A wide variety of telecommunication applications utilize fiber optic cables, and in turn involve fiber optic cable splicing and fiber optic cable storage. In these applications, a splice tray is often used to store spliced fiber optic cables. The splice trays commonly include a splice chip for holding or retaining the splice elements of the cables.
In general, improvement has been sought with respect to conventional splice tray arrangements, generally to better accommodate ease of use, to improve reliability of construction, and to increase the density of splice elements that can be stored and managed by the splice tray arrangement.
An aspect of the present disclosure relates to retention chip for a splice tray. The retention chip includes a body having a first sidewall and an oppositely disposed second sidewall. The first and second sidewalls cooperatively define a slot that is adapted to receive a loose tube of a fiber optic cable. The first sidewall includes at least one lateral retainer and an axial retainer. The lateral retainer includes a base and a free end. The base is fixed to the first sidewall and the free end extends toward the second sidewall. The axial retainer is oriented generally perpendicular to the lateral retainer.
Another aspect of the present disclosure relates to a splice tray assembly. The splice tray assembly includes a splice tray and a retention chip mounted to the splice tray. The retention chip includes a body having a first sidewall, an oppositely disposed second sidewall and a base wall. The first and second sidewalls and the base wall cooperatively define a slot that is adapted to receive a loose tube of a fiber optic cable. Each of the first and second sidewalls includes at least one lateral retainer and at least one axial retainer. The lateral retainer of the first sidewall being axially offset from the lateral retainer of the second sidewall. Each of the lateral retainers extends into the slot.
Another aspect of the present disclosure relates to a splice tray assembly. The splice tray assembly includes a splice tray and a retention chip mounted to the splice tray. The retention chip includes a body having a plurality of slots. Each of the slots includes a first sidewall, an oppositely disposed second sidewall and a base wall. Each of the first and second sidewalls of each of the slots includes at least one lower lateral retainer, at least one upper lateral retainer and at least one axial retainer. The lower and upper lateral retainers extend into the slot. The lower and upper lateral retainers of the first sidewall are axially offset from the lower and upper lateral retainers of the second sidewall.
A variety of additional aspects will be set forth in the description that follows. These aspects can relate to individual features and to combinations of features. It is to be understood that both the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the broad concepts upon which the embodiments disclosed herein are based.
Reference will now be made in detail to the exemplary aspects of the present disclosure that are illustrated in the accompanying drawings. Wherever possible, the same reference numbers will be used throughout the drawings to refer to the same or like structure.
Referring now to
The splice tray assembly 12 of the present disclosure generally includes a splice tray 16 and a retention chip 18. The retention chip 18 is adapted to hold or retain optical fibers 20 of a fiber optic cable.
An exemplary splice tray stack 10 and splice tray 14 has been described in U.S. Patent Application Ser. Nos. 61/039,045 (now U.S. patent application Ser. No. 12/370,040), which was filed on Mar. 24, 2008, 61/046,678 (now U.S. patent application Ser. No. 12/425,241), which was filed on Apr. 21, 2008, and 61/147,933 (now U.S. patent application Ser. No. 12/425,241), which was filed on Jan. 28, 2009. The disclosures of the above identified applications are hereby incorporated by reference in their entirety.
Referring now to
The body 22 defines at least one slot 32 that is adapted for receiving a fiber optic cable. In one aspect of the present disclosure, the at least one slot 32 is adapted for receiving a loose tube 34 (shown in
In the depicted example of
Each of the slots 32 includes a first sidewall 38, an oppositely disposed second sidewall 40 and a base wall 42. The first and second sidewalls 38, 40 are separated by a width W. In one aspect of the present disclosure, the width W is at least 2 millimeters.
The base wall 42 is disposed a distance D from the upper surface 26 of the body 22. In one aspect of the present disclosure, the distance D is greater than or equal to two times the width W. In one aspect of the present disclosure, the base wall 42 is arcuate in shape. In another aspect of the present disclosure, the base wall 42 defines a full radius R.
