The present application relates to the field of fiber communication technologies, and in particular, to a prefabricated distribution optical cable, and a method for fabricating the same.
Currently, when implementing splicing of a distribution optical cable straight or branching of a distribution optical cable, an optical cable division box or a connecting box is generally used. At a user access point, an optical cable is led into the box and fastened. In the box, the distribution optical cable is spliced with a distribution optical cable that needs to be connected with a drop cable on the site, and the remaining fibers of the distribution optical cable extend to the next branch point or access point. An optical cable division box or connecting box is usually big in size, and needs to be mounted in a specific place. Moreover, the optical cable needs to be spliced on the site in the construction process, the spliced fiber needs to be spooled and sealed, and the box needs to be installed, which makes maintenance and expansion rather inconvenient.
As shown in
In the implementation of the disclosed embodiments, the inventor finds that in the solution to branch a pre-connected distribution optical cable in the prior art, when a part of fibers in the optical cable subunit in the distribution optical cable are cut off and spliced, other fibers in the same optical cable subunit go on being spliced straight, which tends to damage the straight-through fibers.
Embodiments provide a prefabricated distribution optical cable and a method for fabricating the same, so as to avoid damage to the straight-through fibers in the process of prefabricating the branch fibers in the factory.
The embodiments adopt the following technical solutions:
A prefabricated distribution optical cable includes:
a distribution optical cable, including at least one optical cable subunit, where the optical cable subunit includes the number of fibers of each optical cable subunit is equal to the number of fibers needing to branch off;
a branch optical cable, being an optical cable subunit of a specific length branching off from the distribution optical cable;
a branch protecting unit, configured to fasten a branch point of the distribution optical cable and the branch optical cable and provide sealing protection for the branch point; and
A method for fabricating the foregoing prefabricated distribution optical cable includes:
cutting off an optical cable subunit needing to branch off, where the number of fibers in the optical cable subunit is equal to the number of fibers needing to branch off;
stripping a section of an outer protection layer off the distribution optical cable at a branch point and extracting the cut optical cable subunit;
fastening the branch point and provide sealing protection for the branch point; and
terminating the extracted optical cable subunit, where the number of fibers of the terminated cable is equal to the number of fibers in the branch optical cable.
Further, a prefabricated distribution optical cable includes a distribution optical cable and a connector unit, the distribution optical cable includes a plurality of optical cable subunits, wherein the number of fibers of each optical cable subunit is equal to the number of fibers needing to branch off, and wherein one of the optical cable subunits branches from the distribution optical cable to be a branch optical cable; the connector unit is configured to terminate the branch optical cable, wherein the number of fibers of the terminated cable is equal to the number of fibers in the branch optical cable.
As revealed in the foregoing technical solutions, the prefabricated distribution optical cable is fabricated by wrapping an optical cable subunit in the distribution optical cable, and the number of fibers of the wrapped optical cable subunit is equal to the number of fibers needing to branch off at each branch point. In this way, when prefabricating the branch fibers in the factory, the corresponding optical cable subunit can branch off directly, and other optical cable subunits keeps straight-through. Therefore, the branching optical cable subunit is independent of the straight-through optical cable subunit in the distribution optical cable, thereby avoiding damage to the straight-through fibers in the process of prefabricating the branch fibers in the factory.
To make the technical solutions of the embodiments clearer, the accompanying drawings used in description of the embodiments are illustrated in brief below.
The technical solutions are described clearly and completely below with reference to the accompanying drawings.
As shown in
a distribution optical cable, including at least one optical cable subunit, where the number of fibers of each optical cable subunit is equal to the number of fibers needing to branch off;
a branch optical cable, being an optical cable subunit of a specific length branching off from the distribution optical cable;
a branch protecting unit, configured to fasten a branch point of the distribution optical cable and the branch optical cable and provide sealing protection for the branch point; and
a connector unit, configured to terminate the branch optical cable.
