OPTICAL FIBER CONNECTIVITY SYSTEM INCLUDING MODULES AND INTERCONNECTION CABLES
Various fiber optic distribution modules are disclosed, as well as cable useable to interconnect such modules. One possible module includes a first MPO connector and a second MPO connector exposed, and a plurality of LC connectors, the plurality of LC connectors arranged into a first row and a second row. A plurality of fibers is routed between one of the first and second MPO connectors and a different one of the plurality of LC connectors. The plurality of LC connectors in the first row and the second row are grouped into N groups with M connectors in each group corresponding to M/2 channels included in each group and including a fiber pair. The M connectors of each group are disposed across the first and second rows. Indicia disposed on the second side of the housing visually distinguish each group of the N groups from an adjacent neighboring group.
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This application is a Continuation of U.S. patent application Ser. No. 16/329,912, filed on Mar. 1, 2019, which is a National Stage Application of PCT/US2017/049736, filed on Aug. 31, 2017, which claims the benefit of U.S. Patent Application Ser. No. 62/383,227, filed on Sep. 2, 2016, and claims the benefit of U.S. Patent Application Ser. No. 62/506,598, filed on May 15, 2017, the disclosures of which are incorporated herein by reference in their entireties. To the extent appropriate, a claim of priority is made to each of the above disclosed applications.
BACKGROUNDOptical fibers, both multi-mode and single mode, are commonly used for the transmission of signals of all sorts, including communication and data signals. Communications systems often transmit signals between transceivers (i.e., devices that can both transmit and receive optical signals) via different fibers in each direction. More specifically, one or more fibers will transmit signals from the first transceiver to the second, and one or more of the other fibers will transmit signals from the second transceiver to the first. In this manner, optical signals are not traveling along the same fiber in different directions.
This arrangement would be fairly simple to organize for two transceiver devices that are permanently optically connected, but in practice transceivers are typically connected through a much larger network of optical fibers, connectors and patch panels. For example, a common optical system includes multiple transceivers at one end, 2-fiber patch cords that are connected to the transceivers and to duplex adapters mounted on a patch panel, a fan-out transition device connected to the duplex adapters that connects to a multi-strand fiber optic cable (12 fibers per cable is common, and the fiber strands may be in ribbon form) via an array adapter, a second fan-out transition device connected to the opposite end of the optic cable via a second array adapter, and corresponding transceivers connected via 2-fiber patch cords to the second fan-out transition device through duplex adapters. Thus, it is important to be able to track individual optical fibers in the various devices and cables between the transceivers in order to ensure that the individual transceivers are connected as desired.
To ensure intermateability of cabling components and signal polarity, standards have been created to define arrangements of fibers, cables, adapters and connectors. For example, one such standard for array connectors, TIA-604-5B, is directed to multi-fiber push-on (MPO) fiber optic connector intermateability. Another standard, TIA 568-B.3 with addendum No. 7 written by committee TR-42, is directed to maintaining optical fiber polarity with systems using array connectors and adapters, including MPOs. Systems built using these methods utilize fiber optic cables, adapters, transition devices and patch cords that are typically partially or completely unique to one of these methods.
In some instances, transceivers may utilize less than all of the fibers of the cable. For example, a transceiver may have only four channels, each of which has a “transmit” fiber and a “receive” fiber. Commonly, two such transceivers would utilize the outer four fibers on either end of a 12-fiber cable; i.e., the transmit fibers would use fibers 1-4 of the cable, and the receive fibers would use fibers 9-12 of the cable. When such transceivers are used in combination with other optical distribution connections, routing of signals can become complicated.
Examples of complications in fiber routing arise when higher bandwidth applications are desired. For example, traditionally, a 40 Gbps service will use four channels, or eight fiber pairs, and 100 Gbps service will use ten channels, or 20 fiber pairs. Although greater bandwidths may be achieved using these same fiber pairs. Concurrently, traditional 10 Gbps service will use a single channel, or two fibers. Difficulties in routing fibers arise when determining how best to distribute fibers to deliver such services. This is particularly the case when more than one such cable is used for service delivery in these higher bandwidth operations, including circumstances in which 12-fiber cables or connectors are used, and in which fewer than all of the connectors of a cable might be utilized. Such difficulties can lead to technician errors in optical routing when relying on fanout cables or other types of optical distribution systems in which correct fanout of optical signals is required.
SUMMARYIn accordance with the following disclosure, the above and other issues are addressed by a fiber optic distribution system including modules and cables for interconnection therewith, for example to breakout 40 Gbps or 100 Gbps transceivers to individual 10 Gbps channels.
