EP4662521A1 - Modular splice tray system for fiber optic closure - Google Patents

Modular splice tray system for fiber optic closure

Info

Publication number
EP4662521A1
EP4662521A1 EP23848041.2A EP23848041A EP4662521A1 EP 4662521 A1 EP4662521 A1 EP 4662521A1 EP 23848041 A EP23848041 A EP 23848041A EP 4662521 A1 EP4662521 A1 EP 4662521A1
Authority
EP
European Patent Office
Prior art keywords
platform
fiber optic
spine
closure
wall
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
EP23848041.2A
Other languages
German (de)
French (fr)
Inventor
Tyler Clas
David Wittmeier
Bobby BRANKS
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
AFL Telecommunications LLC
Original Assignee
AFL Telecommunications LLC
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by AFL Telecommunications LLC filed Critical AFL Telecommunications LLC
Publication of EP4662521A1 publication Critical patent/EP4662521A1/en
Pending legal-status Critical Current

Links

Classifications

    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/44Mechanical structures for providing tensile strength and external protection for fibres, e.g. optical transmission cables
    • G02B6/4439Auxiliary devices
    • G02B6/444Systems or boxes with surplus lengths
    • G02B6/4453Cassettes
    • G02B6/4455Cassettes characterised by the way of extraction or insertion of the cassette in the distribution frame, e.g. pivoting, sliding, rotating or gliding
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/44Mechanical structures for providing tensile strength and external protection for fibres, e.g. optical transmission cables
    • G02B6/4439Auxiliary devices
    • G02B6/444Systems or boxes with surplus lengths
    • G02B6/4441Boxes
    • G02B6/4442Cap coupling boxes
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B6/00Light guides; Structural details of arrangements comprising light guides and other optical elements, e.g. couplings
    • G02B6/44Mechanical structures for providing tensile strength and external protection for fibres, e.g. optical transmission cables
    • G02B6/4439Auxiliary devices
    • G02B6/444Systems or boxes with surplus lengths
    • G02B6/4453Cassettes
    • G02B6/4454Cassettes with splices

