Warehouse logistics equipment
Patent Information
- Application Number
- CN202311853450.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-12-29
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2043-12-29
AI Technical Summary
[0002]仓储物流,就是利用自建或租赁库房、场地、储存、保管、装卸搬运、配送货物,现代物流系统中的仓储仓库中货物取出或者装入过程中,需要对货物进行运输改变位置,一般仓库都是采用物流叉车,其中在叉车对盘状货物进行叉取时,为了提高单次叉取的数量,多采用将盘状货物纵向放置并叉取的方式,盘状货物纵向放置于叉车上进行运输移动时,盘状货物容易从叉车上滚落,从而影响盘状货物的稳定快速转运工作
[0016] Compared with the prior art, the present invention provides warehousing and logistics equipment, which has the following beneficial effects:
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Figure CN117699702B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the technical field of transporting goods, specifically to warehousing and logistics equipment. Background Technology
[0002] Warehousing and logistics refers to the use of self-built or leased warehouses and sites for the storage, safekeeping, loading, unloading, and distribution of goods. In modern logistics systems, the process of taking out or loading goods in warehouses requires the transportation and relocation of goods. Generally, warehouses use logistics forklifts. When forklifts pick up palletized goods, in order to increase the number of pallets picked up at one time, pallets are often placed longitudinally and picked up. When pallets are placed longitudinally on the forklift for transportation and movement, they are prone to rolling off the forklift, thus affecting the stable and rapid transfer of palletized goods. Summary of the Invention
[0003] (a) Technical problems to be solved
[0004] In view of the shortcomings of the existing technology, the present invention provides warehousing and logistics equipment.
[0005] (II) Technical Solution
[0006] This invention provides the following technical solution: a warehousing and logistics equipment, including a forklift body, an electrically controlled drive frame mounted on the outside of the forklift body, a chassis movably connected to the outside of the electrically controlled drive frame, a fork plate fixedly mounted on the side of the chassis away from the electrically controlled drive frame, a storage slot opened on the outside of the fork plate, a rotating plate arranged inside the storage slot, a rotating rod fixedly connected inside the rotating plate, the two ends of the rotating rod being rotatably connected to both sides inside the storage slot, the rotating plate rotating inside the storage slot via the rotating rod, a baffle for supporting disc-shaped goods fixedly mounted on the outside of the rotating plate, a pulling component for rotation arranged on both sides of the outside of the rotating plate, side slots opened on both sides of the outside of the fork plate, and a blocking component for limiting the movement of disc-shaped goods on both sides inside each side slot.
[0007] Preferably, the pulling assembly includes two rotating components. Each rotating component includes a sleeve, a pull rope, a circular plate, a torsion spring, and a slot. The slot is opened inside the fork plate. One end of the rotating rod movably passes through the inner wall of the receiving slot and extends into the interior of the slot. The sleeve is fixedly connected to the outside of the rotating rod. The sleeve drives the rotating rod to rotate inside the slot. The circular plate is fixedly connected to the outside of the rotating rod. The two ends of the torsion spring are respectively fixedly connected to the circular plate and the inner wall of the slot facing each other. The pull rope is fixedly connected to the sleeve and is wound around the outside of the sleeve.
[0008] Preferably, the pulling assembly further includes a drive motor, a roller, an inner cavity, and a groove. The inner cavity is located inside the chassis, the drive motor is fixedly connected to the outside of the chassis, and the output shaft of the drive motor movably passes through the outside of the chassis and extends into the inside of the inner cavity. The roller is fixedly sleeved outside the output shaft of the drive motor. There are two grooves, which are respectively located on both sides outside the roller. The end of the pull rope away from the sleeve passes through the fork plate and extends into the inside of the inner cavity. The end of the pull rope away from the sleeve is fixedly connected to the inside of the groove, and the pull rope is wound in the groove.
[0009] Preferably, each of the pull ropes is provided with an assisting component for assisted movement on its exterior. Each assisting component includes an outer cylinder with a hollow interior. The pull rope is located inside the outer cylinder. Both sides of the outer cylinder are fixedly connected to a base plate. Each of the two base plates has an elongated groove on one of their opposing sides. Several rotating rollers are rotatably connected inside each elongated groove. A drum is fixedly connected to the exterior of each rotating roller. The drum is rotatably connected inside the elongated groove through the rotating rollers. The pull rope is located between two opposing drums.
