Dimension detection and adjustment device in steel structural member machining
The system uses a motor-driven threaded rod and clamping plate to quickly clamp steel structural components. Combined with laser detection, this solves the problems of high labor intensity and slow speed caused by manual clamping, and improves production efficiency and detection accuracy.
Patent Information
- Application Number
- CN202520233433.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-14
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-02-14
AI Technical Summary
The existing dimensional inspection and adjustment devices in the machining of steel structure components use manual rotation of threaded rods for clamping, which increases the labor intensity of operators and is slow, thus reducing production efficiency.
The system employs a motor-driven threaded rod and clamping plate system. The motor drives the threaded rod to rotate, enabling rapid clamping and release of steel structural components. This is combined with a laser detection device for precise inspection.
It enables rapid clamping and release of steel structure components, preventing deformation and improving production efficiency and inspection accuracy.
Smart Images

Figure CN223896769U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of steel structure component inspection technology, and in particular to a dimensional inspection and adjustment device for steel structure component machining. Background Technology
[0002] Steel structure components refer to various structural parts made of steel, mainly including steel beams, steel columns, steel trusses, etc. Testing and adjustment devices help improve the processing accuracy and product quality of steel structure components, and ensure the safety and stability of steel structure projects.
[0003] Existing dimensional inspection and adjustment devices for machining steel structure components mostly rely on manually rotating a threaded rod. The threaded rod drives a clamping plate to move and hold the steel structure component. Manually rotating the threaded rod requires manual force, which not only increases the labor intensity of the operator but also results in slow operation speed, thereby reducing overall production efficiency.
[0004] Therefore, most dimensional inspection and adjustment devices used in the machining of steel structure components rely on manual rotation of a threaded rod. This threaded rod moves a clamping plate to hold the steel structure component. Manually rotating the threaded rod requires manual force, which not only increases the operator's workload but also results in slow operation and reduced overall production efficiency. A new dimensional inspection and adjustment device for steel structure component machining can be designed to clamp the steel structure component quickly, allowing for rapid clamping and release to prevent deformation. This solves the problem of the most common method of manually rotating a threaded rod to move a clamping plate, which requires manual force and increases the operator's workload while reducing overall production efficiency. Utility Model Content
[0005] To address the shortcomings of existing technologies, the purpose of this utility model is to provide a dimensional detection and adjustment device for machining steel structure components. This dimensional detection and adjustment device for machining steel structure components aims to solve the technical problem that in the existing technology, most of the machining processes rely on manually rotating a threaded rod, which drives the clamping plate to move and clamp the steel structure component. Manually rotating the threaded rod requires manual force, which not only increases the labor intensity of the operator but also results in slow operation speed, thereby reducing the overall production efficiency.
[0006] The technical solution of this utility model is as follows: a dimension detection and adjustment device for machining steel structure components, including a worktable, a first motor and a detection component; a support column is provided at the lower end of the worktable, a first motor is provided on one side of the worktable, a first threaded rod is provided at the output end of the first motor, a slider is provided on the outer side of the first threaded rod, a fixed plate is provided at the upper end of the slider, an installation block is provided at the upper end of the fixed plate, a rotating disk is provided on the inner side of the installation block, a rotating shaft is provided on one side of the rotating disk, a connecting rod is rotatably connected to the upper end of the rotating disk, a clamping plate is rotatably connected to one side of the connecting rod, a spring is provided between the clamping plate and the installation block, and a steel structure component body is provided at the upper end of the installation block.
[0007] Preferably, a groove is provided at the corresponding position of the worktable and the slider, and the slider is slidably connected inside the groove of the worktable.
[0008] Preferably, there are two sets of mounting blocks, which are symmetrically arranged at the upper end of the fixing plate.
[0009] Preferably, a groove is provided at the corresponding position of the mounting block and the rotating shaft, and the rotating shaft is rotatably connected inside the groove of the mounting block.
[0010] Preferably, a groove is provided at the corresponding position of the mounting block and the clamping plate, and the clamping plate is slidably connected inside the groove of the mounting block.
[0011] Preferably, the detection component includes a mounting bracket; the mounting bracket is provided on the upper end of the worktable, a second motor is provided on one side of the mounting bracket, a second threaded rod is provided at the output end of the second motor, a movable block is provided on the outside of the second threaded rod, and a laser detection device is provided on one side of the movable block.
[0012] Preferably, a groove is provided at the corresponding position of the mounting bracket and the movable block, and the movable block is slidably connected inside the groove of the mounting bracket.