Definitions

  • the present disclosure relates generally to fiber optic closures.
  • fiber optic closures are kept underground, such as in handholes, so that the fiber optic closures cannot be seen or disrupted by members of the public.
  • the fiber optic closures are used to hold all of the fiber optic splices that are needed to connect data from a source cable to individual fiber optic lines.
  • Some places or users require large quantities of relatively small splice trays to accomplish large-quantity splices in the fiber optic closure, in contrast to small quantities of relatively large splice trays.
  • the fiber optic closures are secured in various ways in the handholes.
  • the fiber optic closure is placed on the ground within the handhole.
  • the fiber optic closure is attached to a pole, a rail, or other member within the handhole.
  • the fiber optic closure is placed, attached, or secured within the handhole in a variety of ways or methods.
  • known methods and structures may fix the fiber optic closure within the handhole and inhibit articulation of the fiber optic closure within or out of the handhole.
  • Known structures and methods may additionally inhibit placement of the fiber optic closure at a height or location that facilitates maintenance, assembly, disassembly, or operation at the fiber optic structure by a person.
  • An aspect of the present disclosure is directed to a fiber optic closure including a spine, a platform, and a tray assembly.
  • the fiber optic closure includes a reference coordinate system defining a mutually orthogonal vertical axis, lateral axis, and transverse axis.
  • the spine extends along the vertical axis and includes a first wall extending along the transverse axis and a second wall extending along the lateral axis.
  • the spine includes a platform retention member extending from the second wall.
  • a platform is releasably attachable to the spine at the second wall.
  • the platform is configured to extend in a first position alongside the second wall along the vertical axis and is configured to extend in a second position at an angle from the second wall between the vertical axis and the transverse axis.
  • the platform includes a clip configured to releasably couple to the platform retention member at the spine.
  • the tray assembly is releasably attachable to the first w all of the spine.
  • a reference coordinate system defines a mutually orthogonal vertical axis, lateral axis, and transverse axis.
  • the closure includes a spine extending along the vertical axis, the spine including a first w all extending along the transverse axis.
  • the first w all includes a first face and a second face each extending along the transverse axis and the vertical axis.
  • the first face and the second face are each positioned opposite of one another along the lateral axis.
  • the spine includes a second wall extending along the lateral axis.
  • the second wall includes a third face and a fourth face each extending along the lateral axis and the vertical axis.
  • the third face and the fourth face are each position opposite of one another along the transverse axis.
  • the spine includes a platform retention member extending from the second wall.
  • a platform is releasably attachable to the spine at each of the third face and the fourth face.
  • the platform is configured to extend in a first position alongside the second w all along the vertical axis.
  • the platform is configured to extend in a second position at an angle from the second wall between the vertical axis and the transverse axis.
  • the platform includes a clip configured to releasably couple to the platform retention member at the spine.
  • a plurality of tray assemblies is releasably attachable to the first face and the second face of the spine, the plurality of tray assemblies attachable to the spine in adjacent arrangement along the vertical axis at the first face and the second face.
  • Each tray assembly includes a tray panel extending along the vertical axis when attached to the spine.
  • a plurality' of tray plates is releasably attachable to the tray panel.
  • FIG. 1 depicts a perspective view of an embodiment of a fiber optic closure in accordance with aspects of the present disclosure
  • FIG. 2 depicts a perspective view of an embodiment of a fiber optic closure in an open position accordance with aspects of the present disclosure
  • FIG. 3 depicts a perspective view of an embodiment of a fiber optic closure in an open position in accordance with aspects of the present disclosure
  • FIG. 4 depicts a plan view of an embodiment of a fiber optic platform for embodiments of the fiber optic closure in accordance with aspects of the present disclosure
  • FIG. 5 depicts a perspective view of a portion of an embodiment of a fiber optic closure in accordance with aspects of the present disclosure
  • Fig. 6 depicts a perspective view of a portion of an embodiment of a fiber optic closure in accordance with aspects of the present disclosure
  • Fig. 7 depicts a perspective view of a portion of an embodiment of a fiber optic platform for the fiber optic closure in accordance with aspects of the present disclosure
  • Fig. 8 depicts a side cross sectional view of a portion of an embodiment of a fiber optic closure in accordance with aspects of the present disclosure
  • Fig. 9 depicts a view along a lateral axis of a portion of an embodiment of a fiber optic closure in accordance with aspects of the present disclosure
  • Fig. 10 depicts a perspective view of an embodiment of a fiber optic closure in accordance with aspects of the present disclosure
  • FIG. 11 depicts a perspective view of an embodiment of a fiber optic closure in accordance with aspects of the present disclosure
  • Fig. 12 depicts a partially exploded perspective view of the embodiment of a fiber optic closure of Fig. 11 in accordance with aspects of the present disclosure
  • FIG. 13A depicts a perspective view of an embodiment of a fiber holder for the closure in accordance with aspects of the present disclosure
  • Fig. 14 depicts a perspective view of an embodiment of a fiber holder for the closure in accordance with aspects of the present disclosure
  • FIG. 17A depicts a perspective view of an embodiment of a fiber holder for the closure in accordance with aspects of the present disclosure
  • Fig. 18 depicts a side view of an embodiment of a fiber holder for the closure in accordance with aspects of the present disclosure
  • Fig. 19 depicts a perspective view of an embodiment of a fiber holder for the closure in accordance with aspects of the present disclosure
  • Fig. 20A depicts a perspective view of an embodiment of a tray assembly of the closure in accordance with aspects of the present disclosure
  • Fig. 20B depicts a perspective view of an embodiment of the closure including an embodiment of the tray assembly in accordance with aspects of the present disclosure
  • Fig. 24 illustrates an exemplary operation of the mount structure in accordance with aspects of the present disclosure.
  • Fig. 25 illustrates an exemplary operation of the mount structure in accordance with aspects of the present disclosure.
  • a process, method, article, or apparatus that comprises a list of features is not necessarily limited only to those features but may include other features not expressly listed or inherent to such process, method, article, or apparatus.
  • “or” refers to an inclusive- or and not to an exclusive- or. For example, a condition A or B is satisfied by any one of the following: A is true (or present) and B is false (or not present), A is false (or not present) and B is true (or present), and both A and B are true (or present).
  • Ranges provided herein are inclusive of their end points. For instance, a range of 1 to 100 includes 1 and 100.
  • Terms of approximation such as “about,” “generally,” “approximately,” or “substantially,” include values within a ten percent full scale error from a low est value embodiment to a highest value embodiment. For instance, an embodiment including a range from approximately 10 to approximately 100 with a ten percent full scale error may include values from 1 to 109.
  • Embodiments of a fiber optic closure are provided.
  • the fiber optic closure includes a structural frame or spine configured to hold and support optical fibers, tubes, cables, leads, and sphce or splitter trays. Fiber optic cables route through a base.
  • the base may further provide environmental sealing, such as air and moisture sealing.
  • the spine extends along a vertical axis from the base.
  • the spine includes a releasably attachable, or detachable, platform, such as at a first wall forming a front face and a second wall forming a rear face. Mounting features at the tray assembly may further allow a tray plate to be releasably attached to the tray assembly and spine.
  • a plurality of tray assemblies is attachable to the spine in vertical arrangement, such as along a vertical track formed at each of the first wall and the second wall.
  • Each trayassembly includes a plurality of the splice or splitter trays, or tray plates, positionable in vertical arrangement along the spine.
  • the spine includes storage features, such as spools and tabs, for retaining, routing, holding, or otherwise securing loose or excess fibers, cables, or tubes.
  • Various embodiments of the fiber optic closure may be constructed of any suitable material, including, but not limited to, plastic. Particular embodiments may construct the fiber optic closure substantially entirely out of one or more plastic materials. Still particular embodiments may construct the spine, the platform, the routing panel, the fiber holder, and the upper routing guide as separately attachable monolithic bodies, allowing for relatively simple construction, assembly and disassembly, and customization for desired varieties of leads, tubes, fibers, splices, and combinations thereof.
  • Embodiments of the fiber optic closure and the mount structure provided herein may provide advantages such as holding up to 1728 or more individual splices within a single closure, while facilitating routing, splicing, and maintenance of the closure, and articulation of the closure into and out of an enclosed volume.
  • Embodiments of the mount structure provided herein allow for universal and standardized placement, attachment, and securing of the fiber optic closure in an enclosed volume, such as an underground volume, confined space, or handhole.
  • Embodiments provided herein may allow for articulation of the fiber optic closure within or out of the enclosed volume.
  • embodiments of the mount structure provided herein allow for the fiber optic closure to be placed at a height or location that facilitates operation at the fiber optic closure by a person.
  • Embodiments provided herein may facilitate ergonomic placement, provide improved articulation and adjustment of the fiber optic closure, and allow for attachment of the mount structure to various ty pes of fiber optic closures and mount interfaces.
  • Methods for mounting a fiber optic closure include attaching the first bracket to the rail assembly proximate to a pivot member of the rail assembly.
  • a mount plate attaches to the fiber optic closure via one or more mechanical fasteners.
  • the mount plate is coupled to the first bracket via an arm.
  • the arm positions the plate and the fiber optic closure substantially parallel or co-directional to the rail, such as by forming the arm with one or more portions extended along a radial direction from the first bracket.
  • the arm is separable from the first bracket to allow for rotation of the arm, plate, and the fiber optic closure together relative to the first bracket.
  • the fiber optic closure may be cantilevered from the first bracket via the arm and the mount plate.
  • the mount structure further includes the second bracket attached to the rail assembly and attached to the fiber optic closure via a mechanical compression device or clamp.
  • the mount structure may accordingly allow for forward and rearward support of the fiber optic closure.
  • the mount structure may furthermore support the fiber optic closure while orienting the fiber optic closure substantially parallel to the rail, allowing for reduced volume usage within the enclosed volume.
  • the second bracket may include adjustable clamping features such as may be included at the first bracket to allow for attachment to various cross-sectional areas of the rail assembly.
  • Embodiments of the mount structure allow for movement, translation, articulation, or rotation of the rail assembly, such as rotation from a horizontal position (e.g., approximately 7 zero degrees or parallel to the ground) to a vertical position (e.g., approximately 90 degrees or perpendicular to the ground).
  • the separable arm from the first bracket may allow the mount structure to be articulated to the vertical position.
  • the mount structure may further include a removable pin, bolt, camlock, clamp, mechanical stop, or other detent extendable through the rail and the first bracket. Removing the detent allows for the first bracket, separately from or together with the fiber optic closure, to be translated along the rail to position the fiber optic closure at a desired height.
  • the detent may be re-insertable at various portions of the rail to fix the fiber optic closure at the desired height, allowing for a person to perform maintenance, assembly, disassembly, splicing, or other operations at the fiber optic closure from a desired height, such as may be more ergonomic for the operator.
  • the detent and translation of the first bracket may allow for the fiber optic closure to be stored within a relatively smaller enclosed volume and/or on a shorter rail assembly while allowing the fiber optic closure to be re-positioned or translated to a desired operating height.
  • FIG. 1 depicts the closure 100 including a base 150, spine 110, rotatable platforms 210, and tray assemblies 310, such as further depicted and described herein.
  • a casing 22 (Figs. 23-25) is attachable to the base 150, such as to seal the inside of the casing 22 from an outside environment.
  • the first end 104 may particularly reference an end of the spine 110 proximate to the base 150 and the second end 105 may particularly reference an end of the spine 110 distal to the base 150.
  • Figs. 2-3 depict perspective views of the closure 100, and portions thereof.
  • the closure 100 includes a spine 110 extending along the vertical axis 101.
  • the spine forms a first wall 115 extending along the transverse axis 103.
  • the spine forms a second wall 116 extending along the lateral axis 102.
  • a rotatable platform 210 extends along the vertical axis 101 when in a first position.
  • the platform 210 is releasably attachable to, or detachable from, the spine 110 at the second wall 116.
  • the platform 210 is configured to extend in the first position alongside the second wall 116 along the vertical axis 101, such as depicted in Fig. 1.
  • the platform 210 is configured to extend in a second position at an arc or angle from second wall 116 between the vertical axis 101 and the transverse axis 103, such as depicted in Figs. 2- 3.
  • the first wall 115 includes a first face 111 and a second face 112 each extending along the transverse axis 103.
  • the first face 11 1 and the second face 112 are positioned opposite of one another along the lateral axis 102.
  • the second wall 116 includes a third face 113 and a fourth face 114 each extending along the lateral axis 102.
  • the third face 113 and the fourth face 114 are positioned opposite of one another along the transverse axis 103.
  • the second wall 116 is extended along the lateral axis 102 from the first wall 115.
  • the first wall 115 is extended along the transverse axis 103 between the third face 113 and the fourth face 114.
  • the closure 100 includes a platform 210 each releasably attached to respective second walls 116 spaced apart along the transverse axis 103.
  • the platforms 210 are each detachably coupled to respective faces, such as the third face 113 and the fourth face 114.
  • Each platform 210 is rotatable from the first position (e.g., depicted in Fig. 1) substantially co-directi onal to the vertical axis 101 and outward to the second position (e.g.. depicted in Fig. 2) at an arc or angle between the vertical axis 101 and the transverse axis 103.
  • a hinge interface 120 rotatably couples the platform 210 to the spine 110 at the second wall 116.
  • a separately formed hinge assembly may be connected to the spine 110, and the platform 210 connects to the hinge assembly.
  • the platform 210 and the spine 110 together form the hinge interface 120 at which the platform 210 is rotatably coupled to the spine 110.
  • the hinge interface 120 is positioned at the second wall 116 at or proximate to the first end 104.
  • the hinge interface 120 is rigid such that no retainer, strap, or tensioner is required to secure the platform in the second position such as described herein.
  • a retainer device may be utilized to secure the platform at one or more desired angles of the second position.
  • the closure 100 includes a platform retention member 130 positioned or formed at the second wall 116 of the spine 110.
  • the platform retention member 130 is configured to releasably affix the platform 210 in the first position (e.g., depicted in Fig. 1).
  • the platform 210 forms a clip 132 at which the platform retention member 130 is attachable to the platform 210.
  • the platform retention member 130 may form a fitted interface, such as a snap fit or a press fit, or other appropriate fit suitable for retaining and releasing the clip 132 at the platform retention member 130.
  • a user may pinch tabs, flaps, or other surfaces at the clip 132 to release the platform 210 from the platform retention member 130, allowing for rotation of the platform 210 along the arc into the second position, or to detach the platform 210 from the closure 100.
