Tooling fixture assembly platform
Patent Information
- Application Number
- CN202522185142.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-16
- Publication Date
- 2026-10-09
- Estimated Expiration
- 2035-10-16
AI Technical Summary
[0003]目前的工装夹具组装平台在使用时,若需要针对不同身高的改主意调整组装平台的台面高度时,需要重新加工合适高度的支撑组件,再与装置重新进行安装,加工和组装过程续耗费大量时间,影响加工效率
1、在使用时需要根据不同身高的工作人员,对承重板组成的台面高度进行快速调整时,此时工作人员将同时启动四角固定的液压杆,使液压杆中的活塞杆向下延展,在液压杆延展的同时带动防滑垫远离限位壳,在防滑垫远离限位壳的同时,带动与限位壳连接的组件进行抬升,当承重板抬升至指定位置后,工作人员关闭液压杆使其取消对防滑垫与固位壳的推动,便可完成在使用时对承重板组成的台面高度进行快速调整;
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Figure CN224825276U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of tooling and fixture assembly technology, and specifically relates to a tooling and fixture assembly platform. Background Technology
[0002] Existing tooling fixture assembly platforms are designed to provide a dedicated working surface for tooling fixtures during assembly, debugging, and inspection. They typically consist of a tabletop made of high-strength cast iron and corner support components made of high-quality steel, ensuring high flatness and stability during assembly or processing.
[0003] When using the current tooling and fixture assembly platform, if the platform height needs to be adjusted for different heights, it is necessary to re-process the support components of the appropriate height and then reinstall them with the device. The processing and assembly process consumes a lot of time and affects processing efficiency. Utility Model Content
[0004] The purpose of this utility model is to provide a tooling fixture assembly platform, which has the advantage that when workers of different heights use the tooling fixture assembly platform to assemble tooling fixtures, the platform surface can be quickly adjusted.
[0005] The above-mentioned technical objective of this utility model is achieved through the following technical solution: a tooling fixture assembly platform, including two load-bearing plates, a connecting component slidably connected between opposite sides of the two load-bearing plates, folding components fixedly installed on both sides of the bottom of the two load-bearing plates, and a lifting component fixedly installed at the bottom of the folding components.
[0006] Using the above technical solution: When the height of the platform composed of the load-bearing plates needs to be quickly adjusted according to the height of the workers, the workers will simultaneously activate the hydraulic rods fixed at the four corners, causing the piston rods in the hydraulic rods to extend downwards. As the hydraulic rods extend, they move the anti-slip pads away from the limiting shell. Simultaneously, the anti-slip pads move away from the limiting shell, causing the components connected to the limiting shell to rise. Once the load-bearing plate is raised to the designated position, the workers will close the hydraulic rods to stop pushing the anti-slip pads and the fixing shell, thus completing the rapid adjustment of the platform height during use. Furthermore, a reduction device is required after the work is completed. When folding up the space occupied by the device, the staff will disconnect the filling plate from the locking shell, the positioning plate from the positioning shell, and the fixing plate from the L-shaped fixing frame. Then, the two load-bearing plates will be pulled to the sides away from the connection point between the positioning frame and the connecting frame. After the two load-bearing plates are moved to the designated position, they can be connected by the pin of the positioning frame and the connecting frame to fold the two load-bearing plates. At the same time, the load-bearing plates can be further folded by sliding the connection between the load-bearing plates and the positioning frame or the connecting frame. After the load-bearing plates are folded, the lifting component can be brought into contact with the load-bearing plates through the folding component, thereby reducing the space occupied by the device after the work is completed and then storing it.
[0007] The present invention is further configured such that the connecting component includes a positioning frame and a connecting frame, the inner cavity of the connecting frame is slidably connected to the positioning frame, and the two sides of the positioning frame and the connecting frame are respectively slidably connected to the inner cavity of the load-bearing plate adjacent to them.
[0008] The above technical solution is adopted: by sliding the positioning frame and connecting frame with the two load-bearing plates respectively, a telescopic connection structure is provided for the two load-bearing plates, so that the load-bearing plates can move flexibly in the horizontal direction. This facilitates unfolding to form a complete tabletop, and allows them to move closer together to reduce the lateral size when stored. The sliding connection between the positioning frame, connecting frame and load-bearing plates allows the load-bearing plates to slide along the frame during folding, providing movement space for secondary folding, while ensuring the structural stability of the tabletop in the unfolded state and preventing the load-bearing plates from shaking under force.
