Efficient shock insulation support auxiliary mounting device
By combining the connecting frame, moving wheels, and fixing components, the problem of swaying and stability testing of seismic isolation bearings during hoisting was solved, achieving efficient installation positioning and quality assurance.
Patent Information
- Application Number
- CN202422849403.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-21
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2034-11-21
AI Technical Summary
After being hoisted and moved to the installation position, the seismic isolation bearing is prone to swaying, making it difficult to align. Furthermore, it is difficult to test the stability after installation, which affects the installation quality.
The system employs a connecting frame, movable wheels, a first motor, and a fixing component. The movable wheels position the seismic isolation bearing, while the cylinder and motor of the fixing component adjust the support plate to achieve the positioning and stability testing of the seismic isolation bearing.
This enabled efficient positioning and stability testing of seismic isolation bearings, improving installation efficiency and quality.
Smart Images

Figure CN223548960U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of seismic isolation bearing installation technology, and in particular to a high-efficiency seismic isolation bearing auxiliary installation device. Background Technology
[0002] High-efficiency seismic isolation bearings are vibration damping devices used in structures such as buildings and bridges, effectively reducing the impact of external forces such as earthquakes on the structure. To ensure the installation quality and efficiency of seismic isolation bearings, auxiliary installation devices are often required.
[0003] During installation, existing seismic isolation bearings are usually moved by cranes. However, because the seismic isolation bearings are hung by hooks on the crane's steel cables, they are prone to swaying after being moved to the installation position, making it difficult to align them. Furthermore, it is not convenient to test the stability of the seismic isolation bearings after installation.
[0004] Therefore, a highly efficient auxiliary installation device for seismic isolation bearings has been developed, which can position and place the bearings while detecting the stability of the installation and ensuring the quality of the installation. Utility Model Content
[0005] To overcome the shortcomings of seismic isolation bearings being hung on hooks on crane cables, which are prone to swaying after being moved to the installation position, making alignment difficult, and making it difficult to test the stability of the seismic isolation bearings after installation, this utility model provides a highly efficient auxiliary installation device for seismic isolation bearings that can position and place the bearings while simultaneously testing their installation stability, thus ensuring the quality of the seismic isolation bearing installation.
[0006] The technical solution is as follows: A high-efficiency seismic isolation bearing auxiliary installation device includes a connecting frame, a moving wheel, a first motor and a fixing component. The connecting frame has two parts, left and right. The lower sides of the front and rear parts of the connecting frame are rotatably connected to the moving wheel. The front part of the connecting frame is connected to the first motor. The output shaft of the first motor is connected to the adjacent moving wheel. A fixing component capable of fixing the seismic isolation bearing is provided between the connecting frames.
[0007] Optionally, anti-slip blocks are provided on all moving wheels.
[0008] Optionally, the fixing assembly includes a trackless cylinder, a moving frame, a connecting cylinder, a fixed frame, a second motor, a first bidirectional lead screw, a connecting bracket, a second bidirectional lead screw, and a support plate. The trackless cylinder is connected to the upper side of the connecting frame. The moving frame is connected to the slider of the trackless cylinder. The connecting cylinder is connected to the lower side of the moving frame. The fixed frame is connected to the telescopic end of the connecting cylinder. The second motor is connected to the right side of the fixed frame. The first bidirectional lead screw is connected to the output shaft of the second motor. The first bidirectional lead screw is rotatably connected to the fixed frame. The left and right sides of the first bidirectional lead screw are threadedly connected to the connecting bracket. The connecting bracket is slidably connected to the fixed frame. The second bidirectional lead screw is rotatably connected to the connecting bracket. The front and rear parts of the second bidirectional lead screw are threadedly connected to the support plate. The support plate is slidably connected to the adjacent connecting bracket.
[0009] Optionally, a handle is provided on the rear side of the second bidirectional lead screw.
[0010] Optionally, friction pads are provided on all pallets.
[0011] Optionally, all pallets are L-shaped.
[0012] The beneficial effects of this utility model are: 1. By moving the connecting frame to the installation position of the seismic isolation bearing and then activating the connecting cylinder, the seismic isolation bearing is vertically lowered to the predetermined installation position, thereby facilitating the positioning and placement of the seismic isolation bearing and improving the installation efficiency of the seismic isolation bearing.
[0013] 2. After the workers have installed and fixed the seismic isolation bearing, the connecting cylinder is activated to move the fixing frame upward, which in turn causes the support plate to move the seismic isolation bearing upward. This achieves the effect of detecting the stability of the seismic isolation bearing installation and ensuring the quality of the seismic isolation bearing installation. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0015] Figure 2 This is a partial three-dimensional structural diagram of the present invention.
[0016] Explanation of reference numerals in the attached drawings: 1: connecting frame, 2: moving wheel, 3: first motor, 4: trackless cylinder, 5: moving frame, 6: connecting cylinder, 7: fixed frame, 8: second motor, 9: first double-acting lead screw, 10: connecting bracket, 11: second double-acting lead screw, 12: support plate. Detailed Implementation
[0017] The embodiments of this utility model will be described below with reference to the accompanying drawings.
