Auxiliary damping frame for mechanical and electrical installation

By designing an auxiliary shock absorber for electromechanical installation, using a hydraulic lifting table and a support structure that can be deployed horizontally, the problems of manpower consumption and safety hazards during the installation of electromechanical equipment are solved, and an efficient and safe installation process is achieved.

CN223150229UActive Publication Date: 2025-07-25GUANGDONG JINTENGDA INTELLIGENT SYST ENG CO LTD
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Patent Information

Application Number
CN202422546765.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-22
Publication Date
2025-07-25
Estimated Expiration
2034-10-22

AI Technical Summary

Technical Problem

Due to the heavy weight during the installation process of electromechanical equipment, manual handling efficiency is inefficient and labor is consumed, and there are safety hazards.

Method used

An auxiliary shock absorber for electromechanical installation is designed, including a base plate, integrated bin, sleeve rod, first-level platform, second-level platform, stand and shock absorber installation platform. It uses hydraulic lifting tabletop and a support structure that can be deployed horizontally, combined with wheel assisted movement, reduces the risk of equipment rolling, and fixes non-standard shape equipment through sliders and slide chutes to provide safety protection.

Benefits of technology

It effectively reduces the manpower demand during the installation of electromechanical equipment, reduces the risk of equipment rolling, improves installation efficiency, and enhances the safety of the installation process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of mechanical and electrical installation, in particular to an auxiliary damping frame for mechanical and electrical installation, and adopts the technical scheme that the auxiliary damping frame for mechanical and electrical installation comprises a bottom plate, an integration bin, a sleeve rod, a first air cylinder rod, a first-stage platform, a second-stage platform, a standing surface and a damping installation platform, the bottom plate is fixedly connected to the bottom of the first-stage base, the second-stage platform is arranged on the front side of the top of the first-stage platform, the standing face is arranged at the upper end of the rear side of the first-stage jacking support, the damping installation platform is arranged at the upper end of the second-stage platform, and the wheels can play a role in auxiliary movement when the electromechanical equipment is installed. And the first-stage platform and the second-stage platform are both hydraulic lifting platform surfaces, so that when the electromechanical equipment needing to be installed is placed on a placement surface, the height of the electromechanical equipment needing to be manually lifted can be reduced to the minimum to the maximum extent, and the working intensity of installation personnel is relieved.
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Description

Technical Field

[0001] The utility model relates to the field of mechanical and electrical installation, in particular to an auxiliary shock-absorbing frame for mechanical and electrical installation. Background Technique

[0002] Mechanical and electrical equipment generally refers to mechanical, electrical and electrical automation equipment. In buildings, it mostly refers to the general term of mechanical and pipeline equipment except for earthwork, carpentry, steel bars and mud work. With the continuous improvement of technology, traditional mechanical equipment has entered a new stage of combination of machinery and electricity, and its application scope is constantly expanding. Mechanical and electrical equipment can be divided into three categories according to their uses, namely industrial mechanical and electrical equipment, information mechanical and electrical equipment and people's livelihood mechanical and electrical equipment.

[0003] Before the mechanical and electrical equipment is used, it needs to be installed. The existing installation method is still manual handling and installation. When installing it, it is often necessary to first transfer it to a suitable position. During the handling process, it is usually necessary to continuously raise or lower it to confirm the installation position. And mechanical and electrical equipment is usually relatively heavy, making manual handling and installation not only inefficient, but also extremely labor-consuming, and it is easy to fall off, unable to hold, etc., posing a threat to the life safety of installers.

[0004] Therefore, in view of the problem that mechanical and electrical equipment is usually relatively heavy, making manual handling and installation not only inefficient, but also extremely labor-consuming, an auxiliary shock-absorbing frame for mechanical and electrical installation can be designed to facilitate installers to install mechanical and electrical equipment and protect installers at the same time. Content of the Utility Model

[0005] In order to overcome the problem that mechanical and electrical equipment is usually relatively heavy, making manual handling and installation not only inefficient, but also extremely labor-consuming.

