Cross-country high-altitude hot-line work storehouse car based on dual-power system

By designing a combination structure of dual power system and ladder rubber plate on the warehouse RV, the problem of equipment shaking during driving is solved, and compatibility of climbing is achieved, improving the safety and efficiency of equipment.

CN119975161APending Publication Date: 2025-05-13WUHAN NARI LIABILITY OF STATE GRID ELECTRIC POWER RES INST +1
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Patent Information

Application Number
CN202510222109.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-27
Publication Date
2025-05-13

AI Technical Summary

Technical Problem

Existing warehouse RVs cannot achieve compatibility between the squeeze limit of objects and climbing use when in use, causing the equipment to shake up and down while driving, increasing the risk of damage.

Method used

A off-road type high-altitude live-operated operation warehouse RV based on dual power system is designed, and a combination of ladder and rubber plate is adopted. The ladder is moved downward under the extrusion of the top of the box, and the rubber plate is fixed to avoid shaking. At the same time, the ladder can move upward and cooperate with the connecting groove to form a climbing frame.

Benefits of technology

It effectively avoids shaking and damage to the equipment during vehicle driving, and realizes short-distance climbing, improving the efficiency and safety of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a dual-power system-based cross-country high-altitude hot-line work storehouse car, which comprises a car frame, a cab is fixedly mounted at one end of the car frame, a box body is fixedly mounted on the car frame, a groove is formed in the side of the box body, a box door is movably mounted in the groove, a supporting rod is movably mounted on the side of the box door, and the supporting rod is movably mounted on the side of the box door. A movable plate is fixed to one end of the supporting rod, and a photovoltaic panel is fixed to the top of the box body. When the cross-country type high-altitude hot-line work storehouse car based on the dual-power system is used, the crawling ladder moves downwards under extrusion of the top of the box body, and after the crawling ladder moves downwards, rubber plates on the sides of cross rods complete extrusion and fixation of equipment in the storage box, so that damage caused by vertical shaking of the equipment in the running process of the car is effectively avoided; in addition, in the later period, the crawling ladder is moved upwards to be matched with the connecting groove to form a climbing frame for short-distance climbing use.
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Description

Technical Field

[0001] The invention relates to the field of warehouse vehicle equipment, and in particular to an off-road high-altitude live-working warehouse vehicle based on a dual-power system. Background Art

[0002] Mobile warehouse vehicles are used to store live working tools and can be moved anytime and anywhere. Currently, the shelves in most warehouse vehicles are of the same structure. Live working tools are placed in a disorderly manner and piled up on the shelves, which will cause punctures or scratches on the surface of the tools. Different live working tools cannot be classified and properly stored.

[0003] According to the patent document with the existing publication number CN221366752U, a mobile warehouse vehicle for placing live working tools is disclosed, which includes a mobile warehouse vehicle, the front part of the mobile warehouse vehicle is a cab, the rear part of the mobile warehouse vehicle is a carriage, and a partition wall is arranged between the cab and the carriage. Its structural characteristics are: a shelf is installed in the carriage, and the shelf includes a left shelf, a right shelf and an aisle. The left shelf and the right shelf are respectively arranged on the left and right sides of the aisle. The left shelf is provided with a first left placement area, a second left placement area, a third left placement area, a fourth left placement area and a fifth left placement area. When the technical scheme is used, it can be effectively improved. Various live working tools are classified and placed in pieces, which can play a good protective role. The tools used are classified and placed in pieces, and the working efficiency can also be effectively improved. The material cost and time cost caused by equipment damage are reduced. With respect to the above technical scheme, although the scheme reduces the damage to the equipment, it cannot achieve the extrusion limit of the object and complete the climbing use at the same time, which is inconvenient when used. Summary of the invention

[0004] In view of the shortcomings of the prior art, the purpose of the present invention is to provide an off-road high-altitude live-working warehouse vehicle based on a dual-power system to solve the problems raised in the above-mentioned background technology. The present invention has a novel structure. When in use, the ladder moves downward under the squeezing of the top of the box body. After the ladder moves downward, the rubber plate on the side of the cross bar completes the squeezing and fixing of the equipment inside the storage box, effectively avoiding damage caused by the up and down shaking of the equipment during the driving of the vehicle. In addition, the ladder is moved upward at a later stage to cooperate with the connecting groove to form a climbing frame for short-distance climbing.