[0010] Preferably, each of the shielding components includes an inner groove, a shielding plate, and a round shaft. The inner groove is opened inside the fork plate, and a screw is fixedly connected inside the inner groove. A collar is threadedly connected to the outside of the screw. A pull rope is located inside the inner groove and is frictionally connected to the collar. A push plate is provided outside the collar and is movably connected inside the inner groove. The round shaft is fixedly connected inside the side groove, and the shielding plate is rotatably connected to the outside of the round shaft. The shielding plate rotates inside the side groove via the round shaft. An outer groove is opened on the side of the shielding plate near the side groove, and the position of the outer groove corresponds to that of the push plate.
[0011] Preferably, a protruding plate is fixedly connected inside the outer groove. The protruding plate is bent and its upper surface is inclined.
[0012] Preferably, short grooves are provided on both sides of the inner wall of the inner groove, and a short plate is slidably connected inside each short groove. The two short plates are fixedly connected to the two sides of the outside of the push plate on opposite sides. The push plate moves laterally inside the inner groove through the two short plates.
[0013] Preferably, the collar is provided with a linkage component to assist the movement of the push plate. The linkage component includes a connecting sleeve, the lower surface of which has a lower groove. The collar is located inside the lower groove, and the connecting sleeve is fitted over the collar through the lower groove. A connecting plate is fixedly connected to the outside of the connecting sleeve. The end of the connecting plate away from the connecting sleeve is fixedly connected to the push plate. The push plate is driven by the connecting sleeve to perform synchronous lateral movement. A sliding plate is movably connected inside the lower groove. The sliding plate is located inside the collar. A spring is fixedly connected to the upper end of the sliding plate. The end of the spring away from the pressure plate is fixedly connected to the inner wall of the lower groove. The pressure plate moves inside the lower groove through the spring.
[0014] Preferably, the linkage component further includes a slide groove, which is formed on the upper wall of the inner groove. A slide plate is slidably connected inside the slide groove. The slide plate is T-shaped, and the lower end of the slide plate is fixedly connected to the upper surface of the connecting sleeve. The connecting sleeve moves within the inner groove by being driven by the slide plate.
[0015] (III) Beneficial Effects
[0016] Compared with the prior art, the present invention provides warehousing and logistics equipment, which has the following beneficial effects:
[0017] 1. This warehousing and logistics equipment uses a forklift to longitudinally pick up palletized goods. Once the palletized goods are completely placed on the upper surface of the forklift, the drive motor is started, causing the wire roller to rotate inside the cavity. The rotation of the wire roller causes the pull rope to wind up inside the wire groove. The winding of the pull rope pulls the wire sleeve, which in turn drives the rotating rod and causes the rotating plate to rotate. The rotation of the rotating plate causes the baffle to press against the lower side of the palletized goods. The rotating plate and the receiving slot prevent the palletized goods from rolling outward from the upper surface of the forklift, thus ensuring the stability of the transport of palletized goods.
[0018] 2. This warehousing and logistics equipment, after the cable is pulled and rotated by the pull rope, the rotation of the cable sleeve drives the rotating rod and causes the torsion spring to rotate and contract synchronously. When the drive motor rotates in the opposite direction and drives the pull rope to relax, the torsion spring generates elastic force to drive the cable sleeve to rotate and rewrap the pull rope inside the cable sleeve for storage, so as to facilitate the reciprocating use of this device.
[0019] 3. This warehousing and logistics equipment, when the pull rope is pulled and wound up, the pull rope moves outside the collar, contacts the collar and rubs against it. The friction between the pull rope and the collar drives the collar to spiral outside the screw. The collar moves towards the push plate, causing the connecting sleeve to move. The collar drives the connecting sleeve and causes the push plate to move into the outer groove. The push plate moves into the outer groove and pushes the inclined surface above the convex plate. The push plate pushes the convex plate, causing the cover plate to rotate around the circular axis inside the side groove. At this time, the two cover plates rotate into a vertical position to block the two sides of the disc-shaped goods, preventing the disc-shaped goods from tipping over and falling off from the sides, thus further ensuring the stability of the transport of disc-shaped goods.
