The present invention relates to a fall prevention brake buffering system for a high-speed mining elevator, in particular to a fall prevention brake buffering system suitable for a high-speed mining elevator with an elevator car guided by a flexible guide rail, which is also applicable to flexibly guided low-speed elevators and lifting systems.
The elevator car protection system widely applied presently is mainly used on elevators that employ a rigid guide rail, because the safety gear of such a safety protection system against over-speed/under-speed of the elevator car of a conventional elevator can take braking effect only on a rigid guide rail; however, when such an elevator car protection system is used on an elevator in an underground works where the geological conditions are complex and the hoistway may deform, the safety gear for fall prevention braking and protection for the elevator car may act unexpectedly; consequently, the elevator car may be stuck in the shaft, which brings a severe potential safety hazard to operation of the elevator. For elevators guided by a non-rigid guide rail, to ensure safe operation of the elevator, patent No. ZL201020286672.0 discloses an elevator car over-speed/under-speed protection system, and patent No. ZL 201120122622.3 discloses a safety gear for braking rope, which can avoid the risk of passenger injury and equipment damage in case the elevator car operates in an over-speed or under-speed state. However, some problems may occur in the fall prevention braking process owing to the high kinetic energy of a high speed elevator, for example, the braking deceleration of the elevator car is too high. Existing over-speed/under-speed protection systems for elevator cars guided by a non-rigid guide rail are only applicable in the field of low-speed elevators. There is no fall prevention brake buffering system for high-speed mining elevators yet up to now. Therefore, it is an urgent task to develop a fall prevention brake buffering system for high-speed mining elevators.
To overcome the drawbacks in the prior art, the present invention provides a fall prevention brake buffering system for high speed elevator, which features with compact structure, excellent buffering effect, reliable braking, and high safety.
The fall prevention brake buffering system for high-speed mining elevator according to the present invention comprises a braking rope fixed to two sides of an elevator car, one end of the braking rope is fixed to the top of a mine shaft, and the other end of the braking rope is fixed to the bottom of the mine shaft, a linkage mechanism is arranged on the bottom of the elevator car, a buffer is arranged on the top of the braking rope, a tension connector is arranged on the bottom of the braking rope, a braking rope safety gear fixed to the braking rope and connected with the linkage mechanism is arranged on the bottom of the elevator car; the buffer comprises an inverted braking rope gradual safety gear, a buffering rope connected with the braking rope is arranged in the braking rope gradual safety gear, and a buffering rope clip is arranged on the buffering rope.
The braking rope gradual safety gear comprises a gear body, a rope groove profile wedge block is arranged in the gear body, the rope groove of the rope groove profile wedge block is arranged with beryllium copper and has a bell mouth on its upper part, a lifting screw rod is arranged on the top of the rope groove profile wedge block.
The braking rope safety gear is an instantaneous braking rope safety gear, the wedge block in the instantaneous braking rope safety gear has a trumpet-shaped rope groove, and the rope groove is arranged with beryllium copper.
The tension connector comprises a wedge-shaped rope clip fastened and fixed on the braking rope by an angle steel part, a wedge block is arranged in the wedge-shaped rope clip, a fixed beam fixed by a connecting bolt is arranged below the angle steel part, and a rope clip designed to fix the terminal of the braking rope is arranged on the fixed beam.
With the technical solution described above, the fall prevention brake buffering system according to the present invention is easy to install, the buffering force of the braking rope is constant and adjustable, the fall prevention braking is reliable, and the safety of high-speed operation of an elevator guided by a non-rigid guide rail can be greatly improved. The present invention can be used as a fall prevention braking and protection system for elevator car to provide a buffering effect on the braking ropes, can achieve reliable braking against falling of the elevator, and thereby improve safety of the high-speed operation of the mining elevator. The major advantages include:
(1) The buffer on the top of the mining elevator braking rope provides a buffering effect during fall prevention braking of the elevator car; thus, the buffering of the elevator car relies on the buffer at the top of the mine shaft rather than the sliding of the elevator car on the guide rail;
(2) A gradual safety gear with a rope groove is used as the buffer for fall prevention braking of the elevator car; thus, the gradual safety gear can be utilized effectively to overcome the difficulty in buffering force setting in the fall prevention braking process of the elevator car;
(3) A tension connector that is set with maximum tension force and simple in structure is used as a tensioner on the bottom of the braking rope; thus, the tension force of the braking rope can be adjusted conveniently, and the drawback that the elevator car grabbed on the braking rope may get loose easily is overcome.
