SYSTEM AND METHOD FOR PROTECTING OPTICAL FIBRE SPLICE
20230280534 ยท 2023-09-07
Assignee
Inventors
Cpc classification
G02B6/2551
PHYSICS
G02B6/3885
PHYSICS
International classification
Abstract
The present invention relates to a low-profile splice protection system for protecting multi-fibre fusion splice sites. The splice protection system comprises coating material to package the splice site and may comprise a protective housing.
Claims
1. A splice protection system, for protecting fusion splice sites delimited between multiple first optical fibres and multiple second optical fibres 424 said splice protection system comprising: a splice protector, said splice protector comprising a sleeve said sleeve comprising mutually perpendicular length, width, and thickness, said sleeve comprising a first main side and a second main side, which are opposite each other and are delimited by the sleeve length and width, the first main side and the second main side comprising separated main side walls separated from each other by a separating space extending along the thickness of the sleeve said sleeve further comprising a first longitudinal secondary side and a second longitudinal secondary side positioned opposite each other and delimited by sleeve length and thickness, said sleeve further comprising first and second lateral secondary sides positioned opposite each other and delimited by width and thickness of the sleeve the first and second lateral secondary sides being open lateral secondary sides; wherein said width is at least twice said thickness, wherein the fusion splice site is disposed inside the sleeve of the splice protector, wherein said multiple first optical fibres and second multiple second optical fibres extend outward from the first lateral secondary side and the second lateral secondary side of the splice protector sleeve; and wherein the splice protection system further comprises adhesive cement, the adhesive cement being disposed within the splice protector sleeve in order to fill the gaps within the splice protector sleeve.
2. The splice protection system as described in claim 1, wherein the second longitudinal secondary side is an open longitudinal side.
3. The splice protection system as described in claim 2, wherein the fusion splice site is loaded into the sleeve through the open longitudinal side, and wherein the fusion splice site is positioned in said intervening space between the main side walls, and said optical fibres, after being mounted in the sleeve at the fusion splice site, extend through the open lateral secondary sides of the sleeve.
4. The splice protection system as described in claim 1, wherein said length is at least twice as large as said width.
5. The splice protection system as described in claim 1, wherein the opposing first main side and second main side of the sleeve are roughly rectangular.
6. The splice protection system as described in claim 1, wherein at least two optical fibres among said optical fibres are laid through the sleeve.
7. The splice protection system as described in claim 1, wherein said optical fibres are arranged in a row structure, said row structure having the width extending along the width of the sleeve.
8. The splice protection system as described in claim 1, wherein the splice protection system is installed using a mould, said mould having a base and a cover, said cover being constructed such that it seals an open longitudinal secondary side and comprises an injection port.
9. The splice protection system as described in claim 1, wherein at least one of said main side walls or a smaller wall bridging the gap between said main side walls delimits the boundaries for an adhesive cement injection port.
10. The splice protection system as described in claim 1, wherein said adhesive cement is UV-curable.
11. The splice protection system as described in claim 1, wherein the width of said optical fibre row structure is less than the width of the splice protector.
12. The splice protection system as described in claim 1, wherein the sleeve of the splice protector has a U-shaped cross-section perpendicular to the plane of the length of the sleeve.
13. The splice protection system as described in claim 1, wherein said multiple first optical fibres are secured to a ferrule and said multiple second optical fibres extend from an end of an optical cable 404 and wherein the splice protector sleeve is separated by a gap from the ferrule.
14. The splice protection system as described in claim 13, wherein said ferrule is supported within a connector body, and the sleeve is contained within the connector body.
15. The splice protection system as described in claim 14, wherein the sleeve is laterally installed into the connector body through the longitudinal slot delimited by the open side of the connector body.
16. The splice protection system as described in claim 14, wherein the connector body is a firm, durable part of the connector, the connector comprising a twist-lock external fastener and at least one sealing part.
17. The splice protection system as described in claim 1, wherein a first longitudinal secondary side comprises a longitudinal wall bridging the separating space between said main side walls and connecting said main side walls to each other, the first longitudinal secondary side being a closed longitudinal side.
18. The splice protection system as described in claim 1, wherein the sleeve is formed from two matching shell parts.
19. The splice protection system as described in claim 18, wherein said shell parts are halves, wherein at least one of said shell parts delimits an injection port.
20. A method for using a splice protector sleeve to protect a splice site, said splice site being delimited between multiple first optical fibres and multiple second optical fibres, the splice protector sleeve having a length, a width, and a thickness, the splice protector sleeve comprising a first side wall, a second side wall opposite the first side wall, a third wall connecting said first side wall and second side wall, and open ends, said method comprising the steps described below: positioning the splice site within the splice protector sleeve; injecting adhesive cement into the splice protector sleeve and filling the gaps between said optical fibres and the splice protector sleeve; and curing the adhesive cement.
