Winding device for computer experiment equipment

By designing a winding device for computer experimental equipment, and using the transmission shaft and winding roller to automatically retract and release the cable, the problem of messy cable stacking in the laboratory is solved, extending the service life of the cable and improving the safety and efficiency of the working environment.

CN119976546APending Publication Date: 2025-05-13ANQING NORMAL UNIV
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Patent Information

Application Number
CN202510096246.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-01-22
Publication Date
2025-05-13

AI Technical Summary

Technical Problem

The cables used for computer experimental equipment in the laboratory are piled up in a mess, which poses safety risks and does not comply with laboratory regulations, affecting the development of subsequent work.

Method used

A winding device for computer experimental equipment is designed, including a storage box, a water tank, a push rack, a trigger unit and a moving mechanism. The cable is automatically retracted and released through the transmission shaft and winding roller, and the cable is sorted in conjunction with the moving mechanism to ensure the neat storage and subsequent use of the cable.

Benefits of technology

It realizes automated cable management, reduces drag wear of cables, extends the service life of cables, and complies with laboratory placement regulations, improving the safety and efficiency of the working environment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of laboratory storage devices, and discloses a winding device for computer experiment equipment, which comprises a storage box for storage, a first water tank and a second water tank are symmetrically arranged in the storage box, a first pushing frame and a second pushing frame are correspondingly connected to the first water tank and the second water tank, and a trigger unit is connected between the first pushing frame and the second pushing frame. A movement mechanism used for arranging cables is connected into the storage box, a trigger used for triggering is connected to the movement mechanism, a transmission shaft is connected between the first water tank and the second water tank in a penetrating mode, the outer side of the transmission shaft is sleeved with a wrapping roller, and the two ends of the wrapping roller are fixedly connected with limiting rings. According to the cable storage device, automatic take-up and automatic pay-off are achieved, dragging abrasion of cables is reduced, the service life of the cables is prolonged, meanwhile, the cable storage device is matched with a movement mechanism, neat storage of the cables is achieved, follow-up reuse is guaranteed, and the cable storage device adapts to the placement regulation of a laboratory.
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Description

Technical Field

[0001] The invention relates to the field of laboratory storage devices, and in particular to a winding device for computer experimental equipment. Background Art

[0002] A computer, also known as a computer, is a modern electronic computing machine used for high-speed computing. It can perform numerical calculations, logical calculations, and has storage and memory functions. It can run according to programs and automatically and quickly process massive amounts of data. It is a modern intelligent electronic device composed of a hardware system and a software system. In order to better transport signals stably and efficiently for the computer itself and in the process of using the computer for experiments, cables are generally used to transmit corresponding signals for adaptive experiments. When conducting different experiments or experiments of different scales, a large number of cables are needed. Stacking them in the laboratory may not only cause certain safety hazards, but also do not comply with laboratory regulations, affecting the subsequent work. Summary of the invention

[0003] In order to solve the technical problem of disorderly stacking, the present invention provides a winding device for computer experimental equipment.

[0004] The present invention is implemented by the following technical scheme: a winding device for computer experimental equipment, comprising a storage box for storage, wherein water tank 1 and water tank 2 are symmetrically arranged in the storage box, pushing frame 1 and pushing frame 2 are connected to water tank 1 and water tank 2 respectively, a trigger unit is connected between pushing frame 1 and pushing frame 2, a moving mechanism for arranging cables is connected in the storage box, a trigger for triggering is connected to the moving mechanism, a transmission shaft is connected through the middle of water tank 1 and water tank 2, a winding roller is sleeved on the outer side of the transmission shaft, both ends of the winding roller are fixedly connected with a limiting circle, an inner gear ring rotatably connected to the storage box is fixedly connected in the limiting circle, a telescopic rod 2 is connected to one side of water tank 1, a transmission tooth meshingly connected to the inner gear ring is meshedly connected to one side of the transmission tooth with a gear 2 fixedly sleeved to the transmission shaft, a telescopic rod 1 is connected to one side of water tank 2, a rotating circle is fixedly connected to the moving end of the telescopic rod 1, and a gear 1 connected to the transmission shaft is transmission-connected to the transmission shaft on one side of the rotating circle.

