Patent · US10895691B2 · B2 · US
Scalable and modular automated fiber optic cross-connect systems
- (11) Publication number
- US10895691B2
- (21) Application number
- 16/053,551
- (22) Filing date
- 2018-08-02
- (30) Priority date
- 2007-10-15
- (43) Publication date
- 2021-01-19
- (45) Date of grant
- 2021-01-19
- (51) IPC
- G02B 6/35; G02B 6/38; G02B 6/44; H04Q 1/14; H04Q 11/00
- (52) CPC
- (73) Assignee
- Telescent Inc
- (72) Inventors
- Anthony Stephen Kewitsch
- (54) Title
- Scalable and modular automated fiber optic cross-connect systems
- (57) Abstract
This invention discloses highly scalable and modular automated optical cross connect switch devices which exhibit low loss and scalability to high port counts. In particular, a device for the programmable interconnection of large numbers of optical fibers (100s-1000s) is provided, whereby a two-dimensional array of fiber optic connections is mapped in an ordered and rule-based fashion into a one-dimensional array with tensioned fiber optic circuit elements tracing substantially straight lines there between. Fiber optic elements are terminated in a stacked arrangement of flexible fiber optic circuit elements with a capacity to retain excess fiber lengths while maintaining an adequate bend radius. The combination of these elements partitions the switch volume into multiple independent, non-interfering zones, which retain their independence for arbitrary and unlimited numbers of reconfigurations. The separation into spaced-apart zones provides clearance for one or more robotic actuators to enter the free volume substantially adjacent to the two-dimensional array of connectors and mechanically reconfigure connectors without interrupting other circuits.
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Claims (22)
- An arrayed collection of optical fibers each in a substantially straight-line configuration, spanning an interconnect volume adjacent to a storage volume containing a multiplicity of arrayed fiber tensioning and storage elements spaced apart in three dimensions, the optical fibers being continuous in length therebetween, comprising: a multiplicity of terminals arrayed in two dimensions along a surface of the interconnect volume constructed and adapted to receive and latch to proximal ends of the optical fibers; an array of circumferential through ports passing through an intermediate plane separating the interconnect volume and the storage volume, the through ports including low friction surfaces on which optical fibers slide, the fibers being extendable and retractable through the ports and redirected after exiting arrayed fiber tensioning and storage elements toward the multiplicity of terminals; and said multiplicity of arrayed fiber tensioning and storage elements constructed and adapted to retain excess fiber lengths sufficiently to maintain a substantially straight-line configuration in said interconnect volume, wherein said multiplicity of arrayed fiber tensioning and storage elements comprises at least one plurality of said fiber tensioning and storage elements on a common substrate, wherein said fiber tensioning and storage elements comprise take-up spools for fiber retention, and wherein an axis of rotation of each of said take-up spools is perpendicular to said common substrate.
- The arrayed collection of optical fibers in accordance with claim 1, wherein the optical fibers are coated fibers.
- The arrayed collection of optical fibers of claim 1, wherein the array of circumferential through ports is substantially one-dimensional.
- The arrayed collection of optical fibers of claim 1, wherein the number of terminals is greater than or equal to the number of optical fibers.
- The arrayed collection of optical fibers of claim 1, wherein the multiplicity of terminals comprise a terminal array, and the array of circumferential through ports comprise a throughput port array, and wherein the substantially straight-line configuration of an optical fiber includes up to two arced segments of limited length with greater than a minimum bend radius at the terminal array and throughput port array.
- The arrayed collection of optical fibers of claim 1, wherein the optical fibers comprise coated fibers with a cladding diameter of less than 0.125 mm.
- The arrayed collection of optical fibers of claim 1, wherein waveguide characteristics of the optical fibers are single mode and/or multimode.