[0005] In order to achieve the above-mentioned objectives, the present invention is implemented through the following technical solutions: an off-road high-altitude live-working warehouse vehicle based on a dual power system, comprising a frame, a cab is fixedly installed at one end of the frame, a box is fixedly installed on the frame, a groove is opened on the side of the box, a box door is movably installed inside the groove, a support rod is movably installed on the side of the box door, a movable plate is fixed at one end of the support rod, a photovoltaic panel is fixed on the top of the box, the photovoltaic panel cooperates with the movable plate, a slide groove is opened on the side of the box, a slider is movably installed inside the slide groove, and one end of the slider is fixed to the side of the movable plate.

[0006] Furthermore, a limiting opening is formed at the bottom of the groove, a limiting rod is movably installed inside the limiting opening, and one end of the limiting rod is movably installed inside the supporting rod.

[0007] Furthermore, a mounting cavity is formed inside the support rod, a supporting mechanism is fixed inside the mounting cavity, and one end of the supporting mechanism is fixed to one end of the limiting rod.

[0008] Furthermore, a fixing component is installed on the cabinet door, a limiting hole is opened at the bottom of the groove, the fixing component cooperates with the limiting hole, and a cabinet door is movably installed at one end of the cabinet body.

[0009] Furthermore, a cavity is opened inside the box body, and a storage component is slidably installed inside the cavity, and the storage component includes a movable seat.

[0010] Furthermore, a fixing plate is welded to one side of the movable seat, a supporting plate is welded to the other end of the movable seat, and a storage box is fixedly mounted on the fixing plate.

[0011] Furthermore, a ladder is movably mounted on one end of the storage box, the ladder is movably mounted on a support plate, and a fixing frame is welded and fixed to a side of the support plate.

[0012] Furthermore, a cross bar is welded on the ladder, a rubber plate is fixed to the side of the cross bar, a limiting block is fixed to the side of the ladder, and a limiting groove is opened on the support plate.

[0013] Furthermore, a tension mechanism is fixed inside the limiting groove, one end of the tension mechanism is fixed on the limiting block, and a fixing hole is opened on the cross bar.

[0014] Furthermore, a connecting groove and a threaded hole are respectively opened on the inner wall of the support plate, the threaded hole cooperates with the fixing hole, a limiting seat is welded at the bottom of the movable seat, a movable groove is opened on the inner wall of the cavity, and the limiting seat is movably installed inside the movable groove.

[0015] Beneficial effects of the present invention:

[0016] 1. This is an off-road high-altitude live-working warehouse vehicle based on a dual-power system. When in use, the ladder moves downward under the squeeze of the top of the box. After the ladder moves downward, the rubber plate on the side of the cross bar completes the squeezing and fixing of the equipment inside the storage box, effectively avoiding damage caused by the up and down shaking of the equipment during the driving of the vehicle. In addition, the ladder is moved upward at a later stage to cooperate with the connecting groove to form a climbing frame for short-distance climbing.

[0017] 2. This is an off-road high-altitude live-working warehouse vehicle based on a dual-power system, which provides dual-power support for the vehicle through electrical energy and mechanical energy. When in use, the limit rod is raised and the support rod loses its limit, and the support rod drives the movable plate to move to the side. After the movable plate moves, the photovoltaic panel opens to convert light energy. In addition, the movable plates extend from both sides to form a shielding shed for shielding, which effectively shields and protects objects falling from heights. The support rod and the limit rod cooperate to limit the movable plate while providing double-point support. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 It is a structural schematic diagram of an off-road high-altitude live-working warehouse vehicle based on a dual-power system of the present invention;