[0009] The present invention is further configured such that a positioning plate is fixedly installed between the opposite sides of the bottom of the two load-bearing plates, and a positioning shell is slidably connected to the surface of the positioning plate.
[0010] The above technical solution is adopted: by sliding the positioning plate and the positioning shell, the relative position of the two load-bearing plates is guided and constrained to prevent them from shifting when unfolded, and to ensure that the tabletop remains horizontally aligned after unfolding.
[0011] The present invention is further configured such that a filling plate is snapped between the top sides of the two load-bearing plates, and a locking shell is snapped between the front and rear sides of the bottom sides of the filling plate, and the locking shell is fixedly installed with the load-bearing plate on the side closest to the load-bearing plate.
[0012] The above technical solution involves filling the gap between the two load-bearing plates after they are unfolded with a filler plate, so that the table surface forms a complete plane. This prevents parts from falling out of the gaps during the assembly of the tooling fixtures. The fixed connection between the locking shell and the load-bearing plate provides precise positioning for the filler plate, ensuring that the filler plate is flush with the table surface after installation. At the same time, the locking structure facilitates quick removal of the filler plate before folding, without hindering the folding action of the load-bearing plate. This solution balances the flatness of the table surface, the secondary folding of the two load-bearing plates, and the convenience of storage.
[0013] The present invention is further configured such that the folding assembly includes an L-shaped retaining frame, the inner cavity of the retaining frame is rotatably connected to a retaining block, the bottom of the retaining block is fixedly installed with the lifting assembly, and a retaining plate is snapped between the opposite sides of every two L-shaped retaining frames.
[0014] The above technical solution allows the lifting component to rotate and fold around the connection point via the rotational connection between the L-shaped fixing frame and the fixing block. After the load-bearing plate is folded, the lifting component is rotated to fit the bottom of the load-bearing plate, further reducing the storage volume. The locking between the fixing plate and the L-shaped fixing frame can lock the unfolding angle of the lifting component, preventing it from rotating arbitrarily during operation and ensuring stable support. The folding freedom can be released after the fixing plate is removed, making the operation simple.
[0015] The present invention is further configured such that the lifting component includes a limiting shell, the top of the limiting shell is fixedly installed with the folding component, a hydraulic rod is fixedly installed on the top of the inner cavity of the limiting shell, and an anti-slip pad is fixedly installed on the bottom of the hydraulic rod.
[0016] The above technical solution is adopted: the anti-slip mat is raised and lowered by the extension and retraction of the hydraulic rod, so as to realize the rapid adjustment of the height of the load-bearing platform, which can adapt to the operating needs of workers of different heights. The anti-slip mat increases the friction with the ground, prevents the platform from sliding during assembly operations, and improves the safety of operation.
[0017] The present invention is further configured such that a retaining shell is fixedly installed on the top of the anti-slip pad, and the surface of the retaining shell is slidably connected to the inner cavity of the limiting shell.
[0018] The above technical solution is adopted: the sliding cooperation between the fixed shell and the limiting shell guides the lifting trajectory of the anti-slip pad, ensuring that the anti-slip pad always moves vertically when the hydraulic rod extends and retracts, thus avoiding tilting that could lead to platform instability.
