Interconnect cabinets for optical fibers include an enclosure and a splitter and termination panel mounted in the enclosure. The splitter has a plurality of optical fiber-connectorized pigtails extending therefrom. Each of the connectorized pigtails is associated with an optical fiber feeder cable to be coupled to a central office. The termination panel has a plurality of optical fiber connection members, ones of which are associated with respective subscriber locations. The connectorized pigtails have a cable length sufficient to allow connection to the plurality of connection members.
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17. An interconnect cabinet, comprising:
an enclosure;
a termination panel mounted in the enclosure and having a plurality of optical fiber connection members, ones of which are associated with respective subscriber locations or are associated with an optical fiber feeder cable to be coupled to a central office;
at least one jumper cable for cross-connecting ones of the connection members; and
a spooling system mounted in the enclosure and configured to receive and store excess cable length of the at least one jumper cable;
wherein the at least one jumper cable has a cable length sufficient to allow cross-connecting of the plurality of connection members; and
wherein a distance between a first and a last of the spools is about half the distance between first and last rows of connection members on the termination panel.
0. 21. An interconnect cabinet for optical fibers, comprising:
an enclosure;
a splitter mounted in the enclosure that is configured to optically couple a plurality of pigtail optical fibers to an input optical fiber, the splitter having a plurality of connectorized pigtails extending therefrom with each of the connectorized pigtails including one of the pigtail optical fibers, each of the connectorized pigtails having a first end optically coupled in the splitter to the input optical fiber and a second end having an optical connector thereon with one of the pigtail optical fibers extending from the first end to the second end;
a termination support structure mounted in the enclosure and having a plurality of optical fiber connection members mounted thereon;
wherein the connectorized pigtails have a cable length from the first end to the second end, without a connector therebetween, sufficient to allow connection to the plurality of connection members and wherein the termination support structure is pivotally mounted in the enclosure to allow access to first and second opposite sides of the connection members from a first side of the enclosure; and
wherein the splitter includes a splitter module having an outer housing and a pigtail exit member that projects outwardly with respect to the outer housing, and wherein the plurality of connectorized pigtails exit the outer housing through the pigtail exit member.
1. An interconnect cabinet for optical fibers, comprising:
an enclosure;
a splitter mounted in the enclosure that is configured to optically couple a plurality of pigtail optical fibers to a single an input optical fiber and, the splitter having a plurality of optical fiber connectorized pigtails extending therefrom with each of the connectorized pigtails including one of the pigtail optical fibers, each of the connectorized pigtails having a first end optically coupled in the splitter to an optical fiber feeder cable to be coupled to a central office the input optical fiber and a second end having an optical connector thereon with an optical fiber one of the pigtail optical fibers extending from the first end to the second end;
a termination panel mounted in the enclosure and having a plurality of optical fiber connection members, ones of which are associated with respective subscriber locations; and
wherein the connectorized pigtails have a cable length from the first end to the second end, without a connector therebetween, sufficient to allow connection to the plurality of connection members and wherein the termination panel is pivotally mounted in the enclosure to allow access to a front and a back side of the connection members from a front side of the enclosure; and
wherein the cabinet includes a first pigtail routing path within the enclosure that extends from the splitter to the termination panel and a second pigtail routing path within the enclosure that extends from the splitter to a pigtail storage location for storing unused ones of the connectorized pigtails, the pigtail storage location being separate from the termination panel.
2. The cabinet of
3. The cabinet of
4. The cabinet of
5. The cabinet of
6. The cabinet of
7. The cabinet of
8. The cabinet of
9. The cabinet of
10. The cabinet of
11. The cabinet of
12. The cabinet of
13. The cabinet of
14. The cabinet of
16. The cabinet of
18. The cabinet of
0. 19. The cabinet of claim 1, wherein the first pigtail routing path extends in a first direction toward the termination panel, wherein the second pigtail routing path extends in a second direction toward the pigtail storage location, and wherein the first direction is opposite with respect to the second direction.
0. 20. The cabinet of claim 1, wherein the first and second sides of the connection members comprise front and back sides of the connection members, and wherein the first side of the enclosure comprises a front side of the enclosure.
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The present application claims priority to and is a continuation of U.S. patent application Ser. No. 10/799,328, filed Mar. 12, 2004, now U.S. Pat. No. 7,142,764 which claims priority from U.S. Provisional Application No. 60/456,323, filed Mar. 20, 2003, the disclosures of which are hereby incorporated herein in their entirety by reference.
The present invention relates to optical fiber management and, more particularly, to systems for connecting optical fibers.
When providing services using an optical fiber network, it is generally necessary to add and drop subscribers over time. As a result, a variety of methods are provided for interconnecting subscriber locations with a central office connecting facility operated by an optical network provider. To improve the utilization of communication circuits within such a central office facility, interconnection cabinets, such as a centralized splitter cabinet (CSC) and/or centralized splitter cross-connect (CSX), may be provided as part of the outside plant (OSP) infrastructure of the optical fiber network. Doing so may allow some of the burden of establishing and changing connections on the network to be shifted away from the central office and facilitate incremental growth of an installed network as new subscribers are added.
A centralized splitter cabinet (CSC) is typically a passive optical enclosure that provides random termination of optical splitters suitable for use in OSP environment. A CSC may be pedestal or pole mounted in the field. A CSC may provide a flexibility point for termination of distribution cable as well as enclosing a splitter array. This flexibility in interconnections of the downstream fiber network may facilitate optimization of the use of electronic equipment in the central office by, for example, avoiding the need to dedicate circuits in the central office to each subscriber location when many such locations may not be active.
