The present invention relates to a tubular belt conveyor into which an endless circulating belt is rolled up for conveying materials.
JP9-169423A discloses that magnetic substances are provided in each side of a trough-shaped running conveyor belt around which a fixed body includes a plurality of magnetic sensors circumferentially so that output differences from the magnetic sensors enable how the belt meanders to be detected.
However, a number of magnetic sensors are required, so that the support structure therefor becomes more complicate to increase cost.
A tubular belt conveyor into which a flat belt is rolled up dents inward by its own weight and stress, but the above publication does not disclose how to detect a depression.
In view of the disadvantages in the prior art, it is an object of the present invention to provide a tubular belt conveyor which enables a twist and/or a depression of a rolled-up conveyor belt to be detected readily and efficiently and improves loop-closing capability of the tubular belt.
Embodiments of the invention will be described with respect to accompanying drawings.
In
A plurality of permanent magnets 6,7 are embedded in the conveyor belt 3 at proper intervals longitudinally of the conveyor belt 3 with opposing different magnetic poles in one side edge 3a and the other side edge 3b when the belt is rolled up in the tubular shape.
In the first embodiment, in
The magnetic poles may be reversed or may be different one by one longitudinally. Either of the permanent magnets 6,7 may be made of steel.
In
In
In the embodiment, the magnetic sensors 8 comprise eight loop coils 8-1 to 8-8. In the outer circumferential area around the tubular belt 3, there are an allowable zone A in which a twisted overlapped portion 3c in which the side edge 3a lies on the side edge 3b can run; and an unallowable zone B. There are three loop coils 8-4,8-5, 8-6 in the allowable zone A, and five loop coils 8-1,8-2, 8-3,8-7, 8-8 in the unallowable zone B.
Each of the loop coils 8-1 to 8-8 or magnetic sensor 8 is connected to detecting means 9 for finding a twist and a depression, and magnetic strength detected by the loop coils 8-1 to 8-8 is shown in a display 10 connected to the detecting means 9.
The detecting means 9 comprises twist detecting means 11 and depression detecting means 12. The twist detecting means 11 compares magnetic strength detected by the magnetic sensors 8 to identify a twist of the conveyor belt 3 depending on the magnetic sensor 8 which detects the peak.
In an untwisted state shown by solid lines in
By detecting with the twist detecting means 11 that the peak P1 is generated in a line detected by the loop coil 8-5, it is found that the overlapped portion 3c of the conveyor belt 3 is positioned in the range facing the loop coil 8-5, which means that the conveyor belt 3 is nearly untwisted.
If the conveyor belt 3 is twisted, for example, as shown by a dotted line, the overlapped portion 3c of the conveyor belt 3 is deviated left by 90 degrees from the solid line, the peak P2 is created in a line detected by the loop coil 8-3 facing the overlapped portion 3c, as shown in the display 10 in
The conveyor belt 3 is twisted, so that the overlapped portion 3c is positioned in front of the loop coils 8-4 or 8-6. So the peak is created in the loop coil 8-4 or 8-6, so that it is found that the conveyor belt 3 is twisted within the permissible limits.
If the twist detecting means 11 detects that the twist of the conveyor belt 3 goes beyond the permissible limits, a warning device 13 connected to the detecting means 9 or an operation stopping device 14 for stopping the whole tubular conveyor will work.
The depression detecting means 12 identifies that the overlapped portion 3c of the conveyor belt 3 moves inward or a depression is created in a circular shape depending on an absolute value of the peak P1 detected by the magnetic sensor 8.
In the embodiment, the absolute value of the peak P1 of magnetic strength detected by the magnetic sensor 8 or an amplitude of the peak P1 in the display 10 in
The depression detecting means 12 detects a depression in the conveyor belt 3 to allow the warning device 13 and the operation stopping device 14 to be actuated to stop the whole tubular conveyor in such a manner that a twist of the conveyor belt 3 is detected by the twist detecting means 11.