  • Various embodiments of the platform 210 may include features allowing a user to store different lengths of loose leads to the platform 210. Such features may allow for compact organization of the leads while mitigating formation of undesired stresses or strain that may otherwise damage or deteriorate the leads. Such features may additionally, or alternatively, allow for sufficient slack, such as to allow for routing to one or more splices, maintenance, increased capacity, or thermal expansion and contraction, without damaging or deteriorating physical or material properties of the leads.
  • Features at the platform 210 described herein are described relative to the platform 210 at the first position. Accordingly, one skilled in the art will appreciate that orientations provided herein may adjust accordingly relative to an orientation of the platform 210, such as e.g., the platform 210 extended in the second position, or removed from the closure 100.
  • Embodiments of the platform 210 may include a platform face 212 extending along the vertical axis 101 and along the lateral axis 102.
  • the platform 210 may include a spool extending from the platform face 212, such as forming a substantially circular cross-section wall extending outward along the transverse axis 103 from the platform face 212.
  • a spool extending from the platform face 212, such as forming a substantially circular cross-section wall extending outward along the transverse axis 103 from the platform face 212.
  • cross- sectional geometries may be utilized, including, but not limited to, elliptical, ovular, or polygonal.
  • the platform 210 forms an open end 201 proximate to the first end 104 and a closed end 202 proximate to the second end 105.
  • the platform 210 includes a perimeter wall 224 extending along the transverse axis 103 relative to the first position.
  • the perimeter wall 224 extends along a peripheral edge of the platform face 212.
  • An interior volume of the platform 210 is formed between the platform face 212 and the perimeter wall 224.
  • the perimeter wall 224 forms the closed end 202 proximate to the second end 105.
  • the perimeter wall 224 forms the open end 201 proximate to the first end 104.
  • the platform 210 includes a retainer tab 218 extending from the perimeter wall 224.
  • the retainer tab 218 may extend along the lateral axis 102, the vertical axis 101, or an angle therebetween.
  • the retainer tab 218 is configured to allow loose leads to position within a volume formed between the perimeter walls 242, such as to retain tubing, cabling, or fibers.
  • an opening 138 is formed at the platform 210 corresponding to a respective retainer tab 218.
  • the opening 138 is extended through the platform face 212, such as through the platform face 212 along the transverse axis 103.
  • the opening 138 may be utilized to route leads through the platform face 212. such as to one or more tray assemblies 310 as further described herein.
  • the platform 210 forms an opening 222 extending through the platform face 212 along the transverse axis 103 and proximate to the retainer member 220.
  • the opening 222 may provide surfaces at which leads may be secured.
  • the opening 222 may allow for loose or excess leads to be routed from the first end 104 toward the second end 105 and affixed to the platform 210 while mitigating build-up of stresses or strain, such as stresses or strain that may be associated with rotating the platform 210 between the first and second positions.
  • the opening 222 may limit relative movement of the leads when rotating the platform 210 between the first and second positions.
  • Various embodiments of the closure 100 include a tray assembly 310 releasably attachable to the first wall 115 of the spine 110.
  • the tray assembly 310 may include a tray panel 312 extending along the vertical axis 101.
  • a plurality of tray plates 314 is releasably attachable to the first wall 115.
  • the one or more tray plates 314 may attach to the tray panel 312 and the tray panel 312 may attach to the first wall 115.
  • the spine 110 may include a tray retention member 140 positioned in a track 142 formed by the spine 110.
  • the track 142 may be formed between a pair of second walls 116 separated from one another along the transverse axis 103.
  • the tray retention member 140 is configured to releasably attach the tray assembly 310 to the spine 110.
  • the tray retention member 140 may form a fitted interface, such as a snap fit, a press fit, or other appropriate fit, such as described in regard to the platform retention member 130.
  • the tray panel 312 forms a receiving member 316 receivable at the tray retention member 140.
  • the tray retention member 140 is configured to receive the tray assembly 310 from along the lateral axis 102. Accordingly, pluralities of tray assemblies 310 may be positioned in adjacent arrangement along the vertical axis 101 while allowing detachment of one or more tray assemblies 310 without requiring detachment of an adjacent tray assembly 310, such as a tray assembly positioned above another along the vertical axis 101.
  • a plurality of tray panels 312 is stackable along the vertical axis 101 and each tray panel 312 may include a plurality of tray plates 314, such as splice trays or splitter trays.
  • the tray panel 312 allows for different configurations of individual tray plates 314 to be included among the plurality of tray plates 314.
  • the different configurations include features specific to various fiber counts, splices and splice devices, splitter devices, fiber types, fiber slack, etc.
  • the track 142 is formed along the first wall 115 and extending along the vertical axis 101.
  • the track 142 is further formed in an area along the lateral axis 102 between the pair of second walls 116.
  • a first track 142 is formed alongside the first face 111 and a second track 142 is formed alongside the second face 112.
  • the closure 100 includes a first plurality of tray assemblies 310 in adjacent arrangement along the vertical axis 101 and a second plurality of tray assemblies 310 in adjacent arrangement along the vertical axis 101 and spaced apart along the lateral axis 102 from one another.
  • first plurality of tray assemblies 310 is positioned along the first face 111 and the second plurality of tray assemblies 310 is positioned along the second face 112.
  • Each plurality of tray assemblies 310 is positioned at respective tracks 142 alongside the respective faces 111, 112.
  • the plurality of tray assemblies 310 may include two or more stacks of tray plates 314 held together by a respective tray panel 312.
  • the tray panel 312, including the plurality of tray plates 314. is stacked in vertical arrangement along the track 142.
  • the tray assembly 310 may be positioned approximately 90 degrees relative to the platform 210.
  • a pair of platforms 210 may be spaced apart from one another along the transverse axis 103 and a plurality of tray assemblies 310 may be positioned therebetween along the transverse axis 103.
  • the closure 100 includes a routing panel 410 attachable to the spine 110.
  • the routing panel 410 forms a passage 412 below the platform 210 along the vertical axis 101 when the routing panel 410 is attached to the spine 110.
  • the passage 412 extends substantially along the lateral axis 102.
  • the passage 412 is formed by walls 422 extending at least partially around a central axis co-directional to the lateral axis 102.
  • the walls 422 may be discontinuous, such as to form a slot 424 extending along the lateral axis 102 and/or vertical axis 101 through the wall 422.
  • the slot 424 may allow the leads to route along the vertical axis 101 through the slot 424 to and from the platform 210.
  • the slot 424 formed through the wall 422 may allow leads to be secured at the opening 222 at the platform 210.
  • the slot 424 may particularly be formed through the wall 422 proximate to the platform 210, such as proximate relative to the hinge interface 120, the opening 222, or both.
  • the leads may route to the platform 210 while being secured in place and having stresses or strain mitigated or eliminated from forming from the rotation of the platform 210.
  • the routing panel 410 includes a routing panel spool 414 extending along the lateral axis 102.
  • the routing panel spool 414 may include walls protruding along the lateral axis 102, such as to allow leads to wrap around in circular, ovular, elliptical, parabolic, or figure-8 arrangement.
  • the routing panel 410 includes a routing panel tab 416 extending from one or more of spool 414. Tab 416 may extend along the vertical axis 101, the traverse axis 103, or an angle therebetween.
  • spool 414 forms a substantially circular wall extending along the lateral axis 102 from a transversely- extended face of the routing panel 410.
  • tab 416 are configured to retain leads such as described in regard to the retainer tab 218.
  • the closure 100 may include a fiber holder 510 attachable to the routing panel 410.
  • the fiber holder 510 forms a channel 512, or particularly a plurality of channels 512, extending substantially along the vertical axis 101.
  • One or more optical fibers is extendable through the channel 512.
  • each channel 512 may be configured to receive one or more tubes 502 through which optical fibers are extendable.
  • the fiber holder 510 may secure loose leads, or particularly tubes thereof, in place at the channel 512.
  • the fiber holder 510 may further secure loose leads without constraining each individual lead, or particularly a tube thereof.
  • Fig. 11 depicts an exemplary 7 assembled view of the closure 100 and Fig. 12 depicts an exemplary partially exploded view of the closure 100.
  • an embodiment of the closure 100 includes the fiber holder 510 positioned at the routing panel 410 through opening 404.
  • the closure 100 may include an attachment interface 406 to which a cover wall 514 is releasably connectable.
  • the attachment interface 406 may include standoffs or members extending, e.g.. along the lateral axis 102.
  • the cover wall 514 may include an opening 524 configured to receive the attachment interface 406 at the standoff It should be appreciated that in other embodiments the cover wall 514 may include the attachment interface forming a standoff and the closure 100 may include an opening configured to receive the standoff at the cover wall 514.
  • the cover wall 514 may include a contoured portion 526 corresponding, at least in part, to a curvature or contour of the spool 414 at the routing panel 410.
  • the cover wall 514 may obscure along the lateral axis 102 leads extending through channels 512 at the fiber holder 510, such as further described herein.
  • Embodiments provided include a body 500 having a plurality of walls 506 extending along the vertical axis 101 and the lateral axis 102 (relative to the fiber holder 510 affixed to the routing panel 410).
  • the channel 512 is formed between a pair of walls 506.
  • an attachment member 504 extends from the body 500, such as configured to affix to the opening 404 at the routing panel 410 to affix the fiber holder 510 to the routing panel 410.
  • the attachment member 504 may form a clip, teeth, or clamp configured to extend into the opening 404 and attach the fiber holder 510 to the closure 100.
  • the walls 506 include protrusions 508 extending into the channel 512.
  • the protrusions 508 may include bumps, ridges, spikes, mounds, walls, or other raised surfaces extending from one or more faces of the wall 506 at the channel 512.
  • the channel 512 may extend substantially along the lateral axis 102 from an open end 512 to a closed end 522. Referring to Fig. 14. the channel 512 may diverge open from the open end 521 to the closed end 522.
  • the open end 521 may include a cross sectional area less than the channel 512 between the open end 521 and the closed end 522.
  • the wall 506 may extend at an oblique angle (e.g.. a diagonal) along the vertical axis 101.
  • front faces 516 at the open end 521 of the wall 506 may extend at an angle 518 between the vertical axis 101 and the transverse axis 103.
  • the front face 516 may form the open end 521 at an oblique angle 518 between the vertical axis 101 and the transverse axis 103.
  • the channel 512 extends substantially co-directi onal to the lateral axis 102 (e.g., substantially zero degrees or parallel to the lateral axis 102).
  • the fiber holder 510 may form an opening through which the tube 502 is extended at the angle 518 (e g., between the vertical axis 101 and the transverse axis 103) and may then be articulated through the channel 512 toward the closed end 522 substantially along the lateral axis 102 (e.g., co-directi onal to the lateral axis 102).
  • the angle 518 and straight channel 512 may allow for the fiber holder 510 and fibers to route substantially along the vertical axis 101 while retaining the tube 502 or mitigating release (e.g., unintentional release, slippage, etc.) of the tube 502 in the channel 512 through the open end 521.
  • mitigating release e.g., unintentional release, slippage, etc.
  • the fiber holder 510 may obviate a separate wall or cover to obscure the leads 95 along the lateral axis 102.
  • Fig. 20 A a perspective view of an embodiment of a portion of a tray assembly 310 is provided.
  • Figs. 21-22 depict exemplary embodiments of a tray plate 314.
  • the tray assembly 310 may include the tray panel 312 forming a hinge assembly 384.
  • the hinge assembly 384 includes a head 386 forming a channel 388 through which a pin 338 at the tray plate 314 is receivable.
  • the tray plate 314 may include a post 336 from which the pin 338 is extended.
  • the post 336 may extend in a first direction and the pin 338 may extend from the post 336 substantially along the lateral axis 102 relative to the tray plate 314 positioned at the closure 100.
  • the tray plate 314 may include an arm 332 configured to allow the pin 338 or post 336 to deflect, such as further described below.
  • the head 386 may form a wrench-type head including a plurality of substantially flat faces 390.
  • the faces 390 may correspond to substantially flat faces 337 at the pin 338 configured to contact the faces 390 at the hinge assembly 384.
  • the head 386 includes a first opening 392 forming an open end or forming the head 386 as a partially-circular opening.
  • the head 386 may further include a second opening 394 adjacent to the first opening 392.
  • the second opening 394 forms a larger opening (e.g., larger radius or opening dimension) than the first opening 392.
  • a platform 396 is formed at the second opening 394.
  • the platform 396 may form a substantially flat face, such as at ends of the head 386.
  • the head 386 may include a first head 386A including the first opening 392 and a second head 386B including the second opening 394 adjacent, next to, or abutting the first opening 392 at the first head 386A.
  • An exemplary’ embodiment of operation and configuration of an attachment interface 330 of the tray plate 314 to the tray panel 312 includes positioning the pin 338 at the second head 386B.
  • the tray plate 314 may include a pair of posts 336 each including a respective pin 338.
  • Face 337 at a first pin 338 may be positioned through the channel 388 (e.g., extended along the lateral axis 102 through the channel 388).
  • Face 337 at a second pin 338 may be positioned at platform 396.
  • the first pin 338 may initially be positioned through the first head 386A (e.g., at a left head depicted in Fig.
  • second pin 338 may initially be positioned through the second head 386B (e.g., at a right head depicted in Fig. 20A).
  • the tray panel 314 may be pushed or otherwise moved along the lateral axis 102 such as to slide the first pin 338 through the channel 388 at the first head 386A and the second head 386B (e.g., at the left head), and such as to slide the second pin 338 through the channel 388 at the second head 386B and the first head 386A (e.g., at the right head).
  • flat faces 337, 390 may allow the tray panel 314 to statically position at an angle corresponding to the faces 337, 390 mating to one another.
  • the flat faces 337, 390 may form distinct angular locations at which the tray panel 314 may be locked in a rotated position.
  • arm 332 may be depressed, such as to selectively deflect the tray panel 314 to allow the pin 338 to slide out of the channel 388.
  • the closure 100 may include an upper routing guide 610 including a wall 622 forming a passageway 612 extending along the lateral axis 102.
  • the upper routing guide 610 positioned at the second end 105 of the closure 100.
  • the upper routing guide 610 is integral to the spine 110 at the second end 105, such as distal along the vertical axis 101 from the base 150.
  • the upper routing guide 610 is releasably attachable to the spine 110 at the second end 105, such as distal along the vertical axis 101 from the base 150.
  • the walls 622 are discontinuous, such as to form a slot 624 extending along the lateral axis 102 through the wall 622.
  • the slot 624 may allow the leads to route along the vertical axis 101 through the slot 624.
  • Various embodiments of the passageway 612 and the walls 622 may be formed substantially similarly as described regarding passage 412 and walls 422 at the routing panel 410.
  • each tray assembly 310 may include one or more embodiments of the tray plate 314, such as embodiments depicted and described regarding Figs. 21-22, or other appropriate configurations.
  • Embodiments of the closure 100 provided herein may include any desired quantity or combination of configurations of tray plates 314 to hold, support, and organize relatively large quantities of splice trays and splitter devices.
  • Tray plate 314 may include flexible members 350, such as hooks or fingers, configured to retain splitters, fibers, or leads generally.
  • the tray plate 314 includes walls 352 forming a channel 354 at which a splitter 360 is receivable in the channel 354.
  • the flexible member 350 is positioned or formed at wall 352. Positive lean of the flexible member 350 into the channel 354 allows the member 350 to adapt or conform to various sizes or geometries of splitter 360.
  • the flexible member 350 is constructed of a compliant material allowing for the splitter 360 to push the member 350 away from the channel 354 until splitter 360 is fully seated in the channel 354.
  • Various embodiments of the tray plate 314 include a perimeter wall 370 forming an interior 372 at which leads, splitter, splices, etc. are placeable.