A field service technician may be sent to the CSC to modify the selection of a subscriber location coupled through a splitter to a particular fiber from the central office by connecting and disconnecting various cables found in the CSC. For example, it is known to provide connectorized pigtail cables associated with each subscriber location serviced by a CSC in the CSC. A technician can then select the cable for a designated subscriber location, for example, based on a label attached to the pigtail, and insert the selected cable in a connection point of a splitter.
Some currently available splitter interconnect cabinets utilize industry standard connectorized bulkhead modules to house splitters. These designs generally do not permit access to the rear of the connector without breaking a warranty seal and are designed for the central office environment. The seal may be critical for the manufacturer to ensure that no damage to the splitter occurs post-manufacturing (in the field). This requirement may be in direct opposition to the cleaning requirement, for which access to the front and back of a connection point may be desired.
Embodiments of the present invention provide interconnect cabinets for optical fibers that include an enclosure and a splitter and termination panel mounted in the enclosure. The splitter has a plurality of optical fiber connectorized pigtails extending therefrom. Each of the connectorized pigtails is associated with an optical fiber feeder cable to be coupled to a central office. The termination panel has a plurality of optical fiber connection members, ones of which are associated with respective subscriber locations. The connectorized pigtails have a cable length sufficient to allow connection to the plurality of connection members.
In further embodiments of the present invention, the splitter further includes at least one input optical fiber and the splitter is configured to splice the at least one input optical fiber to the plurality of connectorized pigtails. An optical fiber cable from the central office may be coupled to the at least one input optical fiber and optical fiber cables from the subscriber locations may be coupled to the plurality of connection members. The splitter may be an optical fiber splitter tray and the enclosure may be configured to receive a plurality of optical fiber splitter trays and/or a plurality of termination panels. The plurality of connectorized pigtails may have substantially the same length. The enclosure may be a double-walled housing configured to provide passive cooling.
In other embodiments of the present invention, the termination panel is pivotally mounted in the enclosure to allow access to a front and a back side of the connection members from a front side of the enclosure. The termination panel may be a front panel of a termination module and the termination module may further include a splice chamber configured to mount a plurality of splice modules adjacent a back side of the termination panel. The splice chamber may be pivotally mounted in the enclosure to provide access to the splice chamber from the front side of the enclosure. The termination module may be removably mounted in the enclosure to allow removal of the termination module through the front side of the enclosure. The termination panel and the splice chamber may be pivotally mounted in the enclosure for independent pivotal movement.
In further embodiments of the present invention, the termination module further includes a movable cable securing member configured to receive and secure an optical fiber cable, the cable securing member having a first position aligned with a closed position of the splice chamber and a second position aligned with an open position of the splice chamber. The cable securing member may include an attachment member configured to receive and retain a strength member of the optical fiber cable. The cable securing member may be detachable from the termination module to allow movement between the first position and the second position.
In other embodiments of the present invention, the cable securing member is pivotally attached to the termination module to allow movement between the first position and the second position. The cable securing member may pivot about a neutral axis having an arc length for a cable secured therein that is substantially the same in the first and the second positions to limit loads on the cable secured therein during movement of the cable securing member between the first and second positions.
In further embodiments of the present invention, the cabinet further includes a spooling system mounted in the enclosure and configured to receive and store excess cable length of the plurality of connectorized pigtails. The spooling system may include a plurality of spools displaced from each other in the enclosure by a distance corresponding to a distance between a first and last row of connection members on the termination panel. A distance between a first and a last of the spools may be about half the distance between first and last rows of connection members on the termination panel. The spooling system may also include an initial loop spool configured to receive all the connectorized pigtails and provide the connectorized pigtails a common entry point to the spooling system. The spools may be half-moon spools.
In other embodiments of the present invention, optical fiber termination modules include a mounting member adapted to be mounted to an interconnect cabinet for optical fibers. A bulkhead termination panel is pivotally mounted to the mounting member to allow access to a back side of the termination panel covered by the mounting member. A plurality of optical fiber connection members are mounted in the termination panel. The connection members may include a front socket configured to receive a mating optical fiber plug connector and a back socket configured to receive a mating optical fiber plug connector to provide an optical coupling between the mating optical fiber plug connectors received therein.
In further embodiments of the present invention, the termination module includes a splice chamber mounted to the mounting member proximate the back side of the termination panel. The splice chamber is configured to receive at least one splice module. The splice chamber may be pivotally mounted to the mounting member for pivotal movement separately from the termination panel. A front side of the splice chamber may face the termination panel and the at least one splice module may be received on an opposite, back side of the splice chamber. The splice module may be accessible in an open position of the splice chamber. The splice module may be a splice tray.
In other embodiments of the present invention, the termination module includes the splice module(s) and a plurality of connectorized pigtails extending from the splice module(s) to the connector members on a back side of the termination panel. The splice chamber may also include an optical fiber slack receiving region positioned between the splice module(s) and the termination panel. A mounting means may be provided for removably mounting the termination module in an optical fiber interconnect cabinet.
In yet other embodiments of the present invention, configuring an interconnect cabinet for optical fibers for outside plant management of subscriber optical fiber connectivity includes providing a termination panel in the cabinet having a plurality of optical fiber connection points and a splitter in the cabinet having a plurality of optical fiber connectorized pigtails extending therefrom, the connectorized pigtails have a cable length sufficient to allow connection to the plurality of connection points. The connectorized pigtails are optically spliced to an optical fiber feeder cable coupled to a central office. The plurality of optical fiber connection points are optically spliced to respective subscriber locations.
In further embodiments of the present invention, ones of the connectorized pigtails are selectively coupled to ones of the connection points to provide service to designated ones of the subscriber locations. One of the connectorized pigtails may be selectively decoupled from one of the connection points to terminate service for a designated one of the subscriber locations. The cabinet may further include a plurality of fiber management spools and the connectorized pigtails may be routed around selected ones of the fiber management spools based on a location of a connection point to which they are to be coupled. The pigtails may be optically spliced to an optical fiber feeder cable coupled to a central office in a splice closure outside of the interconnect cabinet.