According the first embodiment of the present invention, by the permanent magnets 6,7 at the side edges 3a,3b of the conveyor belt 3, a twist of the tubular conveyor belt 3 can be detected readily and efficiently. Only the permanent magnets 6,7 may be used for detection. Without a special sensor, it can be found that the overlapped portion 3c of the tubular conveyor belt 3 deviates inward which means a depression in the conveyor belt 3.
Furthermore, in the first embodiment, when the conveyor belt 3 is in a tubular shape, the permanent magnets 6,7 at the side edges 3a,3b of the conveyor belt 3 are attracted to each other to prevent the side edges 3a,3b of the conveyor belt 3 from moving away from each other, so that the conveyed materials 5 is prevented from dispersing.
The outer circumferential area of the conveyor belt 3 is divided into the allowable zone A and unallowable zone B in which the magnetic sensors 8 are provided, so that it can easily be detected that a twist of the conveyor belt 3 exceeds the permissible limits. Thus, the warning device 13 and stopping device 14 can prevent malfunction.
In this embodiment, intermediate zones C,C are provided between an allowable zone A and an unallowable zone B. Magnetic sensors 8 such as loop coils 8-1,8-2, 8-3,8-4 are provided in order of the unallowable zone B, intermediate zone C, allowable zone A and intermediate zone C. If the loop coil 8-2 or 8-4 of the intermediate zones C detects the peak of magnetic strength, twist detecting means 11 will identify a twist of the conveyor belt 3 under a caution.
In the embodiment, a warning device 13 comprises a blue lamp 13a, a yellow lamp 13b and a red lamp 13c. The blue lamp 13a will turn on if a twist of the conveyor belt 3 is identified to be within an allowable zone, the yellow lamp 13b will turn on and off if a twist of the conveyor belt 3 is identified to be cautious, and the red lamp 13c will turn on and off if a twist of the conveyor belt 3 is identified to be dangerous beyond the permissible limits.
A twist of the conveyor belt 3 can be detected more precisely and in more detail than what comprises only allowable zone and allowable zones.
The outer circumferential area around a tubular conveyor belt 3 is divided into two zones of an allowable zone A and an unallowable zone B, each of which comprises a magnetic sensor 8 such as loop coils 8-1 or 8-2 respectively. Between the zones A and B, one circumferential edge of the magnetic sensors 8 lies on the other circumferential edge to form an overlapped portions 20. If permanent magnets 6,7 faces the overlapped portion 20 of the magnetic sensor 8, the magnetic sensors 8,8 will detect the substantially equal-magnitude peaks P1,P2 as shown in a display 10 of
By the only two magnetic sensors 8, the twist of the conveyor belt 3 can be detected exactly in detail similar to the second embodiment comprising the four magnetic sensors 8.
In the second embodiment, between the adjacent zones A-B, B-C, C-D, D-A, an overlapped portion of the magnetic sensors 8 face the permanent magnets 6,7 of the conveyor belt 3. The adjacent magnetic sensors 8,8 detects substantially the same magnitude peaks to identify that the overlapped portion 3c of the conveyor belt 3 is placed at a boarder of the adjacent zones to enable a twist of the conveyor belt 3 to be detected exactly in more detail.
The foregoing relates to three embodiments of the present invention and is only for illustration only. Various changes and modifications may be made without departing from the scope of claims.
For example, either of the twist detecting means 11 and depression detecting means 12 may be omitted.
The magnetic sensor 8 may be a hall element, a gaussmeter or an MI sensor instead of the loop coil.
The permanent magnet may be a sintered magnet or a magnet sheet.
The sintered magnet is suitable for more precise detection, and a rubber magnet sheet is suitable for adherence and durability.
Number | Date | Country | Kind |
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2005-279287 | Sep 2005 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2006/318907 | 9/25/2006 | WO | 00 | 5/20/2008 |