Fiber optic cable distribution box
RE049385 · 2023-01-24
Assignee
Inventors
Cpc classification
G02B6/475
PHYSICS
International classification
G02B6/00
PHYSICS
Abstract
A fiber optic cable distribution box has an interface compartment for interfacing a first set of fibers when routed inside the compartment, with a second set of fibers associated with a fiber optic cable that is routed to the box. A drum region is disposed beneath the interface compartment. The drum region includes a cylindrical wall for supporting a fiber optic cable wound about the wall. The drum region is formed so that the box can turn about the axis of the cylindrical wall when a cable is paid out from the drum region. The interface compartment and the drum region are constructed so that the first set of fibers inside the interface compartment, originate from an inside end portion of the cable wound on the drum region.
Claims
.[.1. A fiber optic cable distribution box, comprising: an interface compartment constructed and arranged for interfacing a first set of fibers when routed inside the compartment, with a second set of fibers associated with a fiber optic cable that is routed to the box; a drum region extending beneath the interface compartment, wherein the drum region includes a first cylindrical wall having an axis, the wall is dimensioned to support a length of a first fiber optic cable wound about the wall, and the drum region is constructed and arranged so that the distribution box can turn about the axis of the cylindrical wall when a cable is paid out from the drum region; and the interface compartment and the drum region are constructed and arranged so that the first set of fibers inside the interface compartment, originate from an inside end portion of the cable wound about the first cylindrical wall of the drum region..].
.[.2. A cable distribution box according to claim 1, including a tube arranged to extend coaxially through the drum region, and the tube has a central passage through which an outside shaft or spindle is insertable..].
.[.3. A cable distribution box according to claim 1, wherein a first cable entry port is formed in the first cylindrical wall of the drum region for receiving the inside end portion of the first fiber optic cable..].
.[.4. A cable distribution box according to claim 1, wherein the drum region includes a second cylindrical wall arranged radially inward and coaxially with the first cylindrical wall, and an annular fiber routing region is defined between the first and the second walls..].
.[.5. A cable distribution box according to claim 3, including a strain relief device arranged at the first cable entry port for guiding the inside end portion of the first fiber optic cable through the first cylindrical wall over a path tangential to the circumference of the wall..].
.[.6. A cable distribution box according to claim 5, wherein the strain relief device is constructed and arranged to transfer a pull force applied externally to the first fiber optic cable, to the first cylindrical wall of the drum region when the cable is wound on or off the drum region..].
.[.7. A cable distribution box according to claim 5, wherein the strain relief device includes one or more guides for securing a strength material beneath an outer jacket of the cable..].
.[.8. A cable distribution box according to claim 1, wherein the interface compartment includes a connector panel, and a number of connector adapters mounted in the panel for coupling fiber optic connectors at an externally facing side of the panel, with corresponding fiber optic connectors at an internally facing side of the panel..].
.[.9. A cable distribution box according to claim 8, wherein the interface compartment is constructed and arranged to support the connector panel so that a first connector panel can be removed and exchanged with a second connector panel having connector adapters of a type different from a type of adapters mounted in the first connector panel..].
.[.10. A cable distribution box according to claim 1, wherein the interface compartment has a side wall, and a number of fingers or tabs that project outward from the side wall for confining the length of the first fiber optic cable when wound about the first cylindrical wall of the drum region..].
.[.11. A cable distribution box according to claim 1, including a disk flange that extends radially outward beneath the interface compartment for confining the length of the first fiber optic cable when wound on the first cylindrical wall of the drum region..].
.[.12. A cable distribution box according to claim 1, wherein the interface compartment has a side wall, and the side wall has a second cable entry port for receiving a fiber optic cable or cable assembly having a third set of fibers to be coupled via the connector panel with the second set of fibers of the second fiber optic cable routed to the box..].
.[.13. A cable distribution box according to claim 8, wherein one or more of the adapters mounted in the connector panel of the interface compartment are constructed and arranged to couple multi-fiber type connectors with one another..].
.[.14. A cable distribution box according to claim 1, including a length of the first fiber optic cable wound about the first cylindrical wall of the drum region, and a fiber optic connector for terminating an outside end of the cable..].
.[.15. A cable distribution box according to claim 14, wherein the fiber optic connector at the outside end of the cable is a multi-fiber type of connector..].
