Tension buffer system for multi-wire pay-off system
10647539 ยท 2020-05-12
Assignee
Inventors
Cpc classification
B65H59/36
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
This invention relates to a tension buffer system for multi-wirepay-off system. The tension buffer system comprises guiding pulleys (4, 4a, 4b) adapted to guide wires (6, 6a, 6b) being paid off, and reversing pulleys (8). Each reversing pulley (8) is adapted to guide a wire (6, 6a, 6b) from the guiding pulley (4, 4a, 4b) and back to the guiding pulley (4, 4a, 4b), two reversing pulleys (8) are rotatably mounted on a first support (10), the first support (10) is pivoted around first support axis (12) lying between the two reversing pulleys (8) so that pivoting brings one of the two reversing pulleys (8) closer to the guiding pulley (4, 4a, 4b) while the other of the two reversing pulleys (8) more remote from said guiding pulley (4, 4a, 4b). This invention provides a mechanical device to balance the tension difference between multiple wires in the pay-off system to produce a steel cord with constant tension and satisfactory quality.
Claims
1. A tension buffer system (2, 3, 5, 7) for a multi-wire pay-off system, said system comprising guiding pulleys (4, 4a, 4b) adapted to guide wires (6, 6a, 6b) being paid off, said system further comprising reversing pulleys (8), each reversing pulley (8) being adapted to guide a wire (6, 6a, 6b) from the guiding pulley (4, 4a, 4b) and back to the guiding pulley (4, 4a, 4b), two of said reversing pulleys (8) being rotatably mounted on a first support (10), said first support (10) being pivoted around first support axis (12) lying between said two reversing pulleys (8) so that pivoting brings one of said two reversing pulleys (8) closer to the guiding pulley (4, 4a, 4b) while the other of said two reversing pulleys (8) more remote from said guiding pulley (4, 4a, 4b).
2. A tension buffer system as claimed in claim 1, said system further comprising a second support and another reversing pulley, said first support and said another reversing pulley being rotatably mounted on said second support, said second support being pivoted around second support axis lying between said first support and said another reversing pulley so that pivoting brings either one of said reversing pulleys on said first support or said another reversing pulley closer to the guiding pulley while the other reversing pulleys more remote from said guiding pulley.
3. A tension buffer system as claimed in claim 2, an angle B between the line connecting the centre of first support axis and the centre of second support axis and the line connecting the centre of said another reversing pulley and the centre of said second support axis facing the guiding pulley is less than 180 degree.
4. A tension buffer system as claimed in claim 2, said guiding pulleys are concentric.
5. A tension buffer system as claimed in claim 2, an angle A between the two lines connecting the centre of reversing pulley on the first support and the centre of first support axis facing the guiding pulley is less than 180 degree.
6. A tension buffer system as claimed in claim 1, said system further comprising a second support and another first support mounted with two reversing pulleys, said two first supports being rotatably mounted on said second support, said second support being pivoted around second support axis lying between said two first supports so that pivoting brings one of said two first supports closer to the guiding pulley while the other of said two first supports more remote from said guiding pulley.
7. A tension buffer system as claimed in claim 6, an angle C between the two lines connecting the centre of first support axis and the centre of second support axis facing the guiding pulley is less than 180 degree.
8. A tension buffer system as claimed in claim 6, said guiding pulleys are concentric.
9. A tension buffer system as claimed in claim 6, an angle A between the two lines connecting the centre of reversing pulley on the first support and the centre of first support axis facing the guiding pulley is less than 180 degree.
10. A tension buffer system as claimed in claim 1, said guiding pulleys are concentric.
11. A tension buffer system as claimed in claim 1, an angle A between the two lines connecting the centre of reversing pulley on the first support and the centre of first support axis facing the guiding pulley is less than 180 degree.
Description
BRIEF DESCRIPTION OF FIGURES IN THE DRAWINGS
(1) The invention will now be described into more detail with reference to the accompanying drawings.
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MODE(S) FOR CARRYING OUT THE INVENTION
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(8) Since the tension buffer system 2 comprises two pairs of guiding pulley 4 and reversing pulley 8, there are two wires 6 being paid-off in the system. In operation, each wire 6 exerts a force F on the reversing pulley 8, and the force F exerts a torque to the first support axis 12. If the torques exerted by the two wires 6 are equal, the tension buffer system stays stable. If the tensions of the two wires 6 are different, the higher the tension the higher the force F, the torque difference will drive the pivoting of the first support 10, which brings the reversing pulley 8 with higher tension closer to the guiding pulley 4 while the reversing pulley 8 with lower tension more remote from the guiding pulley 4. With this pivoting, higher tension is reduced because the reversing pulley 8 goes closer to the guiding pulley 4, while the lower tension is increased because the reversing pulley 8 goes more remote to the guiding pulley 4. With above mechanism, the tension difference between wires 6 is balanced by the pivoting of the first support 10. According to physics principle, torque T=distance vector rforce vector F, if the distance vector r is set equal, the torque T will be equal when the force vector F is equal. Therefore, to simplify the tension buffer system, it is better to set the first support 10, the reversing pulleys 8 and guiding pulleys 4 in a symmetric structure against the centre line 18 connecting the centre of first support axis 12 and the center of the guiding pulleys 4. In a symmetric structure, the distance vectors r for the two reversing pulleys 8 are equal, and the equal tension force on the two reversing pulleys 8 will keep the first support 10 in balance.
(9) The angle A between the two lines A1 and A2 connecting the centre of reversing pulleys 8 on the first support 10 and the centre of first support axis 12 facing the guiding pulley 4 is less than 180 degree. This design provides a free swing of the buffer system to balance the tension difference between the two wires 6. The angle A can be set at 180 degree or even more than 180 degree, but stops are needed to limit the swing of the buffer system.
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(11) The angle B between the line B1 connecting the centre of first support axis 12 and the centre of second support axis 16 and the line B2 connecting the centre of another reversing pulley 8 and the centre of the second support axis 16 facing the guiding pulley 4 is less than 180 degree. This design provides a free swing of the buffer system to balance the tension difference between the wires 6. The angle B can be set at 180 degree or even more than 180 degree, but stops are needed to limit the swing of the buffer system.
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(13) The angle C between the two lines C1 and C2 connecting the centre of first support axis 12 and the centre of second support axis 16 facing the guiding pulley 4 is less than 180 degree. This design provides a free swing of the buffer system to balance the tension difference between the wires 6. The angle C can be set at 180 degree or even more than 180 degree, but stops are needed to limit the swing of the buffer system.
(14) For the similar reasoning, further adding a third support with corresponding second support 14 and first support 10, provides a tension buffer system for 5, 6, 7, 8 wires. Similarly, further adding more supports can provide a tension buffer system for more wires.
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