[0013] The beneficial effects of this utility model are as follows: Compared with traditional dimensional detection and adjustment devices for machining steel structure components, most of which rely on manually rotating a threaded rod to move a clamping plate and hold the steel structure component, this device uses a rapid clamping method to hold the steel structure component. This allows for quick clamping and release of the steel structure component, preventing deformation. This solves the problem of the traditional method of manually rotating a threaded rod to move a clamping plate, which requires manual force and increases the operator's workload. Attached Figure Description
[0014] Figure 1The diagram shows a three-dimensional structural schematic of a dimension detection and adjustment device for machining steel structure components according to this utility model.
[0015] Figure 2 The diagram shows a three-dimensional structural schematic of the fixing plate of a dimension detection and adjustment device for machining steel structure components according to this utility model.
[0016] Figure 3 The diagram shown is a cross-sectional view of a quick-clamping assembly of a dimension detection and adjustment device for machining steel structure components according to this utility model.
[0017] Figure 4 The diagram shown is a cross-sectional view of the detection component of a dimension detection and adjustment device for machining steel structure components according to this utility model.
[0018] Explanation of reference numerals in the attached drawings: 1. Workbench; 2. Support column; 301. First motor; 302. First threaded rod; 303. Slider; 304. Fixed plate; 305. Mounting block; 306. Rotating disk; 307. Rotating shaft; 308. Connecting rod; 309. Clamping plate; 310. Spring; 311. Steel structure component body; 401. Mounting frame; 402. Second motor; 403. Second threaded rod; 404. Movable block; 405. Laser detection device. Detailed Implementation
[0019] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0020] Please see Figure 1 - Figure 4This utility model provides an embodiment: a dimensional detection and adjustment device for machining steel structure components, including a worktable 1, a first motor 301, and a detection component; a support column 2 is provided at the lower end of the worktable 1, the first motor 301 is provided on one side of the worktable 1, a first threaded rod 302 is provided at the output end of the first motor 301, a slider 303 is provided on the outer side of the first threaded rod 302, a fixing plate 304 is provided at the upper end of the slider 303, an mounting block 305 is provided at the upper end of the fixing plate 304, a rotating disk 306 is provided on the inner side of the mounting block 305, a rotating shaft 307 is provided on one side of the rotating disk 306, and a connecting rod 308 is rotatably connected to the upper end of the rotating disk 306. A clamping plate 309 is dynamically connected, and a spring 310 is installed between the clamping plate 309 and the mounting block 305. A steel structure component body 311 is installed on the upper end of the mounting block 305. A groove is opened at the corresponding position of the worktable 1 and the slider 303. The slider 303 is slidably connected inside the groove of the worktable 1. The groove at the corresponding position of the worktable 1 and the slider 303 provides a limiting effect when the slider 303 slides inside the groove. Two sets of mounting blocks 305 are provided, and the two sets of mounting blocks 305 are symmetrically arranged on the upper end of the fixed plate 304. The two sets of mounting blocks 305 clamp the two sides of the steel structure component body 311, improving the clamping stability. The mounting block 305 and the rotating shaft 30 A groove is provided at the corresponding position of 7. The rotating shaft 307 is rotatably connected to the inside of the groove of the mounting block 305. The grooves at the corresponding positions of the mounting block 305 and the rotating shaft 307 limit the rotation of the rotating shaft 307 within the groove. A groove is provided at the corresponding position of the mounting block 305 and the clamping plate 309. The clamping plate 309 is slidably connected to the inside of the groove of the mounting block 305. The grooves at the corresponding positions of the mounting block 305 and the clamping plate 309 limit the sliding of the clamping plate 309 within the groove. By pulling the clamping plate 309, the clamping plate 309 compresses the spring 310. The movement of the clamping plate 309 drives the connecting rod 308 to move, and the connecting rod 308 drives the rotating disk. Rotating disc 306 drives another set of connecting rods 308 and clamping plates 309 to move. Then, the steel structure component body 311 is placed between the two sets of clamping plates 309. The clamping plates 309 are released, and the spring 310 loses pressure, causing the clamping plates 309 to move. The moving clamping plates 309 clamp the steel structure component body 311, thereby achieving rapid clamping. The first motor 301 is started, and the first motor 301 drives the first threaded rod 302 to rotate. The first threaded rod 302 drives the slider 303 to move. The slider 303 drives the fixing plate 304 to move. The fixing plate 304 drives the mounting block 305 to move. The mounting block 305 moves the steel structure component body 311 to the bottom of the detection component for detection.
[0021] Please see Figure 4In this embodiment, the detection component includes a mounting frame 401; the upper end of the workbench 1 is provided with the mounting frame 401, a second motor 402 is provided on one side of the mounting frame 401, a second threaded rod 403 is provided at the output end of the second motor 402, a movable block 404 is provided on the outer side of the second threaded rod 403, a laser detection device 405 is provided on one side of the movable block 404, and slots are provided at corresponding positions of the mounting frame 401 and the movable block 404. The movable block 404 is slidably connected inside the slot of the mounting frame 401. The slots provided at corresponding positions of the mounting frame 401 and the movable block 404 enable the movable block 404 to slide inside the slot, thus achieving a limiting effect.
