Corrosion resistance detection device for building steel structure
By designing a corrosion resistance detection device for lifting, rotating, clamping and moving components, the problems of low residual and clamping efficiency of detection liquid are solved, automatic immersion, agitation and spin drying are achieved, and detection efficiency and applicability are improved.
Patent Information
- Application Number
- CN202510236457.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-28
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2045-02-28
AI Technical Summary
The existing corrosion resistance detection device is difficult to quickly remove the residual detection liquid after the detection is completed, and the traditional device is inefficient in clamping the steel structure, so it is impossible to process multiple samples at the same time.
A corrosion resistance detection device including lifting, rotating, clamping and moving components is designed. By simultaneously driving the rotation and lifting of the double-headed motor, the automatic immersion, agitation and spin drying of the steel structure is realized. The clamping component has multiple stations to clamp multiple steel structures at the same time.
It realizes automatic drying of steel structure detection liquid, simplifies the operation process, improves detection efficiency, is suitable for large-scale sample processing, and saves equipment costs.
Smart Images

Figure CN120064088A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of corrosion resistance detection of steel structures, and particularly to a corrosion resistance detection device for building steel structures. Background Art
[0002] In the field of corrosion resistance detection of building steel structures, there are some drawbacks in the existing technologies. After the detection by traditional corrosion resistance detection devices, there are often some detection liquids remaining on the steel structures, and these residual liquids will affect the subsequent detection results. However, there is a lack of effective means in the existing technologies to quickly remove these residual liquids, and usually manual labor is required, which is time-consuming and laborious. Also, in the detection operation, how to perform more efficiently is also a problem.
[0003] In addition, there are also deficiencies in the traditional detection devices in clamping steel structures. Usually, only one steel structure can be clamped for detection at a time, which greatly reduces the detection efficiency. For the situation where a large number of samples need to be detected, this single clamping method obviously cannot meet the actual needs.
[0004] Therefore, it is necessary to provide a corrosion resistance detection device for building steel structures, which can achieve an efficient effect. Summary of the Invention
[0005] The purpose of the present invention is to provide a corrosion resistance detection device for building steel structures to solve the problems raised in the above background art.
[0006] To solve the above technical problems, the present invention provides the following technical solution: A corrosion resistance detection device for building steel structures includes a base, a solution tank, a moving component, a double-headed motor, a lifting component, a rotating component, and a clamping component.
[0007] One side of the moving component is connected to a fixing plate, the fixing plate is fixedly connected to the double-headed motor, both output ends of the double-headed motor are fixedly connected to a rotating shaft, and the two rotating shafts are respectively connected to the lifting component and the rotating component;
[0008] The clamping component is connected to the rotating component.
[0009] In one embodiment, the rotating component includes a round block, the round block is connected to the rotating shaft, and the round block is connected to the clamping component.
[0010] In one embodiment, the round block is slidably connected to the rotating shaft, two long strips are fixedly connected to the outer side of the rotating shaft, two long grooves are formed in the inner side of the round block, and the long strips correspond to the long grooves.
[0011] In one embodiment, the clamping assembly includes three support frames, which are fixedly connected to the round block. A first clamping block is fixedly connected to the bottom of one side of the support frame. A ring is fixedly connected to the bottoms of the three support frames. An internal gear is rotatably connected to the inner side of the ring. Three first gears are meshed and connected to one side of the internal gear. A first rack is meshed and connected to one side of the first gear. A second clamping block is fixedly connected to one side of the first rack. Three square blocks are fixedly connected to the bottom of the round block. The square block is slidably connected to the first rack. A driving assembly is connected to one side of the first gear. The driving assembly is connected to the support frame.
[0012] In one embodiment, the driving assembly includes a round rod, which is fixedly connected to the first gear. A first motor is connected to one side of one of the round rods. The first motor is fixedly connected to the support frame. A support block is rotatably connected to one side of the two round rods. The support block is fixedly connected to the support frame.
[0013] In one embodiment, the lifting assembly includes a second gear, which is fixedly connected to the rotating shaft. A third gear is meshed and connected to one side of the second gear. A vertical rod is fixedly connected to one side of the third gear. A long block is fixedly connected to one side of the fixing plate. The long block is rotatably connected to the vertical rod. A first bevel gear is fixedly connected to one side of the vertical rod. A second bevel gear is meshed and connected to one side of the first bevel gear. A cross rod is fixedly connected to the inside of the second bevel gear. The cross rod is rotatably connected to the fixing plate. A fourth gear is fixedly connected to one side of the cross rod. A second rack is meshed and connected to one side of the fourth gear. The second rack is connected to the round block. A square block is fixedly connected to one side of the fixing plate. The square block is slidably connected to the second rack.
