Single-beam suspended integrated electric monorail crane

The single-beam suspended integrated electric monorail crane solves the problem of material detachment in sloping environments through the design of electric hoists and mounting components, achieving stable conveying and rapid unloading, and improving the equipment's heat dissipation efficiency.

CN115947230BActive Publication Date: 2026-05-08HUAINAN UNITED UNIVERSITY
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
HUAINAN UNITED UNIVERSITY
Filing Date
2022-12-05
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

When transporting materials, existing monorail cranes are prone to unhooking materials in environments with steep slopes, leading to abnormal transport and causing trouble for users.

Method used

The single-beam suspended integrated electric monorail crane is adopted. Through the design of electric hoists and mounting components, it realizes the suspension, locking and rapid unloading of materials. Combined with the optimization of motor drive and heat dissipation components, it can adapt to the transportation of materials in complex terrain.

Benefits of technology

It effectively prevents materials from detaching, improves the stability and efficiency of conveying, simplifies the unloading process, and enhances the heat dissipation efficiency and cleanliness of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to the technical field of transportation equipment, and discloses a single-beam suspension type integrated electric monorail crane, which comprises a track, two hanging beams arranged below the track, a driving base and a control device mounted on one of the hanging beams, a power box mounted on the other hanging beam, a heat dissipation assembly arranged on the power box, a connecting beam fixed between the two hanging beams, mounting grooves formed at the two ends of the connecting beam, mounting blocks rotatably connected in the mounting grooves, electric hoists fixed to the bottoms of the mounting blocks, mounting assemblies arranged on the output ends of the electric hoists, annular grooves formed in the inner walls of the mounting grooves, and a plurality of supporting blocks fixed to the mounting blocks and sliding in the annular grooves.The present application can suspend and convey materials, limit the suspended materials, lock the suspended hanging ropes, and quickly unload the conveyed materials, and has high working performance and is convenient to use.
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Description

Technical Field

[0001] This invention relates to the field of transportation equipment technology, and more particularly to a single-beam suspended integrated electric monorail crane. Background Technology

[0002] A monorail crane is a device that uses a specially made I-beam suspended above a tunnel as a track. Various types of lifting vehicles are connected together to form a train, which is then pulled along the track by traction equipment to transport materials. Its traction power can be provided by wire ropes, diesel engines, batteries, or pneumatic devices.

[0003] Existing monorail cranes mostly suspend materials below the crane vehicle via hooks when transporting materials, and the crane vehicle moves to transport the suspended materials. While this method is convenient for transporting materials, it is prone to problems when encountering steep inclines. The materials hanging on the hooks are very easy to fall off, making normal transport impossible and causing great inconvenience to users. To address this, we have proposed a single-beam suspended integrated electric monorail crane. Summary of the Invention

[0004] To address the technical problem of materials easily detaching from the hook during material transport by monorail cranes, this invention provides a single-beam suspended integrated electric monorail crane.

[0005] This invention is achieved using the following technical solution: a single-beam suspended integrated electric monorail crane, comprising a track, two suspended beams disposed below the track, a drive base and control equipment mounted on one of the suspended beams, and a power supply box mounted on the other suspended beam. The power supply box is equipped with a heat dissipation component. A connecting beam is fixed between the two suspended beams, and mounting grooves are provided at both ends of the connecting beam. A mounting block is rotatably connected inside the mounting groove, and an electric hoist is fixed to the bottom of the mounting block. The output end of the electric hoist is equipped with a hanging component. An annular groove is provided on the inner wall of the mounting groove, and multiple support blocks are fixed to the mounting block located inside the mounting groove. The support blocks slide inside the annular groove. Through the coordinated operation of the drive base, control equipment, and power supply box, material conveying can be performed.