[0019] In summary, this utility model has the following beneficial effects: 1. When it is necessary to quickly adjust the height of the platform composed of load-bearing plates according to the different heights of the staff, the staff will simultaneously activate the hydraulic rods fixed at the four corners, causing the piston rods in the hydraulic rods to extend downwards. As the hydraulic rods extend, they will move the anti-slip pads away from the limiting shells. As the anti-slip pads move away from the limiting shells, they will also lift the components connected to the limiting shells. Once the load-bearing plates are lifted to the designated position, the staff will close the hydraulic rods to stop pushing the anti-slip pads and the fixing shells, thus completing the quick adjustment of the height of the platform composed of load-bearing plates during use. 2. When the work is completed and the device needs to be stored to reduce its footprint, the staff should disconnect the filling plate from the locking shell, the positioning plate from the positioning shell, and the fixing plate from the L-shaped fixing frame. Then, pull the two load-bearing plates to the sides away from the connection point between the positioning frame and the connecting frame. Once the two load-bearing plates are in the designated position, they can be connected by the pivot pins of the positioning frame and the connecting frame to fold them. At the same time, a second fold can be performed by sliding the load-bearing plates with the positioning frame or the connecting frame. After the load-bearing plates are folded, the lifting component can be brought into contact with the load-bearing plates through the folding component, thus completing the reduction of the device's footprint for storage after the work is completed. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a partial structural schematic diagram of the present invention; Figure 3 This is an exploded view of the connecting components of this utility model; Figure 4 This is an exploded view of the folding component of this utility model; Figure 5 This is a cross-sectional view of the lifting component of this utility model.
[0021] Reference numerals: 1. Load-bearing plate; 2. Connecting assembly; 201. Positioning frame; 202. Connecting frame; 203. Positioning plate; 204. Positioning shell; 205. Filling plate; 206. Locking shell; 3. Folding assembly; 301. L-shaped fixing frame; 302. Fixing block; 303. Fixing plate; 4. Lifting assembly; 401. Limiting shell; 402. Hydraulic rod; 403. Anti-slip pad; 404. Fixing shell. Detailed Implementation
[0022] The present invention will be further described in detail below with reference to the accompanying drawings.
[0023] Example 1: refer to Figure 1 , Figure 2 and Figure 5A tooling fixture assembly platform includes a folding component 3, and a lifting component 4 is fixedly installed at the bottom of the folding component 3.
[0024] Furthermore, the lifting assembly 4 includes a limiting shell 401, the top of which is fixedly installed with the folding assembly 3, a hydraulic rod 402 is fixedly installed on the top of the inner cavity of the limiting shell 401, and an anti-slip pad 403 is fixedly installed on the bottom of the hydraulic rod 402.
[0025] Furthermore, a retaining shell 404 is fixedly installed on the top of the anti-slip pad 403, and the surface of the retaining shell 404 is slidably connected to the inner cavity of the limiting shell 401.
[0026] Brief description of usage: When adjusting the height of the platform composed of the load-bearing plate 1 according to the different heights of the staff, the staff will return the device from the folded state to the normal use state. After positioning the device by the cooperation of the positioning plate 203, positioning shell 204, filling plate 205, locking shell 206, and fixing plate 303 with L-shaped fixing frame 301, the staff will simultaneously activate the hydraulic rods 402 fixed at the four corners, causing the piston rod in the hydraulic rod 402 to extend downward. As the hydraulic rod 402 extends, it will drive the anti-slip pad 403 and fixing shell 404 to move away from the limiting shell 401. As the anti-slip pad 403 and fixing shell 404 move away from the limiting shell 401, the components connected to the limiting shell 401 will be lifted. When the load-bearing plate 1 is raised to the designated position, the staff will close the hydraulic rod 402 to cancel it. Pushing the anti-slip mat 403 and the retaining shell 404 allows for adjustment of the platform height of the load-bearing plate 1 according to the height of the workers. The rotating connection between the L-shaped retaining frame 301 and the retaining block 302 allows the lifting component 4 to rotate and fold around the connection point. After the load-bearing plate 1 is folded, the lifting component 4 rotates to fit the bottom of the load-bearing plate 1, further reducing the storage volume. The engagement between the retaining plate 303 and the L-shaped retaining frame 301 locks the unfolding angle of the lifting component 4, preventing it from rotating arbitrarily during operation and ensuring stable support. Removing the retaining plate 303 releases the folding freedom, making operation simple. The sliding cooperation between the retaining shell 404 and the limiting shell 401 guides the lifting trajectory of the anti-slip mat 403, ensuring that the anti-slip mat 403 always moves vertically when the hydraulic rod 402 extends or retracts, avoiding tilting that could cause platform instability.
[0027] Example 2: refer to Figure 1 , Figure 2 , Figure 3 and Figure 4 A tooling fixture assembly platform includes two load-bearing plates 1, a connecting component 2 that is slidably connected between opposite sides of the two load-bearing plates 1, and folding components 3 that are fixedly installed on both sides of the bottom of the two load-bearing plates 1.