In other embodiments of the present invention, interconnect cabinets for optical fibers include an enclosure and a termination panel mounted in the enclosure and having a plurality of optical fiber connection members, ones of which are associated with respective subscriber locations or are associated with an optical fiber feeder cable to be coupled to a central office. One or more jumper cables are provided for cross-connecting ones of the connection members. A spooling system mounted in the enclosure is configured to receive and store excess cable length of the jumper cable(s). The jumper cable(s) have a cable length sufficient to allow cross-connecting of the plurality of connection members. The spooling system may include a plurality of spools displaced from each other in the enclosure by a distance corresponding to a distance between a first and last row of connection members on the termination panel. The spooling system may further include a mid-point spool.
The present invention now will be described more fully hereinafter with reference to the accompanying drawings, in which illustrative embodiments of the invention are shown. In the drawings, the relative sizes of regions or features may be exaggerated for clarity. This invention may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art.
Some embodiments of the present invention utilize a multi-layer, fold down tray approach to support various functions, such as slack storage, pigtail to outside plant (OSP) cable splicing and angle down front patching. A termination module according to such embodiments may be designed in a modular fashion so that it can be used separately in a small pedestal or ganged together with other termination modules in a pad (i.e. ground) or pole mounted cabinet. The termination modules may also be pre-terminated to subscriber location optical fibers before mounting in an interconnect cabinet. The termination modules in some embodiments may also be removed from the cabinet and carried to a remote location, such as a splice truck, to facilitate initial installation.
The termination modules in some embodiments include splice trays therein that may be oriented such that they can be worked on remotely or in the cabinet when a repair situation arises. In some embodiments, the entire patching field pivots downward and/or sideways, allowing access to both sides of the connector for cleaning while potentially reducing or avoiding the normal disruption of disconnecting existing subscribers to gain access. Cleaning both sides of an optical connector may be beneficial, particularly when using connectors in the OSP. A detachable cable security member is incorporated into some embodiments of the termination module of the present invention, which may allow fixation of the cable as well as the central strength member in both an open and closed position of the termination module without placing undue strain on the cable from a change in orientation of the termination module during installation or the like.
The cable security member of some embodiments of the present invention need only be separated from the termination module during closing (when the termination panel is moved from an open to a closed position). The relative position of the cable security member to the splice trays may remain substantially unchanged during the closing (or opening).
A splitter module array (one or more splitters) can be built up incrementally in a cabinet by adding one pre-connectorized splitter module at a time in some embodiments of the present invention. The splitter module may, for example, be splitter/splice trays coupled to a hanger bracket for purposes of mounting. However, alternative embodiments may use a splitter box that is loaded into a rack or some other bracket. Labels on the forward facing edge of the splitter module may be included to indicate subscribers allocated to that splitter. Labels on the front of the splitter module could also be included to indicate test data and/or relevant manufacturing information.
In some embodiments of the present invention, random over-length storage of connectorized pigtails exiting the splitters may incorporate the use of half-moon spools, which may provide bend control as well as incremental slack compensation. The spools may be, for example, evenly spaced such that each spool is allocated to specific fields of the patch panel, which may simplify tracing of pigtails.
In various embodiments of the present invention, only front access may be needed to work on cabinet. General fiber management and organization may be a problem with existing cabinet designs. Some embodiments of the present invention may overcome these shortcomings by regrouping the various functions (splicing, patching, splitting) in a way that may be counter-intuitive to standard practices. This regrouping of functions may significantly increase productivity, craft friendliness and/or maintainability of fiber management in interconnect cabinets according to some embodiments of the present invention.
For some embodiments of the present invention, as will be described further herein with reference to the figures, shifting the bulkhead connection point from the splitter to a patch panel may permit access to both sides of the connection point for cleaning. Also, for some embodiments of the present invention, a reduced number of loose/unterminated pigtails may need to be managed during routine maintenance and reconfiguration. Various embodiments of the present invention may provide for 216 or more pigtails hanging in bunches and that number may be incrementally reduced as subscribers are added to the network. Some embodiments of the present invention may reduce this congestion to a maximum of 15 fibers for 1×16 splitters or 31 for 1×32 splitters. This smaller number may be reduced as subscribers are added until none are left and a new splitter is added. The unused pigtails may be stored on the side of the cabinet segregated from the active fibers. The patch panel design may allow subscribers to be identified quickly as contrasted with other known approaches that require the craft to fumble through bundles of pigtails in search of one specific customer that has subscribed to the network and needs connecting.
Embodiments of the present invention will now be described with reference to the various embodiments illustrated in
As will be understood by those of skill in the art, the splice modules 115a, 115b may be used to connect optical fibers from the cables 105, 110 to a backside of the optical fiber connection points (members) 120a, 120b. While two splice modules 115a, 115b are illustrated in
As shown in
As illustrated in the embodiments of
For the embodiments illustrated in
The present invention will now be further described with reference to the embodiments of an interconnect cabinet 200 for optical fibers illustrated in
As shown in the embodiments of
The termination module 230 includes a termination patch panel 232 on its front face that includes a plurality of optical fiber connection points (members) 220. The connection members 220 include sockets 221 configured to receive the connectorized plugs of the pigtails 250. As also shown in the embodiments of
The arrangement illustrated in
The spooling system 270, 272 may be used to support routing of the pigtails 250 in a manner that may advantageously control bending of the pigtails 250 to reduce the risk of damage to the optical fiber and provide further organization to the routing of the pigtails 250, particularly where a fully loaded interconnect cabinet 200 may include a large number of such pigtails 250. The spooling system 270, 272 is mounted in the enclosure 202 and configured to receive and store excess cable length of the connectorized pigtails 250. The spools 270, in some embodiments of the present invention, are displaced from each other in the enclosure by a distance corresponding to a distance between a first and last row of the connection points 220 on the termination patch panel 232. In other words, as viewed in
As also shown in
A plurality of splitter modules 240 and a single termination module 230 are illustrated in
Some embodiments of the present invention provide for routing of jumper cables to provide a cross-connect between two of the interconnection members 220, as contrasted with routing of pigtails 250 from the splitter modules 240. In such embodiments, the hook or mid-point spool 305 may be used and positioned at a location above the spools 270 to facilitate routing of the jumper cables. For example, the hook or mid-point spool 305 could be positioned to provide a turn-around point at the mid-point of the jumper cable length.