In a first aspect, a fiber optic distribution module includes a housing, a plurality of multi-fiber push-on (MPO) connectors including a first MPO connector and a second MPO connector exposed at a first side of the housing, and a plurality of LC connectors disposed on a second side of the housing opposite the first side, the plurality of LC connectors arranged into a first row and a second row. The module further includes a plurality of fibers, each of the plurality of fibers routed between one of the first and second MPO connectors and a different one of the plurality of LC connectors. The plurality of LC connectors in the first row and the second row are grouped into N groups of LC connectors with M connectors in each group, the M connectors corresponding to M/2 channels included in each group and including a fiber pair, the M connectors of each group and being disposed across the first and second rows and each of M, N, and M/2 being an integer. Indicia disposed on the second side of the housing visually distinguish each group of the N groups from an adjacent neighboring group.
In a second aspect, an optical distribution system includes a first optical distribution module having a first multi-fiber push-on (MPO) connector having a first alignment key and a second optical distribution module having a second multi-fiber push-on (MPO) connector having a second alignment key having a same configuration as the first alignment key. The system further includes a fiber optic cable comprising a plurality of optical fibers and first and second terminals attached to opposite ends of the fibers, each of the terminals having an alignment key, the first terminal optically connected to the first MPO connector and the second terminal optically connected to the second connector. The fibers enter the first terminal in an arrangement of two rows and enter the second terminal in an arrangement of two rows, each fiber defining a position in the first terminal that is laterally transposed within the same row as compared to the position in the fiber defined in the first terminal.
In a third aspect, an optical cable useable to connect between a first multi-fiber push-on (MPO) connector of a first optical module and a second multi-fiber push-on (MPO) connector of a second optical module oriented in an inverted orientation, wherein first and second MPO connectors each include twelve sequentially arranged optical fibers. The optical cable includes a first twelve-fiber MPO connector on a first end of the optical cable including first, second, third, fourth, fifth, sixth, seventh, eighth, ninth, tenth, eleventh, and twelfth sequential optical connections, and a second twelve-fiber MPO connector on a second end of the optical cable opposite the first end and including first, second, third, fourth, fifth, sixth, seventh, eighth, ninth, tenth, eleventh, and twelfth sequential optical connections. The optical cable further includes first, second, third, fourth, fifth, sixth, seventh, eighth, ninth, tenth, eleventh, and twelfth optical fibers extending along the length of the cable between the first twelve-fiber MPO connector and the second twelve-fiber MPO connector. The first optical fiber connects between the first optical connection of the first twelve-fiber MPO connector and the fourth optical connection of the second twelve-fiber MPO connector, the second optical fiber connects between the first optical connection of the first twelve-fiber MPO connector and the third optical connection of the second twelve-fiber MPO connector, the third optical fiber connects between the first optical connection of the first twelve-fiber MPO connector and the second optical connection of the second twelve-fiber MPO connector, the fourth optical fiber connects between the first optical connection of the first twelve-fiber MPO connector and the first optical connection of the second twelve-fiber MPO connector, the ninth optical fiber connects between the first optical connection of the first twelve-fiber MPO connector and the twelfth optical connection of the second twelve-fiber MPO connector, the tenth optical fiber connects between the first optical connection of the first twelve-fiber MPO connector and the eleventh optical connection of the second twelve-fiber MPO connector, the eleventh optical fiber connects between the first optical connection of the first twelve-fiber MPO connector and the tenth optical connection of the second twelve-fiber MPO connector, and the twelfth optical fiber connects between the first optical connection of the first twelve-fiber MPO connector and the ninth optical connection of the second twelve-fiber MPO connector.
This summary is provided to introduce a selection of concepts in a simplified form that are further described below in the Detailed Description. This summary is not intended to identify key features or essential features of the claimed subject matter, nor is it intended to be used to limit the scope of the claimed subject matter.
Various embodiments of the present invention will be described in detail with reference to the drawings, wherein like reference numerals represent like parts and assemblies throughout the several views. Reference to various embodiments does not limit the scope of the invention, which is limited only by the scope of the claims attached hereto. Additionally, any examples set forth in this specification are not intended to be limiting and merely set forth some of the many possible embodiments for the claimed invention.