[0006] The technical solution of the utility model is: an auxiliary shock-absorbing frame for mechanical and electrical installation, which includes a bottom plate, an integrated bin, a sleeve rod, a first cylinder rod, a first-level platform, a second-level platform, a standing surface and a shock-absorbing installation platform. The bottom plate is fixedly connected to the upper end of the integrated bin. The first-level platform is internally provided with a first-level base and a first-level top support. The bottom plate is fixedly connected to the bottom of the first-level base. The sleeve rod is fixedly connected to the front and rear sides of the first-level base. The second-level platform is arranged on the front side of the top of the first-level platform. The standing surface is arranged at the upper rear side of the first-level top support. The second-level platform is internally provided with a second-level top support. The shock-absorbing installation platform is arranged on the upper end of the second-level top support.

[0007] Preferably, wheels are provided at the lower part of the bottom plate, which can play an auxiliary moving role when installing electromechanical equipment. Components such as motors and hydraulic devices are arranged in the integrated bin at the bottom of the bottom plate, protecting the components while reducing the center of gravity of the equipment. With the auxiliary support structure that can be horizontally unfolded, the possibility of the equipment tilting during installation is reduced. Both the first-level platform and the second-level platform are hydraulic lifting platforms. When placing the electromechanical equipment to be installed on the placement surface, the height that needs to be lifted manually by the electromechanical equipment can be minimized to the greatest extent, reducing the working intensity of the installation personnel. The area of the first-level support is relatively large, and a second-level platform and a standing area are arranged on the first-level support. When facing a relatively high installation position, the installation personnel and the electromechanical equipment can be lifted to a higher position, making the installation process more convenient. Handrails are arranged around the standing area to protect the installation personnel. Sliders and chutes are arranged on the shock-absorbing installation platform, which can fix electromechanical equipment with a non-planar or non-standard shape at the bottom, increasing its applicability.

[0008] Preferably, the integrated bin is fixedly connected to the bottom of the bottom plate. Four concave holes are provided at the four corners of the integrated bin, and four wheels are installed in the four concave holes. Wheels are arranged at the lower end of the bottom plate, which can play an auxiliary moving role. Components such as motors and hydraulic devices are arranged in the integrated bin at the bottom of the bottom plate, protecting the components while reducing the center of gravity of the equipment.

[0009] Preferably, two sleeve rods are fixedly connected to the front and rear sides of the first-level base. Openings are provided at the bottoms of both ends of the sleeve rods. The inner rods are slidably connected to the inside of the sleeve rods. The top of the first cylinder rod is fixedly connected to the bottoms of both sides of the inner rods. Gaskets are arranged at the bottom of the first cylinder rod. The inner rods can extend outwards from the sleeve rods, increasing the effective support area at the bottom of the equipment and preventing the occurrence of tilting accidents.

[0010] Preferably, the first-level platform includes a first-level base, first-level scissor arms, first-level hydraulic rods, first-level connecting rods, and a first-level support. The inner parts of the first-level scissor arms are rotatably connected to the inner rotating shafts of the first-level base. The outer parts of the first-level scissor arms are slidably connected to the inner grooves of the first-level base. The first-level hydraulic rods are connected to the first-level connecting rods. The tops of the first-level scissor arms are embedded in the inner grooves of the first-level support. The first-level platform needs to bear the weight of the electromechanical equipment and the staff. Using a scissor-type hydraulic lifting platform can minimize the height during lowering, making it more labor-saving when moving the electromechanical equipment to the auxiliary shock-absorbing frame.

[0011] Preferably, the second-level platform includes a second-level base, second-level scissor arms, second-level hydraulic cylinders, second-level connecting rods, and a second-level support. The inner parts of the second-level scissor arms are rotatably connected to the inner rotating shafts of the second-level base. The outer parts of the second-level scissor arms are slidably connected to the inner grooves of the second-level base. The second-level hydraulic rods are connected to the second-level connecting rods. The tops of the second-level scissor arms are embedded in the inner grooves of the second-level support. The second-level platform cooperates with the first-level platform to minimize the lifting height when moving the electromechanical equipment to the auxiliary shock-absorbing frame, reducing the working intensity of the installation personnel.