[0020] 4. This warehousing and logistics equipment, when the pull rope is pulled and rubs against the collar, the upper position of the pull rope is limited by the connecting sleeve to prevent the pull rope from disengaging from the collar during movement. The pressure plate and spring are designed in conjunction, and the elastic force applied by the spring to the pressure plate makes the pressure plate press the pull rope tightly against the collar. The pressure of the pressure plate on the pull rope increases the frictional resistance between the pull rope and the collar, so that the pull rope can stably drive the collar to spiral drive outside the screw when moving, thus improving the stability of operation.
[0021] 5. This warehousing and logistics equipment, by setting up an assist component, allows the pull rope to move inside the outer cylinder during the pull rope winding process. The surface of the pull rope contacts the rollers on both sides, and the movement of the pull rope during winding drives the rollers on both sides to rotate. The rotation of the rollers on both sides reduces the resistance during the pull rope winding process, making the pull rope winding more labor-saving and improving the convenience of winding. Attached Figure Description
[0022] Figure 1 This is a schematic diagram of the structure of the present invention;
[0023] Figure 2 For the present invention Figure 1 A diagram showing the goods after the forklift picks up the goods;
[0024] Figure 3 For the present invention Figure 1 Schematic diagram of the cross-sectional structure of the middle fork plate;
[0025] Figure 4 For the present invention Figure 3 A magnified schematic diagram of the partial structure at point A in the middle;
[0026] Figure 5 For the present invention Figure 3 A partial cross-sectional view of the middle insert plate;
[0027] Figure 6 For the present invention Figure 5 A magnified schematic diagram of the local structure at point B;
[0028] Figure 7 For the present invention Figure 4 Schematic diagram of the middle connecting sleeve;
[0029] Figure 8 For the present invention Figure 1 Schematic diagram of the cross-sectional structure of the inner and outer cylinders;
[0030] Figure 9 For the present invention Figure 8 A schematic diagram of the mid-base plate.
[0031] In the diagram: 10. Forklift body; 11. Electric drive frame; 12. Chassis; 13. Fork plate; 14. Storage slot; 15. Baffle; 16. Rotating plate; 17. Side slot; 18. Rotating rod; 20. Inner slot; 21. Screw; 22. Collar; 23. Push plate; 24. Short slot; 25. Short plate; 26. Sheath; 27. Outer slot; 28. Protruding plate; 29. Round shaft; 30. 31. Wire sleeve; 32. Drive motor; 33. Wire roller; 34. Inner cavity; 35. Wire groove; 36. Pull rope; 37. Circular plate; 38. Torsion spring; 49. Empty groove; 40. Connecting sleeve; 41. Lower groove opening; 42. Slide plate; 43. Connecting plate; 44. Pressure plate; 45. Spring; 46. Slide groove; 50. Outer cylinder; 51. Base plate; 52. Roller; 53. Rotating roller; 54. Long groove. Detailed Implementation
[0032] The present invention will be further described in detail below with reference to the accompanying drawings, wherein the same parts are indicated by the same reference numerals. It should be noted that the terms “front”, “rear”, “left”, “right”, “upper” and “lower”, “bottom surface” and “top surface” used in the following description refer to the directions in the drawings, and the terms “inner” and “outer” refer to the directions toward or away from the geometric center of a specific part, respectively.
[0033] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0034] Please see Figures 1-9 The present invention provides a technical solution: a warehousing and logistics equipment, including a forklift body 10, an electric drive frame 11 installed on the outside of the forklift body 10, a chassis 12 movably connected to the outside of the electric drive frame 11, a fork plate 13 fixedly installed on the outside of the chassis 12 away from the electric drive frame 11, a storage slot 14 opened on the outside of the fork plate 13, a rotating plate 16 arranged inside the storage slot 14, a rotating rod 18 fixedly connected inside the rotating plate 16, the two ends of the rotating rod 18 respectively rotatably connected to the two sides inside the storage slot 14, the rotating plate 16 rotates inside the storage slot 14 through the rotating rod 18, a baffle 15 for supporting disc-shaped goods fixedly installed on the outside of the rotating plate 16, a pulling component for rotation arranged on both sides of the outside of the rotating plate 16, a side groove 17 opened on both sides of the outside of the fork plate 13, and a blocking component for limiting the movement of disc-shaped goods on both sides inside each side groove 17.