As briefly described above, optical distribution systems are described herein that provide for improved connection arrangements for fiber optic distribution systems. It is noted that in the past, numerous fiber routing approaches have been taken. Example approaches include those defined in the TIA 568 standard, referred to as “Method A”, “Method B”, and “Method C”, as well as other proprietary arrangements. While each of these arrangements has advantages over the others, each has disadvantages in terms of fiber routing and upgrade when used in a complex system. For example, in Method A, careful placement of a “flipped” cable may be needed to invert cable routing at an appropriate location within an optical network. Furthermore, in Method B, either different modules at each end of an optical path, or a flipped “Alpha/Beta” module might need to be used. Additionally, in some proprietary and standardized systems, connection of multi-fiber push-on (MPO) connectors may be required to be in a particular non-standard alignment in which connection keys are opposite of each other, leading to potential connection confusion.
By way of contrast to the above disadvantages, in example embodiments, the modules, cables, and systems including such modules and cables allow for distribution of various service types on traditional, “straight through” Method B trunk cables, while avoiding the requirement of a different or flipped module at one end of the optical network (as might be required in traditional Method B), and also avoiding the requirement of a key-up to key-down inverted connection arrangement at a junction of MPO connectors (as might be required in certain proprietary systems). This greatly simplifies routing for optical technicians. Such improved connection arrangements also simplify the connections among, for example, eight-fiber transceivers and twelve-fiber optical cables, and guides routing of service. In example embodiments, 10 Gbps duplex ports, distributed on pairs of LC connectors, can be broken out from higher density optical connectors; in other examples, twelve, twenty four, or other numbers of fiber connectors could be used. The number of connectors depends at least in part on the optical distribution service desired, as well as the type of optical service that is being delivered via the system (e.g., duplex or parallel signaling, with single-mode or multi-mode fiber optic systems). It is noted that, in some embodiments, the present disclosure provides a routing system and modules useable to provide an improved fiber routing system at current bandwidths (e.g., at 10 Gbps, 40 Gbps, and 100 Gbps service levels) by simplifying routing among optical modules, while also simplifying an upgrade path for such optical services by allowing modules to be readily substituted for one (within the same signaling systems) to provide a simpler upgrade path to higher-bandwidth services.
Referring now to
In the example shown, the housing can include a cassette 20 and a shell 22. The cassette 20 includes the second side, in which the LC connectors 16 can be mounted. A faceplate 23 can be positioned within the shell 22 and the MPO connectors 14a-b can extend through the faceplate 23, being removably mounted at the first side of the housing 12. Fibers 24 can be positioned within the shell 22 and extend between the MPO connectors 14a-b and the LC connectors 16. The shell 22 can, in the embodiment shown, feature a snap-fit connection over the cassette 20, to encase and protect the fibers 24. Optionally, the fibers 24 are of adequate length to form a fiber loop within the enclosure (seen best in
As seen best in
Regarding the second MPO connector 14b, a similar scheme is used, in which twelve MPO connectors, typically using receive fibers 1-6 and transmit fibers 7-12, are connected such that the receive fibers are connected to even numbered LC connectors (e.g., LC connectors 14, 16, 18, 20, 22, and 24), and transmit fibers are connected to odd-numbered LC connectors (e.g., LC connectors #13, 15, 17, 19, 21, 23). In particular, a thirteenth LC connector connects to the twelfth MPO fiber connection of the second MPO 14b, a fourteenth LC connector connects to the first MPO fiber connection of the second MPO 14b, a fifteenth LC connector connects to the eleventh MPO fiber connection, a sixteenth LC connector connects to the second MPO fiber connection, a seventeenth LC connector connects to the tenth MPO fiber connection, an eighteenth LC connector connects to the third MPO fiber connection, a nineteenth LC connector connects to the ninth MPO fiber connection, a twentieth LC connector connects to the fourth MPO fiber connection, a twenty-first LC connector connects to the eighth MPO fiber connection, a twenty-second LC connector connects to the fifth MPO fiber connection, a twenty-third LC connector connects to the seventh MPO fiber connection, and a twenty-fourth LC connector connects to the sixth MPO fiber connection.
As an end effect of the routing, the two rows of LC connectors 16 include alternating transmit and receive fibers, rather than a single row completely of transmit fibers and a second single row of receive fibers as in certain prior modules. Furthermore, a grouping of fibers includes four transmit fibers and four receive fibers, and four fibers from each of first and second rows. Furthermore, at the MPO side, the first and second MPOs 14a, 14b include fiber routings from the first and second rows of LC connectors, respectively, with the transmit and receive fibers segregated such that one or more of the the pairs of transmit and receive fibers at the LC connectors are non-adjacent to one another. In the particular example shown, a first transmit fiber and first receive fiber (e.g., LC connectors #1-2) are routed to outermost fibers of the MPO 14a, a second transmit and second receive fiber (e.g., LC connectors 3-4) are routed to next-outermost fibers of the MPO 14a, the third transmit and receive fiber (e.g., LC connectors 5-6) are routed to the third-outermost fibers, and so on, with LC connectors 11-12 routed to the innermost fibers of the MPO 14a. A similar arrangement is provided as well with respect to the second row of LC connectors, with LC connectors 13-24 being routed to MPO 14b in a complementary manner.
