The present application is based on Japanese Patent Application No. 2009-105307 filed on Apr. 23, 2009, the entire contents of which are incorporated herein by reference.
The present invention relates to a cable that is used in an environment where the cable receives repeated bending like robots or automobiles.
A cable that is used in an environment where the cable receives repeated bending like robots or automobiles (e.g., an unspring mass of an automobile) are required to have not only high bending durability but also high flexibility from the viewpoint of eased cabling. These two requirements, i.e. high bending durability and high flexibility, were however never achieved at the same time.
JP2002-124137A describes an art that prevents an overhead distribution line from sagging even if its stranded conductor breaks by providing therein a strength member having a tensile strength more than five times greater than that of its stranded conductor.
In JP2002-124137A, it is intended to prevent an overhead distribution line from sagging even if its stranded conductor breaks. In a cable that receives repeated bending however, it is preferable to prevent the stranded conductor from breaking. Further, it is also preferable to provide high flexibility as stated above at the same time.
The present invention provides a cable that solves the above-stated problems and, at the same time, realizes both high bending durability and high flexibility.
According to the first aspect of the present invention, a cable by the present invention is given such a configuration as has a cable structure comprising a stranded wire formed by stranding a plurality of stranded conductors and as has an inclusion that is more deformable than the stranded conductor, wherein the plurality of stranded conductors are arranged on a circumference of the inclusion.
According to the second aspect of the present invention, a cable by the present invention is given such a configuration as has a cable structure comprising a master stranded wire formed by stranding a plurality of slave stranded wires each of which is made up of a plurality of stranded conductors and as has an inclusion that is more deformable than the slave stranded wire, wherein the plurality of slave stranded wires are arranged on a circumference of the inclusion.
According to the third aspect of the present invention, the inclusion can be made of resin.
According to the fourth aspect of the present invention, the inclusion can be given a tube form.
According to the fifth aspect of the present invention, the inclusion can be a yarn made up of stranded plural fiber threads.
According to the sixth aspect of the present invention, the fiber thread can be a staple fiber thread.
According to the seventh aspect of the present invention, a periphery of the stranded conductors arranged on a circumference of the inclusion or a periphery of the slave stranded wires arranged on a circumference of the inclusion can be covered with an insulating layer composed of an electrical insulator, a circumference of said insulating layer can be covered with a shielding layer composed of a conductive material.
According to the eighth aspect of the present invention, a periphery of the shielding layer can be covered with a reinforced braid layer composed of a fiber, a circumference of said reinforced braid layer can be covered with a sheath composed of a resin.
According to the present invention an excellent effect can be exerted, i.e. the present invention can actualize both of high bending durability with high flexibility at the same time.
The following details embodiments of the present invention with reference to attached drawings.
As
The plurality of stranded conductors 13 are disposed at an approximately equal interval on circumferential positions located at the predetermined distance from the structural center of the cable 11. The circumference of the plurality of stranded conductors 13 is covered with an insulating layer 15 composed of an electrical insulator. The circumference of the insulating layer 15 is covered with a shielding layer 16 composed of a conductive material. The circumference of the shielding layer 16 is covered with a reinforced braid layer 17 composed of a fiber. The circumference of the reinforced braid layer 17 is covered with a sheath 18 composed of a resin.
In the cable 11, the inclusion 14 is disposed at the approximate center of the annular formation created by the plurality of stranded conductors 13. The inclusion 14 has flexibility. Since the inclusion 14 has a more deformable nature than the stranded conductor 13, the outer periphery of the inclusion 14 deforms when a bending applied on the cable 11 causes the stranded conductor 13 to press the inclusion 14.
Further, as
The plurality of slave stranded wires 23 are disposed at an approximately equal interval on circumferential positions located at the predetermined distance from the structural center of the cable 21. The circumference of the plurality of slave stranded wires 23 is covered with an insulating layer 25 composed of electrical insulator. The circumference of the insulating layer 25 is covered with a shielding layer 26 composed of a conductive material. The circumference of the shielding layer 26 is covered with a reinforced braid layer 27 composed of a fiber. The circumference of the reinforced braid layer 27 is covered with a sheath 28 composed of a resin.
