Translation in-place device for tall cabinet body

By designing a tall cabinet translation and positioning device, and utilizing manual hydraulic jacks and fork structures, the problem of translating and positioning cabinet equipment is solved, enabling safe and efficient installation. It is adaptable to cabinets of different sizes, and the components are detachable and reusable.

CN224132665UActive Publication Date: 2026-04-17BEIJING HUAHANG SHENGSHI ENERGY TECH
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
BEIJING HUAHANG SHENGSHI ENERGY TECH
Filing Date
2025-05-14
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

In electromechanical installation projects, it is difficult to move, position, and turn tall cabinet equipment. Manual operation is prone to collisions, friction, and squeezing, which can lead to equipment damage and safety hazards, and is also inefficient.

Method used

A tall cabinet translation and positioning device was designed, which includes a walking mechanism and a lifting mechanism. It utilizes a manual hydraulic jack and a fork structure to achieve direct positioning and movement of the cabinet, avoiding manual operation.

Benefits of technology

It improves the safety and efficiency of equipment installation, is compatible with cabinets of different sizes, and allows for the disassembly and reuse of components, saving manpower and resources and preventing equipment damage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a translation in-place device for a tall cabinet body. The translation in-place device comprises a walking mechanism and a lifting mechanism, the lifting mechanism comprises a base, a sliding frame, a supporting sliding block, a manual hydraulic jack, a connecting arm and a pallet fork. Two vertically extending sliding frames are arranged on the upper surface of the base in the length direction of the base in a spaced mode, the connecting arm is horizontally arranged between the two sliding frames, the two ends of the connecting arm are each provided with a supporting sliding block, and the supporting sliding blocks are connected with the sliding frames in a sliding mode; a manual hydraulic jack is arranged on the upper surface of the base, and the telescopic end of the manual hydraulic jack is connected with the connecting arm; a pallet fork is connected to the connecting arm and horizontally extends outwards in the direction perpendicular to the base. The walking mechanism is installed below the base. The device has the advantages that the problem of secondary movement during installation of cabinet equipment is solved, the cabinet equipment can be directly positioned on the basis, a large amount of manpower and material resources are saved, and the movement efficiency and safety are guaranteed.
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Description

Technical Field

[0001] This utility model relates to the field of equipment handling technology, and in particular to a device for moving and positioning tall cabinets. Background Technology

[0002] In electromechanical installation engineering, various power distribution cabinets and control cabinets are relatively sophisticated, valuable, heavy, and require stringent installation conditions, necessitating the avoidance of significant vibration and impact. In most cases, these devices are housed in power distribution rooms and control rooms. These equipment rooms typically have cable trenches and cable trays, limiting interior height and hindering the use of large hoisting equipment. This makes moving, positioning, and turning the equipment very difficult, often requiring manual labor in most situations.

[0003] The current practice typically involves using lifting equipment to hoist the equipment onto a manual hydraulic trolley or similar transfer tool, then moving it indoors to its designated location. Once there, it is manually unloaded from the trolley, carried across cable trenches, lifted onto the base steel channel, and then adjusted and moved to meet requirements. During manual operation, collisions, friction, and compression are unavoidable, posing significant risks to the equipment's appearance, the safety of its internal precision components, and personal safety, increasing the risk of accidents. Furthermore, this process is time-consuming, labor-intensive, and inefficient. This is particularly true for large and heavy equipment such as high-voltage distribution cabinets. Utility Model Content

[0004] The purpose of this invention is to provide a tall cabinet translation and positioning device, thereby solving the aforementioned problems existing in the prior art.

[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows:

[0006] A tall cabinet translation and positioning device includes a traveling mechanism and a lifting mechanism. The lifting mechanism includes a base, a sliding frame, a support slider, a manual hydraulic jack, a connecting arm, and forks. Two vertically extending sliding frames are spaced apart along the length of the upper surface of the base. The connecting arm is horizontally positioned between the two sliding frames, and a support slider is provided at each end of the connecting arm, with the support slider slidably connected to the sliding frame. The manual hydraulic jack is mounted on the upper surface of the base, and its telescopic end is connected to the connecting arm. Forks are connected to the connecting arm, and the forks extend horizontally outward in a direction perpendicular to the base. The traveling mechanism is installed below the base.

