at the customer sites 104 (i.e., customer premises equipment (“CPE”)). In this manner, information may be exchanged between the central office 102 and the customer sites 104 using electrical signals and/or optical signals. Electrical signal communications may include, for example, plain old telephone service (“POTS”) communications, analog digital subscriber line (“ADSL”) communications, etc. Optical signal communications may include, for example, wave division multiplexing (“WDM”) communications, dense WDM (“DWDM”) communications, synchronous optical network (“SONET”) communications, etc. In the illustrated example, the electrical conductors of the example hybrid twisted-pair fiber cables are implemented using copper. However, in other example implementations any other conductive material may be used instead.
  • In the illustrated example of FIG. 1, the central office 102 includes an Ethernet asynchronous transfer mode (“ATM”) switch 106, a voice gateway 108, and a digital loop carrier at a central office terminal (“DLC CT”) 110. The Ethernet ATM switch 106, the voice gateway 108, and the DLC CT 110 are communicatively coupled to a fiber distribution frame (“FDF”) 112 via optical fibers 114.
  • The central office 102 is also provided with a local digital switch (“LDS”) 116. The LDS 116 is communicatively coupled with main distribution frame (“MDF”) 118 via a copper cable 120. In addition, to provide electrical power to remotely located communications equipment and/or to communications equipment (e.g., network access devices, telephones, modems, etc.) located at the customer sites 104, the central office 102 is provided with a power source 122.
  • Optical fibers 124 communicatively coupled to the FDF 112 and twisted pair copper cables 126 and 128 communicatively and/or electrically coupled to the MDF 118 are spliced with example hybrid twisted- pair fiber cables 130 and 132 at copper- fiber splice cases 134 a and 134 b. The hybrid twisted- pair fiber cables 130 and 132 are used to deliver electrical power and carry voice and data information. The hybrid twisted- pair fiber cables 130 and 132 may also be used to communicatively couple one or more remote nodes 136 (e.g., remote node digital subscriber line access multiplexers (“RN DSLAM's”)), DLC remote terminals (“RT's”) 138, serving area interfaces (“SAI's”) 140, and/or any other equipment to the central office 102. In addition, an example hybrid twisted-pair fiber cable 142 is used to communicatively and/or electrically couple the SAI 140 to a secondary remote node 144 (e.g., an optical splitter/coupler and copper splicer). Copper cables 146 are then used to communicatively and/or electrically couple the secondary remote node 144 to network interface devices (“NID's”) 148 at the customer sites 104. Additionally or alternatively, the secondary remote node 144 may be communicatively coupled to the NID's 148 using example hybrid cables substantially similar or identical to the example hybrid twisted- pair fiber cables 130, 132, and 142. In this manner, relatively higher bandwidth capabilities may be provided to the customer sites 104 while simultaneously providing electrical power from the power source 122 at the central office 102 to the NID's 148. Providing electrical power from the power source 122 enables the NID's 148 to continue providing communication services at the customer sites 104 when power grid failures occur at the customer sites 104.
  • FIG. 2 depicts another example network system 200 that may be implemented using the example hybrid cables described herein. In the illustrated example, the example network system 200 is implemented using example hybrid fiber coaxial cables to carry optical communication signals and electrical communication signals between a headend office 202 and customer sites 204. In the illustrated example of FIG. 2, the headend office 202 includes an Ethernet ATM switch 206, a voice gateway 208, and a cable modem termination system (“CMTS”) 210. The Ethernet ATM switch 206, the voice gateway 208, and the CMTS 210 are communicatively coupled to a FDF 212 via optical fibers 214. To provide electrical power to remotely located communications equipment and/or to communications equipment (e.g., network access devices, telephones, modems, etc.) located at the customer sites 204, the headend office 202 is provided with a power source 222.
  • An optical fiber 224 communicatively coupled to the FDF 212 at the headend office 202 and a coaxial cable 226 communicatively and/or electrically coupled to the CMTS 210 at the headend office 202 are spliced with an example hybrid coaxial fiber cable 230 at a coaxial-fiber splice case 232. In addition, a copper cable 234 electrically coupled to the power source 222 and the hybrid coaxial fiber cable 230 are spliced at a copper-fiber splice case 236. In the illustrated example, the hybrid coaxial fiber cable 230 is used to deliver electrical power, data/video/audio communication information, etc. The hybrid coaxial fiber cable 230 may also be used to communicatively couple a fiber coax node (“FCN”) 240 and/or any other communications equipment to the headend office 202. In addition, an example coaxial hybrid cable 242 is used to communicatively and/or electrically couple the VCN 240 to a fiber line amplifier 244 powered via the coaxial cable portion of the hybrid coaxial fiber cable 242. Coaxial cables 246 are then used to communicatively and/or electrically couple the fiber line amplifier 244 to NID's 248 at the customer sites 204. Additionally or alternatively, the fiber line amplifier 244 may be communicatively coupled to the NID's 248 using example hybrid cables substantially similar or identical to the example hybrid coaxial fiber cables 230 and 242.
  • FIG. 3 depicts a side view of an example hybrid cable 300 and FIG. 4 depicts a cross-sectional view of the example hybrid cable 300. The example hybrid cable 300 may be used to implement the example hybrid twisted- pair fiber cables 130, 132, and 142 described above in connection with FIG. 1. As shown in FIGS. 3 and 4, the example hybrid cable 300 includes a plurality of electrical conductors 302 (e.g., a bundle of electrical conductors 302) disposed along a central axis 304 of the hybrid cable 300. In the illustrated example, the plurality of electrical conductors 302 are implemented using individually insulated twisted pair cables (e.g., two or more twisted pair cables) in a twisted or braided configuration and may be used to communicate data (e.g., voice, data, video, audio information) and/or carry electrical power (e.g., carry electricity without a communication/data signal). The twisted-pair cables may be implemented using 19-26 AWG (i.e., American Wire Gauge) copper pairs. The example hybrid cable 300 also includes a polyethylene jacket 306 (or a jacket made of any other suitable material) surrounding the plurality of electrical conductors 302 and a plurality of optical fiber bundles 308 adjacent to (e.g., about, next to, indirectly/directly on, etc.) an outer surface 310 of the polyethylene jacket 306. The optical fiber bundles 308 include a plurality of optical fibers 312 that may be used to communicate information (e.g., voice, data, video, audio, etc.).