[0006] As a further improvement to the above solution, the mounting assembly includes a mounting bracket fixed to the output end of the electric hoist. A loading block is fixed on the mounting bracket. A connecting plate is hinged to the outer side of one end of the loading block. A connecting block is hinged to the outer side of the movable end of the connecting plate. A hook is fixed to the tail end of the connecting block. A transmission plate is hinged to the outer side of the connecting block. A transmission block is hinged to the movable end of the transmission plate. A hydraulic cylinder with its piston end fixed to the transmission block is fixed on the loading block. A first slide groove is formed at one end of the loading block. A first slider is slidably connected inside the first slide groove. The transmission block is fixed on the first slider and slidably engages with the groove opening of the first slide groove. A second slide groove is formed at the other end of the loading block. A second slider is slidably connected inside the second slide groove. Multiple push springs fixed to the second slider are fixed to the inner wall of the end of the second slide groove. A sliding block is fixed on the second slider. Inside the second chute opening, there is a connecting block with a sliding groove at the end away from the second slider. A sliding block is slidably connected inside the sliding groove. A linkage block that slides with the opening of the sliding groove is fixed on the side of the sliding block away from the connecting block. The end of the linkage block away from the sliding block contacts the hook. Through the cooperation of the hanging components, materials can be suspended and conveyed, and the suspended materials can be limited to prevent them from detaching during conveying. The hanging rope can also be locked to prevent it from swinging back and forth on the hook during conveying, which could cause excessive friction and breakage. The conveyed materials can be unloaded quickly, eliminating the need for manual unloading by the user. It is convenient to use and allows for adaptive control of the materials during the conveying process, thus facilitating rapid material conveying in complex terrain.

[0007] As a further improvement to the above solution, a motor is provided at the bottom of the connecting beam, and an output shaft is driven to the output end of the motor. A drive gear is fixedly sleeved on the outer wall of the output shaft, and a driven gear that meshes with the drive gear is fixedly sleeved on the outer side of the mounting block. By running the motor, the output shaft is driven to rotate. At this time, the rotating output shaft can drive the drive gear to rotate, which in turn drives the driven gear to rotate, and thus drives the mounting block to rotate.

[0008] As a further improvement to the above solution, a protective shell is fixed to the outside of the motor and fixed to the connecting beam. The connecting beam has a rotating hole, and the output shaft rotates inside the rotating hole. Through the rotating hole, the output shaft can rotate flexibly.

[0009] As a further improvement to the above solution, the power supply box has a power supply cavity, a liquid storage cavity, and a loading slot. A battery is installed inside the power supply cavity. The heat dissipation assembly includes a push plate that slides inside the liquid storage cavity. The push plate has a through hole, through which a guide rod fixed to the inner wall of the liquid storage cavity slides. A return spring is sleeved on the outside of the guide rod. A rack plate is fixed to the outside of the push plate, with one end of the rack plate extending to the outside of the power supply box. A rotating shaft is rotatably connected inside the loading slot. A linkage gear meshing with the rack plate is fixedly sleeved on the outer wall of the rotating shaft. A second rotating shaft is rotatably connected inside the loading slot above the first rotating shaft. A transmission wheel is fixedly sleeved on the outer walls of both rotating shafts. A transmission belt that drives the transmission wheel is located on the outside of the transmission wheel. A cam rotating inside the loading slot is fixedly sleeved on the outer wall of the second rotating shaft. The power supply box has assembly slots at both ends, and heat dissipation windows are slidably connected inside the assembly slots. The heat dissipation windows near the cam work in conjunction with the cam, and multiple sliding holes are opened in the heat dissipation windows near the cam. Guide posts slide through the sliding holes, one end of the guide post is fixed to the inner wall of the power supply cavity, and the other end of the guide post is fixed to a stop block. The diameter of the stop block is larger than the diameter of the sliding hole. A linkage spring is fixedly sleeved on the outside of the guide post. A linkage plate is embedded in the middle of the heat dissipation window near the cam, and the linkage plate is fixed to the heat dissipation window away from the cam. The heat dissipation windows help to dissipate heat from the battery inside the power supply cavity. The liquid inside the accumulator cavity can absorb the heat emitted by the battery during operation, thereby improving the heat dissipation efficiency of the battery. The operation of the heat dissipation components can clean and unclog the heat dissipation components of the equipment, preventing the heat dissipation components from becoming blocked after long-term heat dissipation work.

[0010] As a further improvement to the above solution, an inlet valve communicating with the liquid storage chamber is installed on the outside of the power supply box. The reset spring is located on the side of the push plate away from the inlet valve, and the rack plate is located on the side of the push plate away from the inlet valve. Sufficient liquid can be injected into the liquid storage chamber through the inlet valve.

[0011] As a further improvement to the above solution, the linkage spring is located inside the power supply cavity, and the stop block is located outside the power supply cavity. The stop block can prevent the heat dissipation window from sliding out of the assembly slot.