[0012] Preferably, the standing surface is fixedly connected to the upper end of the rear side of the first-level top support, an anti-slip strip is arranged on the top of the standing surface, the vertical rod is fixedly connected to the rear side and the left and right sides of the standing surface, the handrail is fixedly connected to the upper end of the vertical rod, there is an anti-slip strip on the top of the standing surface and handrails around it, which can provide safety protection for the installers when they are installing electromechanical equipment.

[0013] Preferably, the shock-absorbing mounting platform includes a shock-absorbing spring, a No. 2 cylinder rod, a placement surface, a fence, a slide groove, a slider and an anti-slip sheet. Four shock-absorbing springs are arranged at the four corners of the secondary top support, and four No. 2 cylinder rods are arranged inside the shock-absorbing spring. The placement surface is fixedly connected to the upper end of the shock-absorbing spring, and the fence is fixedly connected to the surrounding areas of the placement surface. Slide grooves are opened inside the front and rear sides of the fence, and the slider is slidably connected in the slide groove. The anti-slip sheet is arranged at the upper end of the placement surface. The shock-absorbing spring and the internal No. 2 cylinder rod can provide a shock-absorbing effect when the electromechanical equipment is placed on the placement surface, and prevent the electromechanical equipment from being damaged due to slipping out of the hand or loose connection during installation.

[0014] Beneficial effects of the utility model:

[0015] Wheels are arranged at the bottom of the base plate to assist in the movement of electromechanical equipment during installation. Components such as motors and hydraulic devices are arranged in an integrated bin at the bottom of the base plate, which protects the components while lowering the center of gravity of the equipment. A support structure that can be expanded laterally can reduce the possibility of the equipment tilting during installation. Sliders and slide grooves are arranged on the shock-absorbing installation platform to fix electromechanical equipment with non-flat or non-standard bottoms, increasing its applicability.

[0016] Both the first-level platform and the second-level platform are hydraulic lifting tables. When placing the electromechanical equipment to be installed on the placement surface, the height required for manpower to lift the electromechanical equipment can be minimized to the greatest extent, reducing the workload of the installers.

[0017] A secondary platform and a standing area are provided on the primary top support. When facing a higher installation position, the installers and electromechanical equipment can be lifted to a higher position to make the installation process easier. Handrails are provided around the standing area to protect the installers. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 The figure shows the overall three-dimensional structure of the auxiliary shock-absorbing frame for electromechanical installation of the utility model;

[0019] Figure 2 The three-dimensional structure diagram of the auxiliary shock-absorbing frame bottom plate for electromechanical installation of the utility model is shown;

[0020] Figure 3 The three-dimensional structure diagram of the first-level platform of the auxiliary shock-absorbing frame for electromechanical installation of the utility model is shown;

[0021] Figure 4 The figure shows a three-dimensional structure schematic diagram of the secondary platform of the auxiliary shock-absorbing frame for mechanical and electrical installation of the present utility model;

[0022] Figure 5 The figure shows a three-dimensional structure schematic diagram of the standing surface of the auxiliary shock-absorbing frame for mechanical and electrical installation of the present utility model;

[0023] Figure 6 The figure shows a three-dimensional structure schematic diagram of the shock-absorbing installation platform of the auxiliary shock-absorbing frame for mechanical and electrical installation of the present utility model;

[0024] Explanation of reference numerals: 101, bottom plate; 102, wheels; 103, integrated bin; 201, sleeve rod; 202, opening; 203, inner rod; 204, first cylinder rod; 205, gasket; 301, first-level base; 302, first-level scissor arm; 303, first-level hydraulic rod; 304, first-level connecting rod; 305, first-level top support; 401, second-level base; 402, second-level scissor arm; 403, second-level hydraulic cylinder; 404, second-level connecting rod; 405, second-level top support; 501, standing surface; 502, anti-slip strip; 503, vertical rod; 504, handrail; 601, shock-absorbing spring; 602, second cylinder rod; 603, placing surface; 604, enclosure; 605, chute; 606, slider; 607, anti-slip piece; Detailed implementation manners

[0025] The present utility model will be further described below with reference to the accompanying drawings and embodiments.