[0014] In one embodiment, a circular groove is formed on the outer side of the round block. A convex block is fixedly connected to the bottom of the second rack. The circular groove corresponds to the convex block.
[0015] In one embodiment, the moving assembly includes a cylinder. A piston rod is connected to the output end of the cylinder. The piston rod is fixedly connected to the fixing plate.
[0016] Compared with the prior art, the beneficial effects achieved by the present invention are as follows: By providing lifting, rotating, clamping, and moving assemblies, the present invention realizes the automatic immersion, agitation, and drying processes of steel structures, with simple operation. At the same time, the clamping assembly has multiple stations, and multiple steel structures can be clamped simultaneously through the driving assembly, so that the device can process multiple samples at the same time, is suitable for processing a large number of samples, and improves the processing efficiency. This device only uses one double-headed motor to drive rotation and lifting simultaneously, saving the device and reducing costs. Description of the Drawings
[0017] In combination with the accompanying drawings, through a detailed description of the specific embodiments of the present application, the technical solutions and other beneficial effects of the present application will become obvious.
[0018] In the drawings:
[0019] Figure 1 is a schematic diagram of the overall structure of the present invention;
[0020] Figure 2 is a partial three-dimensional schematic diagram of the present invention;
[0021] Figure 3 is a three-dimensional schematic diagram of the rotating assembly and the clamping assembly of the present invention;
[0022] Figure 4 is a three-dimensional schematic diagram of the clamping assembly of the present invention;
[0023] Figure 5 is a three-dimensional schematic diagram of the lifting assembly and the rotating assembly of the present invention;
[0024] In the figure: 1. Base; 101. Solution tank; 102. Cylinder; 103. Piston rod; 104. Fixed plate; 105. Long block; 106. Cross bar;
[0025] 2. Double-headed motor; 201. Rotating shaft; 202. Gear two; 203. Gear three; 204. Vertical rod; 205. Bevel gear one; 206. Bevel gear two; 207. Gear four; 208. Rack two;
[0026] 3. Round block; 301. Support frame; 302. Ring; 303. Internal gear; 304. Gear one; 305. Rack one; 306. Clamping block two; 307. Clamping block one; 308. Round rod; 309. Motor one; 310. Support block; 311. Square block; 312. Long strip; 313. Circular groove. Specific Embodiments
[0027] The following disclosure provides many different embodiments or examples for implementing different structures of the present application. To simplify the disclosure of the present application, components and settings of specific examples are described below. Of course, they are only examples and are not intended to limit the present application.
[0028] Please refer to Figures 1-5 , the present invention provides a technical solution: a corrosion resistance detection device for building steel structures, including a base 1, a solution tank 101, a moving component, a double-headed motor 2, a lifting component, a rotating component, and a clamping component.
[0029] One side of the moving component is connected to a fixed plate 104. The fixed plate 104 and the double-headed motor 2 are fixedly connected. Both output ends of the double-headed motor 2 are fixedly connected with rotating shafts 201. The two rotating shafts 201 are respectively connected to the lifting component and the rotating component;
[0030] The clamping component is connected to the rotating component.
[0031] Specifically, when the staff is ready to start the corrosion resistance test, at first, the moving component sends the upper part of the whole to the outside of the base 1, which is convenient for the staff to place the steel structure inside the clamping component. Then the clamping component clamps it, and then the moving component moves the upper part of the whole and the steel structure together to the top of the solution tank 101.
[0032] Then the staff turns on the double-headed motor 2, and the rotating shafts 201 at the output ends rotate. One rotating shaft 201 starts the lifting component, and the lifting component drives the steel structure to move downward. At the same time, the other rotating shaft 201 drives the steel structure to rotate, stirring the solution inside when entering the solution tank 101 to make the solution uniform. When the test is completed, the double-headed motor 2 is driven to move in the reverse direction at this time. At this time, the lifting component drives the steel structure upward and rotates while moving upward, so that the solution remaining on the surface of the steel structure can be shaken off, and there is no need to wipe the steel structure separately.
