1. Field of the Invention
The present invention relates to an optical fiber cable in which an optical fiber is housed in a slotted core and the slotted core is covered with a sheath.
2. Description of the Related Art
An optical fiber cable generally includes a slotted core provided with a slotted groove to house an optical fiber inside, and a sheath to cover around the slotted core. Japanese Patent Application Publication Laid-Open Publication No. 8-211261 (Patent Document 1) describes an optical fiber cable including a slotted core provided with an SZ-twisted groove. The SZ-twisted groove is a groove which is spirally formed on an outer peripheral surface of the slotted core.
Meanwhile, as shown in
In the C-slotted core 103, a tension member (a tensile body) 105 is inserted in a position opposite to the opening portion of the slotted groove 102. The tension member 105 is rectilinearly provided.
When the optical fiber cable including the aforementioned C-slotted core 103 is installed between telephone poles for example, a suspension wire is additionally used to support the optical fiber cable. Alternatively, a suspension wire (a spiral hanger) spirally wound around the optical fiber cable is used to support it.
It is complicated to use an additional suspension wire or to wind a suspension wire around the optical fiber cable as described above in the case of installing the optical fiber cable including the C-slotted core 103. It is also inconvenient when the optical fiber cable is replaced, for example.
By the way, as described in Patent Document 1, so-called a self-supporting-type optical fiber cable is proposed. Such a self-supporting type optical fiber cable includes a suspension wire integrally provided along the sheath 104 at a side portion thereof, and it has advantages that the cable can be easily installed between telephone poles not equipped with suspension wires and that the cable can be replaced easily.
However, a self-supporting type optical fiber cable provided with the above-described C-slotted core 103 is yet to be proposed. This is because the tension member 105 is inserted in one side of the C-slotted core 103 in the optical fiber cable provided with the C-slotted core 103, and thus the optical fiber cable possibly may not be bendable if the suspension wire is integrally provided along the sheath 104.
The present invention has been made in view of the above-mentioned circumstance and an object thereof is to provide an optical fiber cable including a C-slotted core, which is configured as a self-supporting type by a suspension wire integrally provided along a sheath.
An aspect of the present invention is An optical fiber cable comprising: an optical fiber; a slotted core including a rectilinear slotted groove disposed along a longitudinal direction of the cable and being configured to house and hold the optical fiber in the slotted groove; a cylindrical sheath configured to cover the entire slotted core inclusive of an opening portion of the slotted groove; a rectilinear suspension wire integrally provided along the sheath in the longitudinal direction of the cable; and a rectilinear tension member inserted in the slotted core along the longitudinal direction of the cable, wherein the tension member is provided in a region having an angle about a cable center line within a predetermined value with respect to a plane including a center line of the suspension wire and the cable center line.
The predetermined value may be ±30°.
The predetermined value may be ±20°.
A rectilinear thick portion may be formed in the sheath along the longitudinal direction of the cable, and the suspension wire is provided continuously to the sheath at the thick portion.
The suspension wire may be provided continuously to the sheath at a portion of the sheath corresponding to the opening portion of the slotted groove.
The tension member may be provided on an opposite side of the cable center line to the center line of the suspension wire in the plane including the center line of the suspension wire and the cable center line.
According to the present invention, it is possible to provide an optical fiber cable including a C-slotted core, which is configured as a self-supporting type by a suspension wire integrally provided along a sheath.
An embodiment of the present invention will be described below in detail with reference to the drawings.
As shown in
As the optical fiber 2, an optical fiber strand, a buffered optical fiber, an optical fiber ribbon or the like is used. The optical fiber strand is formed by coating an optical fiber with ultraviolet curable resin. The buffered optical fiber is formed by coating the optical fiber with plastic resin, and it has a larger diameter than that of the optical fiber strand. The optical fiber ribbon is formed by arranging several optical fiber strands parallel and coating the strands with ultraviolet curable resin.
In the present embodiment, the optical fiber ribbon is used as the optical fiber 2, and the multiple (six) optical fiber ribbons are housed in the slotted groove 3. An interference material or an empty space may be provided between the optical fiber 2 and an inner wall of the slotted groove 3.
The slotted core 4 is a holding member (having a cylindrical outer periphery) configured to house and hold the optical fiber 2 in the slotted groove 3. The slotted core 4 includes the cylindrical slotted groove 3 having a center line O3 in a position displaced from a center line O1 of the optical fiber cable 1 (nevertheless, upper parts of the respective cylindrical shapes constituting the slotted core 4 and the slotted groove 3 are cut away in
In addition, the tension member (the tensile body) 7 is inserted (buried) in the slotted core 4. The tension member 7 suppresses deformation of the optical fiber cable 1 itself because of heat shrinkage of the sheath 6 due to an influence of heat or the like exposed in a place where the optical fiber cable 1 is installed. The tension member 7 is formed of a rectilinear wire rod having a circular cross-sectional shape such as a steel wire or FRP. The tension member 7 is disposed in the thickest region of the slotted core 4 (i.e., a region (a bottom portion in
The sheath 6 is formed as a cylindrical tube. The sheath 6 is formed by extrusion molding which covers the entire slotted core 4 housing the optical fiber 2 with polyethylene resin. When the sheath 6 is molded, the opening portion 5 of the slotted groove 3 is occluded by attaching a retention tape in order to prevent the polyethylene resin for the sheath from entering the slotted groove 3.