  • Unlike known cables, the hybrid cable 300 does not include a separate strain relief member and/or a separate compression relief member. Instead, the plurality of electrical conductors 302 functions as a strain relief member and/or a compression relief member. By providing the plurality of electrical conductors 302 in a twisted or braided configuration, the plurality of electrical conductors 302 are provided with relatively more strength and/or resilience than one of the electrical conductors 302 would provide alone. In this manner, the plurality of electrical conductors 302 are suitably configured to provide strain relief and/or compression relief for the hybrid cable 300.
  • Temperature variations in materials such as electrically conductive materials can change the conductivity and, thus, communication properties of those materials. Electrical conductors carrying electrical power (i.e., power-carrying conductors) typically generate more heat than electrical conductors carrying relatively lower voltage communication signals (i.e., signal-carrying conductors). To maintain the properties or characteristics of signal-carrying conductors substantially stable or the same throughout operation, the plurality of electrical conductors 302 are arranged to substantially reduce, minimize, or eliminate heat transfer from electrical power-carrying conductors to electrical signal-carrying conductors. As is known from laws of thermal transfer, heat from one body is typically transferred to relatively cooler neighboring bodies. In a cable, heat typically radiates or transfers away from a central axis of the cable toward the outside of the cable because the external surface of the cable is relatively cooler than the internal portions of the cable.
  • In the illustrated example of FIG. 3, the plurality of electrical conductors 302 is provided with electrical conductors 314 to carry communication signals (i.e., signal-carrying conductors 314) and electrical conductors 316 to carry electrical power (i.e., power-carrying conductors 316). To reduce the amount of heat transferred from the power-carrying conductors 316 to the signal-carrying conductors 314, the signal-carrying conductors 314 may be arranged substantially closer to the central axis 304 than the power-carrying conductors 316. In this manner, heat generated by the power-carrying conductors 316 substantially radiates away from the signal-carrying conductors 314 and toward an outer surface 318 of the example hybrid cable 300. The signal-carrying conductors 314 may be twisted together or braided together separate from the power-carrying conductors 316. The power-carrying conductors 316 may be twisted, braided, or otherwise arranged around a bundle or a plurality of the signal-carrying conductors 314. In an alternative example implementation, the signal-carrying conductors 314 and the power-carrying conductors 316 may be braided or twisted together and the signal-carrying conductors 314 may be arranged substantially closer to the central axis 304 than the power-carrying conductors 316.
  • As shown in FIG. 3, the optical fiber bundles 308 may be arranged on outer surface 310 of the polyethylene jacket 306. For example, optical fibers 308 may be circumferentially spaced, placed in a radial configuration, braided, and/or twisted around the polyethylene jacket 306. To protect the optical fiber bundles 308 and the plurality of electrical conductors 302 from moisture and water, the example hybrid cable 300 is provided with a water-blocking jacket 320 (e.g., a water-blocking tape).
  • To protect the optical fiber bundles 308 and the plurality of electrical conductors 302 from outside forces that may be, for example, applied to the outer surface 318 of the hybrid cable 300, the example hybrid cable 300 is provided with a strength jacket 322 that surrounds the water-blocking jacket 320 and which may be implemented using a Kevlar-strength yarn. The strength jacket 322 is then surrounded with an external polyethylene jacket 324 (or an external jacket made of any other suitable material). The example hybrid cable 300 is also provided with a rip cord 326 between the strength jacket 322 and the external polyethylene jacket 324 to facilitate removal of the external polyethylene jacket 324 during installation or repair of the example hybrid cable 300.
  • FIG. 5 depicts a cross-sectional view of another example hybrid cable 500. The example hybrid cable 500 may be used to implement the example hybrid coaxial fiber cables 230 and 242 described above in connection with FIG. 2. The example hybrid cable 500 includes a plurality of electrical conductors 502 (e.g., a bundle of electrical conductors 502) disposed along a central axis (not shown) (e.g., the central axis 304 shown in FIG. 3) of the example hybrid cable 500. The plurality of electrical conductors 502 may be implemented using individually insulated RG-6 (i.e., Radio Guide type-6 coaxial conductor) shielded double over-jacketed cable. However, other types of coaxial cable may be used instead. The example hybrid cable 300 also includes a polyethylene jacket 506 (or a jacket made of any other suitable material) surrounding the plurality of electrical conductors 502 and a plurality of optical fiber bundles 508 on an outer surface 510 of the polyethylene jacket 506. The polyethylene jacket 506 may be substantially thicker and stronger than the polyethylene jacket 306 of the example hybrid cable 300. The optical fiber bundles 508 include a plurality of optical fibers 512. The electrical conductors 502 and the optical fibers 512 may be used to communicate information (e.g., voice, data, video, audio, etc.). In addition, one or more of the electrical conductors 502 may be used to carry electrical power (e.g., carry electricity without a communication/data signal).
  • The plurality of electrical conductors 502 may include signal-carrying conductors 514 and electrical power carrying conductors 516. To reduce the amount of heat transferred from the power-carrying conductors 516 to the signal-carrying conductors 514, the signal-carrying conductors 514 may be arranged substantially closer to the central axis of the example hybrid cable 500 than the power-carrying conductors 516 so that heat generated by the power-carrying conductors 516 radiates substantially away from the signal-carrying conductors 514 and toward an outer surface 518 of the example hybrid cable 500.