[0005] As a further improvement of the above scheme, the trigger unit includes a fixed cylinder slidably connected to the pushing frame one and the pushing frame two, both sides of the fixed cylinder are fixedly connected with electromagnets, one side of the electromagnet is fixedly connected with an elastic component, the other end of the elastic component is fixedly connected with a permanent magnet slidably connected to the fixed cylinder, and the two sides of the permanent magnet are respectively fixedly connected to the pushing frame one and the pushing frame two.

[0006] As a further improvement of the above scheme, the motion unit includes a motor located in a storage box, the output end of the motor is transmission-connected to a transmission assembly, one output end of the transmission assembly is transmission-connected to a transmission shaft, the other output end of the transmission assembly is transmission-connected to a transmission fixedly connected to the storage box, the output end of the transmission is transmission-connected to a lead screw, the outer spiral transmission of the lead screw is cooperatively connected to a slider, the bottom of the slider is connected to a pneumatic cylinder, the moving end of the pneumatic cylinder is fixedly connected to a moving plate, the moving plate is rotatably connected to a limiting plate on all sides through spring hinges, the moving plate is rotationally connected to a clamping plate, and a guide cylinder is clamped in the clamping plate.

[0007] As a further improvement of the above solution, the two sides of the movable plate are rotatably connected with a limited arc through a spring hinge, the slider is slidably sleeved with a guide rod fixedly connected to the transmission, and the two sides of the slider are fixedly connected with a contact frame matching the trigger.

[0008] As a further improvement of the above solution, a plurality of balls are rollingly embedded on one side of the limiting arc and the limiting plate, a plurality of through holes for cables to pass through are arranged in the guide cylinder, and a positioner is arranged in the slider.

[0009] As a further improvement of the above scheme, a deoxygenation box is clamped on the bottom of the storage box, an air pump is fixedly connected to one side of the deoxygenation box, the input end of the air pump is connected to an extraction pipe located in the storage box, the output end of the air pump is connected to an air pipe, the other end of the air pipe is connected to a placement box fixedly connected to the storage box, and a retention box is slidably sleeved inside the placement box.

[0010] As a further improvement of the above solution, the deoxidation box is filled with desiccant and deoxidizer, a plurality of suction tubes are fixedly connected to one side of the extraction tube, and a flow control tube is connected to the bottom of the deoxidation box.

[0011] As a further improvement of the above solution, both ends of the transmission shaft are respectively connected with a plug-in sleeve and a splicing ring, the plug-in sleeve and the splicing ring cooperate with each other, and a clamping groove is provided in the splicing ring.

[0012] As a further improvement of the above solution, a plurality of threaded holes are arranged on the top of the storage box, and a plurality of threaded columns are rotatably connected to the bottom of the storage box, and the threaded columns match with the threaded holes on another storage box.

[0013] As a further improvement of the above solution, a trapezoidal track is fixedly connected to one side of the storage box, a guide plate fixedly connected to the storage box is arranged on the outer side of the trapezoidal track, an adjustment plate is slidably sleeved on the guide plate, and a limiting roller is rotatably connected to the bottom of the adjustment plate.

[0014] Compared with the prior art, the present invention has the following beneficial effects:

[0015] 1. Through the transmission of motor power by the transmission shaft and the transmission of multiple gears, the winding roller can perform corresponding forward and reverse rotation, thereby realizing automatic wire winding and automatic wire release, thereby reducing cable dragging and wear, and extending the service life of the cable. At the same time, with the motion mechanism, the cables can be neatly stored to ensure subsequent reuse and meet the placement regulations of the laboratory.

[0016] 2. Through the cooperation of the plug-in sleeve, the splicing ring and the threaded column, multiple devices can be easily assembled to adapt to the storage of cables of different numbers and types. In addition, the filtering protection of the deoxidation box and the extraction and filtering of the air pump can ensure the storage environment of the cable and further improve the service life of the cable. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 It is a front structural diagram of the present invention;

[0018] Figure 2 It is a rear view structural diagram of the present invention;

[0019] Figure 3 It is a partial front view structural diagram of the present invention;

[0020] Figure 4 It is a partial rear view structural diagram of the present invention;

[0021] Figure 5 This is a front view of the internal structure of the present invention;

[0022] Figure 6 This is a rear view of the internal structure of the present invention;

[0023] Figure 7 This is the front view of the winding part;

[0024] Figure 8 This is the rear view of the winding part;

[0025] Fig. 9 It is a schematic diagram of the main cross-sectional view of the trigger unit;

[0026] Fig.10 Rear view of the motion unit

[0027] Fig.11 This is a side view of the motion unit.