[0035] The pulling assembly includes two rotating components. Each rotating component includes a sleeve 30, a pull rope 35, a circular plate 36, a torsion spring 37, and a slot 38. The slot 38 is opened inside the fork plate 13. One end of the rotating rod 18 moves through the inner wall of the receiving slot 14 and extends into the interior of the slot 38. The sleeve 30 is fixedly connected to the outside of the rotating rod 18. The sleeve 30 drives the rotating rod 18 to rotate inside the slot 38. The circular plate 36 is fixedly connected to the outside of the rotating rod 18. The two ends of the torsion spring 37 are respectively fixedly connected to the circular plate 36 and the inner wall of the slot 38 facing each other. The pull rope 35 is fixedly connected to the sleeve 30 and is wrapped around the outside of the sleeve 30.
[0036] The pulling assembly also includes a drive motor 31, a roller 32, an inner cavity 33, and a groove 34. The inner cavity 33 is located inside the chassis 12. The drive motor 31 is fixedly connected to the outside of the chassis 12, and the output shaft of the drive motor 31 moves through the outside of the chassis 12 and extends into the inside of the inner cavity 33. The roller 32 is fixedly sleeved on the outside of the output shaft of the drive motor 31. There are two grooves 34, which are respectively located on both sides of the outside of the roller 32. The end of the pull rope 35 away from the sleeve 30 passes through the fork plate 13 and extends into the inside of the inner cavity 33. The end of the pull rope 35 away from the sleeve 30 is fixedly connected to the inside of the groove 34, and the pull rope 35 is wound in the groove 34.
[0037] Each pull rope 35 is externally equipped with an assistive component for movement. Each assistive component includes an outer cylinder 50, the interior of which is hollow. The pull rope 35 is located inside the outer cylinder 50. Base plates 51 are fixedly connected to both sides of the inner surface of the outer cylinder 50. Long grooves 54 are formed on the facing sides of the two base plates 51. Several rotating rollers 53 are rotatably connected inside each long groove 54. A roller 52 is fixedly connected to the outside of each roller 53. The roller 52 is rotatably connected to the inside of the long groove 54 via the rotating rollers 53. The pull rope 35 is located between two facing rollers 52. The forklift body 10 drives the forks 13 to... After the disc-shaped goods are longitudinally picked up and placed completely on the upper surface of the fork plate 13, the drive motor 31 is started to drive the wire roller 32 to rotate inside the inner cavity 33. The rotation of the wire roller 32 drives the pull rope 35 to wind up inside the wire groove 34. The winding of the pull rope 35 pulls the wire sleeve 30. The wire sleeve 30 is pulled, which drives the rotating rod 18 and causes the rotating plate 16 to rotate. The rotation of the rotating plate 16 drives the baffle 15 to press against the lower side of the disc-shaped goods. The disc-shaped goods are blocked by the rotating plate 16 and the receiving slot 14, preventing the disc-shaped goods from rolling outward from the upper surface of the fork plate 13 and ensuring the stability of the transport of the disc-shaped goods.
[0038] Each shielding assembly includes an inner groove 20, a shield 26, and a round shaft 29. The inner groove 20 is located inside the fork plate 13. A screw 21 is fixedly connected inside the inner groove 20. A collar 22 is threadedly connected to the outside of the screw 21. A pull rope 35 is located inside the inner groove 20 and is frictionally connected to the collar 22. A push plate 23 is provided outside the collar 22 and is movably connected inside the inner groove 20. The round shaft 29 is fixedly connected inside the side groove 17. The shield 26 is rotatably connected to the outside of the round shaft 29 and rotates inside the side groove 17 via the round shaft 29. An outer slot 27 is provided on the side of the shield 26 near the side groove 17, and the position of the outer slot 27 corresponds to that of the push plate 23.