The sheath 6 formed has the maximum thickness in a region (an upper portion in
Moreover, the rectilinear suspension wire 8 disposed in the longitudinal direction of the cable is integrally provided to an outer peripheral surface of the sheath 6. The suspension wire 8 is formed of a rectilinear wire rod having a circular cross-sectional shape such as a steel wire or FRP. The suspension wire 8 is integrally provided to the outer peripheral surface of the sheath 6 by a linking portion 9 made of a similar synthetic resin material to that of the sheath 6. The linking portion 9 is integrally formed on the outer peripheral surface of the sheath 6, and the suspension wire 8 is inserted (buried) therein.
In the optical fiber cable 1, as shown in
For this reason, the optical fiber cable 1 possesses flexibility in an orthogonal direction (an X-axis direction in
As shown in [Table 1] below, regarding a relation between the angle about the cable center line with respect of the Y-Z plane and the flexibility of the optical fiber cable 1, the position of the tension member 7 is set preferably within ±30° or more preferably within ±20°.
As shown in
Moreover, in this case, the opening portion 5 of the slotted groove 3 is located at a thin portion of the sheath 6. Accordingly, the optical fiber 2 may be damaged by an impact from the outside.
Referring to
Specifically, when the mid-span access operation is performed with the optical fiber cable 1, the suspension wire 8 is first removed by cutting the linking portion 9 away at a section to be accessed. Next, as shown in
When the sheath 6 is cut into rounds as described above, it is necessary to pay close attention not to damage the optical fiber 2 housed in the slotted groove 3 by allowing the knife 10 to enter the opening portion 5 of the slotted core 4. In the optical fiber cable 1, a portion of the sheath 6 corresponding to the opening portion 5 is thick and the linking portion 9 and the suspension wire 8 are provided at this portion. Accordingly, the knife 10 is prevented from entering deeper than the required level. That is to say, the sheath 6 is thick at the portion 6b facing the opening portion 5 of the slotted core 4. Accordingly, the cutting edge of the knife 10 does not reach the slotted core 4. The thickened portion of the sheath 6 is not cut away with the knife 10 and is retained in a connected state. The rest of the sheath 6 is cut into rounds with the knife 10.
Next, the sheath 6 is cleaved (split lengthwise) by moving the knife 10 along the longitudinal direction of the optical fiber cable 1 as indicated with arrows A. At the time, the cutting edge of the knife 10 goes into the position reaching the surface of the slotted core 4. Here, the position to be cleaved with the knife 10 is preferably located on the opposite side 6a to the position where the linking portion 9 and the suspension wire 8 are provided. As shown in
A cleavage 11 is formed on the sheath 6 as shown in
As the sheath 6 in the predetermined section is removed as described above, the optical fiber 2 can be taken out of the slotted groove 3 of the slotted core 4 in the section as shown in
Meanwhile, in the optical fiber cable 1, it is preferable to continuously provide the suspension wire 8 along and to the sheath 6 at the portion of the sheath 6 corresponding to the opening portion 5 of the slotted groove 3 also in the light of protecting the optical fiber 2 against an impact from the outside. The optical fiber 2 can be protected against an impact from the outside by continuously providing the suspension wire 8 to the thick portion 6b of the sheath corresponding to the opening portion 5 of the slotted groove 3.
As shown in
In addition, in the case, the linking portion 9 is formed at the thinnest portion 6a of the sheath 6. Accordingly, it is difficult to cleave the sheath 6 lengthwise and the mid-span access operation is complicated.
Specifically, the following [Table 2] shows a summary of flexibility, operability of the mid-span access operation, and impact resistance of the optical fiber 2 in regard to the optical fiber cable 1 illustrated in
Number | Date | Country | Kind |
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2009-275007 | Dec 2009 | JP | national |
This application is a Continuation of PCT Application No. PCT/JP2010/071591, filed on Feb. 12, 2010, and claims the priority of Japanese Patent Application No. 2009-275007, filed on Dec. 2, 2009, the content of both of which is incorporated herein by reference.
Number | Date | Country | |
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Parent | PCT/JP2010/071591 | Dec 2010 | US |
Child | 13486443 | US |