Waterproof and anticorrosive material detection device
Automatically collecting and detecting liquids through the flow-draining recycling mechanism, solving the problem of cumbersome liquid recycling after testing in the existing device, achieving efficient liquid recycling and simplified operation.
Patent Information
- Application Number
- CN202422004492.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-19
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-08-19
AI Technical Summary
The existing waterproof and anti-corrosion material testing device cannot directly recover the detection liquid after the inspection is completed, resulting in cumbersome operation, increasing the workload of staff and affecting work efficiency.
A detection device including a flow diversion recycling mechanism is designed to realize automatic collection and recycling of liquids by closing the detection component, flow diversion component and splicing component, and simplifying the operation process.
The staff does not need to repeatedly lift and pull the test frame to pour liquid, which reduces the amount of labor and improves work efficiency.
Smart Images

Figure CN223139335U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of material detection devices, and particularly relates to a waterproof and anticorrosive material detection device. Background Art
[0002] At present, there are still some deficiencies in the existing detection devices for traffic waterproof and anticorrosive materials. For example: the existing detection devices for traffic waterproof and anticorrosive materials are not convenient for observing the inside of the detection device, the accuracy of the detection device when detecting waterproof and anticorrosive materials is relatively low, which reduces the convenience of detecting waterproof and anticorrosive materials. The speed of taking out the detection frame on the existing detection device for traffic waterproof and anticorrosive materials from the inside of the detection box is relatively slow, which increases the difficulty of cleaning the detection device and reduces the flexibility of disassembly and assembly of the detection device. Therefore, new technical solutions need to be designed to solve this problem.
[0003] In order to solve the above technical problems, a Chinese patent with the publication number CN211955131U in the prior art discloses a detection device for traffic waterproof and anticorrosive materials, including a detection box. An observation window, a cover plate, a water outlet, a hanging ring and a slope plate are arranged on the detection box. The observation window is adhesively bonded in the middle of the detection box. The cover plate is connected to the inside of the upper end of the detection box by threads. The water outlet is located in the middle of the bottom of the detection box. The hanging ring is connected to the left and right sides inside the detection box by welding. The slope plate is connected to the bottom inside the detection box by welding. An adding hopper is arranged at the upper end of the cover plate. A detection frame is arranged on the hanging ring. A hook plate, a handle, a leakage plate and a coating layer are arranged on the detection frame.
[0004] Although the above prior art solution, after the detection is completed, whether the waterproof and anticorrosive material leaks or not, there will be a certain amount of detection liquid remaining inside the detection frame. The waterproof and anticorrosive material on the leakage plate cannot be directly recovered. After the staff rotates the cover plate in a threaded circle and opens it, they still need to lift the detection frame and pour out the residual detection liquid inside it, and recover these liquids in order to detect the subsequent waterproof and anticorrosive materials. Only after pouring can the waterproof and anticorrosive material on the leakage plate be scraped. The operation is cumbersome. The detection liquid inside the detection frame also increases the weight when the staff lifts it, which is more laborious, thereby increasing the workload of the staff and affecting the work efficiency. Summary of the Utility Model
[0005] The purpose of the present utility model is to provide a detection device for waterproof and anticorrosive materials, so as to solve the problem raised in the above-mentioned background technology that after the detection is completed, whether there is leakage of the waterproof and anticorrosive materials or not, there will be a certain amount of detection liquid remaining inside the detection frame. The waterproof and anticorrosive materials on the leakage plate cannot be directly recovered. After the staff rotates the cover plate in cooperation with the thread coil to open it, they still need to lift the detection frame and pour out the remaining detection liquid inside it, and recover these liquids in order to detect the subsequent waterproof and anticorrosive materials. Only after pouring can the waterproof and anticorrosive materials on the leakage plate be scraped. The operation is cumbersome, and the detection liquid inside the detection frame also increases the weight when the staff lifts it, which is relatively laborious, thereby increasing the labor intensity of the staff and affecting the work efficiency.