  • The example hybrid cable 500 is also provided with a water-blocking jacket 520 (e.g., a water-blocking tape), a strength jacket 522, an external polyethylene jacket 524 (or an external jacket made of any other suitable material), and a rip cord 526. The water-blocking jacket 520, the strength jacket 522, the external polyethylene jacket 524, and the rip cord 526 are substantially similar or identical to the water-blocking jacket 320, the strength jacket 322, the external polyethylene jacket 324, and the rip cord 326 described, respectively, above in connection with FIG. 3.
  • A network element (e.g., a coupling device, a receptacle, the DLC RT 138 of FIG. 1, the SAI 140 of FIG. 1, or any other communication device) may be configured to be coupled to the example hybrid cable 300 and/or the example hybrid cable 500. For example, the network element may include a first interface to connect to at least one of a plurality of electrical conductors (e.g., the plurality of electrical conductors 314 and 316 of FIG. 4 or 514 and 516 of FIG. 5) disposed along a central axis (e.g., the central axis 304 of FIG. 3) of a cable (e.g., one of the cables 300 or 500). The network element may also include a second interface to connect to one of a plurality of optical fibers (e.g., the optical fibers 312 of FIGS. 3 and 4 or the optical fibers 512 of FIG. 5) adjacent to (e.g., in a radial configuration around, circumferentially spaced around, etc.) the plurality of electrical conductors. In some example implementations, the network element may be configured to be powered via one of the plurality of electrical conductors. In addition, the network element may be configured to receive a communication signal via the at least one of the plurality of electrical conductors or via at least one of the plurality of optical fibers.
  • FIG. 6 depicts a cross-sectional view of another example hybrid cable 600. The example hybrid cable 600 may be used to implement the example network systems 100 and/or 200 of FIGS. 1 and 2. In the illustrated example, the example hybrid cable 600 includes a plurality of optical fibers 602 (e.g., an optical ribbon fiber bundle) disposed along a central axis (not shown) (e.g., the central axis 304 shown in FIG. 3) of the example hybrid cable 600. The example hybrid cable 600 also includes a dry-core central tube 604 that insulates and protects the optical fibers 602 and keeps the optical fibers 602 substantially free from water and moisture. In the illustrated example, the dry-core central tube 604 is surrounded by a water-blocking jacket 606.
  • The example hybrid cable 600 is also provided with a plurality of electrical conductor bundles 608 on an outer surface 610 of the water-blocking jacket 606. In the illustrated example, the electrical conductor bundles 608 are circumferentially spaced or in a radial configuration around the water-blocking jacket 606. However, the electrical conductor bundles 608 may additionally or alternatively be twisted or braided around the water-blocking jacket 606. The electrical conductor bundles 608 include a plurality of electrical conductors 612 that may be implemented using individually insulated 19-26 AWG twisted pair copper conductors and/or RG-6 coaxial cable conductors. Of course, in alternative example implementations, the plurality of electrical conductors 612 may be implemented using other types of electrical conductors.
  • The optical fibers 602 and the electrical conductors 612 may be used to communicate information (e.g., voice, data, video, audio, etc.). In addition, one or more of the electrical conductors 612 may be used to carry electrical power (e.g., carry electricity without a communication/data signal). To reduce the amount of heat transferred from the power-carrying conductors to signal-carrying conductors, the electrical conductors may be arranged as described above in connection with FIGS. 3 and 5 so that heat from power-carrying conductors dissipates substantially away from signal-carrying conductors.
  • In the illustrated example, the electrical conductor bundles 608 are also used to provide strain relief and/or compression relief for the example hybrid cable 600. That is, in addition to carrying communication signals and/or electrical power, the electrical conductor bundles 608 may also function as strain relief members and/or compression relief members for the example hybrid cable 600. For example, twisting or braiding the electrical conductors 612 provides the electrical conductor bundles 608 with relatively more strength and/or resilience than one electrical conductor 612 would have alone. In this manner, one or more of the electrical conductor bundles 608 are suitably configured to provide strain relief and/or compression relief for the example hybrid cable 600.
  • The example hybrid cable 600 is also provided with a strength jacket 622, an external polyethylene jacket 624 (or an external jacket made of any other suitable material), and a rip cord 626. The strength jacket 622, the external polyethylene jacket 624, and the rip cord 626 are substantially similar or identical to the strength jacket 622, the external polyethylene jacket 624, and the rip cord 626, respectively, described above in connection with FIG. 3.
  • A network element (e.g., a coupling device, a receptacle, the DLC RT 138 of FIG. 1, the SAI 140 of FIG. 1, or any other communication device) may be configured to be coupled to the example hybrid cable 600. For example, the network element may include a first interface to connect to at least one of the plurality of optical fibers 602 disposed along a central axis of the cable 600. The network element may also include a second interface to connect to at least one of the electrical conductors 612 within one of the electrical conductor bundles 608. In some example implementations, the network element may be configured to be powered via at least one of the electrical conductors 612. In addition, the network element may be configured to receive a communication signal via one of the electrical conductors and/or one of the optical fibers 602.
  • To the extent the above specification describes example components and functions with reference to particular devices, standards and/or protocols, it is understood that the teachings of the invention are not limited to such devices, standards and/or protocols. Such devices are periodically superseded by faster or more efficient systems having the same general purpose. Accordingly, replacement devices, standards and/or protocols having the same general functions are equivalents which are intended to be included within the scope of the accompanying claims.
  • Although certain methods, apparatus, systems, and articles of manufacture have been described herein, the scope of coverage of this patent is not limited thereto. To the contrary, this patent covers all methods, apparatus, systems, and articles of manufacture fairly falling within the scope of the appended claims either literally or under the doctrine of equivalents.

Claims (27)

1. A cable comprising:
a plurality of electrical conductors disposed along a central axis of the cable, wherein the plurality of electrical conductors includes a first twisted pair cable in a twisted configuration with a second twisted pair cable;
a first jacket surrounding the plurality of electrical conductors; and
a plurality of optical fibers adjacent to an outer surface of the first jacket.
