The present invention relates to a wheeled moving body, such as a pushcart, a shelf with casters, and a workbench with casters, and a moving body having track-like rolling means, with provisions made for protection against electrostatic discharge, and also relates to a grounding condition monitoring apparatus for the same.
When transporting electrostatic-sensitive electronic parts, semifinished products, etc. in a factory, some measures must be taken to protect them against electrostatic discharge, because the static electricity generated by the wheels of a transport cart rolling over the floor can destroy the electronic parts and semiconductors.
In the prior art, electrostatic protection measures are taken, as shown in
In either case, one must make sure that the electrostatic protection measures are functioning properly by checking, for example, that the resistance value has not risen to such a level that electrostatic charges cannot be dissipated because of dust or other electrically insulative particles adhering to the surface of the conductive wheel; furthermore, even if the electrostatic protection measures incorporated in the cart are functioning properly, it is desirable to constantly monitor the grounding condition of the cart because the earth ground cannot be established, for example, when the cart is moving over an insulative floor such as asphalt P tiles.
To check the grounding condition of the cart, one end of an ohm meter 18 is connected to the ground via a lead wire 20 and the other end is connected to the conductive mat 14 placed on the cart 10, as shown in
Accordingly, it is an object of the present invention to provide a wheeled moving body incorporating electrostatic protection measures and capable of constantly monitoring its grounding condition, and a grounding condition monitoring apparatus for the same.
According to the present invention, there is provided a wheeled moving body comprising: an electrostatic conductive mat placed on the moving body; first grounding means, whose entirety is attached to the moving body so as to move with the moving body, electrically connected to the electrostatic conductive mat, and adapted to be grounded at a first contact point on a surface over which the wheeled moving body moves; second grounding means, whose entirety is attached to the moving body so as to move with the moving body, electrically insulated from the electrostatic conductive mat, and adapted to be grounded at a second contact point on the surface over which the wheeled moving body moves, the second contact point being spaced apart from the first contact point; and grounding condition detecting means, connected between the electrostatic conductive mat and the second grounding means, for continuously detecting a grounding condition of the electrostatic conductive mat.
According to the present invention, there is also provided a grounding condition monitoring apparatus for a wheeled moving body, comprising: an electrostatic conductive mat placed on the moving body; first grounding means, whose entirety is attached to the moving body so as to be able to move with the moving body, electrically connected to the electrostatic conductive mat, and adapted to be grounded at a first contact point on a surface over which the wheeled moving body moves; second grounding means, whose entirety is attached to the moving body so as to be able to move with the moving body, electrically insulated from the electrostatic conductive mat, and adapted to be grounded at a second contact point on the surface over which the wheeled moving body moves, the second contact point being spaced apart from the first contact point; grounding condition detecting means, connected between the electrostatic conductive mat and the second grounding means, for continuously detecting a grounding condition of the electrostatic conductive mat; and alarm output means for outputting an alarm indicating abnormality in the grounding condition based on a detection result supplied from the grounding condition detecting means.
At least one of the first and second grounding means is, for example, at least one conductive wheel.
Alternatively, one of the first and second grounding means is a conductive grip with which to push and move the moving body.
The grounding condition detecting means includes, for example, an ohm meter or a volt meter for measuring an electrical resistance or a voltage between the conductive mat and the second grounding means.
By providing the second grounding means whose entirety is attached to the moving body and is grounded at the second contact point spaced apart from the second contact point at which the electrostatic conductive mat is grounded, and by connecting the grounding condition detecting means between the electrostatic conductive mat and the second grounding means, it becomes possible to constantly monitor the grounding condition without interfering with the movement of the cart.
One end of the ohm meter (or volt meter) mounted on the cart 10 is connected to the electrostatic conductive mat 14, while the other end is connected to the bearing of another conductive wheel 24 insulated from the body of the cart 10 by an insulating plate 13. In this arrangement, that other end of the ohm meter (volt meter) is grounded at the point at which the wheel 24 contacts the floor 16, and which is spaced apart from the contact point of the wheel 12, and thus a closed circuit is formed as shown in the equivalent circuit of
With the above cart, it is possible to constantly monitor the grounding resistance (leakage resistance) or voltage of the electrostatic conductive mat on the cart and thereby continuously monitor whether the electrostatic protection measures are functioning effectively. As a result, if the grounding condition degrades due to dust or other particles adhering to the wheels, the condition can be detected before it becomes a problem, and thus electrostatic-sensitive parts, circuit, etc. being transported on the cart can be prevented from being damaged by electrostatic discharge.
In the present invention, when the cart provided with the electrostatic protection measures is properly grounded, static electricity does not occur on the transport cart protected by the electrostatic protection measures or, if it does occur, the static electricity is quickly conducted to the antistatic floor through the casters. That is, electrostatic charges occurring on containers containing electrostatic-sensitive electronic parts, semifinished products, etc. placed on the transport cart are conducted to the floor via the mat on the cart and via the conductive casters or track-like rolling means.
An electrostatic conductive mat 9609 manufactured by Sumitomo 3M is used as the electrostatic conductive mat 14. DG525 manufactured by Sanwa Electric Instrument, for example, is used as the ohm meter 18. For the casters having conductive wheels 12 and 24, use is made, for example, of conductive casters HJ-75U-MCDG manufactured by SISIKU. A glass epoxy plate, for example, can be used as the insulating plate 12.
The above cart was tested in a place where Sumitomo 3M's electrostatic conductive mat 9609 was installed as the antistatic floor 16, and it was confirmed that the resistance value can be monitored not only when the cart is stationary but also when it is being moved around.
The method of grounding the one end and/or the other end of the ohm meter 18 is not limited to the method that uses the conductive wheel or the conductive grip as described above, but alternatively the grounding may be accomplished, for example, by using a metal chain or belt-like conductive sheet as previously described.
In
There is a known correlation between the value of the grounding resistance obtained by a technique of grounding at two points using two different mutually insulated wheels, as in the present invention, and the value of the grounding resistance obtained by a standard technique of grounding resistance measurement, and the grounding condition can therefore be detected by the technique of the present invention as will be described below.
In accordance with ANSI/ESD-S7.1, an electrode 54 measuring 63.5 mm in diameter and weighing 2.27 kg is placed on the conductive mat 14 by interposing a conductive rubber 52 between them, and the electrode 54 is connected to one end of the ohm meter 18 whose other end is grounded. A 3M 702 flooring tester is used as the ohm meter 18, and measurements are made by applying a voltage of 500 V.
Table 1 shows the results of the measurements made on the cart with no load and with a load applied by mounting a weight thereon, for the respective cases of
As can be seen from the results shown in Table 1, there is a known correlation between the result of the grounding resistance measurement obtained by the technique of the present invention and the result obtained by the standard technique, and this shows that the grounding condition can be detected by the technique of the present invention.
Number | Date | Country | Kind |
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2006-068589 | Mar 2006 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/US2007/063821 | 3/12/2007 | WO | 00 | 8/29/2008 |