[0019] Figure 2 It is a structural schematic diagram of an off-road high-altitude live-working garage vehicle based on a dual-power system of the present invention after the movable plate is opened;

[0020] Figure 3 It is a structural schematic diagram of point A of an off-road high-altitude live-working warehouse vehicle based on a dual-power system of the present invention after enlargement;

[0021] Figure 4 It is a schematic diagram of the structure inside the box of an off-road high-altitude live-working warehouse vehicle based on a dual-power system of the present invention;

[0022] Figure 5 It is a structural schematic diagram of a storage assembly of an off-road high-altitude live-working garage vehicle based on a dual-power system of the present invention;

[0023] Figure 6 It is a schematic diagram of the side cross-sectional structure of a movable seat of an off-road high-altitude live-working warehouse vehicle based on a dual-power system of the present invention;

[0024] Figure 7 It is a structural schematic diagram of a connection slot of an off-road high-altitude live-working garage vehicle based on a dual-power system of the present invention;

[0025] In the figure: 1. frame; 2. cab; 3. box; 4. movable plate; 5. photovoltaic panel; 6. slide; 7. support rod; 8. limit rod; 9. groove; 10. box door; 11. fixing component; 12. cabinet door; 13. installation cavity; 14. support mechanism; 15. limit opening; 16. cavity; 17. storage component; 18. movable seat; 19. fixing plate; 20. storage box; 21. support plate; 22. fixing frame; 23. ladder; 24. limit seat; 25. cross bar; 26. rubber sheet; 27. fixing hole; 28. limit groove; 29. ​​tension mechanism; 30. limit block; 31. connecting groove; 32. threaded hole. DETAILED DESCRIPTION

[0026] In order to make the technical means, creative features, objectives and effects achieved by the present invention easy to understand, the present invention is further explained below in conjunction with specific implementation methods.

[0027] See also Figures 1 to 7 The present invention provides a technical solution: an off-road high-altitude live-working warehouse vehicle based on a dual-power system, comprising a frame 1, a cab 2 is fixedly installed at one end of the frame 1, a box 3 is fixedly installed on the frame 1, a groove 9 is opened on the side of the box 3, a box door 10 is movably installed inside the groove 9, a support rod 7 is movably installed on the side of the box door 10, a movable plate 4 is fixed at one end of the support rod 7, a photovoltaic panel 5 is fixed on the top of the box 3, the photovoltaic panel 5 cooperates with the movable plate 4, a slide groove 6 is opened on the side of the box 3, a slider is movably installed inside the slide groove 6, one end of the slider is fixed to the side of the movable plate 4, and the slider cooperates with the slide groove 6 to provide two-way support for the movable plate 4, thereby effectively avoiding the influence caused by the tilting of one end of the movable plate 4.

[0028] In this embodiment, a limiting opening 15 is formed at the bottom of the groove 9, a limiting rod 8 is movably installed inside the limiting opening 15, one end of the limiting rod 8 is movably installed inside the support rod 7, an installation cavity 13 is formed inside the support rod 7, a supporting mechanism 14 is fixed inside the installation cavity 13, one end of the supporting mechanism 14 is fixed to one end of the limiting rod 8, a fixing component 11 is installed on the box door 10, a limiting hole is formed at the bottom of the groove 9, the fixing component 11 cooperates with the limiting hole, a cabinet door 12 is movably installed at one end of the box body 3, the supporting mechanism 14 is a supporting spring, the supporting spring pushes the limiting rod 8 into the limiting opening 15, and the limiting rod 8 and the limiting opening 15 cooperate to limit and fix the movable plate 4.

[0029] In this embodiment, a cavity 16 is opened inside the box body 3, and a storage assembly 17 is slidably installed inside the cavity 16. The storage assembly 17 includes a movable seat 18, a fixed plate 19 is welded to one side of the movable seat 18, and a support plate 21 is welded to the other end of the movable seat 18. A storage box 20 is fixedly installed on the fixed plate 19, and a ladder 23 is movably installed at one end of the storage box 20. The ladder 23 is movably installed on the support plate 21, and a fixing frame 22 is welded and fixed to the side of the support plate 21. The fixing frame 22 can form a handle to facilitate the movement of the movable seat 18. In addition, tools can be inserted into the fixing frame 22 to form a storage point for storage.