[0022] During operation, pulling the clamping plate 309 compresses the spring 310. The movement of the clamping plate 309 moves the connecting rod 308, which in turn rotates the rotating disk 306. The rotating disk 306 then moves another set of connecting rods 308 and clamping plates 309. The steel structure component body 311 is then placed between the two sets of clamping plates 309. Releasing the clamping plate 309 releases the pressure on the spring 310, causing the clamping plate 309 to move and clamp the steel structure component body 311, thus achieving rapid clamping. The first motor 301 is then started. 1. The first threaded rod 302 is driven to rotate, the first threaded rod 302 drives the slider 303 to move, the slider 303 drives the fixed plate 304 to move, the fixed plate 304 drives the mounting block 305 to move, the mounting block 305 drives the steel structure component body 311 to move below the laser detection device 405, the laser detection device 405 is started, the second motor 402 is started, the second motor 402 drives the second threaded rod 403 to rotate, the second threaded rod 403 drives the movable block 404 to move, the movable block 404 drives the laser detection device 405 to move to detect and adjust the steel structure component body 311.
[0023] Through the above steps, by pulling the clamping plate 309, the clamping plate 309 compresses the spring 310. The movement of the clamping plate 309 drives the connecting rod 308 to move. The connecting rod 308 drives the rotating disk 306 to rotate. The rotating disk 306 drives another set of connecting rods 308 and clamping plates 309 to move. Then, the steel structure component body 311 is placed between the two sets of clamping plates 309. The clamping plate 309 is released, and the spring 310 loses pressure, causing the clamping plate 309 to move. The movement of the clamping plate 309 clamps the steel structure component body 311, thereby achieving rapid clamping. The first motor 301 is started, and the first motor 301 drives the first threaded rod 302 to rotate. The first threaded rod 302 drives the slider 303 to move. The slider 303 drives the fixing plate 304 to move. The fixing plate 304 drives the mounting block 305 to move. The mounting block 305 moves the steel structure component body 311 to the bottom of the detection component for detection.
[0024] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.
Claims
1. A dimensional inspection and adjustment device for machining steel structure components, comprising a worktable (1); characterized in that: It also includes a first motor (301) and a detection component; a support column (2) is provided at the lower end of the workbench (1), a first motor (301) is provided on one side of the workbench (1), a first threaded rod (302) is provided at the output end of the first motor (301), a slider (303) is provided on the outside of the first threaded rod (302), a fixing plate (304) is provided at the upper end of the slider (303), an installation block (305) is provided at the upper end of the fixing plate (304), a rotating disk (306) is provided on the inner side of the installation block (305), a rotating shaft (307) is provided on one side of the rotating disk (306), a connecting rod (308) is rotatably connected to the upper end of the rotating disk (306), a clamping plate (309) is rotatably connected to one side of the connecting rod (308), a spring (310) is provided between the clamping plate (309) and the installation block (305), and a steel structure component body (311) is provided at the upper end of the installation block (305).
2. The dimensional detection and adjustment device for machining steel structure components according to claim 1, characterized in that: The worktable (1) and the slider (303) are provided with grooves at corresponding positions, and the slider (303) is slidably connected inside the groove of the worktable (1).
3. The dimensional detection and adjustment device for machining steel structure components according to claim 1, characterized in that: There are two sets of mounting blocks (305), which are symmetrically arranged on the upper end of the fixing plate (304).
4. The dimensional detection and adjustment device for machining steel structure components according to claim 1, characterized in that: The mounting block (305) and the rotating shaft (307) are provided with grooves at corresponding positions, and the rotating shaft (307) is rotatably connected to the groove of the mounting block (305).
5. The dimensional detection and adjustment device for machining steel structure components according to claim 1, characterized in that: The mounting block (305) and the clamping plate (309) are provided with grooves at corresponding positions, and the clamping plate (309) is slidably connected inside the groove of the mounting block (305).
6. The dimensional detection and adjustment device for machining steel structure components according to claim 1, characterized in that: The detection assembly includes a mounting bracket (401); the mounting bracket (401) is provided on the upper end of the workbench (1), a second motor (402) is provided on one side of the mounting bracket (401), a second threaded rod (403) is provided at the output end of the second motor (402), a movable block (404) is provided on the outside of the second threaded rod (403), and a laser detection device (405) is provided on one side of the movable block (404).
7. The dimensional detection and adjustment device for machining steel structure components according to claim 6, characterized in that: The mounting bracket (401) and the movable block (404) are provided with grooves at corresponding positions, and the movable block (404) is slidably connected inside the groove of the mounting bracket (401).