In the cable 21, the inclusion 24 is disposed at the approximate center of the annular formation created by the plurality of slave stranded wires 23. The inclusion 24 has flexibility. Since the inclusion 24 has a more deformable nature than the slave stranded wire 23, the outer periphery of the inclusion 24 deforms when a bending applied on the cable 21 causes the slave stranded wire 23 to press the inclusion 24.
The operations and advantages of the cable 11 shown in
Firstly, the present invention employs a stranded conductor that is a strand of plural conductor wires; employment of this configuration enhances the bending durability. Secondly, the present invention gives each of the stranded conductors no jacketing for an eased terminal treatment.
In general, an ordinary type cable that has a cable structure of a plurality of stranded conductors has the one stranded conductor also at the structural center thereof, which position corresponds to the place occupied by the inclusion 14 in the cable 11, as shown in
The pressure produced among stranded conductors 13 when the cable 11 is bent is absorbed by the deformation of the inclusion 14. Thereby, the pressure produced among stranded conductors 13 is relaxed suppressing the break of conductor wire in the stranded conductor 13; that is, the occurrence of the break of conductor wire at the portion where the stranded conductor 13 contacts each other is suppressed. As a result, the cable 11 is given a high bending durability.
Further, the cable 11 has a lower bending stiffness than that of the cable of above-stated ordinary type since the inclusion 14 deforms when bent. This means that the cable 11 has a high flexibility. Therefore, the cable 11 is bendable in a radius that is smaller than a radius such that the ordinary cable can tolerate, offering an eased cabling.
The cable 11 can be offered with a high bending durability by providing: an insulating layer 15 on the circumference of a conductor layer made up of the plurality of stranded conductors 13 arranged and stranded over the circumference of the inclusion 14; a shielding layer 16 on the circumference of the insulating layer 15; and a sheath 18 on the circumference of the shielding layer 16.
Further to the above, the cable 11 can be offered with a high impact resistivity by providing the reinforced braid layer 17 made up of a braided impact absorptive fibers between the shielding layer 16 and the sheath 18. For the impact absorptive braid, at least one of fibers selected from the group consisting of: fiber of polyethylene terephthalate, fiber of polyvinyl alcohol, and fiber of polyethylene-2,6-naphthalate, will be suitable.
Explanation of the operations and advantages of the cable 21 shown in
The inclusions 14 and 24 can be made from resin. The inclusions 14 and 24 can be formed in a tube shape, that is, a shape that has a hollow. The cable 11 shown in
The inclusions 14 and 24 can be a twisted yarn made up of a strand of plural fibrous thread. The cable 21 shown in
Cables were manufactured as Embodiment 1, Embodiment 2, and a comparative example.
Embodiment 1 is the cable 11 shown in
Embodiment 2 is the cable 21 shown in
The cable of comparative example has no inclusion in its structure as
These three cables: Embodiment 1, Embodiment 2, and the comparative example, underwent a bending durability test of 500,000 times of cyclic-bending in a 90° bend on R30, a radius of 30 mm. The results are shown in
As shown in
The bending stiffness of three cables: Embodiment 1, Embodiment 2, and the comparative example, was measured in terms of the bending radii R. The bending radius R (mm) denotes here a radius of curvature of the portion at which the cable is bent most sharply. The bending radii R were 150, 80, 50, and 30 mm. The bending stiffness (N·mm2) is a value that indicates degree of hardness in bending, which is given by the product of the longitudinal elastic modulus and the second moment of area.
As shown in Table 1, the bending stiffness of cables of Embodiment 1 and Embodiment 2 are all less than 1, which is the normalized bending stiffness of the cable of comparative example for each bending radius R. This means that Embodiment 1 and Embodiment 2 have a bending stiffness that is smaller than that of the comparative example. Thus, it was confirmed that the cables 11 and 21 according to embodiments of the present inventions had improved flexibility compared to conventional ones.
From the test results as stated above, it can be concluded that the cables 11 and 21 according to embodiments of the present inventions have adequate bending durability and have enough flexibility for cabling.
Although Embodiment 1 and Embodiment 2 were provided with both the shielding layers 16, 26 and the sheaths 18, 28, even such a cable as has either a shielding layer or a sheath brings the same test results as in Embodiment 1 and Embodiment 2.
It will be obvious to those having skill in the art that many changes may be made in the above-described details of the preferred embodiments of the present invention. The scope of the present invention, therefore, should be determined by the following claims.
Number | Date | Country | Kind |
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2009-105307 | Apr 2009 | JP | national |