[0026] Please refer to Figures 1 - 6, in this embodiment, the utility model provides an auxiliary shock-absorbing frame for mechanical and electrical installation, which includes a bottom plate 101, an integrated bin 103, a sleeve rod 201, a first cylinder rod 204, a first-level platform, a second-level platform, a standing surface 501 and a shock-absorbing installation platform. The bottom plate 101 is fixedly connected to the upper end of the integrated bin 103. Inside the first-level platform, there are a first-level base 301 and a first-level top support 305. The bottom plate 101 is fixedly connected to the bottom of the first-level base 301. The sleeve rod 201 is fixedly connected to the front and rear sides of the first-level base 301. The second-level platform is arranged on the front side of the top of the first-level platform. The standing surface 501 is arranged at the upper rear side of the first-level top support 305. Inside the second-level platform, there is a second-level top support 405. The shock-absorbing installation platform is arranged on the upper end of the second-level top support 405. Wheels 102 are arranged at the lower part of the bottom plate, which can play an auxiliary moving role when installing mechanical and electrical equipment. Components such as motors and hydraulic devices are arranged in the integrated bin 103 at the bottom of the bottom plate 101, which protects the components and reduces the center of gravity of the equipment. With the auxiliary laterally expandable support structure, the possibility of the equipment tilting during installation is reduced. Both the first-level platform and the second-level platform are hydraulic lifting platforms. When placing the mechanical and electrical equipment to be installed on the placement surface 603, the height that needs to be lifted manually by the mechanical and electrical equipment can be minimized to the greatest extent, reducing the working intensity of the installation personnel. The area of the first-level top support 305 is relatively large. A second-level platform and a standing area are arranged on the first-level top support 305. When facing a relatively high installation position, the installation personnel and the mechanical and electrical equipment can be lifted to a higher position, making the installation process more convenient. Handrails 504 are arranged around the standing area to protect the installation personnel. Sliders 606 and chutes 605 are arranged on the shock-absorbing installation platform, which can fix mechanical and electrical equipment with a non-planar or non-standard shape at the bottom, increasing its applicability.

[0027] Please refer to Figures 2 - 3, in this embodiment, the integrated bin 103 is fixedly connected to the bottom of the bottom plate 101. Four concave holes are provided at the four corners of the integrated bin 103, and four wheels 102 are installed in the four concave holes. The wheels 102 are arranged at the lower end of the bottom plate, which can play an auxiliary moving role. Components such as the motor and the hydraulic device are arranged in the integrated bin 103 at the bottom of the bottom plate 101, protecting the components and reducing the center of gravity of the equipment at the same time. Two sleeve rods 201 are fixedly connected to the front and rear sides of the first-level base 301. The openings 202 are arranged at the bottoms of both ends of the sleeve rods 201. The inner rod 203 is slidably connected to the inside of the sleeve rod 201. The top of the first cylinder rod 204 is fixedly connected to the bottoms of both sides of the inner rod 203. The gasket 205 is arranged at the bottom of the first cylinder rod 204. The inner rod 203 can extend outwards from the sleeve rod 201, increasing the effective support area at the bottom of the equipment and preventing the occurrence of rollover accidents. The first-level platform includes a first-level base 301, a first-level scissor arm 302, a first-level hydraulic rod 303, a first-level connecting rod 304, and a first-level top support 305. The inner part of the first-level scissor arm 302 is rotatably connected to the inner rotating shaft of the first-level base 301. The outer part of the first-level scissor arm 302 is slidably connected to the inner groove of the first-level base 301. The first-level hydraulic rod 303 is connected to the first-level connecting rod 304. The top of the first-level scissor arm 302 is embedded in the inner groove of the first-level top support 305. The first-level platform needs to bear the weight of the electromechanical equipment and the staff. Using a scissor-type hydraulic lifting platform can minimize the height when lowering, making it more labor-saving to move the electromechanical equipment onto the auxiliary shock-absorbing frame.