[0039] The outer slot 27 is fixedly connected to a protruding plate 28, which is bent and has an inclined upper surface.
[0040] Short grooves 24 are provided on both sides of the inner wall of the inner groove 20. A short plate 25 is slidably connected inside each short groove 24. The two short plates 25 are fixedly connected to the two sides of the outside of the push plate 23 on opposite sides. The push plate 23 is driven to move laterally inside the inner groove 20 through the two short plates 25.
[0041] A linkage assembly for assisting the movement of the push plate 23 is provided on the outside of the collar 22. The linkage assembly includes a connecting sleeve 40, the lower surface of which has a lower groove 41. The collar 22 is located inside the lower groove 41, and the connecting sleeve 40 is fitted onto the outside of the collar 22 through the lower groove 41. A connecting plate 43 is fixedly connected to the outside of the connecting sleeve 40. The end of the connecting plate 43 away from the connecting sleeve 40 is fixedly connected to the push plate 23. The push plate 23 is driven by the connecting sleeve 40 to perform synchronous lateral movement. A sliding plate 42 is movably connected inside the lower groove 41. The sliding plate 42 is located inside the collar 22. A spring 45 is fixedly connected to the upper end of the sliding plate 42. The end of the spring 45 away from the pressure plate 44 is fixedly connected to the inner wall of the lower groove 41. The pressure plate 44 moves inside the lower groove 41 through the spring 45. When the pull rope 35 is pulled and wound up, the pull rope 35 moves outside the collar 22, contacts the collar 22 and rubs against it. The friction between the pull rope 35 and the collar 22 drives the collar 22 to spiral outside the screw 21. The collar 22 moves the connecting sleeve 40 towards the push plate 23. The collar 22 drives the connecting sleeve 40 and causes the push plate 23 to move into the outer groove 27. The push plate 23 moves into the outer groove 27 and pushes the inclined surface above the convex plate 28. The push plate 23 pushes the convex plate 28, causing the cover plate 26 to rotate inside the side groove 17 with the circular shaft 29 as the center. At this time, the two cover plates 26 rotate into a vertical position to block the two sides of the outside of the disc-shaped goods, preventing the disc-shaped goods from tipping over and falling off from the sides, and further ensuring the stability of the transport of disc-shaped goods.
[0042] The linkage component also includes a slide groove 46, which is formed on the upper wall of the inner groove 20. A slide plate 42 is slidably connected inside the slide groove 46. The slide plate 42 is T-shaped, and the lower end of the slide plate 42 is fixedly connected to the upper surface of the connecting sleeve 40. The connecting sleeve 40 moves within the inner groove 20 driven by the slide plate 42.
[0043] In use, the first step is to use the forklift body 10 to drive the fork plate 13 to longitudinally pick up the disc-shaped goods. After the disc-shaped goods are completely placed on the upper surface of the fork plate 13, the drive motor 31 is started to drive the wire roller 32 to rotate inside the inner cavity 33. The rotation of the wire roller 32 drives the pull rope 35 to wind up inside the wire groove 34. The winding of the pull rope 35 pulls the wire sleeve 30. The wire sleeve 30 is pulled to drive the rotating rod 18 and cause the rotating plate 16 to rotate. The rotation of the rotating plate 16 drives the baffle 15 to press against the lower side of the disc-shaped goods. The disc-shaped goods are blocked by the rotating plate 16 and the storage slot 14, preventing the disc-shaped goods from rolling outward from the upper surface of the fork plate 13, thus ensuring the stability of the transport of the disc-shaped goods.
[0044] The second step involves pulling and rotating the cable sleeve 30 using the pull rope 35. The rotation of the cable sleeve 30 drives the rotating rod 18 and causes the torsion spring 37 to rotate and retract synchronously. When the drive motor 31 rotates in the opposite direction, causing the pull rope 35 to loosen, the torsion spring 37 generates elastic force to rotate the cable sleeve 30 and rewrap the pull rope 35 inside the cable sleeve 30 for storage, thus facilitating the reciprocating use of this device.