.Iadd.16. A fiber optic cable distribution device comprising: a cable storage drum defining a cable storage region, wherein a connector interface region of the fiber optic cable distribution device is disposed atop the cable storage region, the connector interface region including a plurality of fiber optic adapters configured to receive fiber optic connectors, the fiber optic cable distribution device also including a connector interface compartment closable by a cover lid that is constructed and arranged to permit an installer to access an interior of the connector interface compartment from outside, wherein at least a portion of the plurality of fiber optic adapters are covered by the cover lid when the cover lid is closed; a first fiber optic cable coiled about the cable storage drum in a direction extending from an inside of the cable storage region toward an outside of the cable storage region, wherein at least a first set of optical fibers of the first fiber optic cable extends from the inside of the cable storage region to the connector interface region of the interface compartment; and the cable distribution device defining an axis of rotation about which the connector interface region and the drum rotate together in unison as the first fiber optic cable is paid off from the drum..Iaddend.
.Iadd.17. The fiber optic cable distribution device of claim 16, wherein at least the first set of fibers extends from the inside of the cable storage region into the connector interface compartment without any intermediate coiling of the first set of fibers..Iaddend.
.Iadd.18. The fiber optic cable distribution device of claim 16, wherein an outer end of the first fiber optic cable is terminated by a multi-fiber connector..Iaddend.
.Iadd.19. The fiber optic cable distribution device of claim 16, wherein the cable distribution device defines an opening that extends along the axis of rotation, the opening being configured for receiving a mandrel about which the cable distribution device rotates when the first fiber optic cable is paid off from the drum..Iaddend.
.Iadd.20. The fiber optic cable distribution device of claim 16, wherein the plurality of fiber optic adapters include first ports that receive fiber optic connectors associated with the first set of optical fibers..Iaddend.
.Iadd.21. The fiber optic cable distribution device of claim 20, wherein the plurality of fiber optic adapters include second ports that are accessible from outside the connector interface region..Iaddend.
.Iadd.22. The fiber optic cable distribution device of claim 16, wherein the cable storage drum defines a drum wall having an outer dimension of 3 inches or less..Iaddend.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) In the drawing:
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DETAILED DESCRIPTION OF THE INVENTION
(17)
(18) The box 10 also has a drum region 20 that extends axially upward from a central portion of the base 12. The drum region 20 includes an outer cylindrical wall 22 the outside periphery of which is partially visible in
(19) The cable distribution box 10 also has an interface compartment 30 that is disposed atop the drum region 20, and which has a peripheral side wall 31. In the embodiment of
(20)
(21) As mentioned, optical fibers routed into the interface compartment 30 may originate from the inside end portion of a cable wound over the drum region 20 and which passes through the drum wall 22 via the strain relief device 24. In such an application, the fibers are routed through an annular fiber routing region 46 that extends between the outer cylindrical wall 22, and an inner cylindrical wall 48 of the drum region which wall 48 is formed radially inward of the outer wall 22. The strain relief device 24 and the dimensions of the annular fiber routing region 46, are such that individual optical fibers will not be subject to a bend diameter less than that specified for the fibers before entering the interface compartment 30 and terminating in the connectors 44. For example, when using cables of Allwave® Flex™ fiber available from OFS Fitel, the inner wall 48 may have an outside diameter as small as 0.7874 inches (20 mm), and the mean diameter of the fiber routing region 46 may only be about 2.0 inches (50.8 mm).
(22) The sidewall 31 of the interface compartment 30 also has a cable entry or pass through port 50 (
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(24) The diameter of the central passage 62 in the tube 60 is preferably sufficient to allow a long narrow tool such as a screwdriver shaft, bolt or other payoff mandrel, to be inserted through the passage from above or below the box 10 so that the tool will act as a spindle about which the box 10 can turn freely. This construction allows a single worker easily to pay out a cable wound on the drum region 20, as may be necessary for a network deployment at a MDU. For example, while holding the handle of an inserted screwdriver in one hand, the worker can use his or her other hand to pull and unwind a desired length of the cable from the drum region 20 while the box 10 is free to turn about the screwdriver shaft.