- An arrayed collection of optical fibers spanning an interconnect volume and a storage volume, comprising: a multiplicity of terminals arrayed in two dimensions along a surface of the interconnect volume, each of said terminals constructed and adapted to receive and latch to a proximal end of an optical fiber in one of two positions; a multiplicity of arrayed fiber tensioning and storage elements spaced apart in three dimensions and constructed and adapted to maintain fibers under slight tension; an array of through ports crossing a plane separating the interconnect volume and the storage volume, the through ports including low friction surfaces engaging optical fibers and collecting fibers originating from different directions and positions of each arrayed fiber tensioning and storage element and arranging optical fibers in a substantially one-dimensional arrangement so that fibers are substantially parallel and closely spaced to one another at the plane separating the interconnect volume from the storage volume; and wherein said multiplicity of arrayed fiber tensioning and storage elements comprises at least one plurality of said fiber tensioning and storage elements on a common substrate, wherein said fiber tensioning and storage elements comprise take-up spools for fiber retention, and wherein an axis of rotation of each of said take-up spools is perpendicular to said common substrate.
- The arrayed collection of optical fibers of claim 8, each fiber having sufficient tension to maintain a substantially straight-line configuration in the interconnect volume.
- The arrayed collection of optical fibers in accordance with claim 8, wherein the optical fibers have a protective polymeric coating.
- The arrayed collection of optical fibers of claim 8, wherein the number of terminals is greater than or equal to the number of optical fibers plugged therein.
- The arrayed collection of optical fibers of claim 9, wherein the multiplicity of terminals comprise a terminal array, and wherein the substantially straight-line configuration of an optical fiber includes no more than two arced segments of limited length with greater than a minimum bend radius, located at the terminal array and/or the said array of through ports.
- The arrayed collection of optical fibers of claim 8, wherein the optical fibers comprise coated fibers with outer diameter less than 1 mm.
- An arrayed collection of optical fibers spanning an interconnect volume and a storage volume, comprising: a multiplicity of terminals arrayed in two dimensions with rows and columns along a surface of the interconnect volume, each of said terminals constructed and adapted to receive and latch to a proximal end of an optical fiber; a substantially one-dimensional array of circumferential through ports parallel to columns for optical fibers passing through a plane separating the interconnect volume and the storage volume; and a multiplicity of arrayed fiber tensioning and storage elements spaced apart in three dimensions and constructed and adapted to pull fiber lengths sufficiently to maintain a substantially straight-line configuration in the interconnect volume, wherein said fiber lengths are each in a substantially straight-line configuration, wherein the optical fibers comprise coated fibers, wherein the number of terminals is greater than or equal to the number of optical fibers, wherein waveguide characteristics of the optical fibers are single mode and/or multimode, and wherein said multiplicity of arrayed fiber tensioning and storage elements comprises at least one plurality of said fiber tensioning and storage elements on a common substrate, wherein said fiber tensioning and storage elements comprise take-up spools for fiber retention, and wherein an axis of rotation of each of said take-up spools is perpendicular to said common substrate.
- The arrayed collection of optical fibers of claim 14, wherein the multiplicity of terminals comprise a terminal array, and wherein said one-dimensional array of circumferential through ports comprise a throughput port array, and wherein the substantially straight-line configuration of a fiber length includes at least one arced segment of limited length with greater than a minimum bend radius at the terminal array and/or the throughput port array.
- The arrayed collection of optical fibers of claim 14, wherein the optical fibers comprise coated fibers with diameter less than 1 mm.
- The arrayed collection of optical fibers of claim 1, wherein said multiplicity of arrayed fiber tensioning and storage elements comprises at least a second plurality of said fiber tensioning and storage elements on at least a second common substrate distinct from said first common substrate.
- The arrayed collection of optical fibers of claim 1, wherein the optical fibers slide on low friction surfaces of the through ports.
- The arrayed collection of optical fibers of claim 8, wherein the optical fibers maintain an insertion loss less than 1 dB.
- The arrayed collection of optical fibers of claim 1, wherein the fibers are extendable and retractable through the ports via a common guide in the storage volume, and wherein said common guide is on said common substrate.
- The arrayed collection of optical fibers of claim 1, wherein the multiplicity of terminals are arrayed in two dimensions with rows and columns along the surface of the interconnect volume.