[0028] Description of main symbols:

[0029] 01. Storage box; 02. Adjustment plate; 03. Limiting roller; 04. Guide plate; 05. Threaded column; 06. Plug sleeve; 07. Splicing ring; 08. Retention box; 12. Transmission; 13. Trigger; 14. Water tank 1; 15. Limiting ring; 16. Pushing frame 1; 18. Limiting arc; 19. Pushing frame 2; 20. Internal gear ring; 21. Gear 1; 22. Water tank 2; 23. Deoxidation box; 24. Placement box; 27. Trapezoidal track; 28. Slider ; 29. ​​Screw rod; 30. Contact frame; 31. Transmission shaft; 32. Air pump; 33. Telescopic rod one; 34. Air pipe; 35. Pneumatic cylinder; 36. Winding roller; 37. Extraction tube; 38. Motor; 39. Transmission assembly; 40. Gear two; 41. Transmission gear; 42. Guide cylinder; 43. Telescopic rod two; 45. Moving plate; 46. Clamping plate; 47. Limiting plate; 48. Fixed cylinder; 49. Electromagnet; 50. Permanent magnet; 51. Elastic assembly. DETAILED DESCRIPTION

[0030] The present invention is further described below in conjunction with the accompanying drawings and specific implementation methods. It should be noted that, under the premise of no conflict, the various embodiments or technical features described below can be arbitrarily combined to form a new embodiment.

[0031] Embodiment 1:

[0032] Please combine Figure 1-Figure 9 ,

[0033] A winding device for computer experimental equipment includes a storage box 01 for storage, a water tank 14 and a water tank 22 are symmetrically arranged in the storage box 01, a push frame 16 and a push frame 2 19 are connected to the water tank 14 and the water tank 2 22 respectively, a trigger unit is connected between the push frame 16 and the push frame 2 19, a motion mechanism for arranging cables is connected in the storage box 01, a trigger 13 for triggering is connected to the motion mechanism, and a trigger 13 for triggering is connected to the middle of the water tank 14 and the water tank 2 22. The transmission shaft 31 has a winding roller 36 sleeved on the outer side of the transmission shaft 31, and both ends of the winding roller 36 are fixedly connected to a limiting ring 15, and an inner gear ring 20 rotatably connected to the storage box 01 is fixedly connected inside the limiting ring 15. A telescopic rod 2 43 is connected to one side of the water tank 14, and a transmission tooth 41 meshingly connected to the inner gear ring 20 is rotatably sleeved on the movable end of the telescopic rod 2 43, and one side of the transmission tooth 41 is meshedly connected to a gear 2 40 fixedly sleeved to the transmission shaft 31, and a telescopic rod 22 is connected to one side of the water tank 2 The mobile end of the telescopic rod 33 is fixedly connected with a rotating circle, and one side of the rotating circle is rotatably connected with a gear 21 that is transmission-connected to the transmission shaft 31. The storage box 01 stores and stores the cables and internal devices as a whole to ensure the sealing of the cable storage as a whole. The water tank 14 and the water tank 22 store liquid. When necessary, the liquid is moved under the push of the push frame 16 or the push frame 2 19, so that the liquid enters the telescopic rod 33 and the telescopic rod 2 43, or the liquid is transferred to the storage box 01. The body is drawn out from the telescopic rod 1 33 and the telescopic rod 2 43, so that the movable end of the telescopic rod 1 33 and the telescopic rod 2 43 is extended or contracted, driving the transmission tooth 41 or the gear 1 21 to move, and at the same time, through the transmission of the inner gear ring 20 or the gear 2 40, the inner gear rings 20 on both sides are rotated. Under the transmission of the gears, the inner gear ring 20, the limiting circle 15 and the winding roller 36 are rotated in two different directions, thereby realizing the winding and releasing of the cable, reducing the drag of the cable, and extending the service life of the cable.