21. (canceled)
Description
DRAWINGS
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SPECIFIC EMBODIMENTS
[0028] The guiding principles of the present disclosure relate to a splice-strengthening structure and methods for its application. In certain embodiments, the splice-strengthening structure is constructed so as to effectively mount and protect a multi-fusion-splice site. Some examples of a splice-strengthening structure according to principles of the present invention have a low profile and are constructed so as to be easily mounted in a splice-on connector body. In certain embodiments, the splice-strengthening structure according to principles of the present invention has a low-profile splice protector sleeve. Said low-profile splice protector sleeve is used in combination with a curable splice protection material. Said curable splice protection material fills the sleeve and the splice packaged and positioned within the sleeve. In some examples, the splice protector sleeve has a U-shaped profile when viewed longitudinally. In some examples, the splice protector sleeve has long, thin, low-profile construction. It has a first side wall, a second side wall opposite the first side wall, a third wall connecting the first side wall and the second side wall, a longitudinal open side opposite the third wall, and open ends. In some embodiments, the splice protector sleeve comprises two or more matching parts (e.g., two halves). Every aspect of the present invention is applicable to hardened and non-hardened splice-on connectors.
[0029]
[0030] Refer to
[0031] The hardened multi-fibre optical connector 20 comprises a connector body 410. The connector body 410 supports a multi-fibre ferrule 210 at the front end of the connector body 410. The multi-fibre ferrule 210 is pressed upward, in a forward direction relative to the connector body 410, by a spring. The hardened multi-fibre optical connector 20 further comprises a strengthening sleeve 26 and a housing 28 which fit over the connector body 410. The housing 28 comprises a thin length 28a that fits over the strengthening sleeve 26 and an end cap 28b that fits over the multi-fibre ferrule 210. A sealing part 30 may be disposed on the thin length 28a and is for forming a seal with the optical fibre adapter 24 when the hardened multi-fibre optical connector 20 is secured in the hardened port of the optical fibre adapter 24. The hardened fastener 32 is provided for securing the hardened multi-fibre optical connector 20 in the hardened port of the optical fibre adapter 24. In the embodiment described, the fastener is a twist-lock fastener. It is shown as an external-thread nut. Said external thread binds with the corresponding internal thread delimited internally by the hardened port of the optical fibre adapter 24. In another example, another type of twist-lock fastener may be used such as a snap fastener or alternatively an interior thread sleeve. The hardened multi-fibre optical connector 20 further comprises a shape-memory sleeve 34 (e.g., heat-shrink tubing), which provides a seal between the optical cable sheath 460 and the housing 28. The hardened multi-fibre optical connector 20 further comprises a strain-relief sleeve 36, which provides bending-radius protection and strain relief at the interface between the optical cable 400 and the housing 28.
[0032] The connector body 410 of the hardened multi-fibre optical connector 20 may comprise a main body 411, a first cover part 412, and a second cover part 413. In the example shown, the first cover part 412 and the second cover part 413 are installed on the longitudinal-side opening 414 of the main body 411. The cover part 412 may comprise a part that serves as a spring retainer. After the optical fibre stubs 110 (refer to
[0033]
[0034]
[0035] The exposed part 140 of the optical cable 400 is preferably protected to prevent breaks.
[0036]
[0037] According to one embodiment, before the exposed part 140 is placed into the splice protector sleeve 101, adhesive cement 109 is injected into the internal space 106 of the splice protector sleeve 101. In an alternative embodiment, the exposed part 140 is placed in the splice protector sleeve 101 prior to injection of the adhesive cement 109. The adhesive cement is then injected into the internal space 106 of the splice protector sleeve 101, filling the gaps between the optical fibres 110 and 120 and the splice protector sleeve 101. In this manner, the adhesive cement packages the optical fibres and the splice site, thus stabilising and mechanically strengthening the splice site 130.
[0038] In an example, the adhesive cement is injected into the internal space 106 through an open side (e.g., the open longitudinal side 105). In another embodiment, the splice protector sleeve 101 comprises at least one port 115 on a wall of the splice protector sleeve 101. For example, one or more ports 115 could be positioned on the first main-side wall 102, the second main-side wall 103, and/or the secondary wall 104. The adhesive cement 109 could be injected into the internal space 106 through the port 115. In yet another embodiment, a cover 920 comprising a port 925 (refer to
[0039] During the process of assembling the splice protector sleeve 101 and the optical fibre cable 400 having the ferrule assembly 200, these may optionally be retained in the mould 910 (refer to
[0040] After the adhesive cement 109 is injected, the adhesive cement 109 could, for example be cured by UV radiation or by heating. The types of adhesive cement 109 may comprise UV-curable adhesive cement, heat-curable adhesive cement, or some other suitable adhesive cement. The types of adhesive cement 109 could comprise, for example, epoxy resin or some other type of resin (e.g., an acrylic resin such as cyanoacrylate, polyester resin, or some other suitable resin). In one embodiment, the splice protector sleeve 101 and the adhesive cement 109 provide a flexible splice protection system 100. The flexible splice protection system 100 may be bent without causing damage. The splice protector sleeve 101 may be made from a polymeric material. For example, it may be made from polycarbonate (PC) or polyethyleneimine (PEI) or any other suitable material. In one embodiment, the splice protector sleeve 101 is made of material that can be penetrated by UV light. In one example, the adhesive cement 109 is shown as permanently securing the splice protector sleeve 101 onto the optical cable 400 and covering the exposed part 140.