Referring to
As in the module 10 of
In the example of
Specifically, in the embodiment shown, if the LC connectors are numbered and arranged sequentially in first and second rows 118a-b, for the first row 118a of LC connectors 116, a first LC connector (in first row 118a) connects to a seventh MPO fiber connection of the first MPO connector 114a, the second LC connector connects to the tenth MPO fiber connection of the first MPO connector 114a, the third LC connector connects to the eighth MPO fiber connection of the first MPO connector 114a, the fourth LC connector connects to the ninth MPO fiber connection of the first MPO connector 114a, the fifth LC connector connects to the eleventh MPO fiber connection of the second MPO connector 114b, the sixth LC connector connects to the second MPO fiber connection of the first MPO connector 114a, the seventh LC connector connects to the twelfth MPO fiber connection of the second MPO connector 114b, the eighth LC connector connects to the first MPO fiber connection of the first MPO connector 114a, the ninth LC connector connects to the third MPO fiber connection of the second MPO connector 114b, the tenth LC connector connects to the sixth MPO fiber connection of the second MPO connector 114b, the eleventh LC connector connects to the fourth MPO fiber connection of the second MPO connector 114b, and the twelfth LC connector connects to the fifth MPO fiber connection of the second MPO connector 114b.
Regarding the second row 118b of LC connectors 116, a thirteenth LC connector connects to the twelfth MPO fiber connection of the first MPO connector 114a, a fourteenth LC connector connects to the fifth MPO fiber connection of the first MPO connector 114a, a fifteenth LC connector connects to the eleventh MPO fiber connection of the first MPO connector 114a, a sixteenth LC connector connects to the sixth MPO fiber connection of the first MPO connector 114a, a seventeenth LC connector connects to the fourth MPO fiber connection of the first MPO connector 114a, an eighteenth LC connector connects to the ninth MPO fiber connection of the second MPO connector 114b, a nineteenth LC connector connects to the third MPO fiber connection of the first MPO connector 114a, a twentieth LC connector connects to the tenth MPO fiber connection of the second MPO connector 114b, a twenty-first LC connector connects to the eighth MPO fiber connection of the second MPO connector 114b, a twenty-second LC connector connects to the first MPO fiber connection of the second MPO connector 114b, a twenty-third LC connector connects to the seventh MPO fiber connection of the second MPO connector 114b, and a twenty-fourth LC connector connects to the second MPO fiber connection of the second MPO connector 114b.
Referring to
Generally, the arrangement of MPO connectors 214a-c and routing to LC connectors 216 allows three 8-fiber 40G fiber optic transceivers, such as QSFP transceivers, to broken out into 10G duplex LC ports. The module 210 connects to 3 8-fiber transceivers using 3 separate 8-fiber or 12-fiber MPO patch cords. This allows the 3 transceivers to optionally be located in 3 separate locations. The fibers within the module 210 are arranged to accept Method B MPO patch cords (which map position 1 at a first end to position 12 at a second end, and vice versa, for a twelve-fiber MPO connector).
As in the module 10 of
In the example fiber routing configuration of
In the example fiber routing configuration as shown, each of the MPO connectors uses a first four sequential fiber connections as receive fibers and a last four sequential fiber connections as transmit fibers. Each MPO connector 214a-c routes two transmit and two receive fibers to each of a first (bottom) row 218a and second (top) row 218b of the LC connectors 216.
For the first row 218a of LC connectors 216, a first LC connector (in first row 218a) connects to a third MPO fiber connection of the first MPO connector 214a, the second LC connector connects to the tenth MPO fiber connection of the first MPO connector 214a, the third LC connector connects to the fourth MPO fiber connection of the first MPO connector 214a, the fourth LC connector connects to the ninth MPO fiber connection of the first MPO connector 214a, the fifth LC connector connects to the third MPO fiber connection of the second MPO connector 214b, the sixth LC connector connects to the tenth MPO fiber connection of the second MPO connector 214b, the seventh LC connector connects to the third MPO fiber connection of the second MPO connector 214b, the eighth LC connector connects to the ninth MPO fiber connection of the second MPO connector 214b, the ninth LC connector connects to the third MPO fiber connection of the second MPO connector 114b, the tenth LC connector connects to the tenth MPO fiber connection of the third MPO connector 214c, the eleventh LC connector connects to the fourth MPO fiber connection of the third MPO connector 214c, and the twelfth LC connector connects to the ninth MPO fiber connection of the third MPO connector 214c.