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(26) The box 200 has a single piece cover lid 232 with an integrated hinge 235 for a connector guard or cover 234. Further, a side wall 231 of an interface compartment 230 has a continuous circular disk flange 204 that extends radially outward beneath the compartment 230, parallel to a base 212 of the box. The flange 204 and the base 212 together serve to confine a length of fiber optic cable wound on the outer cylindrical wall 222, within the region between the flange 204 and the base 212. As with the box 10 of
(27) Also, as seen in
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(29) Further, as shown in
(30) The cable 260 and its individual fibers are guided over a substantially straight path between the device openings 226, 228, with the aid of a pair of parallel fingers or guides 211 that project upward from the base wall 224c of the device 224 as seen in
(31) Accordingly, the inside end portion of the cable 260 and its individual fibers pass tangentially with respect to the outer cylindrical wall 222 through the cable entry port 225 in the wall, and into the annular fiber routing region 246 of the box 200. Because the yarn surrounding the fibers is anchored to the guides 211 of the strain relief device 224, any force applied externally to the cable 260 when the cable is being wound on or off the outer cylindrical wall 222 of the drum region, will be transferred to the wall 222 in which the device 224 is fixed rather than to the fibers themselves.
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Splice Compartment 308
(33) Typical MDU cable distribution box installations have single fiber breakouts that egress from the box, wherein each breakout is associated with a corresponding living unit of the premises where the box is installed. Single fiber cables from each living unit are often routed to a box without a terminating connector. The bare ends of these cables can be terminated at the box in various ways. For example, single ended fiber pigtails can be spliced within the box so that splice sleeves are housed in a common space. This requires a chamber or compartment to house the splice in order to prevent damage and to manage fiber slack. Alternatives may include mechanical splicing of the pigtails, which would require a similar chamber or housing. The individual single fiber cables may also be terminated directly with a field installable connector, thus obviating the need for a splice chamber.
(34) The box 300 has an integrated splice chamber or compartment 308 attached or formed underneath the base 312, including a splice tray 309 mounted inside the base. The splice tray 309 may be fixed within the box 300, or affixed directly to a wall. In either case, the box 300 may be installed over the splice compartment 308. Pigtails or terminated ends can then enter or exit a lower section of the compartment through corresponding clearance notches 311 that are cut in a side wall of the base 312.
Connector Parking Area 313
(35) The connector parking area or block 313 allows terminated fiber ends to be stored while not in use. The block 313 is constructed and dimensioned to receive and secure a selected one of a number of different commercially available connector parking strips 307 (e.g., type SC) in the block 313. This feature enables the future use of alternate connector types without having to replace the box 300, but at the same time allows installers to forego parking
Latch Holes 315
(36) Several latch or security holes 315 may be formed through corresponding feet on the hinged cover lid 332. The latch holes 315 allow the end user to utilize a number of safety lockout methods. For example, one hole 315 can be used with a standard plunger type latching mechanism simply to keep the lid closed. Other holes 315 can be used to receive wire ties, lockout tags, or other security locks.
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(38) Each of the subscriber fibers 416 is connected with a corresponding fiber in a cable 418 associated with the box 10 in the ceiling of the subscriber's floor. The cable 418 may be wound initially about the drum region 20 of the box 10, to be partially or fully unwound later for routing to another box 10 that serves as an “aggregation” box which is located, e.g, between a basement 420 and a roof 422 of the MDU 400. The fibers of the cable 418 are terminated in the connectors 44 which, in turn, are connected to the adapters 42 on the internal side of the box connector panel 40.
(39) At the aggregation box 10, each one of the cables 418 containing subscriber fibers from each floor of the MDU 400, enters the aggregation box through its rear pass through port 50 or a faceplate port. As mentioned earlier, the fibers of each cable 418 may be routed inside the box with little if any bending to connect via a multi-fiber connector 44 with a corresponding adapter 42 on the internal side of the box panel 40. A main fiber optic cable 424 serving all subscribers in the MDU 400, is routed between a cable entry box 426 in the basement 420, and the aggregation box 10 in which the main cable fibers connect to the adapters 42 on the external side of the box panel 40 via multifiber connectors 36. A network provider cable 430 is routed to the entry box 426 from outside the MDU 400, and fibers of the cable 430 are connected to corresponding subscriber fibers of the cable 424 inside the entry box 426.
(40) The various embodiments disclosed herein incorporate the following important features in a fiber optic cable distribution box.
(41) 1. Reduced physical dimensions for use with newer types of fiber optic cable such as Allwave® Flex™ available from OFS Fitel and which have superior bending performance.
(42) 2. An axial drum region that provides for external cable storage and keeps internal fiber routing within safe bending limits.
(43) 3. A central through tube that facilitates pay-off of cable wound externally on the drum region, with the use of a common tool such as a screwdriver.
(44) While the foregoing represents preferred embodiments of the invention, it will be understood by those skilled in the art that various modifications and changes may be made without departing from the spirit and scope of the invention, and that the invention includes all such modifications and changes as come within the scope of the following claims.