- The arrayed collection of optical fibers of claim 21, wherein each row is independently and programmably actuatable.
Description
This invention relates to optical systems using fiber optic cables to transmit illumination and/or signals, and more particularly, to high port count, scalable, modular and automated optical cross-connect devices enabling reconfigurable and programmable connections between fiber optic cables.
Fiber optic patch-panels are used to terminate large numbers of optical fibers in an array of connectors mounted on modular plates, thereby providing a location to manually interconnect patch cords for their routing to adjacent circuits. Splice trays within the panel retain slack fiber and the splices joining connector pigtails to the individual fiber elements originating from one or more cables. Typical patch-panel systems interconnect 100 to 10,000 fibers. Connection to various types of transmission equipment, such as transceivers, amplifiers, switches and to outside plant cables destined for other exchanges, local offices, central offices, optical line terminations and points-of-presence are configured manually at the patch-panel.
As the reach of fiber optic systems extends to FTTH (Fiber-to-the-Home), access and enterprise networks, the locations of patch-panels are becoming geographically more dispersed and the sheer numbers of ports are increasing dramatically. Consequently, the tasks of allocating, reconfiguring and testing a fiber circuit within the network becomes increasingly challenging because of the potential for errors or damage resulting from manual intervention.
Citations (49)
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- US5050955A
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- JPH07104201A
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Record as JSON
{
"publication_number": "US10895691B2",
"country": "US",
"kind": "B2",
"title": "Scalable and modular automated fiber optic cross-connect systems",
"abstract": "This invention discloses highly scalable and modular automated optical cross connect switch devices which exhibit low loss and scalability to high port counts. In particular, a device for the programmable interconnection of large numbers of optical fibers (100s-1000s) is provided, whereby a two-dimensional array of fiber optic connections is mapped in an ordered and rule-based fashion into a one-dimensional array with tensioned fiber optic circuit elements tracing substantially straight lines there between. Fiber optic elements are terminated in a stacked arrangement of flexible fiber optic circuit elements with a capacity to retain excess fiber lengths while maintaining an adequate bend radius. The combination of these elements partitions the switch volume into multiple independent, non-interfering zones, which retain their independence for arbitrary and unlimited numbers of reconfigurations. The separation into spaced-apart zones provides clearance for one or more robotic actuators to enter the free volume substantially adjacent to the two-dimensional array of connectors and mechanically reconfigure connectors without interrupting other circuits.",
"claims": [
"1. An arrayed collection of optical fibers each in a substantially straight-line configuration, spanning an interconnect volume adjacent to a storage volume containing a multiplicity of arrayed fiber tensioning and storage elements spaced apart in three dimensions, the optical fibers being continuous in length therebetween, comprising: a multiplicity of terminals arrayed in two dimensions along a surface of the interconnect volume constructed and adapted to receive and latch to proximal ends of the optical fibers; an array of circumferential through ports passing through an intermediate plane separating the interconnect volume and the storage volume, the through ports including low friction surfaces on which optical fibers slide, the fibers being extendable and retractable through the ports and redirected after exiting arrayed fiber tensioning and storage elements toward the multiplicity of terminals; and said multiplicity of arrayed fiber tensioning and storage elements constructed and adapted to retain excess fiber lengths sufficiently to maintain a substantially straight-line configuration in said interconnect volume, wherein said multiplicity of arrayed fiber tensioning and storage elements comprises at least one plurality of said fiber tensioning and storage elements on a common substrate, wherein said fiber tensioning and storage elements comprise take-up spools for fiber retention, and wherein an axis of rotation of each of said take-up spools is perpendicular to said common substrate.",
"2. The arrayed collection of optical fibers in accordance with claim 1, wherein the optical fibers are coated fibers.",
"3. The arrayed collection of optical fibers of claim 1, wherein the array of circumferential through ports is substantially one-dimensional.",
"4. The arrayed collection of optical fibers of claim 1, wherein the number of terminals is greater than or equal to the number of optical fibers.",
"5. The arrayed collection of optical fibers of claim 1, wherein the multiplicity of terminals comprise a terminal array, and the array of circumferential through ports comprise a throughput port array, and wherein the substantially straight-line configuration of an optical fiber includes up to two arced segments of limited length with greater than a minimum bend radius at the terminal array and throughput port array.",
"6. The arrayed collection of optical fibers of claim 1, wherein the optical fibers comprise coated fibers with a cladding diameter of less than 0.125 mm.",