  • One or more interior walls 374 is extended within the interior 372 to form a conduit 376 through which leads are egressed to and from splices, splitters, or other appropriate structures.
  • the perimeter wall 370 and the interior wall 374 may together form an opening 378 at a rear end of the tray plate 314, such as to allow leads to enter the interior 372 from a rear area proximate to the attachment interface 330 and tray panel 312.
  • Walls 366 may form a channel 364 at which splice connectors, protectors, or other fiber optic structures 362 may be retained at the rear end proximate to the attachment interface 330.
  • Tabs 368 may be formed to help hold, support, retain, or organize leads within the interior 372.
  • walls 382 within the interior may form a central passage 380 through which leads may route.
  • the flexible member 350 may be configured as an over-molded finger extending at an angle (e.g., an oblique angle) from w all 352.
  • the tray plate 314 is configured to hold three fiber optic structures forming 12-fiber splices 362, such as depicted in Fig. 21.
  • the tray plate 314 is configured to hold two splitters 360 and an input splice protector 362.
  • Closure 20 may include any one or more embodiments of closure 100 depicted and described herein.
  • a first axis 91 and a second axis 92 are extended substantially co-directi onal to one another.
  • a first radial direction 13 is extended from the first axis 91 and a second radial direction 14 is extended from the second axis 92.
  • a first end 24 and a second end 26 are defined and separated from one another relative to the first axis 91.
  • the first end 24 is defined proximate to a third axis 93 extending perpendicular to the first axis 91, such as described further herein.
  • the second end 26 is defined distal to the third axis 93.
  • the first end 24 may refer to a bottom end of the fiber optic closure 20 and the second end 26 may refer to a top end of the fiber optic closure 20.
  • the bottom end may particularly refer to an end or face of the fiber optic closure 20 through w hich one or more optical fibers or cables is extended into the casing 22, such as provided further herein. Accordingly, it should be appreciated that the optical fibers or cables may extend into the casing 22 through the top end, and orientations of the first end 24 and the second end 26 may be altered accordingly.
  • the casing 22 of the fiber optic closure 20 may form one or more ridges, ribs, or other raised walls 21 extended co-directional to the second axis 92 or circumferentially around the second axis 92 along an outer surface of the casing 22.
  • the raised wall 21 may form a structural feature of the casing 22. Additionally, or alternatively, the raised wall 21 may form a locating feature, such as further described below.
  • the mount structure 10 includes a first bracket 30 extending along the first axis 91.
  • the first bracket 30 includes a plurality of first bracket walls 32 at least partially surrounding the first axis 91.
  • the mount structure 10 includes a rail assembly 70 having a rail 72 extending along the first axis 91.
  • the rail 72 may include one or more rail walls extending along the first axis 91 and forming a bar, cross-bar, cantilevered member, rod, pipe, or other appropriate structure at which a first bracket 30 desirably attaches and detaches.
  • the rail 72 is configured as a telescoping rail extendable and retractable along the first axis 91.
  • the rail assembly 70 may include a pivot member 74 at which the rail 72 is coupled.
  • the pivot member 74 is configured to rotate the first axis 91 along the third axis 93 extended perpendicular to the first axis 91.
  • the third axis 93 may particularly extend through the pivot member 74 of the rail assembly 70.
  • the pivot member 74 may be configured to rotate the first axis 91 by up to approximately 90 degrees.
  • the rail 72 include a rail opening 721 extended through one or more of the walls of the rail 72.
  • the first bracket 30 includes a first bracket opening 301 extended through one or more of the first bracket walls 32.
  • the first bracket opening 301 corresponds to the rail opening 721 at the rail 72.
  • the first bracket opening 301 allows a member, such as a key. bolt, pin. clamp, camlock, or other mechanical stop (hereinafter, “‘detent 3O2’ ? ) to extend through the first bracket opening 301 and the rail opening 721.
  • the detent 302 may prevent or otherwise disable movement, rotation, translation, or articulation of the first bracket 30 along the rail 72.
  • the fiber optic closure 20 is attached to the first bracket 30 such as described above, the fiber optic closure 20 is prevented from articulation along the first axis 91.
  • certain embodiments of the second bracket 50 include a second bracket opening 501 extended through one or more of a second bracket wall 52 at least partially surrounding the first axis 91.
  • the plurality of second bracket walls 52 may be configured to form a pathway 51 through which the second bracket 50 may be positioned around the walls of the rail 72, such as described with regard to the first bracket 30.
  • the detent 302 may be installed through the openings 721, 501 to prevent or otherwise disable movement, rotation, translation, or articulation of the second bracket 50 along the rail 72.
  • the fiber optic closure 20 is attached to the second bracket 50 such as described herein, the fiber optic closure 20 is prevented from articulation along the first axis 91.
  • the second bracket 50, with the detent 302 extended through the openings 721, 501 may further disable articulation of the first bracket 30 and fiber optic closure 20.
  • a plate 34 including a plate wall 36 extending along the second radial direction 14 is extended from the second axis 92.
  • a plate opening 38 extends along the second axis 92 through the plate wall 36.
  • the plate opening 38 is configured to receive a fastener 40.
  • the fastener 40 may include any appropriate type of mechanical fastener, such as, but not limited to, a bolt, screw, tie rod, and any appropriate nuts, sleeves, washers, bushings, collars, or other components as may be appropriate for fastening the fiber optic closure 20 to the plate 34 via the plate opening 38.
  • the mount structure 10 includes an arm 42 extending from the first bracket 30 to the plate 34.
  • the arm 42 includes a first arm portion 44 extending along the first radial direction 13.
  • the arm 42 includes a second arm portion 46 extending along the second radial direction 14.
  • the first arm portion 44 is extended from one or more of the plurality’ of first bracket walls 32.
  • the second arm portion 46 is extended from the plate wall 36.
  • the first arm portion 44 and the second arm portion 46 are extending toward one another and connected to form the arm 42.
  • the first bracket 30 is attachable to, and detachable from, the rail 72.
  • the first bracket 30 may be positioned along the first axis 91 proximate to first end 24.
  • the first bracket 30 may support or hold the fiber optic closure 20 from the first end 24 or bottom end of the casing 22.
  • the fiber optic closure 20 may suspended, or supported via the first bracket 30 cantilevering the closure 20 from the first end 24.
  • the mount structure 10 further includes a second bracket 50 attachable to, and detachable from, the rail 72 and separated from the first bracket 30 along the first axis 91.
  • the second bracket 50 may particularly be separated along the first axis 91 from the first bracket 30 and proximate to the second end 26.
  • a mechanical fastener or mechanical compression device, such as a clamp 57 is attached to the casing 22 and the second bracket 50, such as further described below.
  • the first bracket 30 slides around the rail 72 from the second end 26 toward the first end 24.
  • the fiber optic closure 20 is mounted or attached onto the plate 34 via one or more fasteners 40 extending through the plate opening 38 and into a corresponding interface at the fiber optic closure 20.
  • FIG. 24 depicts the fiber optic closure 20 within the enclosed volume 60.
  • Embodiments of the mount structure 10 allow for the fiber optic closure 20 to be positioned substantially parallel to the first axis 91 and rail 72 within the enclosed volume 60. Operation of the mount structure 10 may include rotating the rail 72 via the pivot member 74 to position the rail 72 and first axis 91 substantially perpendicular or oblique relative to the second axis 92, such as depicted in Fig. 25. Rotating the rail 72 may position the fiber optic closure 20 such as depicted in Fig. 25. Operation of the mount structure 10 may further include removing the detent 302 from the first bracket 30 and the rail 72 to slide the fiber optic closure 20 and first bracket 30 toward the second end 26.
  • Operation of the mount structure 10 may further include fixing the first bracket 30 to the rail 72, such as via the detent 302, after sliding the fiber optic closure 20 toward the second end 26.
  • Operation of the mount structure 10 may include rotating the fiber optic closure 20 via removing the detent 157 from the arm 42 and rotating the arm 42.
  • Rotating the arm 42 may position the fiber optic closure 20 substantially perpendicular or oblique to the first axis 91, such as depicted in Fig. 25.
  • Rotating the arm 42 may further allow the fiber optic closure 20 to be positioned out of the enclosed volume 60 while being positioned substantially perpendicular or oblique to the first axis 91.
  • the fiber optic closure 20 may accordingly be positioned substantially horizontal or parallel to the ground. Such a position may facilitate access to the rear end (e g., the fiber optic cables extending into the casing 22).
  • Embodiments of the mount structure 10 provided herein allow for movement, translation, articulation, or rotation of the rail assembly 70, such as rotation from a horizontal position (e g., approximately zero degrees or parallel to the ground) to a vertical position (e.g., approximately 90 degrees or perpendicular to the ground). Additionally, or alternatively, the separable arm 42 from the first bracket 30 may allow the mount structure 10 to be articulated to the vertical position.
  • the mount structure 10 may further include a removable pin, bolt, camlock, clamp, mechanical stop, or other detent 302 extendable through the rail 72 and the first bracket 30.
  • Removing the detent 302 allows for the first bracket 30, separately from or together with the fiber optic closure 20, to be translated along the rail 72 to position the fiber optic closure 20 at a desired height.
  • the detent 302 may be re-insertable at various portions of the rail 72 to fix the fiber optic closure 20 at the desired height, allowing for an operator to perform maintenance, assembly, disassembly, splicing, or other operations at the fiber optic closure 20 from a desired height, such as may be more ergonomic for the operator.
  • the detent 302 and translation of the first bracket 30 may allow for the fiber optic closure 20 to be stored within a relatively smaller enclosed volume 60 and/or on a shorter rail assembly 70 while allowing the fiber optic closure 20 to be re-positioned or translated to a desired operating height.
  • Embodiments of the mount structure 10 depicted and described herein may allow for relatively larger fiber optic closures 20 to be mounted into smaller enclosed volumes 60, which may allow for reduced volume of the enclosed volume.
  • the mount structure 10 may form a fully external attachment relative to the fiber optic closure 20.
  • embodiments of the mount structure 10 provided herein may provide for fiber optic closure 20 mounting without generating or increasing risks associated with compromising, degrading, or damaging fluid seals at the fiber optic closure 20.
  • embodiments of the mount structure 10 provided herein provide for mounting of the fiber optic closure 20 via existing threads, sleeves, or fasteners at the fiber optic closure 20.
  • Embodiments of the mount structure 10 may furthermore provide for mounting and positioning without utilizing structures or components within the fiber optic closure 20 or egresses common to, intended for, or otherwise utilizable by one or more fiber optic cables 23. Still further, embodiments of the mount structure 10 may provide mounting while dissociating with splice capacity at the fiber optic closure 20, such as by avoiding utilization of ports, openings, or holes associated with one or more fiber optic cables.
  • a fiber optic closure wherein a reference coordinate system defines a mutually orthogonal vertical axis, lateral axis, and transverse axis, the closure including a spine extending along the vertical axis, the spine including a first wall extending along the transverse axis, the spine including a second wall extending along the lateral axis, the spine including a platform retention member extending from the second wall; a platform, the platform releasably attachable to the spine at the second wall, the platform configured to extend in a first position alongside the second wall along the vertical axis, the platform configured to extend in a second position at an angle from the second wall between the vertical axis and the transverse axis, the platform including a clip configured to releasably couple to the platform retention member at the spine; and a tray assembly releasably attachable to the first wall of the spine.
  • the trayassembly including a hinge assembly rotatably coupling a tray panel to a tray plate, the hinge assembly including a head forming a channel through which a pm at the tray plate is receivable, the pin and the head each including a plurality of substantially flat faces at which the faces contact one another at the channel.
  • the head includes a first head adjacent to a second head, the second head including a second opening larger than a first opening at the first head.
  • the head forms a wrench-t pe head configuration including an opening forming the head as a partially circular opening.
  • the head includes a platform forming a substantially flat face, wherein the platform is configured to receive the pin at the tray plate.
  • the hinge assembly including an arm configured to deflect the pin to allow the pin to exit the channel at the head.
  • any one or more clauses herein including a fiber holder releasably attachable to the spine, the fiber holder including a body including a plurality of walls extending along the vertical axis and the lateral axis, wherein the channel is formed between a pair of the plurality of walls, wherein an open end is formed at a front face along the lateral axis and a closed end is formed at the body, and wherein the open end extends at an oblique angle between the vertical axis and the transverse axis, and wherein the channel extends substantially along the vertical axis.
  • the platform including a platform face extending along the vertical axis and along the lateral axis when the platform is in the first position; a perimeter wall extending along a peripheral edge of the platform face, wherein an interior volume of the platform is formed between the platform face and the perimeter wall, and wherein a closed end is formed proximate to a second end along the vertical axis, and wherein an open end is formed proximate to a first end along the vertical axis proximate to a base of the closure.
  • the spine including a tray retention member positioned in a track formed by the spine, the tray retention member configured to releasably attach the tray assembly to the spine.
  • the closure including a routing panel attachable to the spine, the routing panel forming a passage below the platform along the vertical axis, the passage extending along the lateral axis.
  • the closure including an upper routing guide including a wall forming a passageway extending along the lateral axis, the upper routing guide positioned at a second end of the closure.
  • a fiber optic closure wherein a reference coordinate system defines a mutually orthogonal vertical axis, lateral axis, and transverse axis, the closure including a spine extending along the vertical axis, the spine including a first wall extending along the transverse axis, the first wall including a first face and a second face each extending along the transverse axis and the vertical axis, the first face and the second face each positioned opposite of one another along the lateral axis, the spine including a second wall extending along the lateral axis, the second wall including a third face and a fourth face each extending along the lateral axis and the vertical axis, the third face and the fourth face each positioned opposite of one another along the transverse axis, the spine including a platform retention member extending from the second wall; a platform, the platform releasably attachable to the spine at each of the third face and the fourth face, the platform configured to extend in a first position alongside the second wall along the
  • the tray assembly including a hinge assembly rotatably coupling a tray panel to a tray plate, the hinge assembly including a head forming a channel through which a pin at the tray plate is receivable, the pin and the head each including a plurality of substantially flat faces at which the faces contact one another at the channel.
  • the head includes a first head adjacent to a second head, the second head including a second opening larger than a first opening at the first head.
  • the head includes a platform forming a substantially flat face, wherein the platform is configured to receive the pin at the tray plate.
  • the hinge assembly including an arm configured to deflect the pin to allow the pin to exit the channel at the head.
  • any one or more clauses herein including a fiber holder releasably attachable to the spine, the fiber holder including a body including a plurality of walls extending along the vertical axis and the lateral axis, wherein the channel is formed between a pair of the plurality of walls, wherein an open end is formed at a front face along the lateral axis and a closed end is formed at the body, and wherein the open end extends at an oblique angle between the vertical axis and the transverse axis, and wherein the channel extends substantially along the vertical axis.