[0045] Thirdly, when the pull rope 35 is pulled and wound up, the pull rope 35 moves outside the collar 22, contacts the collar 22 and rubs against it. The friction between the pull rope 35 and the collar 22 drives the collar 22 to spiral outside the screw 21. The collar 22 moves towards the push plate 23, causing the connecting sleeve 40 to move. The collar 22 drives the connecting sleeve 40 and causes the push plate 23 to move into the outer groove 27. The push plate 23 moves into the outer groove 27 and pushes the inclined surface above the convex plate 28. The push plate 23 pushes the convex plate 28, causing the cover plate 26 to rotate inside the side groove 17 with the circular shaft 29 as the center. At this time, the two cover plates 26 rotate into a vertical position to block the two sides of the outside of the disc-shaped goods, preventing the disc-shaped goods from tipping over and falling off from the sides, and further ensuring the stability of the transport of disc-shaped goods.
[0046] In the fourth step, when the pull rope 35 is pulled and rubbed against the collar 22, the upper position of the pull rope 35 is limited by the connecting sleeve 40 to prevent the pull rope 35 from disengaging from the collar 22 during movement. The pressure plate 44 and spring 45 are provided in conjunction, and the elastic force applied by the spring 45 to the pressure plate 44 makes the pressure plate 44 press the pull rope 35 tightly against the collar 22. The pressure of the pressure plate 44 on the pull rope 35 increases the frictional resistance between the pull rope 35 and the collar 22, so that the pull rope 35 can stably drive the collar 22 in a spiral drive outside the screw 21 during movement, thus improving the stability of operation.
[0047] Fifth, by setting up an assist component, when the pull rope 35 is wound up, the pull rope 35 moves inside the outer cylinder 50, and the surface of the pull rope 35 contacts the rollers 52 on both sides. When the pull rope 35 moves while winding up, it drives the rollers 52 on both sides to rotate. The rotation of the rollers 52 on both sides reduces the resistance when the pull rope 35 is wound up, making the winding of the pull rope 35 more effortless and improving the convenience of winding up.
Claims
1. A warehousing and logistics equipment, comprising a forklift body (10), an electrically controlled drive frame (11) externally mounted on the forklift body (10), and a chassis (12) movably connected to the external side of the electrically controlled drive frame (11), characterized in that: A fork plate (13) is fixedly installed on the side of the chassis (12) away from the electric drive frame (11). A storage slot (14) is opened on the outside of the fork plate (13). A rotating plate (16) is set inside the storage slot (14). A rotating rod (18) is fixedly connected inside the rotating plate (16). The two ends of the rotating rod (18) are rotatably connected to the two sides inside the storage slot (14). The rotating plate (16) rotates inside the storage slot (14) through the rotating rod (18). A baffle (15) for supporting the disc-shaped goods is fixedly installed on the outside of the rotating plate (16). Pulling components for rotation are set on both sides of the outside of the rotating plate (16). Side slots (17) are opened on both sides of the outside of the fork plate (13). A blocking component for limiting the two sides of the disc-shaped goods is set inside each side slot (17). Each of the aforementioned shielding components includes an inner groove (20), a shield (26), and a round shaft (29). The inner groove (20) is formed inside the fork plate (13). A screw (21) is fixedly connected inside the inner groove (20). A collar (22) is threadedly connected to the outside of the screw (21). A pull rope (35) is located inside the inner groove (20), and the pull rope (35) is frictionally connected to the collar (22). A push plate is provided on the outside of the collar (22). (23) The push plate (23) is movably connected inside the inner groove (20), the round shaft (29) is fixedly connected inside the side groove (17), and the cover plate (26) is rotatably connected outside the round shaft (29). The cover plate (26) rotates inside the side groove (17) through the round shaft (29). The cover plate (26) has an outer groove (27) on the side near the side groove (17), and the position of the outer groove (27) corresponds to that of the push plate (23). The collar (22) is provided with a linkage assembly for the movement of an auxiliary push plate (23). The linkage assembly includes a connecting sleeve (40), the lower surface of which has a lower groove (41). The collar (22) is located inside the lower groove (41), and the connecting sleeve (40) is fitted onto the outside of the collar (22) through the lower groove (41). A connecting plate (43) is fixedly connected to the outside of the connecting sleeve (40). The end of the connecting plate (43) away from the connecting sleeve (40) is connected to... The push plate (23) is fixedly connected and driven by the connecting sleeve (40) to move synchronously laterally. The slide plate (42) is movably connected inside the lower slot (41). The slide plate (42) is located inside the collar (22). The upper end of the slide plate (42) is fixedly connected to the spring (45). The end of the spring (45) away from the pressure plate (44) is fixedly connected to the inner wall of the lower slot (41). The pressure plate (44) moves inside the lower slot (41) through the spring (45).