Regarding the second row 218b of LC connectors 216, a thirteenth LC connector connects to the twelfth MPO fiber connection of the first MPO connector 214a, a fourteenth LC connector connects to the first MPO fiber connection of the first MPO connector 214a, a fifteenth LC connector connects to the eleventh MPO fiber connection of the first MPO connector 214a, a sixteenth LC connector connects to the second MPO fiber connection of the first MPO connector 214a, a seventeenth LC connector connects to the twelfth MPO fiber connection of the second MPO connector 214b, an eighteenth LC connector connects to the first MPO fiber connection of the second MPO connector 214b, a nineteenth LC connector connects to the eleventh MPO fiber connection of the second MPO connector 214b, a twentieth LC connector connects to the second MPO fiber connection of the second MPO connector 214b, a twenty-first LC connector connects to the twelfth MPO fiber connection of the third MPO connector 214c, a twenty-second LC connector connects to the first MPO fiber connection of the third MPO connector 214c, a twenty-third LC connector connects to the eleventh MPO fiber connection of the third MPO connector 214c, and a twenty-fourth LC connector connects to the second MPO fiber connection of the third MPO connector 214c.
As compared with the arrangement of LC connectors in
As seen in
In the embodiment shown, the groups of LC connectors 216 can be identified visually on the module 210, to improve the manner in which a technician can determine which LCs correspond to which fiber paths. In an example embodiment, indicia may be disposed on the second side of the housing to visually distinguish each group of LC connectors from an adjacent neighboring group of LC connectors. This visual distinction can be accomplished in many ways. For example, in one possible embodiment, a first group (e.g., connectors 1-4 and 13-16) can have a first color coded appearance, while a second group (connectors 5-8 and 17-20) may have a second color coded appearance that is readily visually distinguishable from the first group. A third group (e.g., connectors 9-12 and 21-24) may have a third color coded appearance that is different from the second group, to which it is also adjacent. In some examples, the color coding of the first and third group may be the same, but may be distinguished from the second group. In this way, the fiber routing may be viewed as reversible between the first and third groups, but each group is visually distinct from one another, because the first and third groups are separated from each other by the second group. In some examples, the color coding of the first and third groups may be the same, but may be distinguished from the second group (as seen in
It is noted that the module 210 described in connection with
It is noted that although the arrangement of
Referring to
Generally, the arrangement of MPO connector 314 and routing to LC connectors 316 allows a single 24-fiber MPO to be connected via a trunk cable to the LCs on the opposite side of the module 310. As in the module 10 of
In the example fiber routing configuration of
More particularly, a first LC connector (in first row 318a) connects to a thirteenth MPO fiber in the MPO connector 314, a second LC connector connects to a twelfth MPO fiber in the MPO connector, a third LC connector connects to a fourteenth MPO fiber, a fourth LC connector connects to an eleventh MPO fiber, a fifth LC connector connects to an fifteenth MPO fiber, a sixth LC connector connects to a tenth MPO fiber, a seventh LC connector connects to a sixteenth MPO fiber, an eighth LC connector connects to a ninth MPO fiber, a ninth LC connector connects to a seventeenth MPO fiber, a tenth LC connector connects to an eighth MPO fiber, an eleventh LC connector connects to an eighteenth MPO fiber, a twelfth LC connector connects to a seventh MPO fiber, a thirteenth LC connector connects to a nineteenth MPO fiber, a fourteenth LC connector connects to a sixth MPO fiber, a fifteenth LC connector connects to a twentieth MPO fiber, a sixteenth LC connector connects to a fifth MPO fiber, a seventeenth LC connector connects to a twenty-first MPO fiber, an eighteenth LC connector connects to a fourth MPO fiber, a nineteenth LC connector connects to a twenty-second MPO fiber, a twentieth LC connector connects to a third MPO fiber, a twenty-first LC connector connects to a twenty-third MPO fiber, a twenty-second LC connector connects to a second MPO fiber, a twenty-third LC connector connects to a twenty-fourth MPO fiber, and a twenty-fourth LC connector connects to a first MPO fiber.