Landscapes

  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Light Guides In General And Applications Therefor (AREA)
  • Mechanical Coupling Of Light Guides (AREA)

Abstract

A fiber optic closure including a spine forming a first wall extending along a transverse axis and a second wall extending along the lateral axis is provided. The spine includes a platform retention member extending from the second wall. A platform is releasably attachable to the spine at the second wall and is configured to extend in a first position alongside the second wall along a vertical axis and a second position at an angle from the second wall between the vertical axis and the transverse axis. The platform includes a clip configured to releasably couple to the platform retention member at the spine. A tray assembly is releasably attachable to the first wall of the spine.

Description

MODULAR SPLICE TRAY SYSTEM FOR FIBER OPTIC CLOSURE
PRIORITY STATEMENT
[0001] The present application claims the benefit of priority to U.S. provisional application no. 63/443,551, filed February 06, 2023, the disclosure of which is incorporated herein in its entirety'.
FIELD
[0002] The present disclosure relates generally to fiber optic closures.
BACKGROUND
[0003] In many metropolitan areas, fiber optic closures are kept underground, such as in handholes, so that the fiber optic closures cannot be seen or disrupted by members of the public. The fiber optic closures are used to hold all of the fiber optic splices that are needed to connect data from a source cable to individual fiber optic lines. Some places or users require large quantities of relatively small splice trays to accomplish large-quantity splices in the fiber optic closure, in contrast to small quantities of relatively large splice trays.
[0004] The fiber optic closures are secured in various ways in the handholes. In some instances, the fiber optic closure is placed on the ground within the handhole. In other instances, the fiber optic closure is attached to a pole, a rail, or other member within the handhole. Generally, the fiber optic closure is placed, attached, or secured within the handhole in a variety of ways or methods.
[0005] Furthermore, known methods and structures may fix the fiber optic closure within the handhole and inhibit articulation of the fiber optic closure within or out of the handhole. Known structures and methods may additionally inhibit placement of the fiber optic closure at a height or location that facilitates maintenance, assembly, disassembly, or operation at the fiber optic structure by a person.
[0006] Accordingly, there is a need for structures that allows for holding, supporting, and organizing large quantities of splice trays within a fiber optic closure. Additionally, there is a need for structures that provide for articulation of the fiber optic closure within or out of a handhole. Still further, there is a need for structures that place a fiber optic closure at a height or location that facilitates operation at the fiber optic structure by a person.
BRIEF DESCRIPTION
[0007] Aspects and advantages of the invention in accordance w ith the present disclosure will be set forth in part in the following description, or may be obvious from the description, or may be learned through practice of the technology.
[0008] An aspect of the present disclosure is directed to a fiber optic closure including a spine, a platform, and a tray assembly. The fiber optic closure includes a reference coordinate system defining a mutually orthogonal vertical axis, lateral axis, and transverse axis. The spine extends along the vertical axis and includes a first wall extending along the transverse axis and a second wall extending along the lateral axis. The spine includes a platform retention member extending from the second wall. A platform is releasably attachable to the spine at the second wall. The platform is configured to extend in a first position alongside the second wall along the vertical axis and is configured to extend in a second position at an angle from the second wall between the vertical axis and the transverse axis. The platform includes a clip configured to releasably couple to the platform retention member at the spine. The tray assembly is releasably attachable to the first w all of the spine.
[0009] Another aspect of the present disclosure is directed to a fiber optic closure. A reference coordinate system defines a mutually orthogonal vertical axis, lateral axis, and transverse axis. The closure includes a spine extending along the vertical axis, the spine including a first w all extending along the transverse axis. The first w all includes a first face and a second face each extending along the transverse axis and the vertical axis. The first face and the second face are each positioned opposite of one another along the lateral axis. The spine includes a second wall extending along the lateral axis. The second wall includes a third face and a fourth face each extending along the lateral axis and the vertical axis. The third face and the fourth face are each position opposite of one another along the transverse axis. The spine includes a platform retention member extending from the second wall. A platform is releasably attachable to the spine at each of the third face and the fourth face. The platform is configured to extend in a first position alongside the second w all along the vertical axis. The platform is configured to extend in a second position at an angle from the second wall between the vertical axis and the transverse axis. The platform includes a clip configured to releasably couple to the platform retention member at the spine. A plurality of tray assemblies is releasably attachable to the first face and the second face of the spine, the plurality of tray assemblies attachable to the spine in adjacent arrangement along the vertical axis at the first face and the second face. Each tray assembly includes a tray panel extending along the vertical axis when attached to the spine. A plurality' of tray plates is releasably attachable to the tray panel.
[0010] These and other features, aspects and advantages of the present invention will become better understood with reference to the following description and appended claims. The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments of the technology and, together with the description, serve to explain the principles of the technology.
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] A full and enabling disclosure of the present subject matter, including the best mode thereof, directed to one of ordinary skill in the art, is set forth in the specification, which makes reference to the appended figures, in which:
[0012] Fig. 1 depicts a perspective view of an embodiment of a fiber optic closure in accordance with aspects of the present disclosure;
[0013] Fig. 2 depicts a perspective view of an embodiment of a fiber optic closure in an open position accordance with aspects of the present disclosure;
[0014] Fig. 3 depicts a perspective view of an embodiment of a fiber optic closure in an open position in accordance with aspects of the present disclosure;
[0015] Fig. 4 depicts a plan view of an embodiment of a fiber optic platform for embodiments of the fiber optic closure in accordance with aspects of the present disclosure;
[0016] Fig. 5 depicts a perspective view of a portion of an embodiment of a fiber optic closure in accordance with aspects of the present disclosure;
[0017] Fig. 6 depicts a perspective view of a portion of an embodiment of a fiber optic closure in accordance with aspects of the present disclosure; [0018] Fig. 7 depicts a perspective view of a portion of an embodiment of a fiber optic platform for the fiber optic closure in accordance with aspects of the present disclosure;
[0019] Fig. 8 depicts a side cross sectional view of a portion of an embodiment of a fiber optic closure in accordance with aspects of the present disclosure;
[0020] Fig. 9 depicts a view along a lateral axis of a portion of an embodiment of a fiber optic closure in accordance with aspects of the present disclosure;
[0021] Fig. 10 depicts a perspective view of an embodiment of a fiber optic closure in accordance with aspects of the present disclosure;
[0022] Fig. 11 depicts a perspective view of an embodiment of a fiber optic closure in accordance with aspects of the present disclosure;
[0023] Fig. 12 depicts a partially exploded perspective view of the embodiment of a fiber optic closure of Fig. 11 in accordance with aspects of the present disclosure;
[0024] Fig. 13A depicts a perspective view of an embodiment of a fiber holder for the closure in accordance with aspects of the present disclosure;
[0025] Fig. 13B depicts a side view of an embodiment of the fiber holder of Fig.
13 A in accordance with aspects of the present disclosure;
[0026] Fig. 14 depicts a perspective view of an embodiment of a fiber holder for the closure in accordance with aspects of the present disclosure;
[0027] Fig. 15 depicts a perspective view of an embodiment of a fiber holder for the closure in accordance with aspects of the present disclosure;
[0028] Fig. 16 depicts a perspective view of an embodiment of a fiber holder for the closure in accordance with aspects of the present disclosure;
[0029] Fig. 17A depicts a perspective view of an embodiment of a fiber holder for the closure in accordance with aspects of the present disclosure;
[0030] Fig. 17B depicts a perspective view of an embodiment of a fiber holder for the closure in accordance with aspects of the present disclosure;
[0031] Fig. 18 depicts a side view of an embodiment of a fiber holder for the closure in accordance with aspects of the present disclosure;
[0032] Fig. 19 depicts a perspective view of an embodiment of a fiber holder for the closure in accordance with aspects of the present disclosure; [0033] Fig. 20A depicts a perspective view of an embodiment of a tray assembly of the closure in accordance with aspects of the present disclosure;
[0034] Fig. 20B depicts a perspective view of an embodiment of the closure including an embodiment of the tray assembly in accordance with aspects of the present disclosure;
[0035] Fig. 21 depicts a perspective view of an embodiment of a portion of a tray assembly of a fiber optic closure in accordance with aspects of the present disclosure; [0036] Fig. 22 depicts a perspective view of an embodiment of a portion of a tray assembly of a fiber optic closure in accordance with aspects of the present disclosure; [0037] Fig. 23 depicts a perspective view of an embodiment of a mount structure for a fiber optic closure in accordance with aspects of the present disclosure;
[0038] Fig. 24 illustrates an exemplary operation of the mount structure in accordance with aspects of the present disclosure; and
[0039] Fig. 25 illustrates an exemplary operation of the mount structure in accordance with aspects of the present disclosure.
[0040] Repeat use of reference characters in the present specification and drawings is intended to represent the same or analogous features or elements of the present invention.
DETAILED DESCRIPTION
[0041] Reference now will be made in detail to embodiments of the present invention, one or more examples of which are illustrated in the drawings. The word “exemplary’' is used herein to mean “serving as an example, instance, or illustration.'’ Any implementation described herein as “exemplary” is not necessarily to be construed as preferred or advantageous over other implementations. Moreover, each example is provided by way of explanation, rather than limitation of, the technology. In fact, it will be apparent to those skilled in the art that modifications and variations can be made in the present technology without departing from the scope or spirit of the claimed technology. For instance, features illustrated or described as part of one embodiment can be used with another embodiment to yield a still further embodiment. Thus, it is intended that the present disclosure covers such modifications and variations as come within the scope of the appended claims and their equivalents. The detailed description uses numerical and letter designations to refer to features in the drawings. Like or similar designations in the drawings and description have been used to refer to like or similar parts of the invention.
[0042] As used herein, the terms “first”, “second”, and “third” may be used interchangeably to distinguish one component from another and are not intended to signify location or importance of the individual components. The singular forms “a,” “an,” and “the” include plural references unless the context clearly dictates otherwise. The terms “coupled,” “fixed,” “attached to,” and the like refer to both direct coupling, fixing, or attaching, as well as indirect coupling, fixing, or attaching through one or more intermediate components or features, unless otherwise specified herein. As used herein, the terms “comprises,” “comprising,” “includes.” “including,” “has,” “having” or any other variation thereof, are intended to cover a non-exclusive inclusion. For example, a process, method, article, or apparatus that comprises a list of features is not necessarily limited only to those features but may include other features not expressly listed or inherent to such process, method, article, or apparatus. Further, unless expressly stated to the contrary, “or” refers to an inclusive- or and not to an exclusive- or. For example, a condition A or B is satisfied by any one of the following: A is true (or present) and B is false (or not present), A is false (or not present) and B is true (or present), and both A and B are true (or present).
[0043] Ranges provided herein are inclusive of their end points. For instance, a range of 1 to 100 includes 1 and 100.
[0044] Terms of approximation, such as “about,” “generally,” “approximately,” or “substantially,” include values within a ten percent full scale error from a low est value embodiment to a highest value embodiment. For instance, an embodiment including a range from approximately 10 to approximately 100 with a ten percent full scale error may include values from 1 to 109.
[0045] Benefits, other advantages, and solutions to problems are described below' with regard to specific embodiments. However, the benefits, advantages, solutions to problems, and any feature(s) that may cause any benefit, advantage, or solution to occur or become more pronounced are not to be construed as a critical, required, or essential feature of any or all the claims. [0046] Embodiments of a fiber optic closure are provided. The fiber optic closure includes a structural frame or spine configured to hold and support optical fibers, tubes, cables, leads, and sphce or splitter trays. Fiber optic cables route through a base. The base may further provide environmental sealing, such as air and moisture sealing. The spine extends along a vertical axis from the base. The spine includes a releasably attachable, or detachable, platform, such as at a first wall forming a front face and a second wall forming a rear face. Mounting features at the tray assembly may further allow a tray plate to be releasably attached to the tray assembly and spine. A plurality of tray assemblies is attachable to the spine in vertical arrangement, such as along a vertical track formed at each of the first wall and the second wall. Each trayassembly includes a plurality of the splice or splitter trays, or tray plates, positionable in vertical arrangement along the spine. The spine includes storage features, such as spools and tabs, for retaining, routing, holding, or otherwise securing loose or excess fibers, cables, or tubes.
[0047] Various embodiments of the fiber optic closure may be constructed of any suitable material, including, but not limited to, plastic. Particular embodiments may construct the fiber optic closure substantially entirely out of one or more plastic materials. Still particular embodiments may construct the spine, the platform, the routing panel, the fiber holder, and the upper routing guide as separately attachable monolithic bodies, allowing for relatively simple construction, assembly and disassembly, and customization for desired varieties of leads, tubes, fibers, splices, and combinations thereof.
[0048] Embodiments of the fiber optic closure and the mount structure provided herein may provide advantages such as holding up to 1728 or more individual splices within a single closure, while facilitating routing, splicing, and maintenance of the closure, and articulation of the closure into and out of an enclosed volume.
[0049] Embodiments of the mount structure provided herein allow for universal and standardized placement, attachment, and securing of the fiber optic closure in an enclosed volume, such as an underground volume, confined space, or handhole. Embodiments provided herein may allow for articulation of the fiber optic closure within or out of the enclosed volume. Additionally, or alternatively, embodiments of the mount structure provided herein allow for the fiber optic closure to be placed at a height or location that facilitates operation at the fiber optic closure by a person. Embodiments provided herein may facilitate ergonomic placement, provide improved articulation and adjustment of the fiber optic closure, and allow for attachment of the mount structure to various ty pes of fiber optic closures and mount interfaces.
[0050] Methods for mounting a fiber optic closure include attaching the first bracket to the rail assembly proximate to a pivot member of the rail assembly. A mount plate attaches to the fiber optic closure via one or more mechanical fasteners. The mount plate is coupled to the first bracket via an arm. The arm positions the plate and the fiber optic closure substantially parallel or co-directional to the rail, such as by forming the arm with one or more portions extended along a radial direction from the first bracket. In certain embodiments, the arm is separable from the first bracket to allow for rotation of the arm, plate, and the fiber optic closure together relative to the first bracket.
[0051] In some embodiments, the fiber optic closure may be cantilevered from the first bracket via the arm and the mount plate. In other embodiments, the mount structure further includes the second bracket attached to the rail assembly and attached to the fiber optic closure via a mechanical compression device or clamp. The mount structure may accordingly allow for forward and rearward support of the fiber optic closure. The mount structure may furthermore support the fiber optic closure while orienting the fiber optic closure substantially parallel to the rail, allowing for reduced volume usage within the enclosed volume. The second bracket may include adjustable clamping features such as may be included at the first bracket to allow for attachment to various cross-sectional areas of the rail assembly.
[0052] Embodiments of the mount structure allow for movement, translation, articulation, or rotation of the rail assembly, such as rotation from a horizontal position (e.g., approximately7 zero degrees or parallel to the ground) to a vertical position (e.g., approximately 90 degrees or perpendicular to the ground).
Additionally, or alternatively, the separable arm from the first bracket may allow the mount structure to be articulated to the vertical position. The mount structure may further include a removable pin, bolt, camlock, clamp, mechanical stop, or other detent extendable through the rail and the first bracket. Removing the detent allows for the first bracket, separately from or together with the fiber optic closure, to be translated along the rail to position the fiber optic closure at a desired height. The detent may be re-insertable at various portions of the rail to fix the fiber optic closure at the desired height, allowing for a person to perform maintenance, assembly, disassembly, splicing, or other operations at the fiber optic closure from a desired height, such as may be more ergonomic for the operator. Additionally, or alternatively, the detent and translation of the first bracket may allow for the fiber optic closure to be stored within a relatively smaller enclosed volume and/or on a shorter rail assembly while allowing the fiber optic closure to be re-positioned or translated to a desired operating height.
[0053] Referring now to the drawings, Figs. 1-23 depict exemplary embodiments of a fiber optic closure 100, and portions thereof. A reference coordinate system defines a mutually orthogonal vertical axis 101, lateral axis 102, and transverse axis 103. A reference first end 104 is defined along the vertical axis 101 proximate to an end from which tubing, fibers, or cables (hereinafter, “leads”) enter the closure 100 from an external source. A reference second end 105 is defined along the vertical axis 101 distal to the first end 104. Fig. 1 depicts the closure 100 including a base 150, spine 110, rotatable platforms 210, and tray assemblies 310, such as further depicted and described herein. A casing 22 (Figs. 23-25) is attachable to the base 150, such as to seal the inside of the casing 22 from an outside environment. The first end 104 may particularly reference an end of the spine 110 proximate to the base 150 and the second end 105 may particularly reference an end of the spine 110 distal to the base 150.
[0054] Figs. 2-3 depict perspective views of the closure 100, and portions thereof. The closure 100 includes a spine 110 extending along the vertical axis 101. The spine forms a first wall 115 extending along the transverse axis 103. The spine forms a second wall 116 extending along the lateral axis 102. A rotatable platform 210 extends along the vertical axis 101 when in a first position. The platform 210 is releasably attachable to, or detachable from, the spine 110 at the second wall 116. The platform 210 is configured to extend in the first position alongside the second wall 116 along the vertical axis 101, such as depicted in Fig. 1. The platform 210 is configured to extend in a second position at an arc or angle from second wall 116 between the vertical axis 101 and the transverse axis 103, such as depicted in Figs. 2- 3.