[0007] Preferably, the connecting arm includes a fork hanger and a drive plate arranged vertically and parallel to each other; the forks are hung on the fork hanger; the telescopic end of the manual hydraulic jack is connected to the drive plate via a top plate.

[0008] Preferably, the fork includes at least two fork heads, which are sequentially and alternately hooked onto the connecting arm, and the fork heads extend horizontally outward in a direction perpendicular to the base.

[0009] Preferably, the fork head is L-shaped, and one end of the fork head is bent into a hook and hooked onto the fork hanger.

[0010] Preferably, the sliding frame includes two support plates spaced apart in a direction parallel to the forks, and the support slider extends between the two support plates to allow the support slider to slide up and down along the sliding frame.

[0011] Preferably, the connecting arm includes an auxiliary plate, and both ends of the connecting arm are respectively connected to a corresponding support slider via an auxiliary plate.

[0012] Preferably, the auxiliary plate is L-shaped and covers the gap between the two support plates of the sliding frame and the outer side of one of the support plates of the sliding frame.

[0013] Preferably, the walking mechanism includes a support frame and casters, the support frame is installed below the base, and a plurality of casters are provided on the lower side of the support frame.

[0014] Preferably, the support frame includes two parallel and spaced-apart support arms, each support arm including a horizontally arranged longitudinal beam. The two longitudinal beams are fixed parallel to each other at a distance to the lower side of the base, and the longitudinal beams are perpendicular to the base.

[0015] Preferably, the support arm further includes a crossbeam perpendicular to the longitudinal beam. The crossbeam has a plurality of first connecting holes spaced apart along its length, penetrating its upper and lower sides. The base has a plurality of second connecting holes spaced apart along its length, penetrating its upper and lower sides. The crossbeams of the two support arms extend towards each other below the base. Fasteners pass through the first connecting holes and the second connecting holes in sequence to fix the base and the support arm together.

[0016] The beneficial effects of this utility model are: 1. It solves the problem of secondary relocation of cabinet equipment during installation, allowing the cabinet equipment to be directly placed on the foundation, saving a significant amount of manpower and resources, and ensuring both efficiency and safety during relocation. 2. The distance between the crossbeams and forks can be adjusted according to the size of the cabinet equipment, making it adaptable to cabinet equipment of different sizes and highly versatile. 3. All related components are detachable and reassembleable, allowing for multiple uses. 4. It is easy to obtain materials and simple to manufacture. Attached Figure Description

[0017] Figure 1 This is a top view of the device in an embodiment of this utility model;

[0018] Figure 2This is a structural diagram of the lifting mechanism in an embodiment of this utility model;

[0019] Figure 3 This is a structural diagram of the walking mechanism in an embodiment of this utility model.

[0020] In the diagram: 1. Traveling mechanism; 11. Longitudinal beam; 12. Crossbeam; 13. Casters; 14. First fixing hole; 2. Lifting mechanism; 21. Manual hydraulic jack; 22. Base; 23. Fork hanger; 24. Drive plate; 25. Auxiliary plate; 26. Fork head; 27. Support slider; 28. Top plate; 29. ​​Second fixing hole; 30. Sliding frame. Detailed Implementation

[0021] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the scope of the present utility model.

[0022] This embodiment provides a cabinet-type equipment translation and positioning device that is simple in structure, easy to use, low in cost, and fast, efficient, and safe in specific situations. It replaces the shortcomings of existing manual hydraulic pallet trucks, which can only move equipment but not position it, enabling the entire process of hoisting and positioning electrical distribution cabinets to be completed on this "device." It can directly position the equipment onto the channel steel base of the distribution cabinet, avoiding manual handling and crossing cable trenches—operations prone to accidents. Only a simple check or minor adjustment of the equipment's level and verticality is needed after positioning. It requires less labor, is safer to operate, improves work efficiency, and avoids damage to the equipment. Figure 1 As shown, the device includes a walking mechanism 1 and a lifting mechanism 2; the lifting mechanism 2 is used to place, lift or lower the cabinet to be transported, and the walking device is used to drive the lifting mechanism 2 and the cabinet to be transported on the lifting mechanism 2 to move to the corresponding position.