[0034] The trigger unit includes a fixed cylinder 48 which is slidably connected to the push frame 16 and the push frame 2 19, and electromagnets 49 are fixedly connected to both sides of the fixed cylinder 48, and an elastic component 51 is fixedly connected to one side of the electromagnet 49, and the other end of the elastic component 51 is fixedly connected to a permanent magnet 50 which is slidably connected to the fixed cylinder 48. The two sides of the permanent magnet 50 are respectively fixedly connected to the push frame 16 and the push frame 2 19, and the fixed cylinder 48 guides and limits the push frame 1 16 and the push frame 2 19, and cooperates with the elastic component 51 to return the permanent magnet 50 to its original position. At the same time, the electromagnet 49 attracts or repels the permanent magnet 50 according to the direction of the current, so that the permanent magnet 50 drives the push frame 16 and the push frame 2 19 to move in different directions to perform triggering.

[0035] The implementation principle of the embodiment of the present application is: when working, the current direction of the electromagnet 49 is controlled by the trigger 13, so that the permanent magnet 50 is moved, thereby pressurizing one side of the water tank 14 or the water tank 22, and at the same time, the corresponding water tank 22 or water tank 14 liquid is extracted, so that the transmission tooth 41 or the gear 1 21 is moved to change the transmission direction, and then under the action of external force, the inner gear ring 20 and the limiting circle 15 are driven to rotate through the transmission shaft 31, so that the push frame 16 is used to wind or loosen the cable, so as to realize the storage and use of the cable.

[0036] Embodiment 2:

[0037] Combination Figure 1-Figure 11 Based on Example 1, this embodiment is further improved in that:

[0038] The motion unit includes a motor 38 located in the storage box 01, the output end of the motor 38 is transmission-connected to a transmission assembly 39, one output end of the transmission assembly 39 is transmission-connected to a transmission shaft 31, the other output end of the transmission assembly 39 is transmission-connected to a transmission 12 fixedly connected to the storage box 01, the output end of the transmission 12 is transmission-connected to a screw rod 29, the outer spiral transmission of the screw rod 29 is matched with a slider 28, the bottom of the slider 28 is connected to a pneumatic cylinder 35, the moving end of the pneumatic cylinder 35 is fixedly connected to a moving plate 45, the moving plate 45 is rotationally connected to a limiting plate 47 via spring hinges on all sides, the moving plate 45 is rotationally connected to a clamping sheet 46, the clamping sheet 46 holds a guide cylinder 42, the motor 38 outputs power, and the transmission assembly The transmission component 39 transmits power. The transmission component 39 is a combination of existing worm gears and gears and other existing mechanisms to achieve corresponding power transmission. The power of the transmission component 39 is transmitted to the transmission 12, which in turn drives the rotation of the lead screw 29 to achieve the movement of the slider 28. At this time, it drives the movement of the pneumatic cylinder 35, the movable plate 45, the clamping piece 46, the guide cylinder 42, and the limiting plate 47. The guide cylinder 42 drives the corresponding cable to move and make it neatly wound around the winding roller 36 or the outer side of the previous circle of cables to ensure subsequent use. The pneumatic cylinder 35 moves, driving the movable plate 45 to adjust the height of the guide cylinder 42 to ensure the winding of the cable, and the limiting plate 47 presses the surrounding cables to reduce the looseness of the cables and ensure the stability of the entire winding process.

[0039] The two sides of the movable plate 45 are rotatably connected with the limiting arc 18 through spring hinges, and the slider 28 is slidably sleeved with a guide rod fixedly connected to the transmission 12. The two sides of the slider 28 are fixedly connected with a contact frame 30 that cooperates with the trigger 13. The limiting arc 18 provides certain protection for the cables after multi-layer winding. The guide rod ensures the stability of the movement of the slider 28. After the contact frame 30 contacts the trigger 13, the transmission 12 is operated to change the rotation direction of the screw rod 29 to carry out the winding of the next layer. At the same time, the moving end of the pneumatic cylinder 35 moves to adapt to the change in diameter after winding.

[0040] Multiple balls are rolled and embedded on one side of the limiting arc 18 and the limiting plate 47. Multiple through holes for cables to pass through are set in the guide cylinder 42. A positioner is set in the slider 28. The balls reduce friction when the cables move, and the through holes facilitate the movement of the cables. The positioner is an existing mechanism for positioning the slider 28.

