The present invention relates to a cable that supplies, for example, electric power.
Such type of a cable known in the art includes a coated electric wire that has a conductor and a coating portion that coats the conductor, an insulative sheath portion that covers the coated electric wire, and a filler that fills the space between an inner side of the insulative sheath portion and an outer side of the coated electric wire (for example, patent document 1). Such a cable is flexible and configured to be freely bent.
Patent Document 1: Japanese Laid-Open Patent Publication No. 2012-146542
The above cable can be freely bent in any direction. Thus, when the cable is used to reciprocate a movable body in a horizontal direction with a first end fixed to a fixed portion and a second end fixed to the movable body that is located above the fixed portion, the cable moves while elastically defaming as it follows the reciprocation of the movable body. However, the path of the cable is unstable.
Accordingly, it is an object of the present invention to provide a cable that stabilizes its path when the first end and the second end are moved relative to each other while forming a curved portion at its intermediate portion.
A cable that solves the above problem includes a flexible transmission member and a multi-joint support member famed by pivotally coupling adjacent ones of a plurality of link members arranged in series. Turning of the multi-joint support member in a first direction in a direction intersecting a serial direction is allowed until becoming equal to a predetermined radius of curvature and turning of the multi-joint support member in a second direction, which is opposite to the first direction, is restricted. The cable also includes a flexible sheath member that covers the multi-joint support member and the transmission member.
In this structure, the multi-joint support member is turned only in the first direction. This stabilizes the path of the cable when relatively moving the first end and the second end while forming the curved portion at its intermediate portion.
It is preferred that the multi-joint support member be covered by a flexible cover member.
This structure allows the cover member to protect the transmission member from the multi-joint support member.
It is preferred that the multi-joint support member be arranged in a central portion of the sheath member and that the transmission member be arranged between the multi-joint support member and the sheath member.
In this structure, the multi-joint support member is arranged in the central portion of the sheath member where stress received by the cable during use of the cable is largest. This limits stress received by the transmission member.
It is preferred that the multi-joint support member be formed from a synthetic resin.
This structure reduces the weight of the multi-joint support member as compared to when the multi-joint support member is famed from metal.
It is preferred that the multi-joint support member be one of a plurality of multi-joint support members and that the sheath member cover the plurality of multi-joint support members.
This structure further increases the rigidity of the cable.
The present invention stabilizes the path of the cable when relatively moving the first end and the second end while forming the curved portion at its intermediate portion.
One embodiment of a cable will now be described with reference to the drawings.
As shown in
The multi-joint support member 13 is covered by a flexible cover member 15, which is elongated and tubular, and arranged in the central portion of the sheath member 14. The multi-joint support member 13 and the cover member 15 are each famed from a synthetic resin. Each of the six coated wires 12 is formed by coating an electric wire 17 with an insulator 18 such as a synthetic resin. The six coated wires 12 are arranged between the multi-joint support member 13 and the sheath member 14 to surround the multi-joint support member 13. A wire wrap 16 is spirally wound around the six coated wires 12 over the entire length of the coated wires 12 from the outside to bundle and cover the six coated wires 12. The sheath member 14 is formed from an insulative material such as rubber or synthetic resin.
Referring to
More specifically, the first end of the cable 11 serves as a fixed end fixed by a first fixing member 23 to a predetermined position on a coupling surface 22 that is substantially parallel to the movement path of the facility 20 along which the movable body 21 reciprocates. In this case, the multi-joint support member 13 is omitted from the portion of the cable 11 that is closer to the power supply 20a than the first fixing member 23. The second end of the cable 11 serves as a movable end fixed by a second fixing member 24 to a surface of the movable body 21. In this case, the multi-joint support member 13 is omitted from the portion of the cable 11 that is closer to the electric device 21a than the second fixing member 24.