2. A cable as defined in claim 1, wherein the optical fibers are circumferentially spaced around the first jacket.
3. A cable as defined in claim 1, wherein the first twisted pair cable is configured to carry a communication signal, and wherein the second twisted pair cable is configured to carry electricity without a communication signal.
4. A cable as defined in claim 1, wherein the plurality of electrical conductors forms at least one of a strain relief member or a compression relief member.
5. A cable as defined in claim 1, wherein the first twisted pair cable and the second twisted pair cable are arranged to minimize heat transfer from the second twisted pair cable to the first twisted pair cable.
6. A cable as defined in claim 1, wherein the plurality of electrical conductors includes at least one of a copper conductor.
7. A cable as defined in claim 1, wherein the first jacket is a polyethylene jacket.
8. A cable as defined in claim 1, further comprising a water-blocking jacket surrounding the plurality of optical fibers.
9. An apparatus comprising:
a bundle of electrical conductors along an axial center of a cable, wherein the bundle of electrical conductors includes a first twisted pair cable in a twisted configuration with a second twisted pair cable;
a first jacket surrounding the bundle of electrical conductors; and
a plurality of optical fibers adjacent to the first jacket.
10. An apparatus as defined in claim 9, wherein the first twisted pair cable is configured to carry a communication signal, and wherein the second twisted pair cable is configured to carry electricity without a communication signal.
11. An apparatus as defined in claim 9, wherein the plurality of optical fibers are arranged in a radial configuration around the first jacket.
12. An apparatus as defined in claim 9, wherein the bundle of electrical conductors forms at least one of a strain relief member or a compression relief member.
13. An apparatus as defined in claim 9, wherein the first twisted pair cable and the second twisted pair cable are arranged to minimize heat transfer from the second twisted pair cable to the first twisted pair cable.
14. An apparatus as defined in claim 9, wherein the bundle of electrical conductors includes at least one of a copper conductor.
15. An apparatus as defined in claim 9, wherein the first jacket is a polyethylene jacket.
16. An apparatus as defined in claim 9, further comprising a water-blocking jacket surrounding the plurality of optical fibers.
17. An apparatus as defined in claim 9, wherein the plurality of optical fibers are grouped into a plurality of optical fiber bundles, and wherein the plurality of optical fiber bundles are in a radial configuration around the bundle of electrical conductors.
18. A cable comprising:
a plurality of optical fibers disposed along a central axis of the cable;
a jacket surrounding the plurality of optical fibers; and
a plurality of bundles of electrical conductors adjacent to an outer surface of the jacket, wherein the plurality of bundles of electrical conductors form at least one of a strain relief member or a compression relief member, and wherein at least some of the bundles of electrical conductors are configured to carry at least one of information or electrical power.
19. A cable as defined in claim 18, wherein the plurality of optical fibers comprises an optical fiber ribbon.
20. A cable as defined in claim 18, wherein the plurality of bundles of electrical conductors are circumferentially spaced around the outer surface of the jacket.
21. (canceled)
22. A cable as defined in claim 18, wherein the at least some of the electrical conductors are in a twisted configuration with one another.
23. A cable as defined in claim 18, wherein at least some of the bundles of electrical conductors include at least one of a twisted pair conductor or a coaxial cable conductor.
24. A cable as defined in claim 18, wherein the jacket is a water-blocking jacket.
25. A cable as defined in claim 18, further comprising a dry-core tube surrounding the plurality of optical fibers, wherein the jacket surrounds the dry-core tube.
26-47. (canceled)
48. A cable as defined in claim 18, wherein the plurality of bundles of electrical conductors are twisted around the jacket.
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Cited By (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20080310848A1 (en) * 2007-06-15 2008-12-18 Hitachi Cable, Ltd. Combined optical and electrical transmission assembly and module
WO2010065632A1 (en) * 2008-12-02 2010-06-10 Corning Cable Systems Llc Optical fiber array cables and associated fiber optic cables and systems
US20110162866A1 (en) * 2010-01-05 2011-07-07 Yoshida Masakazu Multimedia Cable
US20120217039A1 (en) * 2011-02-28 2012-08-30 Roark Bryan R Hybrid cables having varying conductor types
US20140205294A1 (en) * 2013-01-23 2014-07-24 Cox Communications, Inc. Integrating Optical Fiber with Coaxial Cable
US20150102659A1 (en) * 2013-10-11 2015-04-16 The Boeing Company Modular Equipment Center Lightning Threat Reduction Architecture
WO2015047896A3 (en) * 2013-09-27 2015-05-21 Corning Optical Communications LLC Optical communication cable
US9325416B2 (en) 2010-07-30 2016-04-26 At&T Intellectual Property I, L.P. Network interface device for optical premises signals and networks
US20160269115A1 (en) * 2013-11-01 2016-09-15 Tyco Electronics Uk Ltd Hybrid fiber/cu distribution point with external onu-to-dsl conversion unit
US20180375591A1 (en) * 2013-09-19 2018-12-27 Radius Universal Llc Hybrid cable providing data transmission through fiber optic cable and low voltage power over copper wire
US20190097429A1 (en) * 2017-09-27 2019-03-28 Rolls-Royce Plc Electrical interconnect system