[0041] The implementation principle of the embodiment of the present application is as follows: when winding is performed, the winding roller 36 rotates for winding, and the transmission 12 works synchronously, so that the screw rod 29 rotates, and the slider 28 moves, driving the movement of the pneumatic cylinder 35, the movable plate 45, the guide cylinder 42, etc. The guide cylinder 42 guides the cable so that it presents a spiral trajectory relative to the winding roller 36, and is wound on the winding roller 36, so that the cable can be stably socketed. After the trigger 13 contacts the contact frame 30, the screw rod 29 changes its rotation direction under the drive of the transmission 12, driving the cable to move in another direction, thereby achieving periodic stable socketing.

[0042] Embodiment 3:

[0043] Combination Figure 1-Figure 11 Based on Example 1, this embodiment is further improved in that:

[0044] A deoxidation box 23 is clamped at the bottom of the storage box 01, and an air pump 32 is fixedly connected to one side of the deoxidation box 23. The input end of the air pump 32 is connected to an extraction pipe 37 located in the storage box 01, and the output end of the air pump 32 is connected to an air pipe 34. The other end of the air pipe 34 is connected to a placement box 24 fixedly connected to the storage box 01. A retention box 08 is slidably sleeved in the placement box 24. The deoxidation box 23 performs filtering and drying to ensure the dryness of the environment in the storage box 01. At the same time, with the suction of the air pump 32, dust or impurities that may be brought in pass through the extraction pipe 37 and the air pipe 34 into the retention box 08 in the placement box 24 for collection and filtration, and then are discharged through one side of the retention box 08, thereby reducing the accumulation of dust or other impurities in the storage box 01 and extending the service life of the cable.

[0045] The deoxidation box 23 is filled with desiccant and deoxidizer. A plurality of suction tubes are fixedly connected to one side of the extraction tube 37. A flow control tube is connected to the bottom of the deoxidation box 23. The suction tube expands the suction position of the extraction tube 37 to ensure the suction of dust. A valve is connected to the flow control tube to control the flow of gas in the deoxidation box 23 and the storage box 01.

[0046] Embodiment 4:

[0047] Combination Figure 1-11 Based on Example 1, this embodiment is further improved in that:

[0048] The two ends of the transmission shaft 31 are respectively connected with a plug-in sleeve 06 and a splicing ring 07, which cooperate with each other. A card slot is provided in the splicing ring 07, and the two plug-in sleeves 06 and splicing rings 07 can be connected to realize the connection between the two devices, which can adapt to the storage of cables of different sizes.

[0049] The top of the storage box 01 is provided with multiple threaded holes, and the bottom of the storage box 01 is rotatably connected with multiple threaded columns 05, which cooperate with the threaded holes on another storage box 01. Through the connection between the threaded columns 05 and the threaded holes, multiple devices can be stacked to accommodate cables of different sizes and place the entire device.

[0050] A trapezoidal channel 27 is fixedly connected to one side of the storage box 01, and a guide plate 04 fixedly connected to the storage box 01 is arranged on the outer side of the trapezoidal channel 27. An adjusting plate 02 is slidably sleeved on the guide plate 04, and a limiting roller 03 is rotatably connected to the bottom of the adjusting plate 02. The cable passes through the trapezoidal channel 27 and goes out of the storage box 01. At the same time, it is limited by the guide plate 04 and the adjusting plate 02 and extends out through the limiting roller 03. When the cable is pulled or recovered, the prestress on the cable can be adjusted, making the cable storage more stable.

[0051] The above-mentioned embodiments are only preferred embodiments of the present invention and cannot be used to limit the scope of protection of the present invention. Any non-substantial changes and substitutions made by technicians in this field on the basis of the present invention shall fall within the scope of protection required by the present invention.