Between the first fixing member 23 and the second fixing member 24, the cable 11 extends from the fixed end (first end) in a direction opposite to the direction extending toward the movable end (second end) with respect to a movement direction of the movable body 21. Further, the cable 11 forms a semi-arcuate curved portion 11a that reverses the direction in which the cable 11 extends. The cable 11 extends substantially straight in midair from the curved portion 11a to the movable end in the movement direction of the movable body 21. Thus, the curved portion 11a of the cable 11 reciprocates when following reciprocation of the movable body 21.
As shown in
More specifically, the multi-joint support member 13 can be bent until becoming equal to the predetermined radius of curvature R (refer to
The portion of the cable 11 extending in midair substantially in the horizontal direction between the curved portion 11a and the movable end receives the force acting in a drooping direction and generated by the weight of the cable 11. This portion of the cable 11 is configured not to bend from the straight state in the direction opposite to the direction in which the multi-joint support member 13 is bendable. This restricts bending of the cable 11 in the drooping direction.
The structures of the link members 25 that form the multi-joint support member 13 will now be described.
As shown in
The recess 28 of the base 26 is defined by two side walls 281 and a bottom wall 282. The two side walls 281 include two holes 28a that extend through the side walls 281. The recess 28 includes a plate-like first restriction portion 29 arranged to connect the two side walls 281 and the bottom wall 282. As shown in
Distal end surfaces of the two side walls 281 form abutment surfaces 31. The two second restriction portions 30 of the adjacent link member 25 can abut against the abutment surfaces 31. The two pins 27a of one of two adjacent link members 25 are inserted into the two holes 28a of the other one of the two adjacent link members 25 so that the two adjacent link members 25 are pivotal about the two pins 27a.
As shown in
As shown in
The operation of the cable 11 will now be described.
As shown in
Since bending (turning) of the multi-joint support member 13 in the first direction is limited at the predetermined radius of curvature R, the radius of curvature of the curved portion 11a of the cable 11 is maintained at a radius that is greater than or equal to the predetermined radius of curvature R. Further, the weight of the cable 11 causes force in the drooping direction to act on a portion of the cable 11 between the curved portion 11a and the second fixing member 24. The drooping direction is the direction in which bending of the multi-joint support member 13 from the straight state is restricted. This reduces the drooping amount of the cable 11.
Thus, the path of the reciprocation of the cable 11 following the reciprocation of the movable body 21 is stabilized. That is, the movement path is substantially constant when the multi-joint support member 13 of the cable 11 reciprocates while repeatedly bending (turning) between the straight arrangement and the bent arrangement following reciprocation of the movable body 21. This limits bending of the cable 11 in an unintended direction and thus reduces the load applied to the cable 11. As a result, the life of the cable 11 can be prolonged.
The above embodiment has the advantages described below.
(1) The cable 11 is formed by covering one multi-joint support member 13 and six coated wires 12 with the sheath member 14. Further, the multi-joint support member 13 can be bent only to the predetermined radius of curvature R in the first direction. This stabilizes the path of the cable 11 when relatively moving the first end of the cable 11, that is, the fixed end fixed to the facility 20, and the second end, that is, the movable end fixed to the movable body 21, in the horizontal direction while forming the curved portion 11a at an intermediate portion of the cable 11.
(2) In the cable 11, the multi-joint support member 13 is covered by the flexible cover member 15. Thus, if the multi-joint support member 13 is repeatedly bent between the straight arrangement and the bent arrangement when the cable 11 reciprocates following the reciprocation of the movable body 21, the cover member 15 avoids direct contact of the multi-joint support member 13 with the coated wires 12. Accordingly, the cover member 15 protects each coated wire 12 from the multi-joint support member 13.
(3) In the cable 11, the multi-joint support member 13 is arranged in the central portion of the sheath member 14, and the six coated wires 12 are arranged between the multi-joint support member 13 and the sheath member 14 to surround the multi-joint support member 13. That is, the multi-joint support member 13 is arranged in the central portion of the sheath member 14 where stress received by the cable 11 during use of the cable 11 is largest. This limits stress received by each coated wire 12 when the cable 11 is used. In addition, the space in the central portion of the sheath member 14 surrounded by the six coated wires 12 is filled with the multi-joint support member 13. This allows the multi-joint support member 13 to function as a filler of the cable 11. Accordingly, the multi-joint support member 13 that functions as the filler increases the tensile strength of the cable 11.