[0023] 1. Upgrade mechanism 2

[0024] like Figure 3 As shown, the lifting mechanism 2 includes a base 22, a sliding frame 30, a support slider 27, a manual hydraulic jack 21, a connecting arm, and forks. Two vertically extending sliding frames 30 are spaced apart along the length of the upper surface of the base 22. The connecting arm is horizontally positioned between the two sliding frames 30, and a support slider 27 is provided at each end of the connecting arm, with the support slider 27 slidably connected to the sliding frame 30. The manual hydraulic jack 21 is located on the upper surface of the base 22, and its telescopic end is connected to the connecting arm. Forks are connected to the connecting arm, extending horizontally outward in a direction perpendicular to the base 22. The traveling mechanism 1 is installed below the base 22.

[0025] In this embodiment, the connecting arm includes a fork hanger 23 and a drive plate 24 arranged vertically and parallel to each other; the forks are hung on the fork hanger 23; the telescopic end of the manual hydraulic jack 21 is connected to the drive plate 24 via the top plate 28.

[0026] The forks include at least two fork heads 26, which are sequentially and spaced apart and hooked onto the connecting arm. The fork heads 26 extend horizontally outward in a direction perpendicular to the base 22. Each fork head 26 is L-shaped, with one end bent into a hook and hooked onto the fork hanger 23. The number of fork heads 26 can be selected according to actual needs. The distance between adjacent fork heads 26 can be adjusted according to the size of the cabinet to be transported, in order to accommodate cabinets of different sizes.

[0027] The sliding frame 30 includes two support plates spaced apart in a direction parallel to the forks, and the support slider 27 extends between the two support plates to allow the support slider 27 to slide up and down along the sliding frame 30.

[0028] The connecting arm includes an auxiliary plate 25, with each end of the connecting arm connected to a corresponding support slider 27 via an auxiliary plate 25. The auxiliary plate 25 is L-shaped and covers the gap between the two support plates of the sliding frame 30 and the outer side of one of the support plates. The auxiliary plate 25 guides the support slider 27, preventing it from tilting during vertical movement and affecting the transport efficiency. Furthermore, the auxiliary plate 25 acts as a shield, preventing foreign objects from entering between the support slider 27 and the sliding frame 30 during vertical movement and affecting its movement. To ensure smooth vertical movement between the support slider 27 and the sliding frame 30, lubricant can be applied to the support slider 27, auxiliary plate 25, and sliding frame 30 to reduce friction and improve the smoothness of vertical movement.

[0029] 2. Walking mechanism 1

[0030] like Figure 2 As shown, the walking mechanism 1 includes a support frame and casters 13. The support frame is installed below the base 22, and multiple casters 13 are provided on the lower side of the support frame.

[0031] The support frame includes two parallel and spaced-apart support arms. Each support arm includes a horizontally arranged longitudinal beam 11, which is fixed parallel to and spaced apart on the lower side of the base 22, and the longitudinal beam 11 is perpendicular to the base 22. The support arm also includes a crossbeam 12, which is perpendicular to the longitudinal beam 11. The crossbeam 12 has multiple first connecting holes 14 spaced along its length, penetrating its upper and lower sides. The base 22 has multiple second connecting holes 29 spaced along its length, penetrating its upper and lower sides. The crossbeams 12 of the two support arms extend towards each other below the base 22. Fasteners pass through the first connecting holes 14 and the second connecting holes 29 in sequence to securely connect the base 22 to the support arm.

[0032] The distance between the two support arms can be adjusted according to the actual situation to better facilitate the handling work.