[0033] When the steel structure enters the solution tank 101, the solution is stirred through the rotating component, ensuring the uniform distribution of the solution components and improving the accuracy and reliability of the corrosion resistance test. After the test is completed, through the reverse movement of the double-headed motor 2, the lifting component drives the steel structure to move upward and rotate at the same time, effectively shaking off the solution remaining on the surface of the steel structure, avoiding the additional wiping step, simplifying the subsequent processing work, and saving time and labor costs. By setting a double-headed motor 2, driving the rotation and lifting movements at the same time, the device is simplified and the cost is saved.
[0034] The rotating component includes a round block 3. The round block 3 is connected to the rotating shaft 201, and the round block 3 is connected to the clamping component.
[0035] Specifically, when the rotating shaft 201 rotates, it will also drive the round block 3 to rotate. In this way, the clamping component on the side of the round block 3 will rotate, and the clamped steel structure can rotate accordingly. When rotating downward, the solution can be stirred to make it more uniform, and the solution corrodes more thoroughly. When rotating upward, the solution on the surface of the steel structure can be dried, saving the wiping link and improving the work efficiency.
[0036] The round block 3 and the rotating shaft 201 are slidably connected. Two long strips 312 are fixedly connected to the outside of the rotating shaft 201, and two long grooves are opened on the inner side of the round block 3. The long strips 312 correspond to the long grooves.
[0037] Specifically, the round block 3 and the rotating shaft 201 are slidably connected. In theory, the round block 3 can move up and down outside the rotating shaft 201, that is, cooperate with the lifting assembly. However, the round block 3 needs to be rotatable. Therefore, the long strip 312 and the long groove are provided. The long strip 312 is inside the long groove. In this way, when the rotating shaft 201 rotates, the long strip 312 can rotate, and the long strip 312 presses and pushes the long groove to make the round block 3 rotate. In this way, the round block 3 can move up and down and rotate at the same time. One motor can drive two movements simultaneously, saving the device and reducing costs.
[0038] The clamping assembly includes three support frames 301. The support frames 301 and the round block 3 are fixedly connected. One side of the bottom of the support frame 301 is fixedly connected with a first clamping block 307. The bottoms of the three support frames 301 are fixedly connected with a ring 302. The inner side of the ring 302 is rotatably connected with an internal gear 303. One side of the internal gear 303 is meshed with three first gears 304. One side of the first gear 304 is meshed with a first rack 305. One side of the first rack 305 is fixedly connected with a second clamping block 306. The bottom of the round block 3 is fixedly connected with three square blocks 311. The square blocks 311 and the first rack 305 are slidably connected. One side of the first gear 304 is connected with a driving assembly. The driving assembly is connected with the support frame 301.
[0039] Specifically, at the beginning, the first clamping block 307 and the second clamping block 306 are in a separated state, waiting to clamp an object. When an object needs to be clamped, first place three steel structures between the two clamping blocks, and then the worker turns on the driving assembly. The driving assembly will drive one of the first gears 304 to rotate first. Since the first gear 304 and the internal gear 303 are meshed, the rotation of one first gear 304 can drive the internal gear 303 to rotate, and the rotation of the internal gear 303 can drive the other two first gears 304 to rotate. When the three first gears 304 rotate, the three first racks 305 will move accordingly. The first rack 305 starts to move along the sliding track provided by the square block 311, driving the three second clamping blocks 306 to move towards the first clamping block 307. In this way, the two clamping blocks can clamp each other, clamping the steel structure. The driving assembly stops working to maintain the clamping state. When the steel structure needs to be released, the driving assembly works in reverse, driving the first gear 304 to rotate in reverse. The first rack 305 moves in reverse accordingly, and the second clamping block 306 gradually moves away from the first clamping block 307, releasing the steel structure.
[0040] The worker only needs to control the driving assembly to clamp and release the steel structure. The operation is simple and easy, reducing the operation difficulty and labor intensity. The clamping assembly can clamp multiple steel structures at a time, so that multiple steel structure samples can be processed at a time, greatly improving the processing efficiency.
[0041] The driving component includes a round rod 308. The round rod 308 and the first gear 304 are fixedly connected. One side of a round rod 308 is connected to a first motor 309. The first motor 309 and the support frame 301 are fixedly connected. One side of two round rods 308 is rotatably connected to a support block 310. The support block 310 and the support frame 301 are fixedly connected.