(4) In the cable 11, the multi-joint support member 13 is covered by the sheath member 14. This limits dispersion of abrasion dust, which is produced when the multi-joint support member 13 is repeatedly bent (turned) between the straight arrangement and the bent arrangement, to the outside of the sheath member 14.
(5) The cable 11 includes the multi-joint support member 13 inside the sheath member 14. This increases rigidity as compared to a conventional cable that does not include the multi-joint support member 13.
(6) The cable 11 includes the multi-joint support member 13 inside the sheath member 14. This occupies less space than when the multi-joint support member 13 is arranged on a circumferential surface of the sheath member 14.
(7) The cable 11 includes the multi-joint support member 13 inside the sheath member 14. This reduces noise of the multi-joint support member 13 generated during the use of the cable 11 as compared to when the multi-joint support member 13 is arranged on the circumferential surface of the sheath member 14.
(8) The multi-joint support member 13 is formed from a synthetic resin. This reduces the weight of the multi-joint support member 13 as compared to when the multi-joint support member 13 is famed from metal.
The above embodiment may be modified as described below.
As shown in
In the cable 11, the number of multi-joint support members 13 and the number of coated wires 12 covered by the sheath member 14 may be changed. For example, as shown in
As shown in
In the cable 11, the multi-joint support member 13 does not necessarily have to be arranged in the central portion of the sheath member 14.
In the cable 11, the multi-joint support member 13 may be formed from metal.
Instead of the coated wire 12 for supplying power to the movable body 21, the transmission member may be, for example, an optical fiber cable that transmits a signal to the movable body 21 or a hose that supplies the movable body 21 with gas (for example, air) or liquid (for example, water or oil).
11: Cable
12: Coated wire serving as transmission member
13: Multi-joint support member
14: Sheath member
15: Cover member
25: Link member
R: Predetermined radius of curvature
Number | Date | Country | Kind |
---|---|---|---|
2015-116556 | Jun 2015 | JP | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2016/065852 | 5/30/2016 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2016/199601 | 12/15/2016 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
4445593 | Coleman | May 1984 | A |
5122622 | Reuss | Jun 1992 | A |
8872033 | Oka | Oct 2014 | B2 |
9040826 | Oka | May 2015 | B2 |
20110240805 | Komiya | Oct 2011 | A1 |
20120187271 | Komiya | Jul 2012 | A1 |
Number | Date | Country |
---|---|---|
102235550 | Nov 2011 | CN |
203520973 | Apr 2014 | CN |
2004-350405 | Dec 2004 | JP |
2011-214704 | Oct 2011 | JP |
2012-146542 | Aug 2012 | JP |
2012-149752 | Aug 2012 | JP |
M376878 | Mar 2010 | TW |
201231841 | Aug 2012 | TW |
Entry |
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International Preliminary Report on Patentability (Form PCT/IB/373) issued in counterpart International Application No. PCT/JP2016/065852 dated Dec. 12, 2017, with Form PCT/ISA/237 (5 pages). |
International Search Report dated Jun. 21, 2016, issued in counterpart International Application No. PCT/JP2016/065852 (1 page). |
Office Action dated Sep. 30, 2017, issued in counterpart Taiwanese application No. 105117518 (5 pages including appendix). |
Office Action dated Nov. 15, 2018, issued in counterpart Chinese Application No. 201680031316.4, with English machine translation. (12 pages). |
Office Action dated Nov. 20, 2018, issued in counterpart Korean Application No. 10-2017-7036331, with English translation. (9 pages). |
Number | Date | Country | |
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20180114611 A1 | Apr 2018 | US |