[0033] In this embodiment, before use, the crossbeams 12 of the two support arms are placed below the base 22. The distance between the crossbeams 12 of the two support arms is adjusted according to the actual situation. After it is appropriate, the crossbeams 12 and the base 22 are connected to each other through the first connecting hole 14 and the second connecting hole 29 to achieve a fixed connection between the support arms and the base 22. Then, the manual hydraulic jack 21 and the sliding frame 30 are installed on the base 22, and the fork hanger 23, the drive plate 24, the support slider 27, the manual hydraulic jack 21, and the sliding frame 30 are connected to each other. Finally, the forks are hung on the fork hanger 23, and the assembly is completed. When using the device, the height of the forks is first adjusted by lowering the manual hydraulic jack 21 according to the cabinet to be transported. The forks are then extended under the cabinet to be transported by the traveling mechanism 1. The forks are then raised again by the manual hydraulic jack 21 to lift the cabinet to be transported to a suitable height. Finally, the cabinet to be transported is moved to the target position by the traveling mechanism 1. Then, the forks are lowered again using the manual hydraulic jack 21 to place the cabinet to be moved into the target position.

[0034] By adopting the above-disclosed technical solution of this utility model, the following beneficial effects are obtained:

[0035] This invention provides a tall cabinet sliding and positioning device, solving the problem of secondary movement during cabinet equipment installation. It allows for direct placement of the cabinet equipment on the foundation, saving significant manpower and resources while ensuring both efficiency and safety. The distance between the crossbeams and forks can be adjusted according to the cabinet equipment's dimensions, making it adaptable to different sizes and highly versatile. All components are detachable and reusable. Materials are readily available, and the device is simple and easy to manufacture.

[0036] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the principle of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.

Claims

1. A high cabinet translational positioning device, characterized by: The system includes a walking mechanism and a lifting mechanism. The lifting mechanism includes a base, a sliding frame, a support slider, a manual hydraulic jack, a connecting arm, and forks. Two vertically extending sliding frames are spaced apart along the length of the upper surface of the base. The connecting arm is horizontally positioned between the two sliding frames, and a support slider is provided at each end of the connecting arm, with the support slider slidably connected to the sliding frame. The manual hydraulic jack is mounted on the upper surface of the base, and its telescopic end is connected to the connecting arm. Forks are connected to the connecting arm, and the forks extend horizontally outward in a direction perpendicular to the base. The walking mechanism is installed below the base.

2. The tall cabinet body translation into position device of claim 1, wherein: The connecting arm includes a fork hanger and a drive plate arranged vertically and parallel to each other; the forks are hung on the fork hanger; the telescopic end of the manual hydraulic jack is connected to the drive plate via the top plate.

3. The tall cabinet body translation into position device of claim 2, wherein: The fork includes at least two fork heads, which are sequentially and spaced apart and hooked onto the connecting arm. The fork heads extend horizontally outward in a direction perpendicular to the base.

4. The tall cabinet body translation into position device of claim 3, wherein: The fork head is L-shaped, and one end of the fork head is bent into a hook and hooked onto the fork hanger.

5. The tall cabinet body translation into position device of claim 4, wherein: The sliding frame includes two support plates spaced apart in a direction parallel to the forks, and the support slider extends between the two support plates to allow the support slider to slide up and down along the sliding frame.

6. The tall cabinet body translation into position device of claim 5, wherein: The connecting arm includes an auxiliary plate, and both ends of the connecting arm are connected to corresponding support sliders via an auxiliary plate.

7. The tall cabinet body translation into position device of claim 6, wherein: The auxiliary plate is L-shaped and covers the gap between the two support plates of the sliding frame and the outer side of one of the support plates of the sliding frame.

8. The tall cabinet translational siting device of any of claims 1-7, wherein: The walking mechanism includes a support frame and casters. The support frame is installed below the base, and multiple casters are provided on the lower side of the support frame.

9. The tall cabinet body translation into position device of claim 8, wherein: The support frame includes two parallel and spaced-apart support arms. Each support arm includes a horizontally arranged longitudinal beam. The two longitudinal beams are fixed parallel to each other on the lower side of the base, and the longitudinal beams are perpendicular to the base.

10. The tall cabinet body translation into position device of claim 9, wherein: The support arm also includes a crossbeam perpendicular to the longitudinal beam. The crossbeam has multiple first connecting holes spaced along its length, penetrating its upper and lower sides. The base has multiple second connecting holes spaced along its length, penetrating its upper and lower sides. The crossbeams of the two support arms extend towards each other below the base. Fasteners pass through the first and second connecting holes in sequence to fix the base and the support arm together.