Load-adaptive hoisting mechanism
10077175 ยท 2018-09-18
Assignee
Inventors
- Zhiguo Lu (Shenyang, CN)
- Ji Zou (Shenyang, CN)
- Tian Tian (Shenyang, CN)
- Bairen Feng (Shenyang, CN)
- Zuotao Liu (Shenyang, CN)
Cpc classification
B66D1/26
PERFORMING OPERATIONS; TRANSPORTING
International classification
B66D1/26
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Provided is a load-adaptive hoisting mechanism, including a bracket and roofs, wherein the roofs are arranged above the bracket, upright columns are arranged between the bracket and the roofs, through holes corresponding to the upright columns are formed in the roofs, the upright columns are arranged in the through holes, and the lower ends of the upright columns are connected with the bracket; springs sleeve the upright columns between the bracket and the roofs; roof pulleys arranged on the side surfaces of the roofs, bracket pulleys arranged on the side surfaces of the bracket, and the side surfaces of the roofs corresponding to the side surfaces of the bracket; a truncated conical roller arranged in the center above the bracket.
Claims
1. A load-adaptive hoisting mechanism, comprising: a bracket and roofs, wherein the roofs are arranged above the bracket, upright columns are arranged between the bracket and the roofs, through holes corresponding to the upright columns are formed in the roofs, the upright columns are arranged in the through holes, and the lower ends of the upright columns are connected to the bracket; first springs sleeving the upright columns between the bracket and the roofs; roof pulleys arranged on the side surfaces of the roofs, bracket pulleys arranged on the side surfaces of the bracket, wherein the side surfaces of the roofs correspond to the side surfaces of the bracket; a roller arranged in the center above the bracket and being a truncated conical type, wherein the lower end of the roller is the end with smaller diameter, and is connected to a power input shaft of the hoisting mechanism; the upper part of the roller is provided with tensioning cables, one ends of the tensioning cables are fixed to the upper part of the roller, and the other ends are connected to loads sequentially through the roof pulleys and the bracket pulleys.
2. The load-adaptive hoisting mechanism of claim 1, wherein four columns are symmetrically arranged on two sides of the roller, and the corresponding bracket and the roofs both adopt symmetrical structures.
3. The load-adaptive hoisting mechanism of claim 2, wherein two roof pulleys and two bracket pulleys are arranged.
4. The load-adaptive hoisting mechanism of claim 1, wherein two upright columns are arranged on the same side of the bracket, and the corresponding roof adopts the unilateral structure.
5. The load-adaptive hoisting mechanism of claim 4, wherein one roof pulley and one bracket pulley are arranged.
6. The load-adaptive hoisting mechanism of claim 4, wherein a fixing frame is arranged above the roofs, and the upper ends of the upright columns penetrate through the through holes in the roofs and are connected with the fixing frame; and the center of the larger-diameter end of the roller is provided with a roller shaft which is arranged on the fixing frame via a bearing.
7. The load-adaptive hoisting mechanism of claim 1, wherein the load-adaptive hoisting mechanism adopts a motor as a power source.
8. A load-adaptive hoisting mechanism, used for transmitting torque power, comprising: a bracket and roofs, wherein the roofs are arranged above the bracket, upright columns are arranged between the bracket and the roofs, through holes corresponding to the upright columns are formed in the roofs, the upright columns are arranged in the through holes, and the lower ends of the upright columns are connected with the bracket; first springs sleeving the upright columns between the bracket and the roofs; two roof pulleys arranged on the roofs; a roller is arranged in the center above the bracket, being a truncated conical type, and fixedly mounted on the power input shaft in a sleeving manner, wherein the power input shaft is arranged on the bracket via a bearing; transmission wheels arranged at the lower part of one side on the bracket corresponding to the roof pulleys; tensioning cables arranged between the transmission wheels and the roller, wherein the tensioning cables in the form of a closed ring wind around the two roof pulleys; a cable tensioning mechanism arranged on the tensioning cables between the cable sending side of the roller and the cable winding sides of the transmission wheels when the mechanism works.
9. The load-adaptive hoisting mechanism of claim 8, wherein the cable tensioning mechanism comprises a cable binding reel and a cable pushing reel, wherein the cable binding reel is fixedly arranged on the bracket, and the cable pushing reel is provided with a second spring; the cable binding reel and the cable pushing reel are respectively arranged on two sides of the tensioning cables; and the second spring is a thrust spring and is arranged on the opposite sides against the corresponding tensioning cable.
10. The load-adaptive hoisting mechanism of claim 9, wherein four upright columns are symmetrically arranged on two sides of the roller; two roofs, two roof pulleys, two tensioning cables, two transmission wheels and two cable tensioning mechanisms are respectively and symmetrically arranged on two sides of the bracket; the inner side of each of the transmission wheels is coaxially provided with a small bevel gear; the lower part of the bracket is provided with a power output shaft fixedly provided with a large bevel gear in a sleeving manner, and the large bevel gear is meshed with the two small bevel gears respectively.