[0012] As a further improvement to the above solution, the inner wall of the through hole is provided with a sealing ring one along the circumferential direction, and the inner wall of the assembly groove is provided with a sealing ring two along the circumferential direction. The sealing performance of the through hole and the assembly groove can be increased by the sealing ring one and the sealing ring two.

[0013] As a further improvement to the above solution, the power supply box is provided with a sliding groove, and the rack plate slides inside the sliding groove, allowing the rack plate to slide flexibly.

[0014] As a further improvement to the above solution, the depth of the sliding groove is greater than the length of the linkage block, and the length of the sliding block is greater than the width of the sliding groove opening. By using a sliding block with a length greater than the width of the sliding groove opening, the sliding block can be prevented from falling out of the sliding groove.

[0015] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0016] 1. This invention can suspend and convey materials, and can limit the suspended materials to prevent them from coming off the hook during conveying. It can also lock the hanging rope to prevent the rope from swinging back and forth on the hook during conveying, which would cause excessive friction and breakage. Furthermore, it can quickly unload the conveyed materials, eliminating the need for manual unloading by the user, making it convenient to use.

[0017] 2. This invention can adaptively regulate the materials during the conveying process, thereby avoiding the need for rapid material conveying in complex terrain, improving the heat dissipation efficiency of the equipment, and cleaning and unblocking the heat dissipation components of the equipment, preventing the heat dissipation components from becoming clogged after a long period of heat dissipation work. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the overall structure of a single-beam suspended integrated electric monorail crane.

[0019] Figure 2 This is a partial structural diagram of a single-beam suspended integrated electric monorail crane.

[0020] Figure 3 This is a structural schematic diagram of the power supply box in a single-beam suspended integrated electric monorail crane.

[0021] Figure 4 for Figure 1 Enlarged structural diagram at point A;

[0022] Figure 5 for Figure 1 Enlarged structural diagram at point B;

[0023] Figure 6 for Figure 3 Enlarged structural diagram at point C;

[0024] Figure 7 for Figure 1 Enlarged structural diagram at point D;

[0025] Figure 8 This is a schematic diagram of a single-beam suspended integrated electric monorail crane.

[0026] Explanation of key symbols:

[0027] 1. Track; 2. Hanging beam; 3. Drive base; 4. Control equipment; 5. Power supply box; 6. Connecting beam; 7. Mounting block; 8. Electric hoist; 9. Driven gear; 10. Drive gear; 11. Loading block; 12. Connecting block; 13. Hook; 14. Slide groove one; 15. Slider one; 16. Hydraulic cylinder; 17. Transmission plate; 18. Slider two; 19. Linkage block; 20. Sliding groove; 21. Sliding block; 22. Linkage block; 23. Power supply chamber; 24. Liquid storage chamber; 25. Battery; 26. Push plate; 27. Guide rod; 28. Return spring; 29. ​​Rack plate; 30. Loading groove; 31. Heat dissipation window; 32. Linkage gear; 33. Rotating shaft two; 34. Transmission belt; 35. Cam; 36. Guide column; 37. Linkage spring; 38. Linkage plate. Detailed Implementation

[0028] The present invention will now be further described in conjunction with the accompanying drawings and specific embodiments. It should be noted that, without conflict, the various embodiments or technical features described below can be arbitrarily combined to form new embodiments.

[0029] Example 1:

[0030] Combination Figure 1 , 24, 5, and 8, the single-beam suspended integrated electric monorail crane of this embodiment includes a track 1, two hanging beams 2 set below the track 1, a drive base 3 and control equipment 4 installed on one of the hanging beams 2, and a power supply box 5 installed on the other hanging beam 2. The two hanging beams 2 are fixed by bolts. The power supply box 5 is equipped with a heat dissipation component. A connecting beam 6 is fixed between the two hanging beams 2. The connecting beam 6 is fixed to the hanging beam 2 by bolts. The two ends of the connecting beam 6 are provided with mounting grooves. The mounting blocks 7 are rotatably connected inside the mounting grooves. An electric hoist 8 is fixed to the bottom of the mounting block 7. The output end of the electric hoist 8 is provided with a mounting component. An annular groove is provided on the inner wall of the mounting groove. Multiple support blocks are fixed inside the mounting block 7 located inside the mounting groove. The support blocks slide inside the annular groove. The mounting component includes a mounting frame fixed to the output end of the electric hoist 8. A loading block 11 is fixed on the mounting frame. A connecting plate is hinged to the outer side of one end of the loading block 11. A connecting block 12 is hinged to the outer side of the movable end of the connecting plate. A hook 13 is fixed to the tail end of the connecting block 12. A transmission plate 17 is hinged to the outer side of the connecting block 12. A transmission block is hinged to the movable end of the transmission plate 17. A hydraulic cylinder 16 with its piston fixed to the transmission block is fixed on the loading block 11. A slide groove 14 is opened at one end of the loading block 11. A slider 15 is slidably connected inside the slide groove 14. The transmission block is fixed on the slider 15 and slides in cooperation with the groove opening of the slide groove 14. A second slide groove is opened at the other end of the loading block 11. A transmission block is slidably connected inside the second slide groove. The second slider 18 has multiple push springs fixed to the inner wall of the two ends of the slide groove. The second slider 18 has a connecting block 19 that slides inside the groove of the second slide groove. The connecting block 19 has a sliding groove 20 at the end away from the second slider 18. The sliding block 21 is slidably connected inside the sliding groove 20. The side of the sliding block 21 away from the connecting block 19 has a linkage block 22 that slides with the groove of the sliding groove 20. The end of the linkage block 22 away from the sliding block 21 is in contact with the hook 13.

[0031] The implementation principle of the single-beam suspended integrated electric monorail crane in this embodiment is as follows: When materials need to be transported, the two hanging beams 2 can be separated and the connecting beam 6 can be fixed on the hanging beams 2. Then, the operation of the hydraulic cylinder 16 can drive the transmission block to move, causing the transmission plate 17 to deflect. At this time, the deflected transmission plate 17 will drive the connecting block 12 to deflect, and the deflected connecting block 12 will drive the hook 13 to deflect. When the hook 13 deflects to an appropriate angle, the corresponding material can be placed on the hook 13, and then it can be transported... The operation of hydraulic cylinder 16 drives the transmission block to reset. This resets the transmission block, which in turn drives transmission plate 17 to reset, causing hook 13 to deflect. The deflected hook 13 then pushes linkage block 22 and connecting block 19 to move. This displacement of linkage block 22 and connecting block 19 pushes the hanging rope inside hook 13 to press firmly against hook 13, preventing the hanging rope from swaying back and forth on hook 13 during material conveying, which could cause excessive friction and breakage. When hook 13 forms a closed loop with linkage block 22 and connecting block 19... After the rope is locked in the enclosed space, the material on the hook 13 can be vertically displaced by the operation of the electric hoist 8. After the material is lifted, the electric hoist 8 can be displaced by the operation of the drive base 3 and the control device 4, which in turn displaces the material on the hook 13. The material can then be transported. When the material reaches its destination, the transmission block can be reset by the operation of the hydraulic cylinder 16. The reset transmission block will then drive the transmission plate 17 to reset, causing the hook 13 to deflect. The deflected hook 13 will then detach the rope, thus unloading the material at its destination for the user to use. This avoids the need for manual unloading and is convenient to use. During the transportation of materials, the electric hoist 8 can be rotated by the rotation of the mounting block 7. The rotating electric hoist 8 will then drive the hook 13 to rotate, causing the material on the hook 13 to rotate. This allows the user to transport materials in complex terrain.

[0032] A motor is installed at the bottom of the connecting beam 6. The output end of the motor is connected to an output shaft. A drive gear 10 is fixedly sleeved on the outer wall of the output shaft. A driven gear 9 that meshes with the drive gear 10 is fixedly sleeved on the outer side of the mounting block 7. The motor drives the output shaft to rotate. At this time, the rotating output shaft drives the drive gear 10 to rotate, which in turn drives the driven gear 9 to rotate, and thus drives the mounting block 7 to rotate.

[0033] The motor is fixed to a protective shell on the connecting beam 6. The connecting beam 6 has a rotating hole, and the output shaft rotates inside the rotating hole. The output shaft can rotate flexibly through the rotating hole.