Referring to
Referring to
An example fiber routing within the 2×3 cable is illustrated in
Referring to
Referring now to
In this example, a cable includes twelve fibers, including four dark fibers (fibers 5-8). In such a cable, rather than completely inverting the fibers such that fiber 1 at a first end connects to fiber 12 at a second end, only the transmit and receive fibers are inverted among themselves, such that fiber 1 at a first end is routed to fiber 4 at a second end, fiber 2 at the first end is routed to fiber 3 at the second end, fiber 4 at the first end is routed to fiber 1 at the second end. Similarly, fiber 9 at the first end is routed to fiber 12 at the second end, fiber 10 at the first end is routed to fiber 11 at the second end, fiber 11 at the first end is routed to fiber 10 at the second end, and fiber 12 at the first end is routed to fiber 9 at the second end.
Referring to
Referring to
In the embodiment shown, the LC connections of the optical distribution module 904 connect to LC connections of a module 906, for distribution onto two 12-fiber MPOs 908a-b of the module 906. In example implementations, the optical distribution module 804 can be a DM-style Systimax module from CommScope, Inc. of Hickory, N.C., and can route 24 LC connections (numbered 1-24) to two 12-connector MPO connections in inverse, sequential order.
In the example embodiment described in
Referring to
In the embodiment shown, the MPO connectors 1004a-c are connected to an optical distribution module 1010 having three MPO connectors 1012a-c. In example implementations, the optical distribution module 1010 can be implemented using the module 210 described above in connection with
Referring now to
In the embodiment shown, a 24-fiber cable 1106 interconnects between the optical distribution module 1104a and a second optical distribution module 1104b, which is in an alpha-alpha (mirrored, but not inverted) orientation relative to optical distribution module 1104a. The 24-fiber cable includes three MPO connectors at each end, and has a reversed connection sequence in which fiber 1 of an MPO connector at one end connects to fiber 12 of an MPO connector at the opposite end, and vice versa. In the example shown, all eight fiber connections of one MPO connector of the optical distribution module 1104a connect to a same corresponding MPO connector of the optical distribution module 1104b.
The optical distribution module 1104b also has a plurality of LC connections on an opposite side from the MPO connectors, which are connected two additional banks each including a plurality of LC jumpers 1106a-b. In this example, the LC jumpers are again arranged such that jumpers of a first bank 1106a are crossed with an adjacent one of the transmit/receive pair when connected to LC connections 1-12 of the optical distribution module 1104b, while jumpers of the second bank 1006b are connected straight to LC connections 13-24.
Referring to
The description and illustration of one or more embodiments provided in this application are not intended to limit or restrict the scope of the invention as claimed in any way. The embodiments, examples, and details provided in this application are considered sufficient to convey possession and enable others to make and use the best mode of claimed invention. The claimed invention should not be construed as being limited to any embodiment, example, or detail provided in this application. Regardless whether shown and described in combination or separately, the various features (both structural and methodological) are intended to be selectively included or omitted to produce an embodiment with a particular set of features. Having been provided with the description and illustration of the present application, one skilled in the art may envision variations, modifications, and alternate embodiments falling within the spirit of the broader aspects of the claimed invention and the general inventive concept embodied in this application that do not depart from the broader scope.
Claims
1.-22. (canceled)
23. A fiber optic distribution system comprising:
- a fiber optic trunk cable comprising: at a first end, a 24-fiber multi-fiber push-on (MPO) connector, the 24-fiber MPO connector having first and second rows of 12 fiber connections; at a second end, a first 12-fiber MPO connector and a second 12-fiber MPO connector, each of the first and second 12-fiber MPO connectors having 12 sequential fiber connections; wherein a first plurality of the first row of 12 fiber connections is optically connected to the first 12-fiber MPO connector in a sequential order and a second plurality of the first row of 12 fiber connections is optically connected to the second 12-fiber MPO connector in a reverse sequential order; and wherein a first plurality of the second row of 12 fiber connections is optically connected to the second 12-fiber MPO connector in a sequential order and adjacent to the second plurality of the first row of 12 fiber connections, and a second plurality of the second row of 12 fiber connections is optically connected to the first 12-fiber MPO connector in a reverse sequential order adjacent to the first plurality of the first row of 12 fiber connections.
24. The fiber optic distribution system of claim 23, wherein the first plurality of the first row of 12 fiber connections includes six sequential ones of the first row of 12 fiber connections of the 24-fiber MPO connector.
