High-load-bearing assembly support structure
By designing a high-load-bearing assembly bracket structure and using support frame components and electric rotation components to achieve precise fine-tuning of the equipment position, the problem of cumbersome equipment docking in the existing technology is solved and the debugging efficiency is improved.
Patent Information
- Application Number
- CN202422831193.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-20
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2034-11-20
AI Technical Summary
Existing engineering vehicles are unable to fine-tune the position of equipment, which makes the docking of debugging equipment and debugging instruments cumbersome and affects debugging efficiency.
A high-load-bearing assembly bracket structure was designed, which includes a support frame assembly, an electric rotation assembly, a self-locking assembly and a sliding support assembly. The support rod is driven by the driving assembly to achieve fine-tuning and rotation of the equipment position. Combined with the sliding support assembly, the mobility and stability are improved.
It achieves precise fine-tuning of the equipment position, simplifies the debugging process and improves debugging efficiency.
Smart Images

Figure CN223399552U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of assembly bracket structures, in particular to a high-load-bearing assembly bracket structure. Background Art
[0002] During equipment debugging, it is necessary to fine-tune the position of the debugged equipment to dock the debugging instrument. However, existing engineering vehicles cannot perform fine-tuning, making the adjustment more cumbersome and affecting debugging efficiency. Utility Model Content
[0003] The purpose of the utility model is to provide a high load-bearing assembly bracket structure in order to overcome the deficiencies of the prior art.
[0004] To achieve the above-mentioned purpose, the technical solution adopted by the present invention is: a high-load-bearing assembly bracket structure, comprising a support frame assembly for supporting the debugged equipment and the support end of which can fine-tune the position of the debugged equipment, an electric rotating assembly arranged on the support end of the support frame assembly, a driving end for fixing the debugged equipment and driving the debugged equipment to rotate and which can be quickly replaced to fix one end of the debugged equipment, a self-locking assembly arranged at the support end of the support frame assembly for locking the rotation of the driving end of the electric rotating assembly, and a sliding support assembly arranged at the bottom of the support frame assembly for supporting and sliding; the support frame assembly includes a U-shaped support base, two support rods slidably arranged on the vertical ends on both sides of the support base for support, and a driving assembly arranged in the support base for simultaneously driving the two support rods to move; the driving assembly includes two slide grooves respectively arranged in the middle of the vertical ends on both sides of the support base , two Z-axis threaded rods rotatably arranged in the two sliding grooves and placed along the Z-axis direction, two supporting sliders slidably arranged in the two sliding grooves and threadedly connected to the two Z-axis threaded rods respectively, two fixed plates respectively arranged on the top surfaces of the two supporting sliders, a dual drive motor arranged in the middle of the horizontal end of the support base, two X-axis drive rods rotatably arranged in the horizontal end of the support base on both sides of the dual drive motor and one end is connected to the two driving ends of the dual drive motor along the X-axis direction, two docking grooves respectively arranged in the support base and located at two corners of the support base; one end of the two Z-axis screws and the two X-axis drive rods respectively extends into the two docking grooves; the two Z-axis screws and the two X-axis drive rods are located at one end of the two docking grooves and are provided with mutually meshing bevel teeth; one end of the two support rods is fixedly connected to the two fixed plates respectively.
[0005] Preferably, one end of the two support rods is fixed to the two fixing plates by bolts.
[0006] Preferably, the sliding support assembly includes a plurality of pulleys for sliding arranged at the four corners of the bottom of the support base, and a plurality of support legs arranged at the four corners of the bottom of the support base and located on one side of the plurality of pulleys.
[0007] Due to the application of the above technical solution, the utility model has the following advantages compared with the prior art:
[0008] The utility model drives the support column to move by the driving assembly of the support frame assembly, which can effectively fine-tune the position of the debugged equipment and dock the debugged equipment with the debugging instrument without directly adjusting the overall support frame assembly, thereby accelerating the adjustment speed and improving the debugging efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The technical solution of the utility model is further described below with reference to the accompanying drawings:
[0010] Attachment Figure 1 This is a schematic diagram of a partial front cross-sectional structure of the high-load-bearing assembly bracket structure of the present invention;
[0011] Attachment Figure 2 This is a schematic diagram of a partial cross-sectional structure of the high-load-bearing assembly bracket structure of the present invention;
[0012] Attachment Figure 3 It is a schematic diagram of the top cross-sectional structure of the support base of the high load-bearing assembly bracket structure described in the present invention.
[0013] Among them: 1. Support frame assembly; 11. Support base; 12. Support rod; 13. Drive assembly; 131. Slide groove; 132. Z-axis threaded rod; 133. Support slider; 134. Fixed plate; 135. Dual drive motor; 136. X-axis drive rod; 137. Docking groove; 138. Bevel gear; 2. Electric rotation assembly; 3. Self-locking assembly; 4. Sliding support assembly; 41. Pulley; 42. Support leg. DETAILED DESCRIPTION
[0014] The present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments.