[0055] In a particular embodiment, the first wall 115 includes a first face 111 and a second face 112 each extending along the transverse axis 103. The first face 11 1 and the second face 112 are positioned opposite of one another along the lateral axis 102. In a still particular embodiment, the second wall 116 includes a third face 113 and a fourth face 114 each extending along the lateral axis 102. The third face 113 and the fourth face 114 are positioned opposite of one another along the transverse axis 103. The second wall 116 is extended along the lateral axis 102 from the first wall 115. The first wall 115 is extended along the transverse axis 103 between the third face 113 and the fourth face 114. The closure 100 includes a platform 210 each releasably attached to respective second walls 116 spaced apart along the transverse axis 103. The platforms 210 are each detachably coupled to respective faces, such as the third face 113 and the fourth face 114. Each platform 210 is rotatable from the first position (e.g., depicted in Fig. 1) substantially co-directi onal to the vertical axis 101 and outward to the second position (e.g.. depicted in Fig. 2) at an arc or angle between the vertical axis 101 and the transverse axis 103.
[0056] In various embodiments, a hinge interface 120 rotatably couples the platform 210 to the spine 110 at the second wall 116. In other embodiments (not depicted), a separately formed hinge assembly may be connected to the spine 110, and the platform 210 connects to the hinge assembly. In certain embodiments, the platform 210 and the spine 110 together form the hinge interface 120 at which the platform 210 is rotatably coupled to the spine 110. In some embodiments, the hinge interface 120 is positioned at the second wall 116 at or proximate to the first end 104. In various configurations, the hinge interface 120 is rigid such that no retainer, strap, or tensioner is required to secure the platform in the second position such as described herein. However, in other embodiments, a retainer device may be utilized to secure the platform at one or more desired angles of the second position.
[0057] The closure 100 includes a platform retention member 130 positioned or formed at the second wall 116 of the spine 110. The platform retention member 130 is configured to releasably affix the platform 210 in the first position (e.g., depicted in Fig. 1). In various embodiments, the platform 210 forms a clip 132 at which the platform retention member 130 is attachable to the platform 210. The platform retention member 130 may form a fitted interface, such as a snap fit or a press fit, or other appropriate fit suitable for retaining and releasing the clip 132 at the platform retention member 130. A user may pinch tabs, flaps, or other surfaces at the clip 132 to release the platform 210 from the platform retention member 130, allowing for rotation of the platform 210 along the arc into the second position, or to detach the platform 210 from the closure 100.
[0058] Various embodiments of the platform 210 may include features allowing a user to store different lengths of loose leads to the platform 210. Such features may allow for compact organization of the leads while mitigating formation of undesired stresses or strain that may otherwise damage or deteriorate the leads. Such features may additionally, or alternatively, allow for sufficient slack, such as to allow for routing to one or more splices, maintenance, increased capacity, or thermal expansion and contraction, without damaging or deteriorating physical or material properties of the leads. Features at the platform 210 described herein are described relative to the platform 210 at the first position. Accordingly, one skilled in the art will appreciate that orientations provided herein may adjust accordingly relative to an orientation of the platform 210, such as e.g., the platform 210 extended in the second position, or removed from the closure 100.
[0059] Embodiments of the platform 210 may include a platform face 212 extending along the vertical axis 101 and along the lateral axis 102. The platform 210 may include a spool extending from the platform face 212, such as forming a substantially circular cross-section wall extending outward along the transverse axis 103 from the platform face 212. However, it should be appreciated that other cross- sectional geometries may be utilized, including, but not limited to, elliptical, ovular, or polygonal.
[0060] In some embodiments, the platform 210 forms an open end 201 proximate to the first end 104 and a closed end 202 proximate to the second end 105. The platform 210 includes a perimeter wall 224 extending along the transverse axis 103 relative to the first position. The perimeter wall 224 extends along a peripheral edge of the platform face 212. An interior volume of the platform 210 is formed between the platform face 212 and the perimeter wall 224. The perimeter wall 224 forms the closed end 202 proximate to the second end 105. The perimeter wall 224 forms the open end 201 proximate to the first end 104.
[0061] In still various embodiments, the platform 210 includes a retainer tab 218 extending from the perimeter wall 224. The retainer tab 218 may extend along the lateral axis 102, the vertical axis 101, or an angle therebetween. The retainer tab 218 is configured to allow loose leads to position within a volume formed between the perimeter walls 242, such as to retain tubing, cabling, or fibers.
[0062] In some embodiments, an opening 138 is formed at the platform 210 corresponding to a respective retainer tab 218. The opening 138 is extended through the platform face 212, such as through the platform face 212 along the transverse axis 103. The opening 138 may be utilized to route leads through the platform face 212. such as to one or more tray assemblies 310 as further described herein.
[0063] In certain embodiments, the platform 210 forms an opening 222 extending through the platform face 212 along the transverse axis 103 and proximate to the retainer member 220. The opening 222 may provide surfaces at which leads may be secured. The opening 222 may allow for loose or excess leads to be routed from the first end 104 toward the second end 105 and affixed to the platform 210 while mitigating build-up of stresses or strain, such as stresses or strain that may be associated with rotating the platform 210 between the first and second positions. The opening 222 may limit relative movement of the leads when rotating the platform 210 between the first and second positions.
[0064] Various embodiments of the closure 100 include a tray assembly 310 releasably attachable to the first wall 115 of the spine 110. The tray assembly 310 may include a tray panel 312 extending along the vertical axis 101. A plurality of tray plates 314 is releasably attachable to the first wall 115. For instance, the one or more tray plates 314 may attach to the tray panel 312 and the tray panel 312 may attach to the first wall 115. Referring to Fig. 20B, the spine 110 may include a tray retention member 140 positioned in a track 142 formed by the spine 110. The track 142 may be formed between a pair of second walls 116 separated from one another along the transverse axis 103. The tray retention member 140 is configured to releasably attach the tray assembly 310 to the spine 110. In certain embodiments, the tray retention member 140 may form a fitted interface, such as a snap fit, a press fit, or other appropriate fit, such as described in regard to the platform retention member 130. In still certain embodiments, the tray panel 312 forms a receiving member 316 receivable at the tray retention member 140.
[0065] In some embodiments, the tray retention member 140 is configured to receive the tray assembly 310 from along the lateral axis 102. Accordingly, pluralities of tray assemblies 310 may be positioned in adjacent arrangement along the vertical axis 101 while allowing detachment of one or more tray assemblies 310 without requiring detachment of an adjacent tray assembly 310, such as a tray assembly positioned above another along the vertical axis 101.
[0066] In various embodiments, a plurality of tray panels 312 is stackable along the vertical axis 101 and each tray panel 312 may include a plurality of tray plates 314, such as splice trays or splitter trays. The tray panel 312 allows for different configurations of individual tray plates 314 to be included among the plurality of tray plates 314. The different configurations include features specific to various fiber counts, splices and splice devices, splitter devices, fiber types, fiber slack, etc.
[0067] In some embodiments, the track 142 is formed along the first wall 115 and extending along the vertical axis 101. The track 142 is further formed in an area along the lateral axis 102 between the pair of second walls 116. A first track 142 is formed alongside the first face 111 and a second track 142 is formed alongside the second face 112. In a still particular embodiment, the closure 100 includes a first plurality of tray assemblies 310 in adjacent arrangement along the vertical axis 101 and a second plurality of tray assemblies 310 in adjacent arrangement along the vertical axis 101 and spaced apart along the lateral axis 102 from one another. In particular, the first plurality of tray assemblies 310 is positioned along the first face 111 and the second plurality of tray assemblies 310 is positioned along the second face 112. Each plurality of tray assemblies 310 is positioned at respective tracks 142 alongside the respective faces 111, 112. The plurality of tray assemblies 310 may include two or more stacks of tray plates 314 held together by a respective tray panel 312. The tray panel 312, including the plurality of tray plates 314. is stacked in vertical arrangement along the track 142. The tray assembly 310 may be positioned approximately 90 degrees relative to the platform 210. A pair of platforms 210 may be spaced apart from one another along the transverse axis 103 and a plurality of tray assemblies 310 may be positioned therebetween along the transverse axis 103.
[0068] Referring now to Figs. 10-19, in various embodiments, the closure 100 includes a routing panel 410 attachable to the spine 110. The routing panel 410 forms a passage 412 below the platform 210 along the vertical axis 101 when the routing panel 410 is attached to the spine 110. The passage 412 extends substantially along the lateral axis 102. In certain embodiments, the passage 412 is formed by walls 422 extending at least partially around a central axis co-directional to the lateral axis 102. The walls 422 may be discontinuous, such as to form a slot 424 extending along the lateral axis 102 and/or vertical axis 101 through the wall 422. The slot 424 may allow the leads to route along the vertical axis 101 through the slot 424 to and from the platform 210. In particular, the slot 424 formed through the wall 422 may allow leads to be secured at the opening 222 at the platform 210. The slot 424 may particularly be formed through the wall 422 proximate to the platform 210, such as proximate relative to the hinge interface 120, the opening 222, or both. The leads may route to the platform 210 while being secured in place and having stresses or strain mitigated or eliminated from forming from the rotation of the platform 210.
[0069] In still some embodiments, the routing panel 410 includes a routing panel spool 414 extending along the lateral axis 102. The routing panel spool 414 may include walls protruding along the lateral axis 102, such as to allow leads to wrap around in circular, ovular, elliptical, parabolic, or figure-8 arrangement. In certain embodiments, the routing panel 410 includes a routing panel tab 416 extending from one or more of spool 414. Tab 416 may extend along the vertical axis 101, the traverse axis 103, or an angle therebetween. In certain embodiments, spool 414 forms a substantially circular wall extending along the lateral axis 102 from a transversely- extended face of the routing panel 410. Various embodiments of tab 416 are configured to retain leads such as described in regard to the retainer tab 218.
[0070] Referring to Figs. 11-19, the closure 100 may include a fiber holder 510 attachable to the routing panel 410. The fiber holder 510 forms a channel 512, or particularly a plurality of channels 512, extending substantially along the vertical axis 101. One or more optical fibers is extendable through the channel 512. In some embodiments, each channel 512 may be configured to receive one or more tubes 502 through which optical fibers are extendable. The fiber holder 510 may secure loose leads, or particularly tubes thereof, in place at the channel 512. The fiber holder 510 may further secure loose leads without constraining each individual lead, or particularly a tube thereof.
[0071] Fig. 11 depicts an exemplary7 assembled view of the closure 100 and Fig. 12 depicts an exemplary partially exploded view of the closure 100. Referring to Figs. 11-12, an embodiment of the closure 100 includes the fiber holder 510 positioned at the routing panel 410 through opening 404. In some embodiments, the closure 100 may include an attachment interface 406 to which a cover wall 514 is releasably connectable. The attachment interface 406 may include standoffs or members extending, e.g.. along the lateral axis 102. The cover wall 514 may include an opening 524 configured to receive the attachment interface 406 at the standoff It should be appreciated that in other embodiments the cover wall 514 may include the attachment interface forming a standoff and the closure 100 may include an opening configured to receive the standoff at the cover wall 514. The cover wall 514 may include a contoured portion 526 corresponding, at least in part, to a curvature or contour of the spool 414 at the routing panel 410. The cover wall 514 may obscure along the lateral axis 102 leads extending through channels 512 at the fiber holder 510, such as further described herein.
[0072] Referring now to Figs. 13-19, embodiments of the fiber holder 510 are provided. Embodiments provided include a body 500 having a plurality of walls 506 extending along the vertical axis 101 and the lateral axis 102 (relative to the fiber holder 510 affixed to the routing panel 410). The channel 512 is formed between a pair of walls 506. In various embodiments, an attachment member 504 extends from the body 500, such as configured to affix to the opening 404 at the routing panel 410 to affix the fiber holder 510 to the routing panel 410. For instance, the attachment member 504 may form a clip, teeth, or clamp configured to extend into the opening 404 and attach the fiber holder 510 to the closure 100.
[0073] In some embodiments, the walls 506 include protrusions 508 extending into the channel 512. The protrusions 508 may include bumps, ridges, spikes, mounds, walls, or other raised surfaces extending from one or more faces of the wall 506 at the channel 512. [0074] Referring to Figs. 13-15, the channel 512 may extend substantially along the lateral axis 102 from an open end 512 to a closed end 522. Referring to Fig. 14. the channel 512 may diverge open from the open end 521 to the closed end 522. For instance, the open end 521 may include a cross sectional area less than the channel 512 between the open end 521 and the closed end 522.
[0075] Referring to Fig. 15, in some embodiments, the wall 506 may extend at an oblique angle (e.g.. a diagonal) along the vertical axis 101. For instance, front faces 516 at the open end 521 of the wall 506 may extend at an angle 518 between the vertical axis 101 and the transverse axis 103.
[0076] Referring to Figs. 13A-13B, Fig. 14, and Fig. 16, in still some embodiments, the front face 516 may form the open end 521 at an oblique angle 518 between the vertical axis 101 and the transverse axis 103. The channel 512 extends substantially co-directi onal to the lateral axis 102 (e.g., substantially zero degrees or parallel to the lateral axis 102). Accordingly, the fiber holder 510 may form an opening through which the tube 502 is extended at the angle 518 (e g., between the vertical axis 101 and the transverse axis 103) and may then be articulated through the channel 512 toward the closed end 522 substantially along the lateral axis 102 (e.g., co-directi onal to the lateral axis 102). The angle 518 and straight channel 512 may allow for the fiber holder 510 and fibers to route substantially along the vertical axis 101 while retaining the tube 502 or mitigating release (e.g., unintentional release, slippage, etc.) of the tube 502 in the channel 512 through the open end 521. Various such embodiments of the fiber holder 510 may obviate a separate wall or cover to obscure the leads 95 along the lateral axis 102.
[0077] Referring now to Fig. 20 A. a perspective view of an embodiment of a portion of a tray assembly 310 is provided. Figs. 21-22 depict exemplary embodiments of a tray plate 314. In various embodiments, the tray assembly 310 may include the tray panel 312 forming a hinge assembly 384. The hinge assembly 384 includes a head 386 forming a channel 388 through which a pin 338 at the tray plate 314 is receivable. The tray plate 314 may include a post 336 from which the pin 338 is extended. For instance, the post 336 may extend in a first direction and the pin 338 may extend from the post 336 substantially along the lateral axis 102 relative to the tray plate 314 positioned at the closure 100. The tray plate 314 may include an arm 332 configured to allow the pin 338 or post 336 to deflect, such as further described below.
[0078] In various embodiments, the head 386 may form a wrench-type head including a plurality of substantially flat faces 390. The faces 390 may correspond to substantially flat faces 337 at the pin 338 configured to contact the faces 390 at the hinge assembly 384. The head 386 includes a first opening 392 forming an open end or forming the head 386 as a partially-circular opening. The head 386 may further include a second opening 394 adjacent to the first opening 392. The second opening 394 forms a larger opening (e.g., larger radius or opening dimension) than the first opening 392. A platform 396 is formed at the second opening 394. The platform 396 may form a substantially flat face, such as at ends of the head 386. For instance, the head 386 may include a first head 386A including the first opening 392 and a second head 386B including the second opening 394 adjacent, next to, or abutting the first opening 392 at the first head 386A.
[0079] An exemplary’ embodiment of operation and configuration of an attachment interface 330 of the tray plate 314 to the tray panel 312 includes positioning the pin 338 at the second head 386B. The tray plate 314 may include a pair of posts 336 each including a respective pin 338. Face 337 at a first pin 338 may be positioned through the channel 388 (e.g., extended along the lateral axis 102 through the channel 388). Face 337 at a second pin 338 may be positioned at platform 396. For instance, the first pin 338 may initially be positioned through the first head 386A (e.g., at a left head depicted in Fig. 20A) and second pin 338 may initially be positioned through the second head 386B (e.g., at a right head depicted in Fig. 20A). The tray panel 314 may be pushed or otherwise moved along the lateral axis 102 such as to slide the first pin 338 through the channel 388 at the first head 386A and the second head 386B (e.g., at the left head), and such as to slide the second pin 338 through the channel 388 at the second head 386B and the first head 386A (e.g., at the right head).
[0080] In various embodiments, flat faces 337, 390 may allow the tray panel 314 to statically position at an angle corresponding to the faces 337, 390 mating to one another. For instance, the flat faces 337, 390 may form distinct angular locations at which the tray panel 314 may be locked in a rotated position. In some embodiments, arm 332 may be depressed, such as to selectively deflect the tray panel 314 to allow the pin 338 to slide out of the channel 388.
[0081] Referring now to Fig. 20B. the closure 100 may include an upper routing guide 610 including a wall 622 forming a passageway 612 extending along the lateral axis 102. The upper routing guide 610 positioned at the second end 105 of the closure 100. In some embodiments, the upper routing guide 610 is integral to the spine 110 at the second end 105, such as distal along the vertical axis 101 from the base 150. In other embodiments, the upper routing guide 610 is releasably attachable to the spine 110 at the second end 105, such as distal along the vertical axis 101 from the base 150. In certain embodiments, the walls 622 are discontinuous, such as to form a slot 624 extending along the lateral axis 102 through the wall 622. The slot 624 may allow the leads to route along the vertical axis 101 through the slot 624. Various embodiments of the passageway 612 and the walls 622 may be formed substantially similarly as described regarding passage 412 and walls 422 at the routing panel 410. [0082] Referring now to Figs. 21-22, various embodiments of the tray plate 314 forming splice trays, splitter trays, or other appropriate modules fiber optic routing are provided. As described herein, each tray assembly 310 may include one or more embodiments of the tray plate 314, such as embodiments depicted and described regarding Figs. 21-22, or other appropriate configurations. Embodiments of the closure 100 provided herein may include any desired quantity or combination of configurations of tray plates 314 to hold, support, and organize relatively large quantities of splice trays and splitter devices.