[0006] To achieve the above purpose, the present utility model provides the following technical solutions:
[0007] A detection device for waterproof and anticorrosive materials, including a detection box. One end of the top of the detection box is hinged with a top cover through a hinge. The top cover is clamped with the detection box through a first lock. A detection frame is slidably connected inside the detection box. A synchronous groove is opened at one end of the inner wall of the detection box. A convex block slidably connected with the synchronous groove is installed at one end of the detection frame. A groove engaged with the convex block is opened at one end of the bottom of the top cover. A diversion and recovery mechanism is installed on the detection box and the detection frame. The diversion and recovery mechanism includes a closed detection component, a diversion component, a splicing component, an observation box and two sets of recovery boxes. The closed detection component is used to cooperate with the observation box to detect the waterproof and anticorrosive materials. The diversion component is used to guide the detected liquid to flow into the inner side of the recovery box for collection. The splicing component is used to quickly lock or unlock the positions of the observation box and the two sets of recovery boxes.
[0008] As a preferred solution of the present utility model, the closed detection component includes a liquid inlet pipe embedded in the center of the top of the top cover. The top end of the liquid inlet pipe is clamped with a sealing cover through a second lock. A leakage plate is installed at the bottom end inside the detection frame. The cross-section of the leakage plate is trapezoidal. Both slopes of the leakage plate are closed without leakage holes. A first drain pipe is embedded in the center of the inner wall of the detection box. A first through hole is opened below the leakage plate inside the detection frame. The first through hole and the first drain pipe are engaged with each other.
[0009] As a preferred embodiment of the present utility model, extension grooves extending into the interior of the detection frame are provided on both sides of the detection box. A sealing plate is slidably connected to the inner side of the extension groove. A first sealing strip that fits against the outer wall of the leakage plate is installed at one end of the sealing plate. A second sealing strip is embedded at the place where the interior of the detection frame fits against the sealing plate. At one side of the extension groove at both ends of the detection box, fitting grooves are provided. A fitting plate that is slidably connected to the fitting groove is installed at one end of the sealing plate. A first pulling groove is provided on one side of the fitting plate. A magnetic block is embedded on the other side of the fitting plate. An iron block that adsorbs to the magnetic block is embedded on the inner wall of the fitting groove.
[0010] As a preferred embodiment of the present utility model, a first placement groove is provided inside the detection box on one side of the first drain pipe. The first placement groove is slidably connected to the observation box. A first opening corresponding to the port of the first drain pipe is provided at the top of the observation box.
[0011] As a preferred embodiment of the present utility model, second drain pipes are embedded on both sides of the first drain pipe inside the detection box. Second through holes that are slidably connected to the ports of the second drain pipes are provided at both ends inside the detection frame. Second placement grooves are provided on both sides of the second drain pipe inside the detection box. The second placement grooves are slidably connected to the recovery box. Observation windows are embedded at one end of the outer walls of the two groups of recovery boxes and the observation box.
[0012] As a preferred embodiment of the present utility model, lapping plates are installed at the tops of the observation box and the two groups of recovery boxes. Lapping grooves that are slidably connected to the lapping plates are provided on the outer wall of the detection box. A pressing block is installed on one side of the lapping plate. A second pulling groove is provided on the other side of the lapping plate. A plurality of pressing grooves that are slidably connected to the pressing block are arranged inside the detection box. A reset groove is provided on one side of the pressing groove inside the detection box. A reset plate is slidably connected to the inner side of the reset groove. Inclined surfaces that fit against each other are provided at the opposite ends of the reset plate and the pressing block.
[0013] As a preferred embodiment of the present utility model, a spring is installed between one side of the reset plate and the inner wall of the reset groove. A connecting rod is installed on one side of the spring on one side of the reset plate. A plurality of pulling grooves that are slidably connected to the connecting rod are arranged on the outer wall of the detection box. The other end of the connecting rod is installed with a connecting plate. A fixing column is installed on the other side of the connecting plate. A pull ring is installed at the other end of the fixing column.