Claims

1. A winding device for computer experimental equipment, characterized in that: It includes a storage box for storage, wherein water tank 1 and water tank 2 are symmetrically arranged in the storage box, pushing frame 1 and pushing frame 2 are connected to water tank 1 and water tank 2 respectively, a trigger unit is connected between pushing frame 1 and pushing frame 2, a moving mechanism for arranging cables is connected in the storage box, a trigger for triggering is connected to the moving mechanism, a transmission shaft is connected through the middle of water tank 1 and water tank 2, a winding roller is sleeved on the outer side of the transmission shaft, both ends of the winding roller are fixedly connected with a limiting circle, an inner gear ring rotatably connected to the storage box is fixedly connected in the limiting circle, a telescopic rod 2 is connected to one side of water tank 1, a moving end of the telescopic rod 2 is rotatably sleeved with a transmission tooth meshing with the inner gear ring, one side of the transmission tooth is meshingly connected with a gear 2 fixedly sleeved with the transmission shaft, a telescopic rod 1 is connected to one side of water tank 2, a moving end of the telescopic rod 1 is fixedly connected with a rotating circle, and one side of the rotating circle is rotatably connected with a gear 1 transmission-connected to the transmission shaft.

2. A winding device for computer experimental equipment as claimed in claim 1, characterized in that: The trigger unit includes a fixed cylinder slidably connected to the push frame 1 and the push frame 2, both sides of the fixed cylinder are fixedly connected with electromagnets, one side of the electromagnet is fixedly connected with an elastic component, the other end of the elastic component is fixedly connected with a permanent magnet slidably connected to the fixed cylinder, and the two sides of the permanent magnet are respectively fixedly connected to the push frame 1 and the push frame 2.

3. A winding device for computer experimental equipment as claimed in claim 1, characterized in that: The motion unit includes a motor located in a storage box, the output end of the motor is transmission-connected to a transmission assembly, one output end of the transmission assembly is transmission-connected to a transmission shaft, the other output end of the transmission assembly is transmission-connected to a transmission fixedly connected to the storage box, the output end of the transmission is transmission-connected to a lead screw, the outer spiral transmission of the lead screw is cooperatively connected to a slider, the bottom of the slider is connected to a pneumatic cylinder, the moving end of the pneumatic cylinder is fixedly connected to a moving plate, the moving plate is rotationally connected to limiting plates via spring hinges on all sides, the moving plate is rotationally connected to a clamping plate, and a guide cylinder is clamped in the clamping plate.

4. A winding device for computer experimental equipment as claimed in claim 3, characterized in that: The two sides of the moving plate are rotatably connected with a limited arc through a spring hinge, the slider is slidably sleeved with a guide rod fixedly connected to the transmission, and the two sides of the slider are fixedly connected with a contact frame matched with the trigger.

5. A winding device for computer experimental equipment as claimed in claim 4, characterized in that: A plurality of balls are rollingly embedded on one side of the limiting arc and the limiting plate, a plurality of through holes for cables to pass through are arranged in the guide cylinder, and a positioner is arranged in the slider.

6. A winding device for computer experimental equipment as claimed in claim 1, characterized in that: A deoxygenation box is clamped at the bottom of the storage box, an air pump is fixedly connected to one side of the deoxygenation box, an input end of the air pump is connected to an extraction pipe located in the storage box, an output end of the air pump is connected to an air pipe, the other end of the air pipe is connected to a placement box fixedly connected to the storage box, and a retention box is slidably sleeved inside the placement box.

7. A winding device for computer experimental equipment as claimed in claim 6, characterized in that: The deoxidation box is filled with desiccant and deoxidizer, a plurality of suction tubes are fixedly connected to one side of the extraction tube, and a flow control tube is connected to the bottom of the deoxidation box.

8. A winding device for computer experimental equipment as claimed in claim 1, characterized in that: The two ends of the transmission shaft are respectively connected with a plug-in sleeve and a splicing ring, the plug-in sleeve and the splicing ring cooperate with each other, and a clamping groove is arranged in the splicing ring.

9. A winding device for computer experimental equipment as claimed in claim 1, characterized in that: The top of the storage box is provided with a plurality of threaded holes, and the bottom of the storage box is rotatably connected with a plurality of threaded columns, which are matched with the threaded holes on another storage box.

10. A winding device for computer experimental equipment as claimed in claim 1, characterized in that: A trapezoidal track is fixedly connected to one side of the storage box, a guide plate fixedly connected to the storage box is arranged on the outer side of the trapezoidal track, an adjustment plate is slidably sleeved on the guide plate, and a limiting roller is rotatably connected to the bottom of the adjustment plate.