WO2019236194A1 (en) * 2018-06-05 2019-12-12 Appleton Grp Llc Hybrid power and fiber optic distribution panels
US20230064925A1 (en) * 2020-03-11 2023-03-02 Sony Olympus Medical Solutions Inc. Medical observation system and transmission cable

Families Citing this family (81)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8472767B2 (en) 2006-05-19 2013-06-25 Corning Cable Systems Llc Fiber optic cable and fiber optic cable assembly for wireless access
US7787823B2 (en) 2006-09-15 2010-08-31 Corning Cable Systems Llc Radio-over-fiber (RoF) optical fiber cable system with transponder diversity and RoF wireless picocellular system using same
US7848654B2 (en) 2006-09-28 2010-12-07 Corning Cable Systems Llc Radio-over-fiber (RoF) wireless picocellular system with combined picocells
US8873585B2 (en) 2006-12-19 2014-10-28 Corning Optical Communications Wireless Ltd Distributed antenna system for MIMO technologies
US8111998B2 (en) 2007-02-06 2012-02-07 Corning Cable Systems Llc Transponder systems and methods for radio-over-fiber (RoF) wireless picocellular systems
US20100054746A1 (en) 2007-07-24 2010-03-04 Eric Raymond Logan Multi-port accumulator for radio-over-fiber (RoF) wireless picocellular systems
KR101334901B1 (en) * 2007-07-27 2013-12-02 삼성전자주식회사 Module and method for transmitting electrical signals and apparatus for inspecting electric condition having the module
US8175459B2 (en) 2007-10-12 2012-05-08 Corning Cable Systems Llc Hybrid wireless/wired RoF transponder and hybrid RoF communication system using same
WO2009081376A2 (en) 2007-12-20 2009-07-02 Mobileaccess Networks Ltd. Extending outdoor location based services and applications into enclosed areas
KR100956479B1 (en) 2008-03-06 2010-05-07 엘에스전선 주식회사 Optical fiber and power wire composite cable
US8116940B2 (en) * 2008-06-18 2012-02-14 The Boeing Company Systems and method for collecting data in a vehicle
EP2394378A1 (en) 2009-02-03 2011-12-14 Corning Cable Systems LLC Optical fiber-based distributed antenna systems, components, and related methods for monitoring and configuring thereof
WO2010091004A1 (en) 2009-02-03 2010-08-12 Corning Cable Systems Llc Optical fiber-based distributed antenna systems, components, and related methods for calibration thereof
US9673904B2 (en) 2009-02-03 2017-06-06 Corning Optical Communications LLC Optical fiber-based distributed antenna systems, components, and related methods for calibration thereof
GB2468274B (en) * 2009-02-10 2013-07-24 Fibrepoint Ltd A modular optical data network and related system
EP4152649A1 (en) 2009-03-05 2023-03-22 Commscope Technologies LLC Methods, systems and devices for integrating wireless technology into a fiber optic network
US8548330B2 (en) 2009-07-31 2013-10-01 Corning Cable Systems Llc Sectorization in distributed antenna systems, and related components and methods
US8280259B2 (en) 2009-11-13 2012-10-02 Corning Cable Systems Llc Radio-over-fiber (RoF) system for protocol-independent wired and/or wireless communication
US8577195B2 (en) * 2009-11-19 2013-11-05 Apple Inc. Interface accessories with optical and electrical paths
US8718294B2 (en) * 2009-11-19 2014-05-06 Apple Inc. Audio connectors with wavelength-division-multiplexing capabilities
US8682003B2 (en) 2009-11-19 2014-03-25 Apple Inc. Equipment with optical paths for noise cancellation signals
US8573861B2 (en) * 2009-11-19 2013-11-05 Apple Inc. Audio jacks with optical and electrical paths
US8651750B2 (en) * 2009-11-19 2014-02-18 Apple Inc. Audio connectors with optical structures and electrical contacts
US8275265B2 (en) 2010-02-15 2012-09-25 Corning Cable Systems Llc Dynamic cell bonding (DCB) for radio-over-fiber (RoF)-based networks and communication systems and related methods
US8885999B2 (en) * 2010-03-19 2014-11-11 Corning Cable Systems Llc Optical USB cable with controlled fiber positioning
US8620162B2 (en) 2010-03-25 2013-12-31 Apple Inc. Handheld electronic device with integrated transmitters
US9078287B2 (en) 2010-04-14 2015-07-07 Adc Telecommunications, Inc. Fiber to the antenna
US8837940B2 (en) 2010-04-14 2014-09-16 Adc Telecommunications, Inc. Methods and systems for distributing fiber optic telecommunication services to local areas and for supporting distributed antenna systems
US20110268446A1 (en) 2010-05-02 2011-11-03 Cune William P Providing digital data services in optical fiber-based distributed radio frequency (rf) communications systems, and related components and methods
US9525488B2 (en) 2010-05-02 2016-12-20 Corning Optical Communications LLC Digital data services and/or power distribution in optical fiber-based distributed communications systems providing digital data and radio frequency (RF) communications services, and related components and methods
KR101679663B1 (en) * 2010-05-14 2016-11-25 엘에스전선 주식회사 Optical and power composite cable
US9196956B2 (en) * 2010-06-23 2015-11-24 3M Innovative Properties Company Hybrid cabling system and network for in-building wireless applications
CN103119865A (en) 2010-08-16 2013-05-22 康宁光缆系统有限责任公司 Remote antenna clusters and related systems, components, and methods supporting digital data signal propagation between remote antenna units
US9252874B2 (en) 2010-10-13 2016-02-02 Ccs Technology, Inc Power management for remote antenna units in distributed antenna systems
CN203504582U (en) * 2011-02-21 2014-03-26 康宁光缆系统有限责任公司 Distributed antenna system and power supply apparatus for distributing electric power thereof
CN103609146B (en) 2011-04-29 2017-05-31 康宁光缆系统有限责任公司 For increasing the radio frequency in distributing antenna system(RF)The system of power, method and apparatus