[0083] Tray plate 314 may include flexible members 350, such as hooks or fingers, configured to retain splitters, fibers, or leads generally. The tray plate 314 includes walls 352 forming a channel 354 at which a splitter 360 is receivable in the channel 354. The flexible member 350 is positioned or formed at wall 352. Positive lean of the flexible member 350 into the channel 354 allows the member 350 to adapt or conform to various sizes or geometries of splitter 360. The flexible member 350 is constructed of a compliant material allowing for the splitter 360 to push the member 350 away from the channel 354 until splitter 360 is fully seated in the channel 354. [0084] Various embodiments of the tray plate 314 include a perimeter wall 370 forming an interior 372 at which leads, splitter, splices, etc. are placeable. One or more interior walls 374 is extended within the interior 372 to form a conduit 376 through which leads are egressed to and from splices, splitters, or other appropriate structures. The perimeter wall 370 and the interior wall 374 may together form an opening 378 at a rear end of the tray plate 314, such as to allow leads to enter the interior 372 from a rear area proximate to the attachment interface 330 and tray panel 312. Walls 366 may form a channel 364 at which splice connectors, protectors, or other fiber optic structures 362 may be retained at the rear end proximate to the attachment interface 330. Tabs 368 may be formed to help hold, support, retain, or organize leads within the interior 372.
[0085] In some embodiments, walls 382 within the interior may form a central passage 380 through which leads may route. The flexible member 350 may be configured as an over-molded finger extending at an angle (e.g., an oblique angle) from w all 352. In a non-limiting exemplary embodiment, the tray plate 314 is configured to hold three fiber optic structures forming 12-fiber splices 362, such as depicted in Fig. 21. In another non-limiting exemplary embodiment, the tray plate 314 is configured to hold two splitters 360 and an input splice protector 362.
[0086]
[0087] Referring now to Figs. 23-25, an embodiment of a mount structure 10 for any one or more embodiments of a closure 20 is provided. Closure 20 may include any one or more embodiments of closure 100 depicted and described herein. In Figs. 23-24, a first axis 91 and a second axis 92 are extended substantially co-directi onal to one another. A first radial direction 13 is extended from the first axis 91 and a second radial direction 14 is extended from the second axis 92. A first end 24 and a second end 26 are defined and separated from one another relative to the first axis 91. In certain embodiments, the first end 24 is defined proximate to a third axis 93 extending perpendicular to the first axis 91, such as described further herein. The second end 26 is defined distal to the third axis 93. In certain embodiments, the first end 24 may refer to a bottom end of the fiber optic closure 20 and the second end 26 may refer to a top end of the fiber optic closure 20. The bottom end may particularly refer to an end or face of the fiber optic closure 20 through w hich one or more optical fibers or cables is extended into the casing 22, such as provided further herein. Accordingly, it should be appreciated that the optical fibers or cables may extend into the casing 22 through the top end, and orientations of the first end 24 and the second end 26 may be altered accordingly.
[0088] The casing 22 of the fiber optic closure 20 may form one or more ridges, ribs, or other raised walls 21 extended co-directional to the second axis 92 or circumferentially around the second axis 92 along an outer surface of the casing 22. The raised wall 21 may form a structural feature of the casing 22. Additionally, or alternatively, the raised wall 21 may form a locating feature, such as further described below.
[0089] The mount structure 10 includes a first bracket 30 extending along the first axis 91. The first bracket 30 includes a plurality of first bracket walls 32 at least partially surrounding the first axis 91. The mount structure 10 includes a rail assembly 70 having a rail 72 extending along the first axis 91. The rail 72 may include one or more rail walls extending along the first axis 91 and forming a bar, cross-bar, cantilevered member, rod, pipe, or other appropriate structure at which a first bracket 30 desirably attaches and detaches. In a particular embodiment, the rail 72 is configured as a telescoping rail extendable and retractable along the first axis 91. [0090] The rail assembly 70 may include a pivot member 74 at which the rail 72 is coupled. The pivot member 74 is configured to rotate the first axis 91 along the third axis 93 extended perpendicular to the first axis 91. The third axis 93 may particularly extend through the pivot member 74 of the rail assembly 70. In a particular embodiment, such as provided further herein, the pivot member 74 may be configured to rotate the first axis 91 by up to approximately 90 degrees.
[0091] Various embodiments of the rail 72 include a rail opening 721 extended through one or more of the walls of the rail 72. In certain embodiments, such as depicted in Fig. 2, the first bracket 30 includes a first bracket opening 301 extended through one or more of the first bracket walls 32. The first bracket opening 301 corresponds to the rail opening 721 at the rail 72. The first bracket opening 301 allows a member, such as a key. bolt, pin. clamp, camlock, or other mechanical stop (hereinafter, "‘detent 3O2’?) to extend through the first bracket opening 301 and the rail opening 721. When installed through the openings 721, 301, the detent 302 may prevent or otherwise disable movement, rotation, translation, or articulation of the first bracket 30 along the rail 72. When the fiber optic closure 20 is attached to the first bracket 30 such as described above, the fiber optic closure 20 is prevented from articulation along the first axis 91.
[0092] Referring to the embodiment depicted in Fig. 23, certain embodiments of the second bracket 50 include a second bracket opening 501 extended through one or more of a second bracket wall 52 at least partially surrounding the first axis 91. The plurality of second bracket walls 52 may be configured to form a pathway 51 through which the second bracket 50 may be positioned around the walls of the rail 72, such as described with regard to the first bracket 30. The detent 302 may be installed through the openings 721, 501 to prevent or otherwise disable movement, rotation, translation, or articulation of the second bracket 50 along the rail 72. When the fiber optic closure 20 is attached to the second bracket 50 such as described herein, the fiber optic closure 20 is prevented from articulation along the first axis 91. The second bracket 50, with the detent 302 extended through the openings 721, 501, may further disable articulation of the first bracket 30 and fiber optic closure 20.
[0093] A plate 34 including a plate wall 36 extending along the second radial direction 14 is extended from the second axis 92. A plate opening 38 extends along the second axis 92 through the plate wall 36. The plate opening 38 is configured to receive a fastener 40. The fastener 40 may include any appropriate type of mechanical fastener, such as, but not limited to, a bolt, screw, tie rod, and any appropriate nuts, sleeves, washers, bushings, collars, or other components as may be appropriate for fastening the fiber optic closure 20 to the plate 34 via the plate opening 38.
[0094] The mount structure 10 includes an arm 42 extending from the first bracket 30 to the plate 34. The arm 42 includes a first arm portion 44 extending along the first radial direction 13. The arm 42 includes a second arm portion 46 extending along the second radial direction 14. In a particular embodiment, the first arm portion 44 is extended from one or more of the plurality’ of first bracket walls 32. The second arm portion 46 is extended from the plate wall 36. In a still particular embodiment, the first arm portion 44 and the second arm portion 46 are extending toward one another and connected to form the arm 42.
[0095] In various embodiments, the first bracket 30 is attachable to, and detachable from, the rail 72. The first bracket 30 may be positioned along the first axis 91 proximate to first end 24. The first bracket 30 may support or hold the fiber optic closure 20 from the first end 24 or bottom end of the casing 22. In certain embodiments, the fiber optic closure 20 may suspended, or supported via the first bracket 30 cantilevering the closure 20 from the first end 24. In other embodiments, the mount structure 10 further includes a second bracket 50 attachable to, and detachable from, the rail 72 and separated from the first bracket 30 along the first axis 91. The second bracket 50 may particularly be separated along the first axis 91 from the first bracket 30 and proximate to the second end 26. A mechanical fastener or mechanical compression device, such as a clamp 57, is attached to the casing 22 and the second bracket 50, such as further described below.
[0096] During an embodiment of assembly, maintenance, installation, or other operation of the mount structure 10, the first bracket 30 slides around the rail 72 from the second end 26 toward the first end 24. The fiber optic closure 20 is mounted or attached onto the plate 34 via one or more fasteners 40 extending through the plate opening 38 and into a corresponding interface at the fiber optic closure 20.
[0097] Referring now to Figs. 24-25, perspective views of operation of embodiments of the mount structure 10 for the fiber optic closure 20 are provided. Fig. 24 depicts the fiber optic closure 20 within the enclosed volume 60.
Embodiments of the mount structure 10 provided herein allow for the fiber optic closure 20 to be positioned substantially parallel to the first axis 91 and rail 72 within the enclosed volume 60. Operation of the mount structure 10 may include rotating the rail 72 via the pivot member 74 to position the rail 72 and first axis 91 substantially perpendicular or oblique relative to the second axis 92, such as depicted in Fig. 25. Rotating the rail 72 may position the fiber optic closure 20 such as depicted in Fig. 25. Operation of the mount structure 10 may further include removing the detent 302 from the first bracket 30 and the rail 72 to slide the fiber optic closure 20 and first bracket 30 toward the second end 26. Operation of the mount structure 10 may further include fixing the first bracket 30 to the rail 72, such as via the detent 302, after sliding the fiber optic closure 20 toward the second end 26. Operation of the mount structure 10 may include rotating the fiber optic closure 20 via removing the detent 157 from the arm 42 and rotating the arm 42. Rotating the arm 42 may position the fiber optic closure 20 substantially perpendicular or oblique to the first axis 91, such as depicted in Fig. 25. Rotating the arm 42 may further allow the fiber optic closure 20 to be positioned out of the enclosed volume 60 while being positioned substantially perpendicular or oblique to the first axis 91. The fiber optic closure 20 may accordingly be positioned substantially horizontal or parallel to the ground. Such a position may facilitate access to the rear end (e g., the fiber optic cables extending into the casing 22).
[0098] Embodiments of the mount structure 10 provided herein allow for movement, translation, articulation, or rotation of the rail assembly 70, such as rotation from a horizontal position (e g., approximately zero degrees or parallel to the ground) to a vertical position (e.g., approximately 90 degrees or perpendicular to the ground). Additionally, or alternatively, the separable arm 42 from the first bracket 30 may allow the mount structure 10 to be articulated to the vertical position. The mount structure 10 may further include a removable pin, bolt, camlock, clamp, mechanical stop, or other detent 302 extendable through the rail 72 and the first bracket 30. Removing the detent 302 allows for the first bracket 30, separately from or together with the fiber optic closure 20, to be translated along the rail 72 to position the fiber optic closure 20 at a desired height. The detent 302 may be re-insertable at various portions of the rail 72 to fix the fiber optic closure 20 at the desired height, allowing for an operator to perform maintenance, assembly, disassembly, splicing, or other operations at the fiber optic closure 20 from a desired height, such as may be more ergonomic for the operator. Additionally, or alternatively, the detent 302 and translation of the first bracket 30 may allow for the fiber optic closure 20 to be stored within a relatively smaller enclosed volume 60 and/or on a shorter rail assembly 70 while allowing the fiber optic closure 20 to be re-positioned or translated to a desired operating height.
[0099] Embodiments of the mount structure 10 depicted and described herein may allow for relatively larger fiber optic closures 20 to be mounted into smaller enclosed volumes 60, which may allow for reduced volume of the enclosed volume. The mount structure 10 may form a fully external attachment relative to the fiber optic closure 20. As such, embodiments of the mount structure 10 provided herein may provide for fiber optic closure 20 mounting without generating or increasing risks associated with compromising, degrading, or damaging fluid seals at the fiber optic closure 20. For instance, embodiments of the mount structure 10 provided herein provide for mounting of the fiber optic closure 20 via existing threads, sleeves, or fasteners at the fiber optic closure 20. Embodiments of the mount structure 10 may furthermore provide for mounting and positioning without utilizing structures or components within the fiber optic closure 20 or egresses common to, intended for, or otherwise utilizable by one or more fiber optic cables 23. Still further, embodiments of the mount structure 10 may provide mounting while dissociating with splice capacity at the fiber optic closure 20, such as by avoiding utilization of ports, openings, or holes associated with one or more fiber optic cables.
[00100] Further aspects of the invention are provided by one or more of the following embodiments:
[00101] 1. A fiber optic closure, wherein a reference coordinate system defines a mutually orthogonal vertical axis, lateral axis, and transverse axis, the closure including a spine extending along the vertical axis, the spine including a first wall extending along the transverse axis, the spine including a second wall extending along the lateral axis, the spine including a platform retention member extending from the second wall; a platform, the platform releasably attachable to the spine at the second wall, the platform configured to extend in a first position alongside the second wall along the vertical axis, the platform configured to extend in a second position at an angle from the second wall between the vertical axis and the transverse axis, the platform including a clip configured to releasably couple to the platform retention member at the spine; and a tray assembly releasably attachable to the first wall of the spine.
[00102] 2. The fiber optic closure of any one or more clauses herein, the trayassembly including a hinge assembly rotatably coupling a tray panel to a tray plate, the hinge assembly including a head forming a channel through which a pm at the tray plate is receivable, the pin and the head each including a plurality of substantially flat faces at which the faces contact one another at the channel.
[00103] 3. The fiber optic closure of any one or more clauses herein, wherein the head includes a first head adjacent to a second head, the second head including a second opening larger than a first opening at the first head. [00104] 4. The fiber optic closure of any one or more clauses herein, wherein the head forms a wrench-t pe head configuration including an opening forming the head as a partially circular opening.
[00105] 5. The fiber optic closure of any one or more clauses herein, wherein the head includes a platform forming a substantially flat face, wherein the platform is configured to receive the pin at the tray plate.
[00106] 6. The fiber optic closure of any one or more clauses herein, the hinge assembly including an arm configured to deflect the pin to allow the pin to exit the channel at the head.
[00107] 7. The fiber optic closure of any one or more clauses herein, including a fiber holder releasably attachable to the spine, the fiber holder including a bodyincluding a plurality of walls extending along the vertical axis and the lateral axis, wherein the channel is formed between a pair of the plurality of walls, wherein an open end is formed at a front face along the lateral axis and a closed end is formed at the body, and wherein the open end extends at an oblique angle between the vertical axis and the transverse axis, and wherein the channel extends substantially along the vertical axis.
[00108] 8. The fiber optic closure of any one or more clauses herein, wherein a plurality- of protrusions extends into the channel from the wall.
[00109] 9. The fiber optic closure of any one or more clauses herein, the platform including a platform face extending along the vertical axis and along the lateral axis when the platform is in the first position; a perimeter wall extending along a peripheral edge of the platform face, wherein an interior volume of the platform is formed between the platform face and the perimeter wall, and wherein a closed end is formed proximate to a second end along the vertical axis, and wherein an open end is formed proximate to a first end along the vertical axis proximate to a base of the closure.
[00110] 10. The fiber optic closure of any one or more clauses herein, the platform including a retainer tab extending from the perimeter wall.
[00111] 11. The fiber optic closure of any one or more clauses herein, the spine including a tray retention member positioned in a track formed by the spine, the tray retention member configured to releasably attach the tray assembly to the spine. [00112] 12. The fiber optic closure of any one or more clauses herein, the closure including a routing panel attachable to the spine, the routing panel forming a passage below the platform along the vertical axis, the passage extending along the lateral axis.
[00113] 13. The fiber optic closure of any one or more clauses herein, the closure including an upper routing guide including a wall forming a passageway extending along the lateral axis, the upper routing guide positioned at a second end of the closure.
[00114] 14. A fiber optic closure, wherein a reference coordinate system defines a mutually orthogonal vertical axis, lateral axis, and transverse axis, the closure including a spine extending along the vertical axis, the spine including a first wall extending along the transverse axis, the first wall including a first face and a second face each extending along the transverse axis and the vertical axis, the first face and the second face each positioned opposite of one another along the lateral axis, the spine including a second wall extending along the lateral axis, the second wall including a third face and a fourth face each extending along the lateral axis and the vertical axis, the third face and the fourth face each positioned opposite of one another along the transverse axis, the spine including a platform retention member extending from the second wall; a platform, the platform releasably attachable to the spine at each of the third face and the fourth face, the platform configured to extend in a first position alongside the second wall along the vertical axis, the platform configured to extend in a second position at an angle from the second wall between the vertical axis and the transverse axis, the platform including a clip configured to releasably couple to the platform retention member at the spine; and a plurality of tray assemblies releasably attachable to the first face and the second face of the spine, the plurality of tray assemblies attachable to the spine in adjacent arrangement along the vertical axis at the first face and the second face, each tray assembly including a tray panel extending along the vertical axis when attached to the spine, wherein a plurality of tray plates is releasably attachable to the tray panel.
[00115] 15. The fiber optic closure of any one or more clauses herein, the tray assembly including a hinge assembly rotatably coupling a tray panel to a tray plate, the hinge assembly including a head forming a channel through which a pin at the tray plate is receivable, the pin and the head each including a plurality of substantially flat faces at which the faces contact one another at the channel.
[00116] 16. The fiber optic closure of any one or more clauses herein, wherein the head includes a first head adjacent to a second head, the second head including a second opening larger than a first opening at the first head.
[00117] 17. The fiber optic closure of any one or more clauses herein, wherein the head forms a wrench-type head configuration including an opening forming the head as a partially circular opening.
[00118] 18. The fiber optic closure of any one or more clauses herein, wherein the head includes a platform forming a substantially flat face, wherein the platform is configured to receive the pin at the tray plate.
[00119] 19. The fiber optic closure of any one or more clauses herein, the hinge assembly including an arm configured to deflect the pin to allow the pin to exit the channel at the head.
[00120] 20. The fiber optic closure of any one or more clauses herein, including a fiber holder releasably attachable to the spine, the fiber holder including a bodyincluding a plurality of walls extending along the vertical axis and the lateral axis, wherein the channel is formed between a pair of the plurality of walls, wherein an open end is formed at a front face along the lateral axis and a closed end is formed at the body, and wherein the open end extends at an oblique angle between the vertical axis and the transverse axis, and wherein the channel extends substantially along the vertical axis.
[00121] This written description uses examples to disclose the invention, including the best mode, and also to enable any person skilled in the art to practice the invention, including making and using any devices or systems and performing any incorporated methods. The patentable scope of the invention is defined by the claims, and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims if they include structural elements that do not differ from the literal language of the claims, or if they include equivalent structural elements with insubstantial differences from the literal languages of the claims.