The pigtail 480 may extend from a splice chamber 430b by, for example, routing through a protective conduit 472b or a hardened cable 472b. The cables 472a, 472b may extend from splice modules 115a, 115b mounted in the splice chamber 430b through an optical fiber slack receiving region 474 of the splice chamber 430b. The splice chamber 430b may also be pivotally mounted in a manner such that access to the splice region from the front side of the interconnect cabinet 400 is provided via rotation of the splice chamber 430b about a pivot point 478.
A mounting member 430c of the termination module 430b may support the pivot points 476, 478 and provide for mounting of the termination module 430 in the interconnect cabinet 400.
Also visible in
As seen in the embodiments of
Further embodiments of the termination module according the present invention will now be described with reference to
A movable cable securing member 682 is configured to receive, secure and/or provide strain relief for an optical fiber cable 105, 110. The moveable cable securing member 682 is illustrated in a first position aligned with a closed position of the termination panel 630a and a splice chamber 630b in
For the embodiments of the moveable cable securing member 682 illustrated in
The illustrated cable securing member 682 in
As shown by
Before opening the termination module 630 from the position of
The arrangement for positioning of the interconnection members 720 in
The embodiments of
Methods for outside plant management of subscriber optical fiber connectivity according to some embodiments of the present invention will now be described with reference to the flowchart illustration of
The block diagram of
The foregoing is illustrative of the present invention and is not to be construed as limiting thereof. Although a few exemplary embodiments of this invention have been described, those skilled in the art will readily appreciate that many modifications are possible in the exemplary embodiments without materially departing from the novel teachings and advantages of this invention. Accordingly, all such modifications are intended to be included within the scope of this invention as defined in the claims. In the claims, means-plus-function clauses are intended to cover the structures described herein as performing the recited function and not only structural equivalents but also equivalent structures. Therefore, it is to be understood that the foregoing is illustrative of the present invention and is not to be construed as limited to the specific embodiments disclosed, and that modifications to the disclosed embodiments, as well as other embodiments, are intended to be included within the scope of the appended claims. The invention is defined by the following claims, with equivalents of the claims to be included therein.
Allen, Barry W., Dowling, Douglas F., Smith, Jr., Jack A.
| Patent | Priority | Assignee | Title |
| 9161100, | Oct 28 2011 | HON HAI PECISION INDUSTRY CO., LTD. | Cable tidying device |
| RE46945, | Mar 20 2003 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber interconnect cabinets, termination modules and fiber connectivity management for the same |
| RE48675, | Mar 20 2003 | CommScope Technologies LLC | Optical fiber interconnect cabinets, termination modules and fiber connectivity management for the same |
| Patent | Priority | Assignee | Title |
| 4630886, | Apr 16 1984 | AT&T Bell Laboratories | Lightguide distributing unit |
| 4736100, | Jul 31 1986 | AMP Incorporated | Optical loop attenuator simulating an optical system |
| 4747020, | May 16 1986 | ADC Telecommunications, Inc.; ADC TELECOMMUNICATIONS, INC , A CORP OF MINNESOTA | Wire distribution apparatus |
| 4765710, | Jul 30 1985 | Siemens Aktiengesellschaft | Distributing frame for optical waveguides and the like |
| 4792203, | Sep 17 1985 | ADC Telecommunications, Inc. | Optical fiber distribution apparatus |
| 4824196, | May 26 1987 | Minnesota Mining and Manufacturing Company; MINNESOTA MINING AND MANUFACTURING COMPANY, A CORP OF DE | Optical fiber distribution panel |
| 4861134, | Jun 29 1988 | American Telephone and Telegraph Company, AT&T Bell Laboratories | Opto-electronic and optical fiber interface arrangement |
| 4900123, | Aug 29 1988 | SIECOR PUERTO RICO, INC | 1550 nm fiber distribution panel |
| 4913522, | Apr 11 1984 | NV Raychem SA | Electrofit fibre optics butt splice |
| 4948220, | Jun 20 1988 | Societe Anonyme de Telecommunications | Module for distributing and connecting optical fibers |
| 4995688, | Jul 31 1989 | ADC Telecommunications, Inc.; ADC Telecommunications, Inc | Optical fiber distribution frame |
| 5023646, | Dec 27 1985 | Minolta Camera Kabushiki Kaisha | Automatic focus detection system |
| 5058983, | Jul 06 1990 | Alcoa Fujikura Limited | Fiber optic connector terminator |
| 5073042, | Jun 21 1990 | AMP Incorporated | Coupling bushing for various types of optical fiber connectors |
| 5076688, | Mar 23 1990 | AMP Incorporated | Optical simulator with loop-back attenuator having metalized optical fiber |
| 5100221, | Jan 22 1990 | Augat Inc | Optical fiber cable distribution frame and support |
| 5129030, | May 30 1991 | COMMSCOPE, INC OF NORTH CAROLINA | Movable lightguide connector panel |