[0041] After the splice protection system 100 has been installed on the splice site, the spring 311 and the spring cover 312 can slide forward over the splice protector sleeve 101 in the direction of the ferrule, bringing the spring cap 312 into contact with the rear end 212 of the ferrule 210. In the example shown, the splice protector sleeve 101 is separate from the ferrule 210. The ferrule 210, the spring 311, the cover 312, and the splice protector sleeve 101 containing the splice site 130 can be mounted in the main body 411 of the connector body 410 through the longitudinal-side opening 414 (see
[0042]
[0043] The first half-shell 160 is described here and is shown in
[0044] When the half-shells 160 and 170 are in the assembled positions shown in
[0045] In certain embodiments, when there is no permanent housing, the splice site between said multiple first optical fibres and multiple second optical fibres can be protected by coating materials (e.g., packaging materials such as adhesive cement). These materials could be UV-curable materials. A protective coating could be applied by spraying, injecting, or overmoulding, or by another technique. In certain examples, the protective coating materials could be injected or sprayed into, or otherwise fill, a mould around the splice site. Packaging materials could be cured within the mould, and then the mould could be removed from the packaging material. In certain embodiments, a splice site protected by sealing agent that lacks housing could be contained within the connector body of a vibration-resistant optical fibre connector of a type described above (e.g., the hardened multi-fibre connector 20). This vibration-resistant optical fibre connector has a twist-lock fastener. This twist-lock fastener is for securing the vibration-resistant optical fibre connector in the matching port of a vibration-resistant optical fibre adapter. A sealing part may be disposed between the vibration-resistant optical fibre connector and vibration-resistant optical fibre adapter.
[0046] Although some embodiments of the present invention have been described, other embodiments may exist. The particular features and actions described above are disclosed as illustrative aspects and embodiments of the present invention. After reading the descriptions herein, a person with ordinary skill in the art could become inspired with various other aspects, embodiments, modifications, and other equivalents without departing from the spirit of the present invention or the scope of the subject matter of the claims.
LIST OF PARTS
[0047] 20 hardened multi-fibre connector [0048] 22 non-hardened multi-fibre optical connector [0049] 24 optical fibre adapter [0050] 26 strengthening sleeve [0051] 28 housing [0052] 28a thin length [0053] 28b cover [0054] 30 sealing part [0055] 32 fastener [0056] 34 shape-memory sleeve [0057] 36 strain-relief sleeve [0058] 100 splice protection system [0059] 101 splice protector sleeve [0060] L101 length [0061] W101 width [0062] T101 thickness [0063] 102 first main-side wall [0064] 103 second main-side wall [0065] 104 closed secondary wall [0066] 105 open side [0067] 106 internal space [0068] S106 distance [0069] 107 first end [0070] 108 second end [0071] 109 adhesive cement [0072] 110 optical fibres (stubs) [0073] W110 width [0074] 115 port [0075] 120 optical fibres [0076] 130 splice site [0077] 140 exposed part [0078] 151 splice protector sleeve [0079] T151 thickness [0080] W151 width [0081] 155 port [0082] 156 internal space [0083] S156 distance [0084] 157 first secondary side [0085] 158 second secondary side [0086] 160 first half-shell [0087] 161 first main wall [0088] 162 first end [0089] 163 second end [0090] 164 first longitudinal side [0091] 165 second longitudinal side [0092] 166 first secondary wall extension [0093] 167 second secondary wall extension [0094] 168 snap insertion hole [0095] 169 snap projecting block [0096] 170 second half-shell [0097] 171 first main wall [0098] 172 first end [0099] 173 second end [0100] 174 first longitudinal side [0101] 175 second longitudinal side [0102] 176 first secondary extension [0103] 177 second secondary extension [0104] 178 snap insertion hole [0105] 179 snap projecting block [0106] 180 seam [0107] 200 ferrule assembly [0108] 210 multi-fibre ferrule [0109] 211 front end [0110] 212 rear end [0111] 311 spring [0112] 312 spring cap [0113] 400 optical cable [0114] 410 connector body [0115] 411 main body [0116] 412 first cover part [0117] 413 second cover part [0118] 414 longitudinal slot [0119] 460 sheath [0120] 461 strength member [0121] 910 mould [0122] 911 slot [0123] 920 cover [0124] 925 port [0125] 1000 optical fibre connector device