For example, the distribution optical cable needs to branch off at 3 user access points according to a deployment plan, and the numbers of fibers to branch off to the 3 user access points are 4, 8, and 6, respectively. Therefore, such a prefabricated distribution optical cable may be made in the factory: 3 (or more) optical cable subunits are wrapped in the distribution optical cable, and the numbers of fibers in the 3 optical cable subunits are 4, 8, and 6, respectively. The corresponding optical cable subunit branches off at the planned branch point, and other optical cable subunits in the distribution optical cable remain straight-through. Afterward, the branch point is fastened and sealing protection is provided by using a branch protecting unit, and the branch optical cable is terminated by using a connector unit. Therefore, the branch optical cable subunit is independent of the straight-through optical cable subunit, thereby avoiding damage to the straight-through fibers in the process of prefabricating the branch fibers in the factory.
The branch protecting unit is flexible and pressure-resistant. Specifically, as shown in
a branching unit, connected at a branch point where the branch optical cable branches off from the distribution optical cable, in an encircling manner, and configured to fasten the branch point; and
a sealing unit, wrapped on the branching unit to provide sealing protection for the branch point. Specifically, the sealing unit may be a heat shrink tubing or cold shrink tubing.
The connector unit for terminating the branch optical cable may be a single-pin or multi-pin connector. The number of pins of the connector is equal to the number of fibers in the branch optical cable.
As shown in
S11. Cut off an optical cable subunit needing to branch off, where the number of fibers in the optical cable subunit is equal to the number of fibers needing to branch off.
S12. Strip a section of an outer protection layer off the distribution optical cable at a branch point and extract the cut optical cable subunit.
S13. Fasten the branch point and provide sealing protection for the branch point.
S14. Terminate the extracted optical cable subunit.
Before fabricating the prefabricated distribution optical cable, it is necessary to determine the branch points of the optical cable and the number of fibers needing to branch off at each branch point. When prefabricating the distribution optical cable, for ease of stripping off a specific length of outer protection layer of the optical cable subunit, cut off the optical cable subunit needing to branch off at a specific distance before each branch point according to the survey performed before the construction begins, where the branch points are distributed along the length of the distribution optical cable, and the distance depends on the length of the optical cable subunit needing to strip at each branch point; cut the distribution optical cable at the branch point in an encircling manner, strip a section of outer protection layer off the distribution optical cable, extract the cut optical cable subunit, fasten the branch point and provide sealing protection for the branch point, and prefabricate the extracted optical cable subunit into a terminal.
Specifically, as shown in
Because the optical cable subunits in the distribution optical cable are independent of each other, only the corresponding optical cable subunit needs to be extracted when branching, which prevents impact on other optical cable subunits in the same distribution optical cable, thereby avoiding damage to the straight-through fibers in other optical cable subunits in the process of prefabricating the branch fibers in the factory. Besides, the branch point of the optical cable is protected by both the branching unit and the sealing unit, thereby further avoiding damage to other optical cable subunits in the process of prefabricating the branch fibers in the factory. Moreover, the branch protection structure is easy to operate.
Further, the method for fabricating a prefabricated distribution optical cable provided by this embodiment may further include:
connecting the terminated optical cable subunit with a breakout optical cable.
One end of the breakout optical cable may be prefabricated into a single-pin or multi-pin receptacle that matches the terminated optical cable subunit, thereby facilitating connection with the terminated optical cable subunit. The other end of the breakout optical cable is prefabricated into a single-pin connector that is easily connectable with the drop cable.
Through the breakout optical cable, the branch optical cable can be connected to the drop cable conveniently, thereby connecting the fibers into the user's premises quickly. Moreover, in the method for fabricating the prefabricated distribution optical cable in the present invention, the optical cable does not need to be spliced in the process of prefabricating the branch fibers in the factory, thereby reducing link attenuation, cutting back costs, and facilitating subsequent maintenance and expansion.
The above descriptions are merely exemplary embodiments and are not intended to limit the protection scope of the claims. Other variations or replacement to these embodiments that can be derived by persons skilled in the art are understood to fall within the protection scope of the claims.
Number | Date | Country | Kind |
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201010530400.5 | Oct 2010 | CN | national |
This application is a continuation of International Application No. PCT/CN2011/079790, filed on Sep. 17, 2011, which claims priority to Chinese Patent Application No. 201010530400.5, filed on Oct. 22, 2010, both of which are hereby incorporated by reference in their entireties.
Number | Date | Country | |
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Parent | PCT/CN2011/079790 | Sep 2011 | US |
Child | 13608810 | US |