CN103548290B (en) 2011-04-29 2016-08-31 康宁光缆系统有限责任公司 Judge the communication propagation delays in distributing antenna system and associated component, System and method for
WO2012170391A1 (en) 2011-06-10 2012-12-13 Corning Cable Systems Llc Fiber optic cables allowing fiber translation to reduce bend attenuation
US8676012B2 (en) 2012-01-20 2014-03-18 Corning Cable Systems Llc Fiber optic cable for very-short-distance networks
WO2013148986A1 (en) 2012-03-30 2013-10-03 Corning Cable Systems Llc Reducing location-dependent interference in distributed antenna systems operating in multiple-input, multiple-output (mimo) configuration, and related components, systems, and methods
EP2842245A1 (en) 2012-04-25 2015-03-04 Corning Optical Communications LLC Distributed antenna system architectures
US8909012B2 (en) * 2012-04-27 2014-12-09 Corning Cable Systems Llc Hybrid cable including fiber-optic and electrical-conductor stranded elements
US9188756B2 (en) * 2012-08-06 2015-11-17 Corning Cable Systems Llc Hybrid cable with fiber-optic and conductor elements
WO2014024192A1 (en) 2012-08-07 2014-02-13 Corning Mobile Access Ltd. Distribution of time-division multiplexed (tdm) management services in a distributed antenna system, and related components, systems, and methods
US9170389B2 (en) * 2012-08-28 2015-10-27 Corning Cable Systems Llc Hybrid fiber optic cable systems
US8886000B2 (en) * 2012-09-05 2014-11-11 Corning Cable Systems Llc Hybrid fiber-optic cable
US9455784B2 (en) * 2012-10-31 2016-09-27 Corning Optical Communications Wireless Ltd Deployable wireless infrastructures and methods of deploying wireless infrastructures
CN105308876B (en) 2012-11-29 2018-06-22 康宁光电通信有限责任公司 Remote unit antennas in distributing antenna system combines
US9647758B2 (en) 2012-11-30 2017-05-09 Corning Optical Communications Wireless Ltd Cabling connectivity monitoring and verification
US9557505B2 (en) 2013-03-18 2017-01-31 Commscope Technologies Llc Power and optical fiber interface
WO2014197103A2 (en) 2013-03-18 2014-12-11 Adc Telecommunications, Inc. Architecture for a wireless network
EP2997582A4 (en) 2013-05-14 2017-01-04 ADC Telecommunications Inc. Power/fiber hybrid cable
CN105452951B (en) 2013-06-12 2018-10-19 康宁光电通信无线公司 Voltage type optical directional coupler
EP3008828B1 (en) 2013-06-12 2017-08-09 Corning Optical Communications Wireless Ltd. Time-division duplexing (tdd) in distributed communications systems, including distributed antenna systems (dass)
MX358643B (en) * 2013-07-15 2018-08-29 Adc Telecommunications Inc Power and optical fiber interface.
US9247543B2 (en) 2013-07-23 2016-01-26 Corning Optical Communications Wireless Ltd Monitoring non-supported wireless spectrum within coverage areas of distributed antenna systems (DASs)
US9661781B2 (en) 2013-07-31 2017-05-23 Corning Optical Communications Wireless Ltd Remote units for distributed communication systems and related installation methods and apparatuses
US9385810B2 (en) 2013-09-30 2016-07-05 Corning Optical Communications Wireless Ltd Connection mapping in distributed communication systems
US9178635B2 (en) 2014-01-03 2015-11-03 Corning Optical Communications Wireless Ltd Separation of communication signal sub-bands in distributed antenna systems (DASs) to reduce interference
US9775123B2 (en) 2014-03-28 2017-09-26 Corning Optical Communications Wireless Ltd. Individualized gain control of uplink paths in remote units in a distributed antenna system (DAS) based on individual remote unit contribution to combined uplink power
US9357551B2 (en) 2014-05-30 2016-05-31 Corning Optical Communications Wireless Ltd Systems and methods for simultaneous sampling of serial digital data streams from multiple analog-to-digital converters (ADCS), including in distributed antenna systems
US9525472B2 (en) 2014-07-30 2016-12-20 Corning Incorporated Reducing location-dependent destructive interference in distributed antenna systems (DASS) operating in multiple-input, multiple-output (MIMO) configuration, and related components, systems, and methods
US9730228B2 (en) 2014-08-29 2017-08-08 Corning Optical Communications Wireless Ltd Individualized gain control of remote uplink band paths in a remote unit in a distributed antenna system (DAS), based on combined uplink power level in the remote unit
US9602210B2 (en) 2014-09-24 2017-03-21 Corning Optical Communications Wireless Ltd Flexible head-end chassis supporting automatic identification and interconnection of radio interface modules and optical interface modules in an optical fiber-based distributed antenna system (DAS)
US10659163B2 (en) 2014-09-25 2020-05-19 Corning Optical Communications LLC Supporting analog remote antenna units (RAUs) in digital distributed antenna systems (DASs) using analog RAU digital adaptors
US9420542B2 (en) 2014-09-25 2016-08-16 Corning Optical Communications Wireless Ltd System-wide uplink band gain control in a distributed antenna system (DAS), based on per band gain control of remote uplink paths in remote units
KR102292627B1 (en) * 2014-10-08 2021-08-20 엘에스전선 주식회사 Optical fiber and power line composite cable
WO2016071902A1 (en) 2014-11-03 2016-05-12 Corning Optical Communications Wireless Ltd. Multi-band monopole planar antennas configured to facilitate improved radio frequency (rf) isolation in multiple-input multiple-output (mimo) antenna arrangement
WO2016075696A1 (en) 2014-11-13 2016-05-19 Corning Optical Communications Wireless Ltd. Analog distributed antenna systems (dass) supporting distribution of digital communications signals interfaced from a digital signal source and analog radio frequency (rf) communications signals
US9729267B2 (en) 2014-12-11 2017-08-08 Corning Optical Communications Wireless Ltd Multiplexing two separate optical links with the same wavelength using asymmetric combining and splitting