[0028] Furthermore, the connecting component 2 includes a positioning frame 201 and a connecting frame 202. The inner cavity of the connecting frame 202 is slidably connected to the positioning frame 201, and the two sides of the positioning frame 201 and the connecting frame 202 are respectively slidably connected to the inner cavity of the load-bearing plate 1 that is close to them.
[0029] Furthermore, a positioning plate 203 is fixedly installed between the opposite sides of the bottom of the two load-bearing plates 1, and a positioning shell 204 is slidably connected to the surface of the positioning plate 203.
[0030] A filling plate 205 is snapped between the top sides of the two load-bearing plates 1. A locking shell 206 is snapped between the front and rear sides of the bottom sides of the filling plate 205. The locking shell 206 is fixedly installed with the load-bearing plate 1 on the side closest to the load-bearing plate 1.
[0031] Furthermore, the folding assembly 3 includes an L-shaped retaining frame 301, with a retaining block 302 rotatably connected to the inner cavity of the L-shaped retaining frame 301. The bottom of the retaining block 302 is fixedly installed with the lifting assembly 4, and a retaining plate 303 is snapped between the opposite sides of each pair of L-shaped retaining frames 301.
[0032] Brief description of usage: When the device needs to be stored to reduce its footprint after work is completed, the operator disconnects the filling plate 205 from the locking shell 206, the positioning plate 203 from the positioning shell 204, and the fixing plate 303 from the L-shaped fixing frame 301. Then, the operator pulls the two load-bearing plates 1 to both sides, away from the connection point between the positioning frame 201 and the connecting frame 202. Once the two load-bearing plates 1 are in the designated position, the operator can fold them using the pivot pin connection between the positioning frame 201 and the connecting frame 202. Furthermore, the load-bearing plates 1 can be slidably connected to the positioning frame 201 or the connecting frame 202. After the load-bearing plate 1 is folded in two stages, the lifting component 4 can contact the load-bearing plate 1 through the cooperation of the L-shaped fixing frame 301 and the fixing block 302 in the folding component 3. This allows the device to be stored after its work is completed, reducing its floor space. The positioning frame 201 and the connecting frame 202 slide with the two load-bearing plates 1 respectively, providing a telescopic connection structure for the two load-bearing plates 1. This allows the load-bearing plates 1 to move flexibly in the horizontal direction, which is convenient for unfolding to form a complete platform and for closing them up to reduce their lateral dimensions when stored. The sliding connection between the positioning frame 201, the connecting frame 202 and the load-bearing plate 1 allows the load-bearing plate to move flexibly in the horizontal direction. 1. During folding, the plate slides along the frame, providing movement space for secondary folding and ensuring the structural stability of the tabletop in the unfolded state, preventing the load-bearing plate 1 from shaking under stress. The sliding engagement of the positioning plate 203 and the positioning shell 204 provides guidance and constraint to the relative positions of the two load-bearing plates 1, preventing them from shifting during unfolding and ensuring the tabletop remains horizontally aligned after unfolding. The filling plate 205 fills the gap between the two load-bearing plates 1 after unfolding, creating a complete flat surface on the tabletop and preventing parts from falling out during tooling assembly. The fixed connection between the locking shell 206 and the load-bearing plate 1 provides precise positioning for the filling plate 205, ensuring that the filling plate 205 is flush with the tabletop after installation. The design is neat and features a snap-fit structure that allows for quick disassembly of the filling plate 205 before folding, without hindering the folding action of the load-bearing plate 1. This design balances the flatness of the tabletop, the secondary folding of the two load-bearing plates 1, and ease of storage. The L-shaped retaining frame 301 and the retaining block 302 are connected by rotation, allowing the lifting component 4 to rotate and fold around the connection point. After the load-bearing plate 1 is folded, the lifting component 4 is rotated to fit against the bottom of the load-bearing plate 1, further reducing the storage volume. The snap-fit between the retaining plate 303 and the L-shaped retaining frame 301 locks the unfolding angle of the lifting component 4, preventing it from rotating arbitrarily during operation and ensuring stable support. The folding freedom can be released after the retaining plate 303 is removed, making the operation simple.The positioning frame 201 and connecting frame 202, through their sliding engagement with the two load-bearing plates 1, provide a retractable