Hereunder an embodiment of the present invention will be further detailed with reference to the accompanying drawings.
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When the elevator car 5 operates normally, the initial distance between the wedge blocks 1-1 is x1, the distance from the top of the wedge block 1-1 to the bottom surface of the top plate of the gear body 1-4 is x2, and the initial opening distance of the U-shaped spring 1-2 is x3. In case the elevator car 5 operates in an over-speed state, the speed limiter will stop immediately once it detects the running speed of the elevator car 5 exceeds the limit, and the linkage mechanism 11 will drive the instantaneous braking rope safety gear 12 to act, so that the elevator car 5 would be grabbed on the braking rope 2.
As the elevator car moves downwards further, x1 will change to x4 and further decrease, i.e., the wedge block 1-1 and the braking rope 2 will be pressed towards each other, and interaction force will be created between the braking rope 2 and the wedge block 1-1; the U-shaped spring 1-2 suffers the reaction force of the braking rope 2 against the wedge block 1-1 transferred from the wedge block 1-1, and its opening distance increases from the initial value x3 to x6, the distance x2 from the top of the wedge block 1-1 to the bottom surface of the top plate of the gear body 1-4 changes to x5 and decreases gradually, till the wedge block 1-1 is finally pulled down to the lower end and comes into contact with the bottom surface of the gear body 1-4 (i.e., x5=0), where the opening distance x6 of the U-shaped spring 1-2 doesn't increase anymore and the pressing force of the U-shaped spring 1-2 transferred to the wedge block 1-1 on the braking rope 2 keeps constant. In other words, the braking force applied by the braking rope gradual safety gear 8 on the braking rope 2 is in a steady state, and the elevator car 5 is buffered under the braking force in the fall prevention braking process; since the buffering rope 9 has to overcome the friction force continuously when it is pulled out from the braking rope gradual safety gear 8, the kinetic energy of the elevator car 5 of the mining elevator is depleted; when the work done by the buffer 1 is equal to the kinetic energy of the mining elevator at the moment the fall prevention braking happens, the elevator car 5 of the mining elevator will enter into a still state finally; in that way, the elevator car 5 is stopped, and the purpose of effectively protecting the safety of persons, goods, and mining elevator system is attained.
Among the drawings:
Number | Date | Country | Kind |
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2012 1 0083283 | Mar 2012 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2013/073108 | 3/25/2013 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2013/143425 | 10/3/2013 | WO | A |
Number | Name | Date | Kind |
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417495 | Moore | Dec 1889 | A |
621475 | McCormick | Mar 1899 | A |
2518699 | Lucas | Aug 1950 | A |
2518700 | Lucas | Aug 1950 | A |
3119464 | Hunter | Jan 1964 | A |
3441107 | Albert | Apr 1969 | A |
5353893 | Sun | Oct 1994 | A |
5366045 | Liston | Nov 1994 | A |
5964320 | Kato | Oct 1999 | A |
6823969 | Simmonds | Nov 2004 | B2 |
Number | Date | Country |
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200985231 | Dec 2007 | CN |
101955102 | Jan 2011 | CN |
201737551 | Feb 2011 | CN |
102229395 | Nov 2011 | CN |
202038786 | Nov 2011 | CN |
102275799 | Dec 2011 | CN |
102602772 | Jul 2012 | CN |
202542624 | Nov 2012 | CN |
653918 | May 1951 | GB |
51-108324 | Aug 1976 | JP |
2005239329 | Sep 2005 | JP |
Entry |
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International Search Report re PCT/CN2013/073108, dated Jul. 4, 2013, 8 pgs. |
Number | Date | Country | |
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20150122592 A1 | May 2015 | US |