[0042] Specifically, when it is necessary to clamp a steel structure, the staff starts the first motor 309. The first motor 309 drives the round rod 308 connected to it to rotate. Since the round rod 308 is fixedly connected to the first gear 304, the first gear 304 also rotates accordingly. The rotation of the first gear 304 drives the internal gear 303 to rotate through meshing transmission, and then drives the other two first gears 304 to rotate synchronously. The rotation of the three first gears 304 drives the three first racks 305 to move along the sliding direction provided by the square block 311, so that the second clamping block 306 moves towards the first clamping block 307, realizing the clamping of the steel structure. By providing a driving component, manpower is saved and work efficiency is improved.
[0043] The lifting component includes a second gear 202. The second gear 202 and the rotating shaft 201 are fixedly connected. One side of the second gear 202 is meshingly connected to a third gear 203. One side of the third gear 203 is fixedly connected to a vertical rod 204. One side of the fixed plate 104 is fixedly connected to a long block 105. The long block 105 and the vertical rod 204 are rotatably connected. One side of the vertical rod 204 is fixedly connected to a first bevel gear 205. One side of the first bevel gear 205 is meshingly connected to a second bevel gear 206. The inside of the second bevel gear 206 is fixedly connected to a cross bar 106. The cross bar 106 and the fixed plate 104 are rotatably connected. One side of the cross bar 106 is fixedly connected to a fourth gear 207. One side of the fourth gear 207 is meshingly connected to a second rack 208. The second rack 208 is connected to the round block 3. One side of the fixed plate 104 is fixedly connected to a square block. The square block and the second rack 208 are slidably connected.
[0044] Specifically, when the rotating shaft 201 rotates, the second gear 202 will rotate synchronously. When the second gear 202 rotates, it drives the third gear 203 to rotate through meshing transmission. The third gear 203 drives the vertically connected rod 204 to rotate. The long block 105 is fixedly connected to one side of the fixed plate 104, providing support and a rotation axis for the vertically connected rod 204. The rotation of the vertically connected rod 204 drives the first bevel gear 205 to rotate, and through meshing transmission, drives the second bevel gear 206 to rotate, and then the cross rod 106 rotates. It will rotate along its axis under the support of the fixed plate 104, and can drive the fourth gear 207 to rotate. The fourth gear 207 drives the second rack 208 to move along its length direction through meshing transmission. When the second rack 208 moves, it drives the round block 3 to move together, thus realizing the lifting function. The square block is slidably connected to the second rack 208, providing guidance and support for the movement of the second rack 208. By providing a lifting component, the lifting and lowering of the steel structure can be realized, without the need for manual operation by workers, saving manpower. The lifting component and the rotating component cooperate with each other to realize the automatic detection of the device and the automatic removal of the residual liquid, improving the work efficiency.
[0045] A circular groove 313 is provided on the outer side of the round block 3, and a convex block is fixedly connected to the bottom of the second rack 208. The circular groove 313 corresponds to the convex block.
[0046] Specifically, the convex block is inside the circular groove 313 and will not fall off. The convex block can slide inside the circular groove 313. Therefore, when the round block 3 rotates, that is, when the circular groove 313 rotates, the convex block can still remain stationary, that is, the second rack 208 can remain stationary at this time, that is, rotation will not affect lifting. However, one motor can drive lifting and rotation at the same time, and lifting and rotation do not affect each other, ensuring the normal operation of the work and saving the device at the same time.
[0047] The moving component includes a cylinder 102, and the output end of the cylinder 102 is connected to a piston rod 103. The piston rod 103 is fixedly connected to the fixed plate 104.
[0048] Specifically, when movement is required, the cylinder 102 is opened, and the piston rod 103 at the output end extends or retracts, enabling the movement of the fixed plate 104, which is convenient for workers to load and unload materials.
[0049] In the description of the present application, it should be noted that unless otherwise clearly specified and limited, the terms "installation", "connection", and "connection" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection, an electrical connection, or a connection that can communicate with each other; it can be directly connected, the communication inside two components, or the interaction relationship between two components. For those of ordinary skill in the art, the meanings of the above terms in the present application can be understood according to specific situations.