[0030] In this embodiment, a cross bar 25 is welded on the ladder 23, a rubber plate 26 is fixed on the side of the cross bar 25, a limit block 30 is fixed on the side of the ladder 23, a limit groove 28 is opened on the support plate 21, a tension mechanism 29 is fixed inside the limit groove 28, one end of the tension mechanism 29 is fixed on the limit block 30, a fixing hole 27 is opened on the cross bar 25, and a connecting groove 31 and a threaded hole 32 are respectively opened on the inner wall of the support plate 21, and the threaded hole 32 cooperates with the fixing hole 27. A limit seat 24 is welded to the bottom of the movable seat 18, and a movable groove is opened on the inner wall of the cavity 16. The limit seat 24 is movably installed inside the movable groove. The tension mechanism 29 is a tension spring, and the tension spring drives the limit block 30 to move upward. After the limit block 30 moves upward, it pushes the top of the ladder 23 to contact the top of the box body 3 for limited fixing. When the storage assembly 17 is pulled out, the ladder 23 is driven by the tension mechanism 29 to quickly open upward. After opening, it is convenient to form a staircase for short-distance climbing.

[0031] The device provides the required kinetic energy for the device through hybrid oil and electricity. When in use, the vehicle is stopped at the working position. The movable plate 4 can be opened according to the working conditions. When the movable plate 4 is opened, the limiting rod 8 is pushed from the bottom of the limiting opening 15 to enter the inside of the support rod 7. After the limiting rod 8 is separated from the limiting opening 15, the movable plate 4 loses the limiting force, and the movable plate 4 moves to one side under the drive of the support rod 7. When the slider on the movable plate 4 moves to one end of the slide groove 6, the movable plate 4 stops moving, and the limiting rod 8 is completely exposed from one end of the support rod 7. The limiting rod 8 contacts the ground to support the movable plate 4. After the movable plate 4 is opened, the photovoltaic panel 5 is opened at the position. After opening, the photovoltaic panel 5 is used to supplement the vehicle with electric energy while providing electricity support for the work. When it is necessary to take the workpiece inside the storage component 17, the cabinet door 12 is opened, and the movable seat 18 is driven by the fixed frame 22 to move in the cavity 16 The movable seat 18 moves inside the movable groove, and the movable seat 18 moves to the limit seat 24 and moves inside the movable groove. As the movable seat 18 moves, the top of the ladder 23 loses its limit. After the ladder 23 loses its limit, the rubber plate 26 loses the squeezing of the tools inside the storage box 20, which is convenient for taking and using the tools inside the storage box 20. When it is necessary to climb through the ladder 23, the ladder 23 moves upward to align the fixing hole 27 with the threaded hole 32. After the fixing hole 27 and the threaded hole 32 are aligned, they are fixed by fixing bolts. After the ladder 23 is fixed, it cooperates with the connecting groove 31 to climb a short distance. When the storage assembly 17 is not in use, the storage assembly 17 is moved to the inside of the box body 3, and the ladder 23 moves downward under the squeezing of the top of the box body 3. The ladder 23 generates an upward reaction force to achieve the limit fixation of the storage assembly 17, thereby effectively avoiding the shaking of the storage assembly 17 inside the box body 3.

[0032] The above shows and describes the basic principles and main features of the present invention and the advantages of the present invention. It is obvious to those skilled in the art that the present invention is not limited to the details of the above exemplary embodiments, and the present invention can be implemented in other specific forms without departing from the spirit or basic features of the present invention. Therefore, no matter from which point of view, the embodiments should be regarded as exemplary and non-restrictive. The scope of the present invention is defined by the attached claims rather than the above description, and it is intended that all changes falling within the meaning and scope of the equivalent elements of the claims are included in the present invention. Any figure mark in the claims should not be regarded as limiting the claims involved.