[0014] Compared with the prior art, the beneficial effects of the present utility model are:
[0015] In the present utility model, a waterproof and anti-corrosion material is detected by a closed detection assembly in cooperation with an observation box. A diversion assembly guides the detected liquid to flow into the inner side of a recovery box for collection. A splicing assembly quickly locks or unlocks the positions of the observation box and two groups of recovery boxes. The structure is simple and the operation is convenient. There is no need for staff to repeatedly lift and carry a detection frame containing the detection liquid to pour the detection liquid, and the guiding and collection are carried out, further reducing the labor intensity of the staff and improving the work efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 is a schematic diagram of the overall structure of the present utility model;
[0017] Figure 2 is a schematic diagram of a partial cross-sectional structure of the splicing assembly of the present utility model;
[0018] Figure 3 is a schematic diagram of a partial cross-sectional structure of the detection box of the present utility model;
[0019] Figure 4 is a schematic diagram of a partial three-dimensional structure of the splicing assembly of the present utility model.
[0020] In the figure: 1, detection box; 2, top cover; 3, first lock; 4, detection frame; 5, observation box; 6, recovery box; 7, liquid inlet pipe; 8, sealing cover; 9, leakage plate; 10, first drain pipe; 11, closing plate; 12, first sealing strip; 13, second sealing strip; 14, fitting plate; 15, iron block; 16, second drain pipe; 17, observation window; 18, overlapping plate; 19, pressing block; 20, reset plate; 21, inclined surface; 22, spring; 23, connecting plate; 24, pull ring; 25, convex block. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0021] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without making creative efforts belong to the scope of protection of the present utility model. Embodiment
[0022] Please refer to Figures 1 - 4 , the present utility model provides a technical solution:
[0023] A waterproof and anti-corrosion material detection device, comprising a detection box 1. One end of the top of the detection box 1 is hinged with a top cover 2 through a hinge. The top cover 2 is clamped with the detection box 1 through a first buckle 3. A detection frame 4 is slidably connected inside the detection box 1. A synchronous groove is opened at one end of the inner wall of the detection box 1. One end of the detection frame 4 is provided with a convex block 25 slidably connected with the synchronous groove. A groove for snap-fitting connection with the convex block 25 is opened at one end of the bottom of the top cover 2. A diversion and recovery mechanism is installed on the detection box 1 and the detection frame 4. The diversion and recovery mechanism includes a closed detection component, a diversion component, a splicing component, an observation box 5 and two groups of recovery boxes 6. The closed detection component is used to cooperate with the observation box 5 to detect the waterproof and anti-corrosion material. The diversion component is used to guide the detected liquid to flow into the inner side of the recovery box 6 for collection. The splicing component is used to quickly lock or unlock the positions of the observation box 5 and the two groups of recovery boxes 6. When the device is in use, the closed detection component can cooperate with the observation box 5 to detect the waterproof and anti-corrosion material. The diversion component guides the detected liquid to flow into the inner side of the recovery box 6 for collection. The splicing component quickly locks or unlocks the positions of the observation box 5 and the two groups of recovery boxes 6. The structure is simple and the operation is convenient. There is no need for the staff to repeatedly lift and carry the detection frame 4 containing the detection liquid to pour the detection liquid. It has a guiding collection function, further reducing the labor intensity of the staff and improving the work efficiency.