[0028] Please refer to Figures 4 - 6, in this embodiment, the secondary platform includes a secondary base 401, secondary scissor arms 402, secondary hydraulic cylinders 403, secondary connecting rods 404, and a secondary top support 405. The inner part of the secondary scissor arm 402 is rotatably connected to the inner rotating shaft of the secondary base 401, and the outer part of the secondary scissor arm 402 is slidably connected to the inner groove of the secondary base 401. The secondary hydraulic rod is connected to the secondary connecting rod 404, and the top of the secondary scissor arm 402 is embedded in the inner groove of the secondary top support 405. The secondary platform cooperates with the primary platform to minimize the lifting height when moving the electromechanical equipment onto the auxiliary shock-absorbing frame, reducing the working intensity of the installation personnel. The standing surface 501 is fixedly connected to the upper rear end of the primary top support 305. The anti-slip strip 502 is arranged on the top of the standing surface 501. The vertical rods 503 are fixedly connected to the rear side and the left and right sides of the standing surface 501. The handrails 504 are fixedly connected to the upper ends of the vertical rods 503. There is an anti-slip strip 502 on the top of the standing surface 501 and handrails 504 around it, which can provide safety protection for the installation workers when installing the electromechanical equipment. The shock-absorbing installation platform includes shock-absorbing springs 601, second cylinder rods 602, a placement surface 603, a fence 604, a chute 605, a slider 606, and an anti-slip sheet 607. Four shock-absorbing springs 601 are arranged at the four corners of the secondary top support 405. Four second cylinder rods 602 are arranged inside the shock-absorbing springs 601. The placement surface 603 is fixedly connected to the upper ends of the shock-absorbing springs 601. The fence 604 is fixedly connected to the periphery of the placement surface 603. Chutes 605 are opened inside the front and rear sides of the fence 604. The slider 606 is slidably connected to the chute 605. The anti-slip sheet 607 is arranged on the upper end of the placement surface 603. The shock-absorbing springs 601 and the second cylinder rods 602 inside can provide a shock-absorbing effect when the electromechanical equipment is placed on the placement surface 603, and prevent damage to the electromechanical equipment caused by slipping out of the hand or insecure connection during installation.

[0029] When working, first lower the primary platform to the lowest position through the primary hydraulic cylinder and lower the secondary platform to the lowest position through the secondary hydraulic cylinder 403 at the same time. Then move this auxiliary shock-absorbing frame to the area where the electromechanical equipment is located. Lift the electromechanical equipment to be installed onto the placement surface 603 by manpower or equipment such as forklifts and cranes. Subsequently, move this auxiliary shock-absorbing frame to the position where the electromechanical equipment needs to be installed through the wheels 102. When reaching the designated location, according to the installation height required for this electromechanical equipment, choose whether to have someone stand on the standing surface 501. If not, lift the electromechanical equipment by raising the primary top support 305 and the secondary top support 405 and then install it by the installation personnel. If needed, after the installation personnel stand on the standing platform, raise the primary top support 305 to lift the installation personnel and the electromechanical equipment upward. After lifting in place, raise the secondary top support 405 to lift the electromechanical equipment and the shock-absorbing installation platform to the required installation position. Stop lifting when reaching the designated position. At this time, after the installation personnel use tools to install the electromechanical equipment at the designated position, lower the primary top support 305 and the secondary top support 405 to complete the installation process of the electromechanical equipment.

[0030] Through the above steps, wheels 102 are provided at the lower part of the bottom plate, which can play an auxiliary moving role when installing electromechanical equipment. Components such as motors and hydraulic devices are arranged in the integrated bin 103 at the bottom of the bottom plate 101, protecting the components and reducing the center of gravity of the equipment. With the auxiliary of a horizontally expandable support structure, the possibility of the equipment tipping over during installation is reduced. Both the first-level platform and the second-level platform are hydraulic lifting platforms. When placing the electromechanical equipment to be installed on the placement surface 603, the height that needs to be lifted manually by the electromechanical equipment can be minimized to the greatest extent, reducing the work intensity of the installation personnel. The first-level support 305 has a relatively large area, and a second-level platform and a standing area are provided on the first-level support 305. When facing a relatively high installation position, the installation personnel and the electromechanical equipment can be lifted to a higher position, making the installation process more convenient. Handrails 504 are provided around the standing area to protect the installation personnel. Sliders 606 and chutes 605 are provided on the shock-absorbing installation platform, which can fix electromechanical equipment with a non-planar or non-standard shape at the bottom, increasing its applicability.

[0031] The above has described in detail the embodiments of the present invention in conjunction with the accompanying drawings. However, the present invention is not limited to the above embodiments, and various changes can be made without departing from the gist of the present invention within the scope of knowledge possessed by those skilled in the art.