"7. The arrayed collection of optical fibers of claim 1, wherein waveguide characteristics of the optical fibers are single mode and/or multimode.",
"8. An arrayed collection of optical fibers spanning an interconnect volume and a storage volume, comprising: a multiplicity of terminals arrayed in two dimensions along a surface of the interconnect volume, each of said terminals constructed and adapted to receive and latch to a proximal end of an optical fiber in one of two positions; a multiplicity of arrayed fiber tensioning and storage elements spaced apart in three dimensions and constructed and adapted to maintain fibers under slight tension; an array of through ports crossing a plane separating the interconnect volume and the storage volume, the through ports including low friction surfaces engaging optical fibers and collecting fibers originating from different directions and positions of each arrayed fiber tensioning and storage element and arranging optical fibers in a substantially one-dimensional arrangement so that fibers are substantially parallel and closely spaced to one another at the plane separating the interconnect volume from the storage volume; and wherein said multiplicity of arrayed fiber tensioning and storage elements comprises at least one plurality of said fiber tensioning and storage elements on a common substrate, wherein said fiber tensioning and storage elements comprise take-up spools for fiber retention, and wherein an axis of rotation of each of said take-up spools is perpendicular to said common substrate.",
"9. The arrayed collection of optical fibers of claim 8, each fiber having sufficient tension to maintain a substantially straight-line configuration in the interconnect volume.",
"10. The arrayed collection of optical fibers in accordance with claim 8, wherein the optical fibers have a protective polymeric coating.",
"11. The arrayed collection of optical fibers of claim 8, wherein the number of terminals is greater than or equal to the number of optical fibers plugged therein.",
"12. The arrayed collection of optical fibers of claim 9, wherein the multiplicity of terminals comprise a terminal array, and wherein the substantially straight-line configuration of an optical fiber includes no more than two arced segments of limited length with greater than a minimum bend radius, located at the terminal array and/or the said array of through ports.",
"13. The arrayed collection of optical fibers of claim 8, wherein the optical fibers comprise coated fibers with outer diameter less than 1 mm.",
"14. An arrayed collection of optical fibers spanning an interconnect volume and a storage volume, comprising: a multiplicity of terminals arrayed in two dimensions with rows and columns along a surface of the interconnect volume, each of said terminals constructed and adapted to receive and latch to a proximal end of an optical fiber; a substantially one-dimensional array of circumferential through ports parallel to columns for optical fibers passing through a plane separating the interconnect volume and the storage volume; and a multiplicity of arrayed fiber tensioning and storage elements spaced apart in three dimensions and constructed and adapted to pull fiber lengths sufficiently to maintain a substantially straight-line configuration in the interconnect volume, wherein said fiber lengths are each in a substantially straight-line configuration, wherein the optical fibers comprise coated fibers, wherein the number of terminals is greater than or equal to the number of optical fibers, wherein waveguide characteristics of the optical fibers are single mode and/or multimode, and wherein said multiplicity of arrayed fiber tensioning and storage elements comprises at least one plurality of said fiber tensioning and storage elements on a common substrate, wherein said fiber tensioning and storage elements comprise take-up spools for fiber retention, and wherein an axis of rotation of each of said take-up spools is perpendicular to said common substrate.",
"15. The arrayed collection of optical fibers of claim 14, wherein the multiplicity of terminals comprise a terminal array, and wherein said one-dimensional array of circumferential through ports comprise a throughput port array, and wherein the substantially straight-line configuration of a fiber length includes at least one arced segment of limited length with greater than a minimum bend radius at the terminal array and/or the throughput port array.",
"16. The arrayed collection of optical fibers of claim 14, wherein the optical fibers comprise coated fibers with diameter less than 1 mm.",
"17. The arrayed collection of optical fibers of claim 1, wherein said multiplicity of arrayed fiber tensioning and storage elements comprises at least a second plurality of said fiber tensioning and storage elements on at least a second common substrate distinct from said first common substrate.",
"18. The arrayed collection of optical fibers of claim 1, wherein the optical fibers slide on low friction surfaces of the through ports.",
"19. The arrayed collection of optical fibers of claim 8, wherein the optical fibers maintain an insertion loss less than 1 dB.",
"20. The arrayed collection of optical fibers of claim 1, wherein the fibers are extendable and retractable through the ports via a common guide in the storage volume, and wherein said common guide is on said common substrate.",
"21. The arrayed collection of optical fibers of claim 1, wherein the multiplicity of terminals are arrayed in two dimensions with rows and columns along the surface of the interconnect volume.",
"22. The arrayed collection of optical fibers of claim 21, wherein each row is independently and programmably actuatable."