[0024] In this embodiment, as Figure 1 and Figure 3 shown, the closed detection component includes a liquid inlet pipe 7 embedded in the center of the top of the top cover 2. The top end of the liquid inlet pipe 7 is clamped with a sealing cover 8 through a second buckle. A leakage plate 9 is installed at the inner bottom end of the detection frame 4. The side cross-section of the leakage plate 9 is trapezoidal. Both slopes of the leakage plate 9 are closed without leakage holes. A first drain pipe 10 is embedded in the center of the inner wall of the detection box 1. A first through hole is opened below the leakage plate 9 inside the detection frame 4. The first through hole and the first drain pipe 10 are in snap-fitting connection. First, put the detection frame 4 into the inner side of the detection box 1. The convex block 25 is lapped inside the synchronous groove. After flipping the top cover 2, lock the first buckle 3. The groove at the bottom end of the top cover 2 is snap-fitted with the top end of the convex block 25. Untie the second buckle and remove the sealing cover 8. The detection liquid can be poured onto the surface of the waterproof and anti-corrosion material through the liquid inlet pipe 7. If there is leakage, the liquid will seep down through the leakage plate 9 and fall into the inner side of the observation box 5 through the first drain pipe 10. The staff can directly judge that the waterproof and anti-corrosion material has leaked through the observation window 17 on it.
[0025] In this embodiment, as Figure 1 and Figure 3As shown, extension slots extending to the inside of the detection frame 4 are provided on both sides of the detection box 1. A sealing plate 11 is slidably connected to the inner side of the extension slot. One end of the sealing plate 11 is provided with a first sealing strip 12 that fits against the outer wall of the leakage plate 9. A second sealing strip 13 is embedded at the place where the inner part of the detection frame 4 fits against the sealing plate 11. Fitting grooves are provided on both ends of the detection box 1 on one side of the extension slot. One end of the sealing plate 11 is provided with a fitting plate 14 that is slidably connected to the fitting groove. A first pulling groove is provided on one side of the fitting plate 14. A magnet is embedded on the other side of the fitting plate 14. An iron block 15 that adsorbs the magnet is embedded on the inner wall of the fitting groove. A first placement groove is provided on one side of the first drain pipe 10 inside the detection box 1. The first placement groove is slidably connected to the observation box 5. A first opening corresponding to the port of the first drain pipe 10 is provided at the top of the observation box 5. Second drain pipes 16 are embedded on both sides of the first drain pipe 10 inside the detection box 1. Second through holes that are slidably connected to the ports of the second drain pipes 16 are provided at both ends inside the detection frame 4. Second placement grooves are provided on both sides of the second drain pipes 16 inside the detection box 1. The second placement grooves are slidably connected to the recovery boxes 6. Observation windows 17 are embedded at one end of the outer walls of the two groups of recovery boxes 6 and the observation box 5. Then, after the detection is completed, the first pulling groove is held to drive the fitting plate 14 to move, so that the magnet is separated from the iron block 15 and no longer adsorbs. The sealing plate 11 then slides inside the extension slot, causing the first sealing strip 12 to move away from the outer wall of the leakage plate 9. The remaining detection liquid will flow along the slopes on both sides of the leakage plate 9 into the inside of the second drain pipe 16 and finally fall into the recovery box 6 for collection.
[0026] In this embodiment, as Figure 1 , Figure 2 and Figure 4 shown, a spring 22 is installed between one side of the reset plate 20 and the inner wall of the reset groove. A connecting rod is installed on one side of the spring 22 on one side of the reset plate 20. A plurality of pulling grooves that are slidably connected to the connecting rod are arranged on the outer wall of the detection box 1. The other end of the connecting rod is installed with a connecting plate 23. A fixing column is installed on the other side of the connecting plate 23. A pull ring 24 is installed at the other end of the fixing column. Further, when it is necessary to take the detection liquid collected inside the observation box 5 or the recovery box 6 again, the pull ring 24 can be held to drive the connecting plate 23 to move upward in cooperation with the fixing column, so that the connecting rod is driven to slide inside the pulling groove, and then the reset plate 20 is driven to squeeze the spring 22 inside the reset groove, making its protruding end move away from one end of the pressing block 19. At this time, the second pulling groove is held, and the recovery box 6 and the observation box 5 can be pulled out.
