This invention relates to rope tester device for detecting a damage in wire rope and, more particularly, to a rope tester device suitable to detect a breakage of the rope strand of the rope used in an elevator hoist.
The conventional rope tester device detects a damage of a wire rope by urging the rope tester against a running wire rope to magnetize it and by measuring a leaking magnetic flux from the damaged portion of the wire rope.
The support device for supporting the rope tester at a test position close to the wire rope includes an elastic member between the rope tester and a support arm fixed to the machine bed for elastically movably supporting the rope tester in the direction perpendicular to the running direction of the wire rope (see patent document 1, for example).
In such a rope tester, since the rope tester is elastically supported, the rope tester can move to follow the vibrating rope, and the relationship between the rope and the rope tester is maintained constant so that the generation of noise can be decreased. Also, since this rope tester is elastically urged by the elastic member against the wire rope, a function of suppressing the vibration of the wire rope is also provided.
[Patent Document 1] Japanese Patent Laid-Open No. H09-290973
However, in this rope tester device, the rope tester is urged by the elastic member against the rope for decreasing the rope vibration, the decrease of the vibration is determined by the elasticity (hard or soft) of the elastic member and it is difficult to maintain a balance between the magnetic attractive force of the rope tester acting on the rope and the support force for supporting the elastic member and to cope with the variation in amplitude of the vibration due to the change in the rope speed.
Accordingly, the object of the present invention is to provide a rope tester device in which it is ensured at a higher level that the vibration in the direction perpendicular to the running direction of the wire rope that greatly varies depending upon the rope speed can be reduced.
The rope tester device of the present invention comprises a rope tester for detecting a damage of a wire rope by magnetizing a running wire rope and by measuring a leaking magnetic flux from the damaged portion of the rope, and a support device for supporting the rope tester at a test position close to the wire rope, the support device comprising a mounting shaft disposed on said test device and extending perpendicular to the running direction of the wire rope, and an engagement piece having one end connected to said rope tester and the other end engaging to said mounting shaft for making said rope tester movable in perpendicular direction relative to the running direction of said wire rope.
With this structure, the rope vibration is suppressed by the magnetic attractive force of the rope tester, enabling the rope tester to easily follow the vibrating wire rope, resulting in a reduction of the vibration noise.
The best mode for carrying out the present invention will now be described.
In
The rope tester device 7 comprises a rope tester 8 for detecting a damage of the wire ropes 6 by magnetizing the running wire ropes 6 and by measuring a leaking magnetic flux from a damaged portion of the ropes, and a support device 9 for supporting the rope tester 8 at a test position close to the wire ropes 6.
The rope tester 8 itself may be a known leakage magnetic flux type and, as shown in
The support device 9 of the rope tester device 7 is, as shown in
The mounting shaft 14 is, in the illustrated example, a cylindrical shaft member supported by two support pillars fixed on the machine bed 2, the mounting shaft 14 being selectively inserted into a plurality of mounting holes 16 formed in the support pillars 15 so that its height position can be changed according to necessity. The height or the length of the support pillars 15 themselves may be made adjustable.
The support device 9 of the rope tester device 7 also comprises an engagement piece 17 having one end connected to the rope tester 8 and the other end engaging with the mounting shaft 14 for making the rope tester 8 movable in perpendicular direction relative to the running direction (the arrow A) of the wire ropes 6.
The engagement piece 17 is a hook made for example by bending a sheet metal into substantially J-shape for receiving and supporting the mounting shaft 14 in the hook portion. The longer leg portion of the engagement piece 17 has formed therein an elongated hole 18 (see
When a test of the wire ropes 6 by means of the rope tester device 7 of the present invention is to be conducted, the engagement piece 17 is moved to project from the bracket 20 by loosening the stop screw 19 to define an open portion between the tip portion of the shorter leg portion of the J of the hook-shaped engagement piece 17, thereby enabling the attachment and the detachment of the mounting shaft 14 through the opening portion. This position is an open position releasing the mounting shaft 14 from the engagement piece 17 of the support device 9.
The mounting shaft 14 of the rope tester device 7 is positioned at a suitable position on the support pillars 15 (see
Then, the engagement piece 17 is slid downward to move into the closed position in which the opening portion of the engagement piece 17 is closed and the hold-down screw 19 is tightened to secure the engagement piece 17 to the bracket 20. This state is shown in
Thus, when the rope tester 8 is operated with the rope tester device 7 set at the wire ropes 6 to be tested and the wire ropes 6 run in the direction of the arrow A by operating the elevator apparatus in the inspection and maintenance mode, the rope tester 8 slides along the wire ropes 6 while being attracted by the magnetic attractive force and the detection of the damages in the ropes can be achieved by measuring the leakage magnetic flux.
According to this arrangement, the rope tester 8 in its entirety follows the vibration in the vertical direction of the rope which greatly varies in the amplitude in accordance with the change in the speed of the wire ropes 6, so that the effect of the noise of the rope tester 8 due to the vibration can be reduced. Also, since the movement of the rope tester 8 is limited in the longitudinal direction (the running direction) of the wire ropes 6, the rope tester 8 does not move in the longitudinal direction of the rope by the friction and/or the magnetic attractive force between the wire ropes 6 and the rope tester 8.
The mounting shaft 14 is disposed in front of the rope tester 8 i.e., it is arranged so that the rope tester 8 is positioned at the downstream of the mounting shaft 14. This structure allows, assuming that the running direction of the wire ropes 6 is as shown by the arrow A in
Also, the engagement piece 17 can be attached to or detached from the mounting shaft 14 by moving as shown in
In the rope tester device shown in
In this structure, a space perpendicular to the running direction A of the wire ropes 6 can be made small. In stead of the screw 33, a clip may be used to detachably fasten the engagement piece 30 and the bracket 20, or a clip-shaped bent portion may be provided at the tip of the engagement piece 30 so that the attachment is achieved by the elasticity of the engagement piece 30.
In
The embodiments heretofore described as the best mode for carrying out the invention are only for showing examples of the application of the present invention and not limiting the present invention. Also, the features of the various embodiments may be suitably combined and carried out.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2007/071993 | 11/13/2007 | WO | 00 | 5/12/2010 |