[0018] A high-efficiency seismic isolation bearing auxiliary installation device, such as Figure 1 and Figure 2As shown, the assembly includes a connecting frame 1, movable wheels 2, a first motor 3, and a fixing component. The connecting frame 1 has two parts, left and right. Movable wheels 2 are rotatably connected to the lower sides of both the front and rear parts of the connecting frame 1. Each movable wheel 2 is equipped with anti-slip blocks to improve grip. The first motor 3 is connected to the front of each connecting frame 1, and the output shaft of each first motor 3 is connected to the adjacent movable wheel 2. A fixing component is provided between the connecting frames 1. The fixing component includes a trackless cylinder 4, a movable frame 5, a connecting cylinder 6, a fixing frame 7, a second motor 8, a first double-acting lead screw 9, a connecting bracket 10, a second double-acting lead screw 11, and a support plate 12. The trackless cylinder 4 is connected to the upper sides of the connecting frame 1. The movable frame 5 is connected to the slider of the trackless cylinder 4, and the connecting cylinder 6 is connected to the lower side of the movable frame 5. A fixed frame 7 is connected to the telescopic end of cylinder 6. A second motor 8 is connected to the right side of the fixed frame 7. A first bidirectional lead screw 9 is connected to the output shaft of the second motor 8. The first bidirectional lead screw 9 is rotatably connected to the fixed frame 7. Both the left and right sides of the first bidirectional lead screw 9 are threadedly connected to connecting brackets 10. Both connecting brackets 10 are slidably connected to the fixed frame 7. Both connecting brackets 10 are rotatably connected to a second bidirectional lead screw 11. Each second bidirectional lead screw 11 has a handle on its rear side for easy gripping and rotation. Both the front and rear sides of the second bidirectional lead screw 11 are threadedly connected to a support plate 12. Each support plate 12 has a friction pad to facilitate the stability of the vibration isolation bearing. Both support plates 12 are L-shaped to facilitate supporting the vibration isolation bearing. Each support plate 12 is slidably connected to the adjacent connecting bracket 10.
[0019] When using this utility model, firstly, start the first motor 3 to drive the moving wheel 2 to rotate, moving the connecting frame 1 to the vibration isolation support. Then, start the trackless cylinder 4 to move and adjust the position of the moving frame 5. Start the connecting cylinder 6 to push the fixing frame 7 downward, so that the connecting bracket 10 is located on both sides of the vibration isolation support. Then, according to the size of the vibration isolation support, rotate the second double-acting screw 11 to adjust the position of the support plate 12. After adjustment, start the second motor 8 to drive the first double-acting screw 9 to rotate, so that the connecting brackets 10 are close to each other until the support plate 12 contacts the vibration isolation support, thus fixing the vibration isolation support to the support plate. Between the support plate 12 and the fixed frame 7, the connecting frame 1 is moved to the installation position of the seismic isolation bearing. Then, the connecting cylinder 6 is activated to vertically lower the seismic isolation bearing to the predetermined installation position, which facilitates the positioning and placement of the seismic isolation bearing and improves the installation efficiency. After placement, the seismic isolation bearing is installed and fixed by the staff. After fixing, the connecting cylinder 6 is activated to move the fixed frame 7 upward, so that the support plate 12 moves the seismic isolation bearing upward, thereby checking the stability of the seismic isolation bearing installation and ensuring the installation quality of the seismic isolation bearing. After the check is completed, the support plate 12 is detached from the seismic isolation bearing.
[0020] Although the present invention has been described with reference to exemplary embodiments, it should be understood that the present invention is not limited to the disclosed exemplary embodiments. The scope of the following claims should be given the broadest interpretation in order to cover all variations and equivalent structures and functions.
Claims
1. A high-efficiency seismic isolation bearing auxiliary installation device, characterized in that, It includes a connecting frame (1), a moving wheel (2), a first motor (3) and a fixing component. The connecting frame (1) has two parts, left and right. The lower sides of the front and rear parts of the connecting frame (1) are rotatably connected to the moving wheel (2). The front part of the connecting frame (1) is connected to the first motor (3). The output shaft of the first motor (3) is connected to the adjacent moving wheel (2). A fixing component capable of fixing the vibration isolation support is provided between the connecting frames (1). The fixed assembly includes a trackless cylinder (4), a moving frame (5), a connecting cylinder (6), a fixed frame (7), a second motor (8), a first bidirectional lead screw (9), a connecting bracket (10), a second bidirectional lead screw (11), and a support plate (12). The trackless cylinder (4) is connected to the upper side of the connecting frame (1). The moving frame (5) is connected to the slider of the trackless cylinder (4). The connecting cylinder (6) is connected to the lower side of the moving frame (5). The fixed frame (7) is connected to the telescopic end of the connecting cylinder (6). The second motor (8) is connected to the right side of the fixed frame (7). 8) The output shaft of the second motor (8) is connected to the first bidirectional lead screw (9). The first bidirectional lead screw (9) is rotatably connected to the fixed frame (7). The left and right sides of the first bidirectional lead screw (9) are threadedly connected to the connecting bracket (10). The connecting bracket (10) is slidably connected to the fixed frame (7). The connecting bracket (10) is rotatably connected to the second bidirectional lead screw (11). The front and rear sides of the second bidirectional lead screw (11) are threadedly connected to the support plate (12). The support plate (12) is slidably connected to the adjacent connecting bracket (10).
2. The high-efficiency seismic isolation bearing auxiliary installation device according to claim 1, characterized in that, Anti-slip blocks are installed on all moving wheels (2).
3. The high-efficiency seismic isolation bearing auxiliary installation device according to claim 1, characterized in that, The second bidirectional lead screw (11) is equipped with a handle on the rear side.
4. The high-efficiency seismic isolation bearing auxiliary installation device according to claim 1, characterized in that, Friction pads are provided on all pallets (12).
5. The high-efficiency seismic isolation bearing auxiliary installation device according to claim 1, characterized in that, All pallets (12) are L-shaped.