| 5142598, | Aug 28 1991 | Thomas & Betts International, Inc | Fiber optic connector having snap ring adjustment means |
| 5179618, | Jul 11 1990 | ADC Telecommunications, Inc. | Fiber optic connector module |
| 5214735, | Apr 06 1992 | ADC Telecommunications, Inc. | Fiber optic connector retainer |
| 5233674, | Nov 21 1991 | STRATOS INTERNATIONAL, INC | Fiber optic connector with sliding tab release |
| 5274729, | Jul 30 1992 | Fitel USA Corporation | Universal optical fiber buildout system |
| 5274731, | Dec 24 1992 | ADC Telecommunications, Inc. | Optical fiber cabinet |
| 5289558, | Oct 05 1991 | ADC GmbH | Switching assembly for glass fiber cables of the telecommunication and data technology |
| 5317663, | May 20 1993 | ADC Telecommunications, Inc. | One-piece SC adapter |
| 5333221, | Jun 30 1992 | WHITAKER CORPORATION, THE | Universal adapter for optical connectors |
| 5333222, | May 14 1993 | Molex Incorporated | Adapter for interconnecting optical fiber connectors or the like |
| 5359688, | Mar 04 1994 | SIECOR TECHNOLOGY, INC | Metal internal holding clips for fiber optic connector coupling |
| 5363465, | Feb 19 1993 | ADC Telecommunications, Inc. | Fiber optic connector module |
| 5367598, | Oct 21 1993 | NEC AMERICA, INC | Interface chassis for fiber optic transport system |
| 5402515, | Mar 01 1994 | Minnesota Mining and Manufacturing Company | Fiber distribution frame system, cabinets, trays and fiber optic connector couplings |
| 5408557, | Apr 20 1994 | FC-type optical fiber cable connector's adaptor | |
| 5420958, | May 21 1990 | Minnesota Mining and Manufacturing Company | Optical fiber distribution center |
| 5432875, | Feb 19 1993 | ADC Telecommunications, Inc. | Fiber optic monitor module |
| 5442726, | Feb 22 1994 | Hubbell Incorporated | Optical fiber storage system |
| 5448015, | Dec 30 1991 | Societe Anonyme Dite Alcatel Cit | Support and Guide device for cables carrying elcetrical or light signals |
| 5469526, | Jan 07 1994 | Thomas & Betts International, Inc | Optical fiber support for printed circuit boards |
| 5497444, | Jan 21 1994 | ADC Telecommunications, Inc. | High-density fiber distribution frame |
| 5506922, | Aug 01 1994 | Molex Incorporated | Fiber optic component assembly with a movable protective shield |
| 5511144, | Jun 13 1994 | SIECOR TECHNOLOGY, INC | Optical distribution frame |
| 5542015, | Apr 08 1993 | The Whitaker Corporation | Optical fiber connector latching mechanism |
| 5636138, | Dec 29 1992 | Avaya Technology Corp | Jumper cable selection and routing system |
| 5640482, | Aug 31 1995 | CommScope EMEA Limited | Fiber optic cable management rack |
| 5647043, | Oct 12 1995 | FURUKAWA ELECTRIC NORTH AMERICA, INC | Unipartite jack receptacle |
| 5689604, | Sep 09 1996 | THE CHASE MANHATTAN BANK, AS COLLATERAL AGENT | Fiber optic operations center |
| 5708751, | Apr 24 1996 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber enclosure system |
| 5715348, | Mar 27 1996 | Next Level Communications | Fiber management system and method for routing optical fiber having a minimum bend radius |
| 5717810, | Jan 21 1994 | CommScope Technologies LLC | High-density fiber distribution frame |
| 5734776, | Aug 28 1996 | CommScope EMEA Limited; CommScope Technologies LLC | Outside plant cross-connect apparatus |
| 5758002, | Dec 31 1996 | SIECOR TECHNOLOGY, INC | Routing and storage apparatus for optical fibers |
| 5758003, | Mar 15 1996 | CommScope EMEA Limited; CommScope Technologies LLC | High density fiber management |
| 5764844, | Mar 21 1994 | N.V. Raychem S.A. | Splice organizing apparatus |
| 5774245, | Jul 08 1996 | Verizon Patent and Licensing Inc | Optical cross-connect module |
| 5774612, | Aug 02 1995 | Molex Incorporated | Adapted for interconnecting optical fiber connectors |
| 5778132, | Jan 16 1997 | Ciena Corporation | Modular optical amplifier and cassette system |
| 5784515, | Jan 23 1995 | Nippon Telegraph and Telephone Corporation | Optical fiber cross connection apparatus and method |
| 5823646, | Sep 02 1997 | SIECOR TECHNOLOGY, INC | Door assembly for optical hardware cabinet |
| 5825955, | Feb 05 1997 | Molex Incorporated | Fiber optic diversion connector |
| 5825962, | Dec 31 1996 | SIECOR TECHNOLOGY, INC | Optical fiber splice housing |
| 5883995, | May 20 1997 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber connector and adapter |
| 5903698, | Apr 11 1997 | Anritsu Company | Fiber optic connection assembly |
| 5909526, | Apr 08 1998 | Molex Incorporated | Fiber optic connector assembly |
| 5913006, | Nov 25 1997 | CIENA LUXEMBOURG S A R L ; Ciena Corporation | Fibre slack storage retractable panel and interface |
| 5930425, | Apr 21 1998 | WSOU Investments, LLC | High density coupling module |
| 5945633, | May 23 1996 | SIEMON COMPANY, THE | Rack mountable cable distribution enclosure having an angled adapter plate bracket |
| 5956444, | Feb 13 1997 | Amphenol Corporation | Radiation absorbing shield for fiber optic systems |
| 5969294, | Dec 31 1997 | Corning Optical Communications LLC | Fiber optic connector cabinet with rotatably mounted adapter panels |
| 5975769, | Jul 08 1997 | AMPHENOL NETWORK SOLUTIONS, INC | Universal fiber optic module system |
| 6027252, | Dec 19 1997 | TYCO ELECTRONICS SERVICES GmbH | Simplified fiber optic receptacle |