WO2016098111A1 (en) 2014-12-18 2016-06-23 Corning Optical Communications Wireless Ltd. Digital- analog interface modules (da!ms) for flexibly.distributing digital and/or analog communications signals in wide-area analog distributed antenna systems (dass)
WO2016098109A1 (en) 2014-12-18 2016-06-23 Corning Optical Communications Wireless Ltd. Digital interface modules (dims) for flexibly distributing digital and/or analog communications signals in wide-area analog distributed antenna systems (dass)
US20160249365A1 (en) 2015-02-19 2016-08-25 Corning Optical Communications Wireless Ltd. Offsetting unwanted downlink interference signals in an uplink path in a distributed antenna system (das)
US9681313B2 (en) 2015-04-15 2017-06-13 Corning Optical Communications Wireless Ltd Optimizing remote antenna unit performance using an alternative data channel
US9948349B2 (en) 2015-07-17 2018-04-17 Corning Optical Communications Wireless Ltd IOT automation and data collection system
US10560214B2 (en) 2015-09-28 2020-02-11 Corning Optical Communications LLC Downlink and uplink communication path switching in a time-division duplex (TDD) distributed antenna system (DAS)
US10236924B2 (en) 2016-03-31 2019-03-19 Corning Optical Communications Wireless Ltd Reducing out-of-channel noise in a wireless distribution system (WDS)
EP3539255A4 (en) 2016-11-09 2020-05-27 Commscope Inc. of North Carolina Exchangeable powered infrastructure module
US11252811B2 (en) 2020-01-15 2022-02-15 Cisco Technology, Inc. Power distribution from point-of-load with cooling
US11307368B2 (en) 2020-04-07 2022-04-19 Cisco Technology, Inc. Integration of power and optics through cold plates for delivery to electronic and photonic integrated circuits
US11320610B2 (en) * 2020-04-07 2022-05-03 Cisco Technology, Inc. Integration of power and optics through cold plate for delivery to electronic and photonic integrated circuits

Citations (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4852965A (en) * 1987-02-27 1989-08-01 American Telephone And Telegraph Company At&T Bell Laboratories Composite service and distribution communications media
US5140319A (en) * 1990-06-15 1992-08-18 Westech Geophysical, Inc. Video logging system having remote power source
US5224190A (en) * 1992-03-31 1993-06-29 At&T Bell Laboratories Underwater optical fiber cable having optical fiber coupled to grooved metallic core member
US5268971A (en) * 1991-11-07 1993-12-07 Alcatel Na Cable Systems, Inc. Optical fiber/metallic conductor composite cable
US5418878A (en) * 1994-05-09 1995-05-23 Metropolitan Communication Authority, Inc. Multi-mode communications cable having a coaxial cable with twisted electrical conductors and optical fibers
US5469523A (en) * 1994-06-10 1995-11-21 Commscope, Inc. Composite fiber optic and electrical cable and associated fabrication method
US5495547A (en) * 1995-04-12 1996-02-27 Western Atlas International, Inc. Combination fiber-optic/electrical conductor well logging cable
US5557698A (en) * 1994-08-19 1996-09-17 Belden Wire & Cable Company Coaxial fiber optical cable
US5623531A (en) * 1986-10-22 1997-04-22 Nilssen; Ole K. Auxiliary power for telephone distribution system
US5745627A (en) * 1995-12-28 1998-04-28 Lucent Technologies Inc. Composite cable for fiber-to-the-curb architecture using centralized power
US5896482A (en) * 1994-12-20 1999-04-20 Lucent Technologies Inc. Optical fiber cable for underwater use using terrestrial optical fiber cable
US5913003A (en) * 1997-01-10 1999-06-15 Lucent Technologies Inc. Composite fiber optic distribution cable
US5917977A (en) * 1997-09-16 1999-06-29 Siecor Corporation Composite cable
US6028975A (en) * 1998-01-13 2000-02-22 Sun Microsystems, Inc. Low thermal skew fiber optic cable
US6169834B1 (en) * 1998-05-13 2001-01-02 Alcatel Slotted composite cable having a cable housing with a tubular opening for copper pairs and a slot for an optical fiber
USRE37125E1 (en) * 1995-02-09 2001-04-03 Optical Solutions, Inc. Universal demarcation point
US6349161B1 (en) * 1999-05-28 2002-02-19 Tycom (Us) Inc. Undersea communications cable having centrally located, plastic buffer tube

Family Cites Families (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5180884A (en) * 1991-02-19 1993-01-19 Champlain Cable Corporation Shielded wire and cable
US5337388A (en) * 1993-08-03 1994-08-09 International Business Machines Corporation Matrix of pluggable connectors for connecting large numbers of clustered electrical and/or opticcal cables to a module
US5396573A (en) * 1993-08-03 1995-03-07 International Business Machines Corporation Pluggable connectors for connecting large numbers of electrical and/or optical cables to a module through a seal
US5842881A (en) * 1993-08-03 1998-12-01 International Business Machines Corporation Substrate-embedded pluggable receptacles for connecting clustered electrical cables to a module
US5544270A (en) * 1995-03-07 1996-08-06 Mohawk Wire And Cable Corp. Multiple twisted pair data cable with concentric cable groups
US5621841A (en) * 1995-09-20 1997-04-15 Siecor Corporation Optical fiber cable containing ribbons in stranded tubes
US6563990B1 (en) * 1998-06-22 2003-05-13 Corning Cable Systems, Llc Self-supporting cables and an apparatus and methods for making the same
US6895185B1 (en) * 2000-08-24 2005-05-17 Korea Advanced Institute Of Science And Technology Multi-purpose optical fiber access network
KR100558309B1 (en) * 2003-10-09 2006-03-10 한국전자통신연구원 Optical module interfacing device and Ethernet system
US7331819B2 (en) * 2005-07-11 2008-02-19 Finisar Corporation Media converter

Patent Citations (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5623531A (en) * 1986-10-22 1997-04-22 Nilssen; Ole K. Auxiliary power for telephone distribution system