[0027] In this embodiment, as Figure 1 , Figure 2 and Figure 4As shown in the figure, lap plates 18 are installed at the tops of the observation box 5 and the two groups of recycling boxes 6. Lap grooves for slidably connecting with the lap plates 18 are formed on the outer wall of the detection box 1. A pressing block 19 is installed on one side of the lap plate 18, and a second buckle groove is formed on the other side of the lap plate 18. A plurality of pressing grooves for slidably connecting with the pressing block 19 are arranged in the detection box 1 in a row. A reset groove is formed on one side of the pressing groove inside the detection box 1. A reset plate 20 is slidably connected inside the reset groove. Bevels 21 that fit each other are formed at the opposite ends of the reset plate 20 and the pressing block 19. Further, when installing the observation box 5 and the recycling box 6, only need to snap the lap plate 18 inside the lap groove, push the pressing block 19 inside the pressing groove. The bevels 21 on the pressing block 19 and the reset plate 20 come into contact and squeeze each other, forcing the reset plate 20 to drive the spring 22 to retract. After the pressing block 19 is completely pushed into the pressing groove, one end of the reset plate 20 is no longer blocked and is ejected by the spring 22 to abut against one end of the pressing block 19 to complete the locking.
[0028] The implementation principle of the waterproof and anticorrosive material detection device in the embodiment of the present application is as follows: Place the detection frame 4 inside the detection box 1. The convex block 25 is lapped inside the synchronous groove. Flip the top cover 2 and lock the first lock 3. The groove at the bottom end of the top cover 2 is engaged with the top end of the convex block 25. Unfasten the second lock and remove the sealing cover 8. The detection liquid can be poured onto the surface of the waterproof and anticorrosive material through the liquid inlet pipe 7. If there is leakage, the liquid will seep down through the leakage plate 9 and fall into the observation box 5 through the first drain pipe 10. The staff can directly judge that the waterproof and anticorrosive material has leaked through the observation window 17 on it. After the detection is completed, hold the first buckle groove to drive the fitting plate 14 to move, so that the magnet and the iron block 15 are separated and no longer adsorbed. The closing plate 11 then slides inside the extension groove, making the first sealing strip 12 away from the outer wall of the leakage plate 9. The remaining detection liquid will flow along the slopes on both sides of the leakage plate 9 into the second drain pipe 16 and finally fall into the recycling box 6 for collection. When it is necessary to take the detection liquid collected inside the observation box 5 or the recycling box 6 again, hold the pull ring 24 and cooperate with the fixed column to drive the connecting plate 23 to move up, so that the connecting rod is driven to slide inside the pull groove, and then drive the reset plate 20 to squeeze the spring 22 inside the reset groove, making its protruding end away from one end of the pressing block 19. At this time, hold the second buckle groove, and the recycling box 6 and the observation box 5 can be pulled out. When installing the observation box 5 and the recycling box 6, only need to snap the lap plate 18 inside the lap groove, push the pressing block 19 inside the pressing groove. The bevels 21 on the pressing block 19 and the reset plate 20 come into contact and squeeze each other, forcing the reset plate 20 to drive the spring 22 to retract. After the pressing block 19 is completely pushed into the pressing groove, one end of the reset plate 20 is no longer blocked and is ejected by the spring 22 to abut against one end of the pressing block 19 to complete the locking.
[0029] Although embodiments of the present utility model have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit of the present utility model. The scope of the present utility model is defined by the appended claims and their equivalents.
Claims
1. A waterproof and anti-corrosion material detection device, comprising a detection box (1), characterized in that: One end of the top of the detection box (1) is hinged with a top cover (2) through a hinge. The top cover (2) is clamped with the detection box (1) through a first latch (3). A detection frame (4) is slidably connected inside the detection box (1). A synchronous groove is opened at one end of the inner wall of the detection box (1). A convex block (25) slidably connected with the synchronous groove is installed at one end of the detection frame (4). A groove engaged with the convex block (25) is opened at one end of the bottom of the top cover (2). A diversion and recovery mechanism is installed on the detection box (1) and the detection frame (4). The diversion and recovery mechanism includes a closed detection component, a diversion component, a splicing component, an observation box (5) and two sets of recovery boxes (6). The closed detection component is used to cooperate with the observation box (5) to detect the waterproof and anti-corrosion material. The diversion component is used to guide the detected liquid to flow into the inside of the recovery box (6) for collection. The splicing component is used to quickly lock or unlock the positions of the observation box (5) and the two sets of recovery boxes (6).