| 6041155, | Oct 16 1997 | FURUKAWA ELECTRIC NORTH AMERICA, INC | Universal dust cover |
| 6044193, | Jul 10 1998 | Corning Optical Communications LLC | Fiber optic interconnection enclosure having a forced air system |
| 6061492, | Apr 09 1997 | CCS HOLDINGS, INC | Apparatus and method for interconnecting fiber cables |
| 6069797, | Dec 29 1998 | Motorola, Inc. | Power distribution assembly |
| 6076975, | Oct 15 1998 | Molex Incorporated | Fiber optic connector assembly |
| 6079881, | Apr 08 1998 | Molex Incorporated | Fiber optic connector receptacle assembly |
| 6149315, | Sep 04 1998 | FURUKAWA ELECTRIC NORTH AMERICA, INC | Side load resistant buildout |
| 6160946, | Jul 27 1998 | CommScope EMEA Limited; CommScope Technologies LLC | Outside plant fiber distribution apparatus and method |
| 6181862, | Mar 12 1999 | Corning Optical Communications LLC | Interbay fiber optic storage unit |
| 6188687, | Nov 30 1994 | Verizon Laboratories Inc; Verizon Laboratories | Broadband switch that manages traffic and method therefor |
| 6188825, | Apr 15 1999 | Fitel USA Corporation | Dust cover for protecting optical fiber sleeve housing |
| 6195494, | Oct 04 1999 | Advanced Fibre Access Corporation | Cable control apparatus for limiting the movement of optical fibers |
| 6201919, | Dec 16 1998 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber distribution frame |
| 6208796, | Jul 21 1998 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber optic module |
| 6227717, | Dec 16 1997 | SIEMON COMPANY, THE | Dust caps for use with telecommunications adapters and connectors |
| 6234683, | Sep 13 1999 | STRATOS INTERNATIONAL, INC | Field repairable hermaphroditic connector |
| 6236795, | Jun 07 1999 | High-density fiber optic cable distribution frame | |
| 6240229, | Dec 21 1998 | Molex Incorporated | Connector assembly |
| 6247849, | Sep 13 1997 | Alliance Fiber Optics Products, Inc. | Protection cap for fiber coupler |
| 6256443, | Jul 24 1998 | Nippon Telegraph and Telephone Corporation | Optical fiber distribution module for holding an optical fiber cord and fiber distribution system using optical fiber cords |
| 6256444, | Sep 21 1999 | Antec Corporation | Adjustable guide for organizing optical fibers in an equipment rack |
| 6259850, | Oct 26 1999 | FURUKAWA ELECTRIC NORTH AMERICA, INC | Crossconnect module having monitoring provisions |
| 6271484, | Oct 08 1997 | Ishida Co., Ltd. | Weighing apparatus having an automatic filter adjusting capability |
| 6278829, | May 05 1999 | TELLABS BEDFORD, INC | Optical fiber routing and support apparatus |
| 6289159, | Feb 14 1996 | Tyco Electronics Raychem BVBA | Optical fiber distribution system |
| 6307998, | Jul 21 1998 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber optic module including lens cap |
| 6347888, | Nov 23 1998 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber optic adapter, including hybrid connector system |
| 6356697, | May 04 1999 | SUMITOMO ELECTRIC LIGHTWAVE CORP | Optical fiber cable distribution shelf with pivotably mounted trays |
| 6362422, | Jun 02 2000 | Panduit Corp | Enclosure for use in fiber optic management systems |
| 6363200, | Jul 27 1998 | CommScope EMEA Limited; CommScope Technologies LLC | Outside plant fiber distribution apparatus and method |
| 6385381, | Sep 21 1999 | Lucent Technologies Inc | Fiber optic interconnection combination closure |
| 6398149, | Jan 16 2001 | ORTRONICS, INC | Cable management system with adjustable cable spools |
| 6411767, | Aug 24 1999 | Corning Optical Communications LLC | Optical fiber interconnection closures |
| 6418262, | Mar 13 2000 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber distribution frame with fiber termination blocks |
| 6424781, | Mar 01 1999 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber distribution frame with pivoting connector panels |
| 6425694, | Sep 18 2000 | Molex Incorporated | Fiber optic receptacle with protective shutter |
| 6427035, | Aug 12 1999 | Bellsouth Intellectual Property Corporation | Method and apparatus for deploying fiber optic cable to subscriber |
| 6431762, | Apr 09 1999 | SEIKOH GIKEN CO , LTD | Optical connector adapter |
| 6434313, | Oct 31 2000 | Corning Optical Communications LLC | Fiber optic closure with couplers and splice tray |
| 6438311, | Aug 14 2000 | Ciena Corporation | Cable retainer and cable organizer using same |
| 6452925, | Apr 18 1996 | Intellectual Ventures II LLC | Universal access multimedia data network |
| 6453033, | Aug 24 1998 | HANGER SOLUTIONS, LLC | Automated system and method for subscriber line service control |
| 6464402, | Jul 28 1999 | FURUKAWA ELECTRIC NORTH AMERICA, INC | Optical fiber connector tuning index tool |
| 6467633, | Feb 12 1999 | CommScope Technologies LLC | Cable management rack for telecommunications equipment |
| 6468112, | Jan 11 1999 | CommScope EMEA Limited; CommScope Technologies LLC | Vertical cable management system with ribcage structure |
| 6480487, | Aug 24 1998 | Verizon Patent and Licensing Inc | Digital loop carrier remote terminal having integrated digital subscriber plug-in line cards for multiplexing of telephone and broadband signals |
| 6483977, | Apr 12 2001 | Corning Optical Communications LLC | Fiber management frame having movable work platform |