US4852965A (en) * 1987-02-27 1989-08-01 American Telephone And Telegraph Company At&T Bell Laboratories Composite service and distribution communications media
US5140319A (en) * 1990-06-15 1992-08-18 Westech Geophysical, Inc. Video logging system having remote power source
US5268971A (en) * 1991-11-07 1993-12-07 Alcatel Na Cable Systems, Inc. Optical fiber/metallic conductor composite cable
US5224190A (en) * 1992-03-31 1993-06-29 At&T Bell Laboratories Underwater optical fiber cable having optical fiber coupled to grooved metallic core member
US5418878A (en) * 1994-05-09 1995-05-23 Metropolitan Communication Authority, Inc. Multi-mode communications cable having a coaxial cable with twisted electrical conductors and optical fibers
US5469523A (en) * 1994-06-10 1995-11-21 Commscope, Inc. Composite fiber optic and electrical cable and associated fabrication method
US5557698A (en) * 1994-08-19 1996-09-17 Belden Wire & Cable Company Coaxial fiber optical cable
US5896482A (en) * 1994-12-20 1999-04-20 Lucent Technologies Inc. Optical fiber cable for underwater use using terrestrial optical fiber cable
USRE37125E1 (en) * 1995-02-09 2001-04-03 Optical Solutions, Inc. Universal demarcation point
US5495547A (en) * 1995-04-12 1996-02-27 Western Atlas International, Inc. Combination fiber-optic/electrical conductor well logging cable
US5745627A (en) * 1995-12-28 1998-04-28 Lucent Technologies Inc. Composite cable for fiber-to-the-curb architecture using centralized power
US5913003A (en) * 1997-01-10 1999-06-15 Lucent Technologies Inc. Composite fiber optic distribution cable
US5917977A (en) * 1997-09-16 1999-06-29 Siecor Corporation Composite cable
US6028975A (en) * 1998-01-13 2000-02-22 Sun Microsystems, Inc. Low thermal skew fiber optic cable
US6317541B1 (en) * 1998-01-13 2001-11-13 Sun Microsystems, Inc. Low thermal skew fiber optic cable
US6169834B1 (en) * 1998-05-13 2001-01-02 Alcatel Slotted composite cable having a cable housing with a tubular opening for copper pairs and a slot for an optical fiber
US6349161B1 (en) * 1999-05-28 2002-02-19 Tycom (Us) Inc. Undersea communications cable having centrally located, plastic buffer tube

Cited By (30)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8452181B2 (en) * 2007-06-15 2013-05-28 Hitachi Cable, Ltd. Combined optical and electrical transmission assembly and module
US20080310848A1 (en) * 2007-06-15 2008-12-18 Hitachi Cable, Ltd. Combined optical and electrical transmission assembly and module
WO2010065632A1 (en) * 2008-12-02 2010-06-10 Corning Cable Systems Llc Optical fiber array cables and associated fiber optic cables and systems
US20110162866A1 (en) * 2010-01-05 2011-07-07 Yoshida Masakazu Multimedia Cable
WO2011085021A2 (en) * 2010-01-05 2011-07-14 Belden Inc. Multimedia cable
WO2011085021A3 (en) * 2010-01-05 2011-10-06 Belden Inc. Multimedia cable
CN102782776A (en) * 2010-01-05 2012-11-14 贝尔登公司 Multimedia cable
US8546690B2 (en) 2010-01-05 2013-10-01 Belden Inc. Multimedia cable
US9325416B2 (en) 2010-07-30 2016-04-26 At&T Intellectual Property I, L.P. Network interface device for optical premises signals and networks
US10057668B2 (en) 2010-07-30 2018-08-21 At&T Intellectual Property I, L.P. Network interface device for optical premises signals and networks
US20120217039A1 (en) * 2011-02-28 2012-08-30 Roark Bryan R Hybrid cables having varying conductor types
US8983253B2 (en) * 2011-02-28 2015-03-17 Corning Cable Systems Llc Hybrid cables having varying conductor types
US9355760B2 (en) * 2013-01-23 2016-05-31 Cox Communications, Inc. Integrating optical fiber with coaxial cable
US20140205294A1 (en) * 2013-01-23 2014-07-24 Cox Communications, Inc. Integrating Optical Fiber with Coaxial Cable
US20180375591A1 (en) * 2013-09-19 2018-12-27 Radius Universal Llc Hybrid cable providing data transmission through fiber optic cable and low voltage power over copper wire
US11025345B2 (en) * 2013-09-19 2021-06-01 Radius Universal Llc Hybrid cable providing data transmission through fiber optic cable and low voltage power over copper wire
US10914907B2 (en) 2013-09-27 2021-02-09 Corning Optical Communications LLC Optical communication cable
US11880078B2 (en) 2013-09-27 2024-01-23 Corning Optical Communications LLC Optical communication cable
WO2015047896A3 (en) * 2013-09-27 2015-05-21 Corning Optical Communications LLC Optical communication cable
US11409064B2 (en) 2013-09-27 2022-08-09 Corning Optical Communications LLC Optical communication cable
US10539756B2 (en) 2013-09-27 2020-01-21 Corning Optical Communications LLC Optical communication cable
US20150102659A1 (en) * 2013-10-11 2015-04-16 The Boeing Company Modular Equipment Center Lightning Threat Reduction Architecture
US9561867B2 (en) * 2013-10-11 2017-02-07 The Boeing Company Modular equipment center lightning threat reduction architecture
US9813156B2 (en) * 2013-11-01 2017-11-07 Commscope Connectivity Uk Limited Hybrid fiber/Cu distribution point with external ONU-to-dsl conversion unit
US20160269115A1 (en) * 2013-11-01 2016-09-15 Tyco Electronics Uk Ltd Hybrid fiber/cu distribution point with external onu-to-dsl conversion unit
US10587122B2 (en) * 2017-09-27 2020-03-10 Rolls-Royce Plc Electrical interconnect system
US20190097429A1 (en) * 2017-09-27 2019-03-28 Rolls-Royce Plc Electrical interconnect system
US10574035B2 (en) 2018-06-05 2020-02-25 Appleton Grp Llc Hybrid power and fiber optic distribution panels
WO2019236194A1 (en) * 2018-06-05 2019-12-12 Appleton Grp Llc Hybrid power and fiber optic distribution panels
US20230064925A1 (en) * 2020-03-11 2023-03-02 Sony Olympus Medical Solutions Inc. Medical observation system and transmission cable

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