2. The waterproof and anti-corrosion material detection device according to claim 1, characterized in that: The closed detection component includes a liquid inlet pipe (7) embedded in the center of the top of the top cover (2). A sealing cover (8) is clamped at the top end of the liquid inlet pipe (7) through a second latch. A leakage plate (9) is installed at the inner bottom end of the detection frame (4). The cross-section of the leakage plate (9) is trapezoidal. Both slopes of the leakage plate (9) are closed without leakage holes. A first drain pipe (10) is embedded in the center of the inner wall of the detection box (1). A first through hole is opened below the leakage plate (9) inside the detection frame (4). The first through hole and the first drain pipe (10) are in snap connection with the first through hole.
3. The waterproof and anticorrosive material detection device according to claim 2, characterized in that: Extension grooves extending to the inside of the detection frame (4) are opened on both sides of the detection box (1). A closing plate (11) is slidably connected inside the extension grooves. A first sealing strip (12) attached to the outer wall of the leakage plate (9) is installed at one end of the closing plate (11). A second sealing strip (13) is embedded at the place where the inside of the detection frame (4) is in contact with the closing plate (11). Fitting grooves are opened on one side of the extension grooves at both ends of the detection box (1). A fitting plate (14) slidably connected with the fitting grooves is installed at one end of the closing plate (11). A first pulling groove is opened on one side of the fitting plate (14). A magnet is embedded on the other side of the fitting plate (14). An iron block (15) adsorbed by the magnet is embedded on the inner wall of the fitting groove.
4. The detection device for a waterproof and anti-corrosion material according to claim 3, characterized in that: A first placement groove is opened on one side of the first drain pipe (10) inside the detection box (1). The first placement groove is slidably connected with the observation box (5). A first opening corresponding to the port of the first drain pipe (10) is opened at the top end of the observation box (5).
5. The detection device for a waterproof and anti-corrosion material according to claim 4, characterized in that: On both sides of the first drain pipe (10) inside the detection box (1), a second drain pipe (16) is embedded and installed. At both ends inside the detection frame (4), second through holes that are slidably connected to the ports of the second drain pipe (16) are opened. On both sides of the second drain pipe (16) inside the detection box (1), second placement grooves are opened. The second placement grooves are slidably connected to the recovery box (6). At one end of the outer walls of the two groups of recovery boxes (6) and the observation box (5), observation windows (17) are embedded and installed.
6. The detecting device for a waterproof and anticorrosive material according to claim 5, characterized in that: Lap plates (18) are installed at the tops of the observation box (5) and the two groups of recovery boxes (6). Lap grooves that are slidably connected to the lap plates (18) are opened on the outer wall of the detection box (1). A pressing block (19) is installed on one side of the lap plate (18). A second buckle pulling groove is opened on the other side of the lap plate (18). A plurality of pressure grooves that are slidably connected to the pressing block (19) are arranged inside the detection box (1). A reset groove is opened on one side of the pressure groove inside the detection box (1). A reset plate (20) is slidably connected inside the reset groove. Slopes (21) that are mutually fitted are opened at the opposite ends of the reset plate (20) and the pressing block (19).
7. The detection device for a waterproof and anticorrosive material according to claim 6, characterized in that: A spring (22) is installed between one surface of the reset plate (20) and the inner wall of the reset groove. A connecting rod is installed on one side of the spring (22) on one surface of the reset plate (20). A plurality of pulling grooves that are slidably connected to the connecting rod are arranged on the outer wall of the detection box (1). The other end of the connecting rod is installed with a connecting plate (23). A fixing column is installed on the other surface of the connecting plate (23). A pull ring (24) is installed at the other end of the fixing column.
Citation Information
Patent Citations
Traffic waterproof and anticorrosive material detection device
CN211955131U