[0050] The above has introduced in detail a corrosion resistance detection device for building steel structures provided by the embodiments of the present application. Specific examples are used herein to elaborate on the principle and implementation manner of the present application. The description of the above embodiments is only used to help understand the technical solution and its core idea of the present application; those of ordinary skill in the art should understand that they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements on some of the technical features; and these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present application.
Claims
1. A corrosion resistance detection device for building steel structure, comprising a base (1), a solution tank (101), a moving component, a double-headed motor (2), a lifting component, a rotating component, and a clamping component, characterized in that: A fixed plate (104) is connected to one side of the moving component, the fixed plate (104) and the double-headed motor (2) are fixedly connected, and two output ends of the double-headed motor (2) are fixedly connected to rotating shafts (201), and the two rotating shafts (201) are respectively connected to the lifting component and the rotating component; The clamping assembly is connected to the rotating assembly.
2. A corrosion resistance detection device for building steel structure according to claim 1, characterized in that: The rotating assembly comprises a round block (3), the round block (3) is connected to a rotating shaft (201), and the round block (3) is connected to a clamping assembly.
3. A corrosion resistance detection device for building steel structure according to claim 2, characterized in that: The round block (3) and the rotating shaft (201) are slidably connected, two long strips (312) are fixedly connected to the outer side of the rotating shaft (201), and two long grooves are provided on the inner side of the round block (3), and the long strips (312) and the long grooves correspond to each other.
4. A corrosion resistance detection device for building steel structure according to claim 3, characterized in that: The clamping assembly comprises three support frames (301), wherein the support frames (301) and the round blocks (3) are fixedly connected, a clamping block 1 (307) is fixedly connected to the bottom of one side of the support frames (301), a circular ring (302) is fixedly connected to the bottom of the three support frames (301), an internal gear (303) is rotatably connected to the inner side of the circular ring (302), one side of the internal gear (303) is meshedly connected to three gears 1 (304), one side of the gear 1 (304) is meshedly connected to a rack 1 (305), one side of the rack 1 (305) is fixedly connected to a clamping block 2 (306), the bottom of the round block (3) is fixedly connected to three square blocks (311), the square blocks (311) and the rack 1 (305) are slidably connected, one side of the gear 1 (304) is connected to a driving assembly, and the driving assembly is connected to the support frame (301).
5. The corrosion resistance detection device for building steel structure according to claim 4, characterized in that: The driving assembly comprises a round rod (308), wherein the round rod (308) and gear one (304) are fixedly connected, one side of one of the round rods (308) is connected to motor one (309), and the motor one (309) and the support frame (301) are fixedly connected, and one side of two of the round rods (308) are rotatably connected to support blocks (310), and the support blocks (310) and the support frame (301) are fixedly connected.
6. The corrosion resistance detection device for building steel structure according to claim 2, characterized in that: The lifting assembly comprises a second gear (202), wherein the second gear (202) and the rotating shaft (201) are fixedly connected, one side of the second gear (202) is meshingly connected with a third gear (203), one side of the third gear (203) is fixedly connected with a vertical rod (204), one side of the fixed plate (104) is fixedly connected with a long block (105), the long block (105) and the vertical rod (204) are rotatably connected, one side of the vertical rod (204) is fixedly connected with a bevel gear (205), and the bevel gear (205) is fixedly connected with the vertical rod (204). One side is meshingly connected with bevel gear 2 (206), the interior of bevel gear 2 (206) is fixedly connected with a cross bar (106), the cross bar (106) and the fixed plate (104) are rotatably connected, one side of the cross bar (106) is fixedly connected with gear 4 (207), one side of the gear 4 (207) is meshingly connected with rack 2 (208), the rack 2 (208) is connected to the round block (3), one side of the fixed plate (104) is fixedly connected with a square block, the square block and rack 2 (208) are slidably connected.
7. A corrosion resistance detection device for building steel structure according to claim 6, characterized in that: A circular groove (313) is provided on the outer side of the circular block (3), and a protrusion is fixedly connected to the bottom of the second rack (208), and the circular groove (313) corresponds to the protrusion.
8. The corrosion resistance detection device for building steel structure according to claim 1, characterized in that: The moving assembly comprises a cylinder (102), the output end of the cylinder (102) is connected to a piston rod (103), and the piston rod (103) and the fixing plate (104) are fixedly connected.
Citation Information
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