11. The load-adaptive hoisting mechanism of claim 8, wherein four upright columns are symmetrically arranged on two sides of the roller; two roofs, two roof pulleys, two tensioning cables, two transmission wheels and two cable tensioning mechanisms are respectively and symmetrically arranged on two sides of the bracket; the inner side of each of the transmission wheels is coaxially provided with a small bevel gear; the lower part of the bracket is provided with a power output shaft fixedly provided with a large bevel gear in a sleeving manner, and the large bevel gear is meshed with the two small bevel gears respectively.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(8) The load-adaptive hoisting mechanism disclosed by the present invention is further described in details below in conjunction with the accompanying drawings and embodiments:
(9) First Embodiment: as shown in
(10) Before the operation of the load-adaptive hoisting mechanism disclosed by the first embodiment, the hoisting mechanism disclosed by the present invention needs to be inverted first, and the bracket 2 is arranged on a firm load-bearing part. When the motor 1 is started, the motor enables the roller 6 to rotate and wind the tensioning cables 10, and the tensioning cables 10 pull upward the load-bearing pulley 14 through the roof pulleys 8 and the bracket pulleys 4 and further pull the weight 15. In the process, the loads enable the distance between the roof pulleys 8 and the bracket pulleys 4 to be compressed to a certain extent through the tensioning cables 10; the heavier the weight of the loads, the greater the compression is, and the smaller the diameter of the roller 6 aligned with the roof pulleys 8 is; since the output torque of the motor 1 is constant, the output force of the hoisting mechanism is greater, the hoisting speed is slower, and the working condition becomes more stable. Conversely, when the weight of the loads is lighter, the distance between the roof pulleys 8 and the bracket pulleys 4 is compressed less, the diameter of the roller 6 aligned with the roof pulleys 8 is larger, the output force of the hoisting mechanism is smaller, but the hoisting speed is higher. Mechanical intelligence of the hoisting mechanism disclosed by the first embodiment can make the hoisting mechanism to be applied more flexibly for a variety of machinery.
(11) Second Embodiment: as shown in
(12) Before the operation of the load-adaptive hoisting mechanism disclosed by the second embodiment, the hoisting mechanism is horizontally placed first, and the bracket 2 and fixing frame 16 are fixed to the firm load-bearing part. When the motor 1 is started, the motor enables the roller 6 to rotate and wind the tensioning cables 10, and the tensioning cables 10 pull upward the weight 15 through the roof pulleys 8 and the bracket pulleys 4. In the process, the loads make the distance between the roofs 11 and the bracket 2 to be compressed via the tensioning cables 10; the heavier the weight of the loads, the greater the compression is, and the smaller the diameter of the roller 6 aligned with the roof pulleys 8 is; because the output torque of the motor 1 is constant, the output force of the hoisting mechanism is greater, the hoisting speed is lower, and the working condition becomes more stable. Conversely, when the load weight is light, the distance between the roof pulleys 8 and the bracket pulleys 4 is compressed less, the diameter of the roller 6 aligned with the roof pulleys 8 is larger, the output force of the hoisting mechanism is smaller, but the hoisting speed is higher. The load-adaptive hoisting mechanism disclosed by the second embodiment is mainly applied to, but not limited to, lifting mechanisms; due to the unique mechanical intelligence, the load-adaptive hoisting mechanism can make balance between efficiency and hoisting force.
(13) Third Embodiment: as shown in
(14) Before the operation of the load-adaptive hoisting mechanism disclosed by present invention, the power input shaft 17 needs to be connected to a power source, and the power output shaft 19 needs to be connected to a load mechanism. In the third embodiment, in order to reduce the size, the motor 1 is used as a power source and arranged in the fixing frame 2, and the shaft of the motor 1 is directly connected to the lower end of the power input shaft 17.
(15) After the motor 1 is started, the motor 1 drives the roller 6 to rotate, and the roller 6 drives the two tensioning cables 10 and further drives the two transmission wheels 18 to rotate; the two transmission wheels 18 drive the two small bevel gears 24 and finally drive the large bevel gear 25 to rotate, and also transmit force to the load mechanism through the output shaft 19; when the loads becomes heavier, the tension applied to the tensioning cables 10 will be increased, so that the sliding top frame 11 is subject to tension in the direction toward the transmission wheels 18, the first springs 5 on the upright columns 7 are compressed, and the touching positions of the tensioning cables 10 on the roller 6 move down; because the roller 6 is in a truncated conical shape, the diameter of the lower part of the roller 6 is smaller than that of the upper part, under the condition of constant input power of the motor 1, if the transmission ratio is increased, the rotational speed of the power output shaft 19 becomes smaller, but the output torque becomes larger. When the loads are lighter, the tension applied to the tensioning cables 10 is reduced, the first springs 5 enable the roofs 11 to rise, then the roof pulleys 8 thus rise, and further the touching positions of the tensioning cables 10 on the roller 6 also move up; under the condition of constant input power of the motor 1, if the transmission ratio is decreased, the rotational speed of the power output shaft 19 is increased, and the output torque becomes smaller. During the operation, the adjustment of the transmission ratio is changed solely on the basis of the weight of the loads. The device has mechanical intelligence, and an external control mechanism does not need to be arranged additionally, so that the cost is reduced, and the work efficiency and the work adaptability are improved.