Claims

WHAT IS CLAIMED IS:
1. A fiber optic closure, wherein a reference coordinate system defines a mutually orthogonal vertical axis, lateral axis, and transverse axis, the closure comprising: a spine extending along the vertical axis, the spine comprising a first wall extending along the transverse axis, the spine comprising a second wall extending along the lateral axis, the spine comprising a platform retention member extending from the second wall; a platform, the platform releasably attachable to the spine at the second wall, the platform configured to extend in a first position alongside the second wall along the vertical axis, the platform configured to extend in a second position at an angle from the second wall between the vertical axis and the transverse axis, the platform comprising a clip configured to releasably couple to the platform retention member at the spine; and a tray assembly releasably attachable to the first wall of the spine.
2. The fiber optic closure of claim 1, the tray assembly comprising: a hinge assembly rotatably coupling a tray panel to a tray plate, the hinge assembly comprising a head forming a channel through which a pin at the tray plate is receivable, the pin and the head each comprising a plurality of substantially flat faces at which the faces contact one another at the channel.
3. The fiber optic closure of claim 2, wherein the head comprises a first head adjacent to a second head, the second head comprising a second opening larger than a first opening at the first head.
4. The fiber optic closure of claim 2, wherein the head forms a wrenchtype head configuration comprising an opening forming the head as a partially circular opening.
5. The fiber optic closure of claim 2, wherein the head comprises a platform forming a substantially flat face, wherein the platform is configured to receive the pin at the tray plate.
6. The fiber optic closure of claim 2, the hinge assembly comprising an arm configured to deflect the pin to allow the pin to exit the channel at the head.
7. The fiber optic closure of claim 1, comprising: a fiber holder releasably attachable to the spine, the fiber holder comprising a body comprising a plurality of walls extending along the vertical axis and the lateral axis, wherein the channel is formed between a pair of the plurality’ of walls, wherein an open end is formed at a front face along the lateral axis and a closed end is formed at the body, and wherein the open end extends at an oblique angle between the vertical axis and the transverse axis, and wherein the channel extends substantially along the vertical axis.
8. The fiber optic closure of claim 7, wherein a plurality of protrusions extends into the channel from the wall.
9. The fiber optic closure of claim 1, the platform comprising: a platform face extending along the vertical axis and along the lateral axis when the platform is in the first position; a perimeter wall extending along a peripheral edge of the platform face, wherein an interior volume of the platform is formed between the platform face and the perimeter wall, and wherein a closed end is formed proximate to a second end along the vertical axis, and wherein an open end is formed proximate to a first end along the vertical axis proximate to a base of the closure.
10. The fiber optic closure of claim 9, the platform comprising a retainer tab extending from the perimeter wall.
11. The fiber optic closure of claim 1, the spine comprising a tray retention member positioned in a track formed by the spine, the tray retention member configured to releasably attach the tray assembly to the spine.
12. The fiber optic closure of claim 1, the closure comprising: a routing panel attachable to the spine, the routing panel forming a passage below the platform along the vertical axis, the passage extending along the lateral axis.
13. The fiber optic closure of claim 1, the closure comprising: an upper routing guide comprising a wall forming a passageway extending along the lateral axis, the upper routing guide positioned at a second end of the closure.
14. A fiber optic closure, wherein a reference coordinate system defines a mutually orthogonal vertical axis, lateral axis, and transverse axis, the closure comprising: a spine extending along the vertical axis, the spine forming a first wall extending along the transverse axis, the first wall comprising a first face and a second face each extending along the transverse axis and the vertical axis, the first face and the second face each positioned opposite of one another along the lateral axis, the spine forming a second wall extending along the lateral axis, the second wall comprising a third face and a fourth face each extending along the lateral axis and the vertical axis, the third face and the fourth face each positioned opposite of one another along the transverse axis, the spine comprising a platform retention member extending from the second wall; a platform, the platform releasably attachable to the spine at each of the third face and the fourth face, the platform configured to extend in a first position alongside the second wall along the vertical axis, the platform configured to extend in a second position at an angle from the second wall between the vertical axis and the transverse axis, the platform comprising a clip configured to releasably couple to the platform retention member at the spine; and a plurality of tray assemblies releasably attachable to the first face and the second face of the spine, the plurality of tray assemblies attachable to the spine in adjacent arrangement along the vertical axis at the first face and the second face, each tray assembly comprising a tray panel extending along the vertical axis when attached to the spine, wherein a plurality of tray plates is releasably attachable to the tray panel.
15. The fiber optic closure of claim 14, the tray assembly comprising: a hinge assembly rotatably coupling a tray panel to a tray plate, the hinge assembly comprising a head forming a channel through which a pin at the tray plate is receivable, the pin and the head each comprising a plurality of substantially flat faces at which the faces contact one another at the channel.
16. The fiber optic closure of claim 15, wherein the head comprises a first head adjacent to a second head, the second head comprising a second opening larger than a first opening at the first head.
17. The fiber optic closure of claim 15, wherein the head forms a w renchtype head configuration comprising an opening forming the head as a partially circular opening.
18. The fiber optic closure of claim 15, wherein the head comprises a platform forming a substantially flat face, wherein the platform is configured to receive the pin at the tray plate.
19. The fiber optic closure of claim 15, the hinge assembly comprising an arm configured to deflect the pin to allow the pin to exit the channel at the head.
20. The fiber optic closure of claim 14, comprising: a fiber holder releasably attachable to the spine, the fiber holder comprising a body comprising a plurality of walls extending along the vertical axis and the lateral axis, wherein the channel is formed betw een a pair of the plurality of walls, wherein an open end is formed at a front face along the lateral axis and a closed end is formed at the body, and wherein the open end extends at an oblique angle between the vertical axis and the transverse axis, and wherein the channel extends substantially along the vertical axis.
EP23848041.2A 2023-02-06 2023-12-19 Modular splice tray system for fiber optic closure Pending EP4662521A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US202363443551P 2023-02-06 2023-02-06
PCT/US2023/084833 WO2024167580A1 (en) 2023-02-06 2023-12-19 Modular splice tray system for fiber optic closure

Publications (1)

Publication Number Publication Date
EP4662521A1 true EP4662521A1 (en) 2025-12-17

Family

ID=89768447

Family Applications (1)

Application Number Title Priority Date Filing Date
EP23848041.2A Pending EP4662521A1 (en) 2023-02-06 2023-12-19 Modular splice tray system for fiber optic closure

Country Status (3)

Country Link
EP (1) EP4662521A1 (en)
MX (1) MX2025008909A (en)
WO (1) WO2024167580A1 (en)

Family Cites Families (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR920704170A (en) * 1989-11-21 1992-12-19 원본미기재 Card cage
US6226436B1 (en) * 1999-11-18 2001-05-01 Lucent Technologies, Inc. Fiber optical pedestal
US6778752B2 (en) * 2002-05-31 2004-08-17 Corning Cable Systems Llc Below grade closure for local convergence point
DE10314262A1 (en) * 2002-11-26 2004-06-03 CCS Technology, Inc., Wilmington Device for structured storage or handling of optical fibers
US7045710B1 (en) * 2005-08-31 2006-05-16 3M Innovative Properties Company Enclosure for telecommunication lines and splices
WO2007096568A1 (en) * 2006-02-22 2007-08-30 Prysmian Cables & Systems Limited A routing device for optical fibre systems
DE102007010855B4 (en) * 2007-03-01 2009-01-08 Adc Gmbh Support system for a distributor device for optical waveguides
WO2012155359A1 (en) * 2011-05-19 2012-11-22 深圳日海通讯技术股份有限公司 Cap-type optical cable connection box
US9207422B2 (en) * 2011-10-26 2015-12-08 All Systems Broadband, Inc. Holders for optical fiber splice sleeves and passive optical components
US11846818B2 (en) * 2019-05-07 2023-12-19 Sterlite Technologies Limited High density optical fiber joint enclosure
WO2022035966A1 (en) * 2020-08-14 2022-02-17 Commscope Technologies Llc Optical fiber organizer with improved fiber routing customizability for a telecommunications closure

Also Published As

Publication number Publication date
MX2025008909A (en) 2025-10-01
WO2024167580A1 (en) 2024-08-15

Similar Documents

Publication Publication Date Title
US12306451B2 (en) Frame assemblies for optical fiber distribution elements
US6226436B1 (en) Fiber optical pedestal
US11402597B2 (en) Cable mounting clamps
ES2545603T3 (en) Modular and configurable configurable local convergence point
EP3845044B1 (en) Frame assemblies for optical fiber distribution elements
EP3594729B1 (en) Fiber optic cabinet and cabinet lift
US20060269204A1 (en) Outside plant fiber distribution enclosure with radial arrangement
JP7781873B2 (en) Cable Mounting Clamp
US20230040946A1 (en) Terminal enclosure for a telecommunications system
US20210181448A1 (en) Frame assemblies for optical fiber distribution elements
EP0500585B1 (en) Optical fibre splice storage tray
EP3911987A1 (en) Splice patch arrangement with movable adapters
CA2513482A1 (en) Connector housing for a communication network
US20230116032A1 (en) Fiber management tray arrangements and assemblies for fiber optic closure organizers
US11947177B2 (en) Frame assemblies for optical fiber distribution elements
US20100329620A1 (en) Cable loop device for optical systems
WO2024167580A1 (en) Modular splice tray system for fiber optic closure
EP2519848A1 (en) Fiber optic cabinet
US12044897B2 (en) Fiber optic closure and adapter for receptacle
US20240385406A1 (en) Hinged modular splice tray systems for closures
US20250199259A1 (en) Fiber distribution point structurally configured to permit enhanced access to the fiber distribution point and to permit minimizing a size of an underground closure
US20240393556A1 (en) Mount bracket for fiber optic closure
US20090202213A1 (en) Routing Device for Optical Fibre Systems

Legal Events

Date Code Title Description
STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: UNKNOWN

STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: THE INTERNATIONAL PUBLICATION HAS BEEN MADE

PUAI Public reference made under article 153(3) epc to a published international application that has entered the european phase

Free format text: ORIGINAL CODE: 0009012

STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: REQUEST FOR EXAMINATION WAS MADE

17P Request for examination filed

Effective date: 20250905

AK Designated contracting states

Kind code of ref document: A1

Designated state(s): AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC ME MK MT NL NO PL PT RO RS SE SI SK SM TR