connection structure for the two load-bearing plates 1. This allows the load-bearing plates 1 to move flexibly in the horizontal direction, facilitating both unfolding to form a complete tabletop and allowing them to move closer together to reduce their lateral dimensions during storage. The sliding connection between the positioning frame 201, connecting frame 202, and load-bearing plates 1 allows the load-bearing plates 1 to slide along the frame during folding, providing movement space for secondary folding while ensuring the structural stability of the tabletop in the unfolded state and preventing the load-bearing plates 1 from shaking under stress. The sliding engagement between the positioning plate 203 and the positioning shell 204 further enhances the stability of the two load-bearing plates 1. The relative positions of the load-bearing plates 1 form a guiding constraint, preventing them from shifting during unfolding and ensuring the tabletop remains horizontally aligned after unfolding. The filler plate 205 fills the gap between the two load-bearing plates 1 after unfolding, creating a complete flat surface on the tabletop. This prevents parts from falling out of the gaps during tooling assembly. The fixed connection between the locking shell 206 and the load-bearing plates 1 provides precise positioning for the filler plate 205, ensuring it is flush with the tabletop after installation. Simultaneously, the locking structure facilitates quick removal of the filler plate 205 before folding, without hindering the folding action of the load-bearing plates 1. This balances tabletop flatness, secondary folding of the two load-bearing plates 1, and convenient storage.
[0033] It should be noted that parts have a lifespan and can be replaced during regular maintenance when they no longer meet performance requirements. Deterioration in performance due to prolonged use of parts is not a design defect of this application.
[0034] This specific embodiment is merely an explanation of the present utility model and is not intended to limit the present utility model. After reading this specification, those skilled in the art can make modifications to this embodiment without contributing any inventive step, but as long as they are within the scope of the claims of the present utility model, they are protected by patent law.
Claims
1. A tooling fixture assembly platform, comprising two load-bearing plates (1), characterized in that: A connecting component (2) is slidably connected between two load-bearing plates (1) on opposite sides. Folding components (3) are fixedly installed on both sides of the bottom of the two load-bearing plates (1). A lifting component (4) is fixedly installed at the bottom of the folding component (3).
2. The tooling fixture assembly platform according to claim 1, characterized in that: The connecting component (2) includes a positioning frame (201) and a connecting frame (202). The inner cavity of the connecting frame (202) is slidably connected to the positioning frame (201). The two sides of the positioning frame (201) and the connecting frame (202) are respectively slidably connected to the inner cavity of the load-bearing plate (1) that is close to them.
3. The tooling fixture assembly platform according to claim 2, characterized in that: A positioning plate (203) is fixedly installed between the opposite sides of the bottom of the two load-bearing plates (1), and a positioning shell (204) is slidably connected to the surface of the positioning plate (203).
4. The tooling fixture assembly platform according to claim 2, characterized in that: A filling plate (205) is snapped between the top sides of the two load-bearing plates (1). A locking shell (206) is snapped between the front and rear sides of the bottom sides of the filling plate (205). The locking shell (206) is fixedly installed with the load-bearing plate (1) on the side closest to the load-bearing plate (1).
5. The tooling fixture assembly platform according to claim 1, characterized in that: The folding assembly (3) includes an L-shaped retaining frame (301), and a retaining block (302) is rotatably connected to the inner cavity of the L-shaped retaining frame (301). The bottom of the retaining block (302) is fixedly installed with the lifting assembly (4), and a retaining plate (303) is snapped between the opposite sides of each pair of L-shaped retaining frames (301).
6. The tooling fixture assembly platform according to claim 1, characterized in that: The lifting assembly (4) includes a limiting shell (401), the top of which is fixedly installed with the folding assembly (3), a hydraulic rod (402) is fixedly installed on the top of the inner cavity of the limiting shell (401), and an anti-slip pad (403) is fixedly installed on the bottom of the hydraulic rod (402).
7. The tooling fixture assembly platform according to claim 6, characterized in that: The top of the anti-slip pad (403) is fixedly installed with a retaining shell (404), and the surface of the retaining shell (404) is slidably connected to the inner cavity of the limiting shell (401).