Claims

1. An auxiliary shock absorber for mechanical and electrical installation, comprising a bottom plate (101), an integrated bin (103), a sleeve rod (201), and a first cylinder rod (204); characterized in that: It also includes a first-level platform, a second-level platform, a standing surface (501), and a shock-absorbing mounting platform. The bottom plate (101) is fixedly connected to the upper end of the integrated bin (103). Inside the first-level platform, there is a first-level base (301) and a first-level top support (305). The bottom plate (101) is fixedly connected to the bottom of the first-level base (301). Sleeve rods (201) are fixedly connected to the front and rear sides of the first-level base (301). The second-level platform is arranged on the front side of the top of the first-level platform. The standing surface (501) is arranged at the upper rear side of the first-level top support (305). Inside the second-level platform, there is a second-level top support (405). The shock-absorbing mounting platform is arranged on the upper end of the second-level top support (405).

2. The auxiliary shock absorber for mechanical and electrical installation according to claim 1, characterized in that: The integrated bin (103) is fixedly connected to the bottom of the bottom plate (101). Four concave holes are formed at the four corners of the integrated bin (103). Four wheels (102) are installed in the four concave holes.

3. The auxiliary shock absorber for mechanical and electrical installation according to claim 2, characterized in that: Two sleeve rods (201) are fixedly connected to the front and rear sides of the first-level base (301). Openings (202) are arranged at the bottoms of both ends of the sleeve rods (201). The inner rods (203) are slidably connected to the inside of the sleeve rods (201). The tops of the first cylinder rods (204) are fixedly connected to the bottoms of both sides of the inner rods (203). Gaskets (205) are arranged at the bottoms of the first cylinder rods (204).

4. The auxiliary shock absorber for mechanical and electrical installation according to claim 3, characterized in that: The first-level platform includes a first-level base (301), a first-level scissor arm (302), a first-level hydraulic rod (303), a first-level connecting rod (304), and a first-level top support (305). The inner part of the first-level scissor arm (302) is rotatably connected to the inner rotating shaft of the first-level base (301). The outer part of the first-level scissor arm (302) is slidably connected to the inner groove of the first-level base (301). The first-level hydraulic rod (303) is connected to the first-level connecting rod (304). The top of the first-level scissor arm (302) is embedded in the inner groove of the first-level top support (305).

5. The auxiliary shock absorber for mechanical and electrical installation according to claim 4, characterized in that: The second-level platform includes a second-level base (401), a second-level scissor arm (402), a second-level hydraulic rod (403), a second-level connecting rod (404), and a second-level top support (405). The inner part of the second-level scissor arm (402) is rotatably connected to the inner rotating shaft of the second-level base (401). The outer part of the second-level scissor arm (402) is slidably connected to the inner groove of the second-level base (401). The second-level hydraulic rod (403) is connected to the second-level connecting rod (404). The top of the second-level scissor arm (402) is embedded in the inner groove of the second-level top support (405).

6. The auxiliary shock absorber for mechanical and electrical installation according to claim 5, characterized in that: The standing surface (501) is fixedly connected to the upper rear side of the first-level top support (305). Anti-slip strips (502) are arranged on the top of the standing surface (501). Vertical rods (503) are fixedly connected to the rear side and the left and right sides of the standing surface (501). Handrails (504) are fixedly connected to the upper ends of the vertical rods (503).

7. The auxiliary shock absorber for mechanical and electrical installation according to claim 6, characterized in that: The shock-absorbing mounting platform includes shock-absorbing springs (601), second cylinder rods (602), a placement surface (603), a retaining wall (604), a chute (605), a slider (606), and anti-slip sheets (607). Four shock-absorbing springs (601) are arranged at the four corners of the secondary top support (405). Four second cylinder rods (602) are arranged inside the shock-absorbing springs (601). The placement surface (603) is fixedly connected to the upper ends of the shock-absorbing springs (601). The retaining wall (604) is fixedly connected to the periphery of the placement surface (603). Chutes (605) are formed inside the front and rear sides of the retaining wall (604). The slider (606) is slidably connected to the chutes (605). The anti-slip sheets (607) are arranged at the upper end of the placement surface (603).