],
"description_excerpt": "This invention relates to optical systems using fiber optic cables to transmit illumination and/or signals, and more particularly, to high port count, scalable, modular and automated optical cross-connect devices enabling reconfigurable and programmable connections between fiber optic cables.\n\nFiber optic patch-panels are used to terminate large numbers of optical fibers in an array of connectors mounted on modular plates, thereby providing a location to manually interconnect patch cords for their routing to adjacent circuits. Splice trays within the panel retain slack fiber and the splices joining connector pigtails to the individual fiber elements originating from one or more cables. Typical patch-panel systems interconnect 100 to 10,000 fibers. Connection to various types of transmission equipment, such as transceivers, amplifiers, switches and to outside plant cables destined for other exchanges, local offices, central offices, optical line terminations and points-of-presence are configured manually at the patch-panel.\n\nAs the reach of fiber optic systems extends to FTTH (Fiber-to-the-Home), access and enterprise networks, the locations of patch-panels are becoming geographically more dispersed and the sheer numbers of ports are increasing dramatically. Consequently, the tasks of allocating, reconfiguring and testing a fiber circuit within the network becomes increasingly challenging because of the potential for errors or damage resulting from manual intervention.",
"cpc": [
"G02B 6/356",
"G02B 6/3502",
"G02B 6/3556",
"G02B 6/3564",
"G02B 6/3897",
"G02B 6/4452",
"G02B 6/44524",
"G02B 6/44528",
"H04Q 1/145",
"H04Q 11/0005",
"H04Q 2011/0058"
],
"ipc": [
"G02B 6/35",
"G02B 6/38",
"G02B 6/44",
"H04Q 1/14",
"H04Q 11/00"
],
"assignees": [
"Telescent Inc"
],
"inventors": [
"Anthony Stephen Kewitsch"
],
"filing_date": "2018-08-02",
"publication_date": "2021-01-19",
"grant_date": "2021-01-19",
"priority_date": "2007-10-15",
"application_number": "US-201816053551-A",
"family_id": "40534290",
"cited_by_count": 9,
"citations": [
"US5111709A",
"US5050955A",
"US5613021A",
"JPH07104201A",
"US5394503A",
"JPH07333530A",
"US5638222A",
"US5784515A",
"US5699463A",
"JPH11142674A",
"US6504986B1",
"US20060228940A1",
"US6307983B1",
"US6859575B1",
"US7292764B2",
"US6973251B2",
"US6961486B2",
"JP2003139967A",
"US20040125366A1",
"US20080247319A1",
"JP2005346003A",
"US7038135B1",
"US20070036506A1",
"US7315681B2",
"US20090214160A1",
"WO2006054279A1",
"US7702193B2",
"US7289197B2",
"US20060275007A1",
"US7665901B2",
"US8480310B2",
"US8054713B2",
"US7460753B2",
"US8428405B2",
"US7920764B2",
"US8150227B2",
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"US20120321255A1",
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"US10042122B2",
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"US9052490B2",
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}
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