[0034] Example 2:

[0035] Combination Figure 3 , 6 7. Based on embodiment 1, this embodiment further improves upon the following: the power supply box 5 has a power supply cavity 23, a liquid storage cavity 24, and a loading slot 30. A battery 25 is installed inside the power supply cavity 23. The heat dissipation assembly includes a push plate 26 that slides inside the liquid storage cavity 24. The push plate 26 has a through hole, through which a guide rod 27 fixed to the inner wall of the liquid storage cavity 24 slides. A return spring 28 is sleeved on the outside of the guide rod 27. A rack plate 29 is fixed on the outside of the push plate 26, with one end of the rack plate 29 extending to the outside of the power supply box 5 away from the push plate 26. A rotating shaft 1 is rotatably connected inside the loading slot 30. A linkage gear 32 that meshes with the rack plate 29 is fixedly sleeved on the outer wall of the rotating shaft 1. A rotating shaft 23 rotatably connected inside the loading slot 30 is located above the rotating shaft 1. A transmission wheel is fixedly sleeved on the outer walls of the rotating shaft 1 and the rotating shaft 23. A transmission belt 34 that drives the transmission wheel is located on the outside of the transmission wheel. A cam 35, which rotates inside the loading slot 30, is fixedly sleeved on the outer wall of the power supply box 5. Assembly slots are provided at both ends of the power supply box 5. Heat dissipation windows 31 are slidably connected inside the assembly slots. The heat dissipation windows 31 near the cam 35 work in conjunction with the cam 35. Multiple sliding holes are provided in the heat dissipation windows 31 near the cam 35. Guide posts 36 slide through the sliding holes. One end of the guide post 36 is fixed to the inner wall of the power supply box 23, and the other end of the guide post 36 is fixed with a stop block. The diameter of the stop block is larger than the diameter of the sliding hole. A linkage spring 37 is fixedly sleeved on the outside of the guide post 36. A linkage plate 38 is embedded in the middle of the heat dissipation window 31 near the cam 35. The linkage plate 38 is fixed on the heat dissipation window 31 away from the cam 35. The heat dissipation window 31 can help the battery 25 inside the power supply box 23 to dissipate heat. The liquid inside the liquid reservoir 24 can absorb the heat emitted by the battery 25 during operation, thereby improving the heat dissipation efficiency of the battery 25.

[0036] When the power supply box 5 is running, it will cause the water inside the reservoir 24 to slosh. This sloshing water will push the push plate 26 inside the reservoir 24 to move. Simultaneously, with the help of the return spring 28, the push plate 26 will move back to its original position. This back-moving push plate 26 will then move the rack plate 29 back to its original position. The rack plate 29 will then drive the linkage gear 32 to rotate, causing the first rotating shaft to rotate. Through the transmission between the transmission wheels, the second rotating shaft 33 will rotate, driving the cam 35 to rotate. When the cam 35 rotates, it intermittently presses the heat dissipation window 31. Through the sliding cooperation between the heat dissipation window 31 and the mounting groove, the transmission cooperation through the linkage plate 38, and the return elasticity of the linkage spring 37, the heat dissipation window 31 is driven to reciprocate and oscillate. At this time, the heat dissipation holes of the heat dissipation window 31 can be cleared through the reciprocating and oscillating heat dissipation window 31, so as to prevent the heat dissipation holes of the heat dissipation window 31 from being blocked by external dust and debris after long-term operation. Moreover, the reciprocating and oscillating liquid will also accelerate the dissipation of liquid heat, thereby effectively improving the heat dissipation effect of the liquid.

[0037] An inlet valve connected to the liquid storage chamber 24 is installed on the outside of the power supply box 5. The return spring 28 is located on the side of the push plate 26 away from the inlet valve, and the rack plate 29 is located on the side of the push plate 26 away from the inlet valve. Sufficient liquid can be injected into the liquid storage chamber 24 through the inlet valve.

[0038] The linkage spring 37 is located inside the power supply cavity 23, and the stop block is located outside the power supply cavity 23. The stop block can prevent the heat dissipation window 31 from sliding out of the assembly slot.

[0039] A sealing ring 1 is provided on the inner wall of the through hole along the circumference, and a sealing ring 2 is provided on the inner wall of the assembly groove along the circumference. The sealing performance of the through hole and the assembly groove can be increased by the sealing ring 1 and the sealing ring 2.

[0040] The power supply box 5 is provided with a sliding groove, and the rack plate 29 slides inside the sliding groove. The rack plate 29 can slide flexibly through the sliding groove.

[0041] The depth of the sliding groove 20 is greater than the length of the linkage block 22, and the length of the sliding block 21 is greater than the width of the opening of the sliding groove 20. By using the sliding block 21, whose length is greater than the width of the opening of the sliding groove 20, the sliding block 21 can be prevented from falling out of the sliding groove 20.