25. The fiber optic distribution system of claim 23, wherein the fiber optic trunk cable further comprises:
- a first optical fiber optically connected between a first connection of the 24-fiber MPO connector and a first connection of the first 12-fiber MPO connector;
- a second optical fiber optically connected between a second connection of the 24-fiber MPO connector and a second connection fiber of the first 12-fiber MPO connector;
- a third optical fiber optically connected between a third connection of the 24-fiber MPO connector and a third connection of the first 12-fiber MPO connector;
- a fourth optical fiber optically connected between a fourth connection of the 24-fiber MPO connector and a fourth connection of the first 12-fiber MPO connector;
- a fifth optical fiber optically connected between a fifth connection of the 24-fiber MPO connector and a fifth connection of the first 12-fiber MPO connector;
- a sixth optical fiber optically connected between a sixth connection of the 24-fiber MPO connector and a sixth connection of the first 12-fiber MPO connector;
- a seventh optical fiber optically connected between a seventh connection of the 24-fiber MPO connector and a first connection of the second 12-fiber MPO connector;
- a eighth optical fiber optically connected between an eighth connection of the 24-fiber MPO connector and a second connection of the second 12-fiber MPO connector;
- a ninth optical fiber optically connected between a ninth connection of the 24-fiber MPO connector and a third connection of the second 12-fiber MPO connector;
- a tenth optical fiber optically connected between a tenth connection of the 24-fiber MPO connector and a fourth connection of the second 12-fiber MPO connector;
- an eleventh optical fiber optically connected between an eleventh connection of the 24-fiber MPO connector and a fifth connection of the second 12-fiber MPO connector;
- a twelfth optical fiber optically connected between a twelfth connection of the 24-fiber MPO connector and a sixth connection of the second 12-fiber MPO connector;
- a thirteenth optical fiber optically connected between a thirteenth connection of the 24-fiber MPO connector and a twelfth connection of the first 12-fiber MPO connector;
- a fourteenth optical fiber optically connected between a fourteenth connection of the 24-fiber MPO connector and an eleventh connection fiber of the first 12-fiber MPO connector;
- a fifteenth optical fiber optically connected between a fifteenth connection of the 24-fiber MPO connector and a tenth connection of the first 12-fiber MPO connector;
- a sixteenth optical fiber optically connected between a sixteenth connection of the 24-fiber MPO connector and a ninth connection of the first 12-fiber MPO connector;
- a seventeenth optical fiber optically connected between a seventeenth connection of the 24-fiber MPO connector and an eighth connection of the first 12-fiber MPO connector;
- an eighteenth optical fiber optically connected between a eighteenth connection of the 24-fiber MPO connector and a seventh connection of the first 12-fiber MPO connector;
- a nineteenth optical fiber optically connected between a nineteenth connection of the 24-fiber MPO connector and a twelfth connection of the second 12-fiber MPO connector;
- a twentieth optical fiber optically connected between a twentieth connection of the 24-fiber MPO connector and an eleventh connection of the second 12-fiber MPO connector;
- a twenty-first optical fiber optically connected between a twenty-first connection of the 24-fiber MPO connector and a tenth connection of the second 12-fiber MPO connector;
- a twenty-second optical fiber optically connected between a twenty-second connection of the 24-fiber MPO connector and a ninth connection of the second 12-fiber MPO connector;
- a twenty-third optical fiber optically connected between a twenty-third connection of the 24-fiber MPO connector and an eighth connection of the second 12-fiber MPO connector; and
- a twenty-fourth optical fiber optically connected between a twenty-fourth connection of the 24-fiber MPO connector and a seventh connection of the second 12-fiber MPO connector.
26. The fiber optic distribution system of claim 25, wherein:
- the first, second, third, fourth, fifth and sixth connections of the 24-fiber MPO connector form the first plurality of the first row of 12 fiber connections; and
- the seventh, eighth, ninth, tenth, eleventh, and twelfth connections of the 24-fiber MPO connector form the second plurality of the first row of 12 fiber connections.
27. The fiber optic distribution system of claim 23, further comprising:
- A fiber optic distribution module comprising: a housing; a first MPO connector and a second MPO connector exposed at a first side of the housing, each of the first MPO connector and the second MPO connector having a plurality of sequential connector locations; and a plurality of LC connectors disposed on a second side of the housing opposite the first side, the plurality of LC connectors arranged into a first row and a second row; and a plurality of fibers, each of the plurality of fibers routed between one of the first and second MPO connectors and a different one of the plurality of LC connectors.
28. The fiber optic distribution system of claim 27, wherein the
- wherein the plurality of LC connectors in the first row includes a plurality of channels, each channel being formed by a pair of adjacent LC connectors, and
- wherein, at the first MPO connector, fibers are optically routed from the pair of adjacent LC connectors to non-adjacent ones of the sequential connector locations.
29. The fiber optic distribution system of claim 28, wherein, at the first MPO connector, fibers connected to a plurality of pairs of adjacent LC connectors forming channels are routed to non-adjacent ones of the sequential connector locations.