| 6487356, | Jul 31 2000 | Cisco Technology, Inc.; Cisco Technology Inc | Fiber optic cable segregation and slack storage apparatus and method |
| 6496640, | Dec 16 1999 | Corning Optical Communications LLC | Splice closure with removable and pivotable splice trays, and associated methods |
| 6496641, | Aug 12 1999 | Bellsouth Intellectual Property Corporation | Fiber optic interface device |
| 6501899, | Jun 02 2000 | Panduit Corp | Vertical cable management system |
| 6532332, | Feb 15 2001 | CommScope Technologies LLC | Cable guide for fiber termination block |
| 6535682, | Mar 01 1999 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber distribution frame with connector modules |
| 6539147, | Aug 12 1999 | Bellsouth Intellectual Property Corporation | Connectorized inside fiber optic drop |
| 6539160, | Oct 27 2000 | Corning Optical Communications LLC | Optical fiber splicing and connecting assembly with coupler cassette |
| 6542688, | Oct 27 2000 | Corning Optical Communications LLC | Optical fiber splicing and connecting assembly |
| 6554485, | Sep 11 2000 | Corning Optical Communications LLC | Translucent dust cap and associated method for testing the continuity of an optical fiber jumper |
| 6556763, | Mar 01 1999 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber distribution frame with connector modules |
| 6571047, | Apr 18 2000 | SPRINT SPECTRUM L P | Inter-bay fiber management assembly |
| 6577595, | Nov 12 1999 | Level 3 Communications, LLC | Systems and methods for transporting associated data signals over a network |
| 6584267, | Jun 02 2000 | Panduit Corp | Cable management system |
| 6591051, | Nov 16 2001 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber termination block with angled slide |
| 6597670, | Jan 26 1998 | Verizon Laboratories | Method and system for distributing subscriber services using wireless bidirectional broadband loops |
| 6614978, | Jun 02 2000 | Panduit Corp | Slack cable management system |
| 6614980, | Aug 12 1999 | Bellsouth Intellectual Property Corporation | Connectorized outside fiber optic drop |
| 6621975, | Nov 30 2001 | Corning Optical Communications LLC | Distribution terminal for network access point |
| 6623170, | Jun 20 2001 | FCI Americas Technology, Inc | Angular mounted optical connector adaptor frame |
| 6625375, | Aug 12 1999 | Bellsouth Intellectual Property Corporation | Fiber optic interface device |
| 6631237, | Mar 06 2001 | CommScope EMEA Limited; CommScope Technologies LLC | Termination and splice panel |
| 6633717, | Sep 08 2000 | AMPHENOL NETWORK SOLUTIONS, INC | High density fiber optic cable distribution frame system |
| 6654536, | Apr 12 2001 | Corning Optical Communications LLC | Fiber management frame having connector platform |
| 6661961, | Nov 01 2000 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber low profile network interface device |
| 6668127, | Aug 12 1999 | Bellsouth Intellectual Property Corporation | Connectorized inside fiber optic drop |
| 6678457, | Dec 01 2001 | Unicom Technologies, Co., LTD | Optical splitter module |
| 6711339, | May 31 2002 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber management module with cable storage |
| 6755574, | Oct 23 1997 | Fujikura Ltd. and Nippon Telegraph and Telephone Corporation | Optical connector |
| 6760530, | Jun 09 2000 | Cisco Technology, Inc. | Fiber cable connector clip |
| 6760531, | Mar 01 1999 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber distribution frame with outside plant enclosure |
| 6768860, | Dec 05 2002 | Lumentum Operations LLC | High density fiber optic module |
| 6778752, | May 31 2002 | Corning Optical Communications LLC | Below grade closure for local convergence point |
| 6788786, | Sep 22 2000 | CommScope EMEA Limited; CommScope Technologies LLC | Multimedia patching box |
| 6792190, | Jun 01 2001 | AMPHENOL NETWORK SOLUTIONS, INC | High density fiber optic splitter/connector tray system |
| 6792191, | Apr 22 2003 | Corning Optical Communications LLC | Local convergence cabinet |
| 6796437, | Sep 16 2002 | CommScope EMEA Limited; CommScope Technologies LLC | Cable trough |
| 6815612, | Oct 18 2002 | Corning Optical Communications LLC | Watertight seal for network interface device |
| 6845207, | Feb 12 2001 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber enclosure system |
| 6848836, | Oct 09 2001 | Suncall Kabushiki Kaisha; Mimaki Denshi Buhin Kabushiki Kaisha | Optical fiber connector with a base end threaded ferrule |
| 6850685, | Mar 27 2002 | CommScope EMEA Limited; CommScope Technologies LLC | Termination panel with pivoting bulkhead and cable management |
| 6853795, | Mar 05 2003 | Corning Optical Communications LLC | High density fiber optic distribution frame |
| 6870734, | May 30 2003 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber containment system |
| 6901200, | Dec 22 2000 | CommScope EMEA Limited; CommScope Technologies LLC | Module and housing for optical fiber distribution and DWDM equipment |
| 6909833, | Mar 15 2002 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber enclosure system using integrated optical connector and coupler assembly |
| 6920274, | Dec 23 2003 | CommScope Technologies LLC | High density optical fiber distribution frame with modules |