[0042] Working principle: When materials need to be conveyed, the two hanging beams 2 can be separated and the connecting beam 6 fixed on the hanging beams 2. Then, the operation of the hydraulic cylinder 16 drives the transmission block to move, causing the transmission plate 17 to deflect. At this time, the deflecting transmission plate 17 will drive the connecting block 12 to deflect, which in turn will drive the hook 13 to deflect. When the hook 13 deflects to an appropriate angle, the corresponding material can be placed on the hook 13. Then, the operation of the hydraulic cylinder 16 drives the transmission block to reset. At this time, the reset transmission block will drive the transmission plate 17 to reset, causing the hook 13 to deflect. The deflected hook 13 will then push the linkage block 22 and the connecting block 19 to move. At this time, the linkage block 22 and the linkage block 19, which are used for displacement, will push the hanging rope inside the hook 13 to stick tightly to the hook 13, preventing the hanging rope from swinging back and forth on the hook 13 during material conveying, which would cause excessive friction and lead to the hanging rope breaking. After the hook 13, linkage block 22, and linkage block 19 form a closed space to lock the hanging rope, the material on the hook 13 can be vertically displaced by the operation of the electric hoist 8. After the material is lifted, the electric hoist 8 can be displaced by the operation of the drive base 3 and the control device 4, which in turn displaces the material on the hook 13. At this time, the material can be conveyed. After the material is conveyed to the destination, the transmission block can be reset by the operation of the hydraulic cylinder 16. The transmission block will drive the transmission plate 17 to reset, causing the hook 13 to deflect. At this time, the deflected hook 13 will detach the hanging rope, thus unloading the material at the destination for the user to use, avoiding manual unloading and making it convenient. During material transportation, the rotation of the mounting block 7 will drive the electric hoist 8 to rotate, which in turn will drive the hook 13 to rotate, causing the material on the hook 13 to rotate. This facilitates material transport in complex terrain. The heat dissipation window 31 helps to cool the battery 25 inside the power supply chamber 23. The liquid inside the accumulator chamber 24 absorbs the heat emitted by the battery 25 during operation, thereby improving the heat dissipation efficiency of the battery 25. When the power supply box 5 is running, it will cause the liquid inside the accumulator chamber 24 to slosh around. At this time, the sloshing liquid will push the push plate 26 inside the accumulator chamber 24 to move. Simultaneously, with the help of the return spring 28, the push plate 26 will move back to its original position. The push plate 26 moving back to its original position will drive the rack plate 29 to move back to its original position. The rack plate 29 moving back to its original position will drive the linkage gear 32 to rotate, which will drive the first rotating shaft to rotate. Through the transmission between the transmission wheels, the second rotating shaft 33 will rotate, which will drive the cam 35 to rotate.At this time, the rotating cam 35 will intermittently press on the heat dissipation window 31. Through the sliding engagement between the heat dissipation window 31 and the mounting groove, the transmission engagement through the linkage plate 38, and the return elasticity of the linkage spring 37, the heat dissipation window 31 will be driven to reciprocate and oscillate. This reciprocating oscillation will clear the heat dissipation holes of the heat dissipation window 31, preventing them from becoming clogged by dust and debris after prolonged use. Furthermore, the reciprocating oscillation of the liquid will accelerate heat dissipation, thereby effectively improving the liquid's heat dissipation effect.

[0043] The above embodiments are merely preferred embodiments of the present invention and should not be construed as limiting the scope of protection of the present invention. Any non-substantial changes and substitutions made by those skilled in the art based on the present invention shall fall within the scope of protection claimed by the present invention.