[0033] In addition, it should be understood that although the present specification is described according to implementation modes, not every implementation mode contains only one independent technical solution. This description of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment may also be appropriately combined to form other implementation modes that can be understood by those skilled in the art.

Claims

1. An off-road high-altitude live-work warehouse vehicle based on a dual-power system, comprising a vehicle frame (1), characterized in that: A cab (2) is fixedly mounted on one end of the vehicle frame (1); a box (3) is fixedly mounted on the vehicle frame (1); a groove (9) is formed on the side of the box (3); a box door (10) is movably mounted inside the groove (9); a support rod (7) is movably mounted on the side of the box door (10); a movable plate (4) is fixed on one end of the support rod (7); a photovoltaic panel (5) is fixed on the top of the box (3); the photovoltaic panel (5) cooperates with the movable plate (4); a slide groove (6) is formed on the side of the box (3); a slider is movably mounted inside the slide groove (6); one end of the slider is fixed to the side of the movable plate (4).

2. According to claim 1, an off-road high-altitude live-working warehouse vehicle based on a dual-power system is characterized in that: A limiting opening (15) is formed at the bottom of the groove (9), a limiting rod (8) is movably mounted inside the limiting opening (15), and one end of the limiting rod (8) is movably mounted inside the support rod (7).

3. According to claim 2, an off-road high-altitude live-working warehouse vehicle based on a dual-power system is characterized by: The support rod (7) has an installation cavity (13) formed inside, a support mechanism (14) is fixed inside the installation cavity (13), and one end of the support mechanism (14) is fixed to one end of the limiting rod (8).

4. According to claim 1, an off-road high-altitude live-working warehouse vehicle based on a dual-power system is characterized by: A fixing assembly (11) is installed on the cabinet door (10), a limiting hole is provided at the bottom of the groove (9), the fixing assembly (11) cooperates with the limiting hole, and a cabinet door (12) is movably installed at one end of the cabinet body (3).

5. According to claim 1, an off-road high-altitude live-working warehouse vehicle based on a dual-power system is characterized by: A cavity (16) is opened inside the box body (3), and a storage assembly (17) is slidably installed inside the cavity (16), and the storage assembly (17) includes a movable seat (18).

6. According to claim 5, an off-road high-altitude live-working warehouse vehicle based on a dual-power system is characterized in that: A fixing plate (19) is welded to one side of the movable seat (18), a supporting plate (21) is welded to the other end of the movable seat (18), and a storage box (20) is fixedly mounted on the fixing plate (19).

7. The off-road high-altitude live-working warehouse vehicle based on a dual-power system according to claim 6 is characterized by: A ladder (23) is movably mounted on one end of the storage box (20), and the ladder (23) is movably mounted on a support plate (21). A fixing frame (22) is welded and fixed to the side of the support plate (21).

8. According to claim 7, an off-road high-altitude live-working warehouse vehicle based on a dual-power system is characterized in that: A cross bar (25) is welded on the ladder (23), a rubber plate (26) is fixed on the side of the cross bar (25), a limiting block (30) is fixed on the side of the ladder (23), and a limiting groove (28) is opened on the support plate (21).

9. The off-road high-altitude live-working warehouse vehicle based on a dual-power system according to claim 8 is characterized by: A tension mechanism (29) is fixed inside the limiting groove (28), one end of the tension mechanism (29) is fixed on the limiting block (30), and a fixing hole (27) is opened on the cross bar (25).

10. According to claim 5, an off-road high-altitude live-working warehouse vehicle based on a dual-power system is characterized in that: The inner wall of the support plate (21) is respectively provided with a connecting groove (31) and a threaded hole (32), the threaded hole (32) matches the fixing hole (27), a limiting seat (24) is welded to the bottom of the movable seat (18), a movable groove is provided on the inner wall of the cavity (16), and the limiting seat (24) is movably installed inside the movable groove.

Citation Information

Patent Citations

  • Mobile storehouse car for placing live working tools

    CN221366752U