| 6925241, | Oct 11 2002 | Corning Research & Development Corporation | Drawer for the management of optical fibers |
| 6950593, | May 21 2001 | ARRIS SOLUTIONS, INC | Cable splice enclosure |
| 6968111, | Jan 24 2000 | CommScope EMEA Limited; CommScope Technologies LLC | Cable management panel with sliding drawer |
| 6980725, | Apr 30 2002 | CALIX, INC | Space reuse during technology upgrade in a protection area of an outdoor enclosure |
| 6983095, | Nov 17 2003 | CommScope EMEA Limited; CommScope Technologies LLC | Systems and methods for managing optical fibers and components within an enclosure in an optical communications network |
| 7029322, | Feb 27 2003 | Molex Incorporated | Connector panel mount system |
| 7086539, | Oct 21 2002 | CommScope EMEA Limited; CommScope Technologies LLC | High density panel with rotating tray |
| 7088899, | Nov 17 2003 | CommScope EMEA Limited; CommScope Technologies LLC | Configuring pigtails in a fiber distribution hub |
| 7103255, | Nov 17 2003 | CommScope EMEA Limited; CommScope Technologies LLC | Optical splitter module |
| 7120347, | Jan 27 2004 | Corning Optical Communications LLC | Multi-port optical connection terminal |
| 7139461, | Mar 01 1999 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber distribution frame with outside plant enclosure |
| 7142764, | Mar 20 2003 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber interconnect cabinets, termination modules and fiber connectivity management for the same |
| 7146089, | Nov 17 2003 | CommScope EMEA Limited; CommScope Technologies LLC | Systems and methods for fiber distribution hub administration |
| 7149398, | Mar 01 1999 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber distribution frame with outside plant enclosure |
| 7171102, | Nov 17 2003 | CommScope EMEA Limited; CommScope Technologies LLC | Optical communication signal distribution enclosure |
| 7200317, | Nov 17 2003 | CommScope EMEA Limited; CommScope Technologies LLC | Systems and methods for optical fiber distribution and management |
| 7218827, | Jun 18 2004 | CommScope EMEA Limited; CommScope Technologies LLC | Multi-position fiber optic connector holder and method |
| 7228036, | Nov 30 2004 | Corning Optical Communications LLC | Adjustable tether assembly for fiber optic distribution cable |
| 7239789, | Oct 06 2003 | Preformed Line Products Company | Optical fiber splice case |
| 7277620, | Jun 18 2004 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber optic splitter |
| 7333707, | Mar 01 1999 | CommScope EMEA Limited; CommScope Technologies LLC | Optical fiber distribution frame with outside plant enclosure |
| 7340146, | Mar 10 2005 | Yazaki Corporation | Dust shutter for an optical adapter |
| 7369741, | Nov 17 2003 | CommScope EMEA Limited; CommScope Technologies LLC | Storage adapter with dust cap posts |
| 7407330, | Jun 30 2003 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber optic connector holder and method |
| 7457503, | Jul 02 2003 | CommScope EMEA Limited; CommScope Technologies LLC | Telecommunications connection cabinet |
| 7471869, | Nov 17 2003 | CommScope EMEA Limited; CommScope Technologies LLC | Equipment layout for fiber distribution hubs |
| 7623749, | Aug 30 2005 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber distribution hub with modular termination blocks |
| 7646958, | Nov 17 2003 | CommScope EMEA Limited; CommScope Technologies LLC | Fiber distribution hub with half-loop pigtail storage |
| 7826706, | Jun 18 2004 | CommScope EMEA Limited; CommScope Technologies LLC | Telecommunications connection cabinet |
| 20020034290, | |||
| 20020118943, | |||
| 20020150372, | |||
| 20020176681, | |||
| 20020181893, | |||
| 20030002812, | |||
| 20030095772, | |||
| 20030113086, | |||
| 20030165315, | |||
| 20030174996, | |||
| 20030185535, | |||
| 20030207601, | |||
| 20040001686, | |||
| 20040037533, | |||
| 20040074852, | |||
| 20040126069, | |||
| 20040165852, | |||
| 20040228598, | |||
| 20040264873, | |||
| 20050002633, | |||
| 20050129379, | |||
| 20080008436, | |||
| 20080008437, | |||
| 20080019655, | |||
| 20080025684, | |||
| 20080317425, | |||
| 20090074372, | |||
| 20090087157, | |||
| 20090190896, | |||
| 20090196565, | |||
| 20090285540, | |||
| 20090290843, | |||
| 20090297111, | |||
| 20100124392, | |||
| 20100226615, | |||
| 20110019965, | |||
| 20110019966, | |||
| 20110033158, | |||
| 20110033164, | |||
| CN2426610, | |||
| D466087, | Jan 30 2001 | Nexans | Optical fiber connection cabinet |
| DE4207531, | |||
| DE4229510, | |||
| EP293183, | |||
| EP349290, | |||
| EP585809, | |||
| EP697610, | |||
| EP743701, | |||
| EP788002, | |||
| EP871047, | |||
| EP975180, | |||
| EP1045267, | |||
| EP1160603, | |||
| EP1316829, | |||
| JP1144266, | |||
| JP2000075180, | |||
| JP2001027720, | |||
| JP3307618, | |||
| JP3761762, | |||
| JP63229409, | |||
| RE34955, | Feb 26 1993 | ADC Telecommunications, Inc. | Optical fiber distribution frame |
| RE37489, | Jul 31 1989 | CommScope Technologies LLC | Optical fiber distribution frame |
| WO5611, | |||
| WO7053, | |||
| WO52504, | |||
| WO75706, | |||
| WO131380, | |||
| WO135142, | |||
| WO2103429, | |||
| WO221182, | |||
| WO2004032532, | |||
| WO9520175, | |||
| WO9853347, | |||
| WO9927404, |
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