Claims

1. A single-beam suspended integrated electric monorail crane, comprising a track, two suspension beams disposed below the track, a drive base and control equipment mounted on one of the suspension beams, and a power supply box mounted on the other suspension beam, characterized in that, The power supply box is equipped with a heat dissipation component. A connecting beam is fixed between the two hanging beams. The two ends of the connecting beam are provided with mounting grooves. A mounting block is rotatably connected inside the mounting groove. An electric hoist is fixed to the bottom of the mounting block. A hanging component is provided at the output end of the electric hoist. An annular groove is provided on the inner wall of the mounting groove. Multiple support blocks are fixed to the mounting block located inside the mounting groove. The support blocks slide inside the annular groove. The mounting assembly includes a mounting bracket fixed to the output end of an electric hoist. A loading block is fixed on the mounting bracket. A connecting plate is hinged to the outer side of one end of the loading block. A connecting block is hinged to the outer side of the movable end of the connecting plate. A hook is fixed to the tail end of the connecting block. A transmission plate is hinged to the outer side of the connecting block. A transmission block is hinged to the movable end of the transmission plate. A hydraulic cylinder with its piston end fixed to the transmission block is fixed on the loading block. A sliding groove is formed at one end of the loading block. A slider is slidably connected inside the sliding groove. The transmission block is fixed on the slider. And it slides and engages with the groove of the first slid. The other end of the loading block is provided with a second slid. A second slider is slidably connected inside the second slid. Multiple push springs fixed on the inner wall of the end of the second slid are fixed. A connecting block that slides inside the groove of the second slid is fixed on the second slider. A sliding groove is provided at the end of the connecting block away from the second slider. A sliding block is slidably connected inside the sliding groove. A linkage block that slides and engages with the groove of the sliding groove is fixed on the side of the sliding block away from the linkage block. The end of the linkage block away from the sliding block is in contact with the hook. The power supply box has a power supply chamber, a liquid storage chamber, and a loading slot. A battery is installed inside the power supply chamber. The heat dissipation assembly includes a push plate that slides inside the liquid storage chamber. The push plate has a through hole, through which a guide rod fixed to the inner wall of the liquid storage chamber slides. A return spring is sleeved on the outside of the guide rod. A rack plate is fixed to the outside of the push plate, with one end of the rack plate extending to the outside of the power supply box. A rotating shaft is rotatably connected inside the loading slot. A linkage gear that meshes with the rack plate is fixedly sleeved on the outer wall of the rotating shaft. A second rotating shaft is rotatably connected inside the loading slot above the first rotating shaft. A transmission mechanism is fixedly sleeved on the outer walls of the first and second rotating shafts. The transmission wheel has a transmission belt on its outer side that drives the transmission wheel. A cam that rotates inside the loading slot is fixedly sleeved on the outer wall of the rotating shaft. Assembly slots are opened at both ends of the power supply box. Heat dissipation windows are slidably connected inside the assembly slots. The heat dissipation windows near the cam work in conjunction with the cam. Multiple sliding holes are opened in the heat dissipation windows near the cam. Guide posts slide through the sliding holes. One end of the guide post is fixed to the inner wall of the power supply cavity. A stop block is fixed to the other end of the guide post. The diameter of the stop block is larger than the diameter of the sliding hole. A linkage spring is fixedly sleeved on the outside of the guide post. A linkage plate is embedded in the middle of the heat dissipation window near the cam. The linkage plate is fixed on the heat dissipation window away from the cam.

2. The single-beam suspended integrated electric monorail crane as described in claim 1, characterized in that, The bottom of the connecting beam is equipped with a motor, the output end of the motor is connected to an output shaft, the outer wall of the output shaft is fixedly sleeved with a drive gear, and the outer side of the mounting block is fixedly sleeved with a driven gear that meshes with the drive gear.

3. The single-beam suspended integrated electric monorail crane as described in claim 2, characterized in that, The motor is fixed to a protective shell on the connecting beam, and the connecting beam has a rotating hole, through which the output shaft rotates.

4. The single-beam suspended integrated electric monorail crane as described in claim 1, characterized in that, An inlet valve connected to the liquid storage chamber is installed on the outside of the power supply box. The reset spring is located on the side of the push plate away from the inlet valve, and the rack plate is located on the side of the push plate away from the inlet valve.

5. The single-beam suspended integrated electric monorail crane as described in claim 1, characterized in that, The linkage spring is located inside the power supply cavity, and the stop block is located outside the power supply cavity.

6. The single-beam suspended integrated electric monorail crane as described in claim 1, characterized in that, The inner wall of the through hole is provided with a sealing ring one along the circumferential direction, and the inner wall of the assembly groove is provided with a sealing ring two along the circumferential direction.

7. The single-beam suspended integrated electric monorail crane as described in claim 1, characterized in that, The power supply box is provided with a sliding groove, and the rack plate slides inside the sliding groove.

8. The single-beam suspended integrated electric monorail crane as described in claim 1, characterized in that, The depth of the sliding groove is greater than the length of the linkage block, and the length of the sliding block is greater than the width of the sliding groove opening.

Citation Information

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