2. The warehousing and logistics equipment according to claim 1, characterized in that: The pulling assembly includes two rotating components. Each rotating component includes a sleeve (30), a pull rope (35), a circular plate (36), a torsion spring (37), and a slot (38). The slot (38) is opened inside the fork plate (13). One end of the rotating rod (18) moves through the inner wall of the receiving slot (14) and extends into the interior of the slot (38). The sleeve (30) is fixedly connected to the outside of the rotating rod (18). The sleeve (30) drives the rotating rod (18) to rotate inside the slot (38). The circular plate (36) is fixedly connected to the outside of the rotating rod (18). The two ends of the torsion spring (37) are respectively fixedly connected to the circular plate (36) and the inner wall of the slot (38) facing each other. The pull rope (35) is fixedly connected to the sleeve (30), and the pull rope (35) is wrapped around the outside of the sleeve (30).
3. The warehousing and logistics equipment according to claim 1, characterized in that: The pulling assembly also includes a drive motor (31), a wire roller (32), an inner cavity (33), and a wire groove (34). The inner cavity (33) is located inside the chassis (12). The drive motor (31) is fixedly connected to the outside of the chassis (12), and the output shaft of the drive motor (31) moves through the outside of the chassis (12) and extends into the inside of the inner cavity (33). The wire roller (32) is fixedly sleeved on the outside of the output shaft of the drive motor (31). There are two wire grooves (34), which are respectively located on both sides of the outside of the wire roller (32). The end of the pull rope (35) away from the wire sleeve (30) passes through the fork plate (13) and extends into the inside of the inner cavity (33). The end of the pull rope (35) away from the wire sleeve (30) is fixedly connected to the inside of the wire groove (34), and the pull rope (35) is wound in the wire groove (34).
4. The warehousing and logistics equipment according to claim 2, characterized in that: Each of the pull ropes (35) is provided with an auxiliary component for assisting movement. Each auxiliary component includes an outer cylinder (50). The interior of the outer cylinder (50) is hollow. The pull rope (35) is located inside the outer cylinder (50). Both sides of the interior of the outer cylinder (50) are fixedly connected to a base plate (51). Each side of the two base plates (51) facing each other is provided with a long groove (54). Several rotating rollers (53) are rotatably connected inside each long groove (54). Each rotating roller (53) is fixedly connected to a drum (52) on the outside. The drum (52) is rotatably connected inside the long groove (54) through the rotating roller (53). The pull rope (35) is located between two opposing drums (52).
5. The warehousing and logistics equipment according to claim 1, characterized in that: The outer slot (27) is fixedly connected to a protruding plate (28), which is bent and has an inclined upper surface.
6. The warehousing and logistics equipment according to claim 1, characterized in that: Short grooves (24) are provided on both sides of the inner wall of the inner groove (20). A short plate (25) is slidably connected inside each short groove (24). The two short plates (25) are fixedly connected to the two sides of the outside of the push plate (23) on opposite sides. The push plate (23) moves laterally inside the inner groove (20) through the two short plates (25).
7. The warehousing and logistics equipment according to claim 1, characterized in that: The linkage component also includes a slide groove (46), which is opened on the upper wall of the inner groove (20). A slide plate (42) is slidably connected inside the slide groove (46). The slide plate (42) is T-shaped. The lower end of the slide plate (42) is fixedly connected to the upper surface of the connecting sleeve (40). The connecting sleeve (40) moves in the inner groove (20) driven by the slide plate (42).
Citation Information
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