Each of the slots 32 includes an opening 44 in the upper surface 26 of the body 22. In one aspect of the present disclosure, the opening 44 extends from the front side 28 to the back side 30.
Each of the first and second sidewalls 38, 40 of the slots 32 includes at least one lateral retainer 46. In one aspect of the present disclosure, the lateral retainers 46 are adapted to reduce the risk of the loose tube 34 being inadvertently removed from the slot 32 through the opening 44.
In the depicted example of
In the depicted example of
The lower lateral retainer 46a disposed on the first sidewall 38 of the slot 32 is axially offset from the lower lateral retainer 46a disposed on the second sidewall 40 of the slot 32 such that the free end 50 of the lower lateral retainer 46a disposed on the first sidewall 38 is not directly opposite the free end 50 of the lower lateral retainer 46a disposed on the second sidewall 40. This axial offset of the lower lateral retainers 46a prevents the width of the slot 32 from becoming too small to receive the loose tube 34. In the depicted example, the first sidewall 38 includes a first lower lateral retainer 46a1 disposed adjacent to the front side 28 and a second lower lateral retainer 46a2 disposed adjacent to the back side 30. The first and second lower lateral retainers 46a1, 46a2 are separated by a space. The second sidewall 40 includes a third lower lateral retainer 46a3 disposed opposite the space between the first and second lower lateral retainers 46a1, 46a2 of the first sidewall 38.
Similarly, the upper lateral retainer 46b disposed on the first sidewall 38 of the slot 32 is axially offset from the upper lateral retainer 46b disposed on the second sidewall 40 of the slot 32 such that the free end 50 of the upper lateral retainer 46b disposed on the first sidewall 38 is not directly opposite the free end 50 of the upper lateral retainer 46b disposed on the second sidewall 40. In addition, the upper lateral retainers 46b are axially offset from the lower lateral retainers 46a on each of the first and second sidewalls 38, 40 of the slot 32.
Each of the first and second sidewalls 38, 40 of the slot 32 further includes at least one axial retainer 60. In one aspect of the present disclosure, the axial retainers 60 are adapted to reduce the risk of the loose tube 34 being inadvertently moved in the slot 32 axially in a direction parallel to the central axis 36.
In the depicted example of
The axial retainer 60 disposed on the first sidewall 38 of the slot 32 is axially aligned with the axial retainer 60 disposed on the second sidewall 40 of the slot 32 such that the free end 64 of the axial retainer 60 disposed on the first sidewall 38 is directly opposite the free end 64 of the axial retainer 60 disposed on the second sidewall 40. This axial alignment of the axial retainers 60 on the first and second sidewalls 38, 40 provides an interference fit between the axial retainers 60 and the loose tube 34. The interference fit reduces the risk of the loose tube 34 from inadvertently sliding in the slot 32.
In one aspect of the present disclosure, each slot 32 includes four pair of axial retainers 60. A first pair of axial retainers 60a is disposed between the front side 28 and the first lower lateral retainers 46a1. A second pair of axial retainers 60b is disposed between the first and third lower lateral retainers 46a1, 46a3. A third pair of axial retainers 60c is disposed between the third lower lateral retainers and the second lower lateral retainers 46a3, 46a2. A fourth pair of axial retainers 60d is disposed between the second lower lateral retainer 46a2 and the back side 30.
Referring now to
In one aspect of the present disclosure, the first and second resilient tabs 76, 78 are adapted for engagement with an opening 90 (shown in
Various modifications and alterations of this disclosure will become apparent to those skilled in the art without departing from the scope and spirit of this disclosure, and it should be understood that the scope of this disclosure is not to be unduly limited to the illustrative embodiments set forth herein.
The present disclosure claims priority to U.S. Patent Application Ser. No. 61/167,150, entitled “Splice Tray Chip” and filed on Apr. 6, 2009, the disclosure of which is hereby incorporated by reference in its entirety.
Number | Date | Country | |
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61167150 | Apr 2009 | US |