[0015] Attachment Figure 1-3The high-load-bearing assembly bracket structure described in the utility model includes a support frame component 1 for supporting the debugged equipment and the support end can fine-tune the position of the debugged equipment, an electric rotating component 2 is arranged on the support end of the support frame component 1, and the driving end is used to fix the debugged equipment and drive the debugged equipment to rotate and can be quickly replaced to fix one end of the debugged equipment, a self-locking component 3 is arranged at the support end of the support frame component 1 to lock the rotation of the driving end of the electric rotating component 2, and a sliding support component 4 is arranged at the bottom of the support frame component 1 for supporting and sliding; the support frame component 1 includes a U-shaped support base 11, two support rods 12 slidably arranged on the vertical ends on both sides of the support base 11 for supporting, and a driving component 13 arranged in the support base 11 for simultaneously driving the two support rods 12 to move; the driving component 13 includes two sliding grooves 131 respectively arranged in the middle of the vertical ends on both sides of the support base 11, two Z-axis threaded rods 132 respectively rotatably arranged in the two sliding grooves 131 and placed along the Z-axis direction, and two Z-axis threaded rods 132 respectively slidably arranged in the two sliding grooves 131 and respectively connected to the two Z-axis threaded rods Two supporting sliders 133 connected by threads 132, two fixing plates 134 respectively arranged on the top surfaces of the two supporting sliders 133, a dual drive motor 135 arranged in the middle of the horizontal end of the supporting base 11, two X-axis drive rods 136 respectively rotatably arranged in the horizontal end of the supporting base 11 on both sides of the dual drive motor 135 and one end of which is connected to the two drive ends of the dual drive motor 135 and placed along the X-axis direction, and two docking grooves 137 respectively arranged in the supporting base 11 and located at two corners of the supporting base 11; the two Z One end of the axis screw and the two X-axis drive rods 136 extend into the two docking grooves 137 respectively; the two Z-axis screws and the two X-axis drive rods 136 are located at the two docking grooves 137 and are provided with mutually meshing bevel teeth 138 on one end; one end of the two support rods 12 is fixedly connected to the two fixed plates 134 respectively; the sliding support assembly 4 includes a plurality of pulleys 41 for sliding arranged at the four corners of the bottom of the support base 11, and a plurality of support legs 42 arranged at the four corners of the bottom of the support base 11 and located on one side of the plurality of pulleys 41.
[0016] Furthermore, one end of the two support rods 12 is fixed to the two fixing plates 134 by bolts, which is convenient for disassembly.
[0017] When in use: first fix the debugged device on the driving end of the electric rotating assembly 2, then push the supporting base 11, the pulley 41 drives the support frame supporting base 11 to move, and then the supporting base 11 drives the supporting rod 12 to move, and the supporting rod 12 drives the electric rotating assembly 2 to move, and then the debugged device moves toward the debugging instrument. After moving into place, start the electric rotating assembly 2 to drive the debugged device to rotate, and then limit the angle of the driving end of the electric rotating assembly 2 through the self-locking assembly 3. When there is still some deviation in the position of the direction debugging device, drive the dual drive motor 135, and then the dual drive motor 135 drives the two X-axis drive rods 136 Rotate, and then the two X-axis driving rods 136 drive the two Z-axis threaded rods 132 to rotate through the bevel teeth 138, and then the two Z-axis threaded rods 132 drive the two supporting sliders 133 to move in the two slide grooves 131, and then the two supporting sliders 133 drive the two fixed plates 134 to move, and then the two fixed plates 134 simultaneously drive the two support rods 12 to move, and finally the two support rods 12 drive the driving end of the electric rotating component 2, and then the debugged device fixed on the driving end of the electric rotating component 2 also moves, and when it moves into place, the dual drive motor 135 is stopped, and then the debugged device is docked with the debugging instrument for equipment debugging.
[0018] The above are only specific application examples of the present invention and do not constitute any limitation on the scope of protection of the present invention. Any technical solution formed by equivalent transformation or equivalent replacement shall fall within the scope of protection of the present invention.
Claims
1. A high-load-bearing assembly bracket structure, characterized by: The invention comprises a support frame assembly for supporting the debugged device and the support end of which can fine-tune the position of the debugged device, an electric rotating assembly for fixing the debugged device and driving the debugged device to rotate and which can be quickly replaced on the support end of the support frame assembly, a self-locking assembly for locking the rotation of the driving end of the electric rotating assembly, and a sliding support assembly for supporting and sliding at the bottom of the support frame assembly; the support frame assembly comprises a U-shaped support base, two support rods for supporting which are slidably arranged on the vertical ends on both sides of the support base, and a driving assembly arranged in the support base for simultaneously driving the two support rods to move; the driving assembly comprises two slide grooves respectively arranged in the middle of the vertical ends on both sides of the support base, and two slide grooves respectively rotatably arranged in the two slide grooves and arranged along the Z axis. Two Z-axis threaded rods placed in the direction, two supporting sliders respectively slidably arranged in the two slide grooves and threadedly connected to the two Z-axis threaded rods, two fixed plates respectively arranged on the top surfaces of the two supporting sliders, a dual drive motor arranged in the middle of the horizontal end of the support base, two X-axis drive rods placed along the X-axis direction respectively rotatably arranged in the horizontal end of the support base on both sides of the dual drive motor and one end is respectively connected to the two driving ends of the dual drive motor, and two docking grooves respectively arranged in the support base and located at two corners of the support base; one end of the two Z-axis screws and the two X-axis drive rods respectively extends into the two docking grooves; the two Z-axis screws and the two X-axis drive rods are located at one end of the two docking grooves and are provided with mutually meshing bevel teeth; one end of the two support rods is respectively fixedly connected to the two fixed plates.
2. The high load-bearing assembly bracket structure according to claim 1, characterized in that: One end of the two support rods is fixed to the two fixing plates by bolts.
3. The high load-bearing assembly bracket structure according to claim 1, characterized in that: The sliding support assembly includes a plurality of pulleys for sliding arranged at the four corners of the bottom of the support base, and a plurality of support legs arranged at the four corners of the bottom of the support base and located on one side of the plurality of pulleys.