30. The fiber optic distribution system of claim 27,
- wherein the first row of LC connectors includes first, second, third, fourth, fifth, sixth, seventh, eighth, ninth, tenth, eleventh, and twelfth LC connectors;
- wherein the first and second LC connectors form a first channel, the third and fourth LC connectors form a second channel, the fifth and sixth LC connectors form a third channel, the seventh and eighth LC connectors form a fourth channel, the ninth and tenth LC connectors form a fifth channel, and the eleventh and twelfth LC connectors form a sixth channel.
31. The fiber optic distribution system of claim 30, wherein:
- the first LC connector is optically connected to a first connection location of the first MPO connector and the second LC connector is optically connected to a twelfth connection location of the first MPO connector;
- the third LC connector is optically connected to a second connection location of the first MPO connector and the fourth LC connector is optically connected to an eleventh connection location of the first MPO connector;
- the fifth LC connector is optically connected to a third connection location of the first MPO connector and the sixth LC connector is optically connected to a tenth connection location of the first MPO connector;
- the seventh LC connector is optically connected to a fourth connection location of the first MPO connector and the eighth LC connector is optically connected to a ninth connection location of the first MPO connector;
- the ninth LC connector is optically connected to a fifth connection location of the first MPO connector and the tenth LC connector is optically connected to an eighth connection location of the first MPO connector; and
- the eleventh LC connector is optically connected to a sixth connection location of the first MPO connector and the twelfth LC connector is optically connected to a seventh connection location of the first MPO connector.
32. A fiber optic distribution system comprising:
- a first fiber optic distribution module comprising: a first housing; a first plurality of multi-fiber push-on (MPO) connectors including a first MPO connector, a second MPO connector, and a third MPO connector exposed at
- a first side of the housing; a first plurality of LC connectors disposed on a second side of the housing opposite the first side, the first plurality of LC connectors arranged into a first row and a second row; and a first plurality of fibers, each of the first plurality of fibers routed between one of the first, second, and third MPO connectors and a different one of the first plurality of LC connectors;
- a second fiber optic distribution module comprising: a second housing; a second plurality of multi-fiber push-on (MPO) connectors including a first MPO connector, a second MPO connector, and a third MPO connector exposed at a first side of the second housing; a second plurality of LC connectors disposed on a second side of the second housing opposite the first side, the second plurality of LC connectors arranged into a first row and a second row; and a second plurality of fibers, each of the second plurality of fibers routed between one of the first, second, and third MPO connectors and a different one of the plurality of LC connectors;
- a first trunk cable optically connected to the first MPO connector of the first fiber optic distribution module and, at an opposite end, the first MPO connector of the second fiber optic distribution module;
- wherein the first MPO connector of the first fiber optic distribution module and the first MPO connector of the second fiber optic distribution module each are positioned in the same orientation; and
- wherein the trunk cable optically connects between fiber connection locations of the first MPO connectors of the first and second fiber optic distribution modules in a reverse sequential order.
33. The fiber optic distribution system of claim 32, further comprising:
- a second trunk cable optically connected to the second MPO connector of the first fiber optic distribution module and, at an opposite end, the second MPO connector of the second fiber optic distribution module; and
- a third trunk cable optically connected to a third MPO connector of the plurality of MPO connectors of the first fiber optic distribution module and, at an opposite end, a third MPO connector of the second plurality of MPO connectors of the second fiber optic distribution module;
- wherein each of the fibers in the respective MPO connector, the second MPO connector, and the third MPO connector of each of the first and second fiber optic distribution modules are interconnected by the trunk cable, the second trunk cable, and the third trunk cable in a reverse sequential order.
34. The fiber optic distribution system of claim 33, wherein the first plurality of LC connectors includes 24 LC connectors disposed in two rows, and the second plurality of LC connectors includes 24 LC connectors disposed in two rows.
35. The fiber optic distribution system of claim 34, wherein the first trunk cable, the second trunk cable, and the third trunk cable each include at least 12 fibers, and wherein a plurality of fibers of each of the trunk cables remains unpopulated.
36. The fiber optic distribution system of claim 35, wherein at least one of the first plurality of LC connectors in each of the two rows is optically routed to one of each of the first MPO connector, the second MPO connector, and the third MPO connector of the first fiber optic distribution module.
Type: Application
Filed: Feb 22, 2021
Publication Date: Sep 9, 2021
Applicant: COMMSCOPE TECHNOLOGIES LLC (Hickory, NC)
Inventor: Bradley Scott BILLMAN (Sachse, TX)
Application Number: 17/181,112