Detection equipment for hydraulic engineering
By introducing a moving device and a positioning ring into the testing equipment for water conservancy projects, the displacement problem in the testing process of rubber waterstop strips was solved, the stability and data accuracy of rubber hardness testing were achieved, and the waterproofing effect of water conservancy projects was ensured.
Patent Information
- Application Number
- CN202520009958.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-03
- Publication Date
- 2026-01-30
- Estimated Expiration
- 2035-01-03
AI Technical Summary
In existing water conservancy projects, the rubber is prone to displacement during hardness testing of rubber waterstop strips, leading to unstable testing and inaccurate data. There is a lack of effective positioning components.
A testing device for water conservancy projects was designed, comprising a rubber hardness testing body and a moving frame. Through the cooperation of a moving device, a moving clamp, a spring, and a moving groove, the rubber is stably positioned, ensuring that the rubber is fixed during the testing process.
This ensures the stability and accuracy of hardness testing for rubber waterstop strips, guaranteeing the accuracy of waterproofing effects in water conservancy projects.
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Figure CN223856942U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to the technical field of hydraulic engineering, especially relates to a detection equipment for hydraulic engineering. BACKGROUND
[0002] Water conservancy project refers to the various projects for controlling, regulating and utilizing the surface water and underground water in nature to achieve the purpose of eliminating harm and benefiting, and the water conservancy project detection equipment includes nondestructive testing equipment, mechanical property detection equipment, surface defect detection equipment and other instruments, and the existing problems of the prior art are that: the rubber waterstop is a commonly used material in the water conservancy project and is used for preventing water leakage, the rubber hardness detection equipment can accurately measure the hardness of the waterstop, so as to guarantee the waterproof effect of the water conservancy project, and the rubber can be placed on the detection table of the detection machine body during use, data is obtained by extruding the rubber during detection, the rubber is prone to displacement in the extruding process due to the fact that the rubber is not positioned, which causes the detected object to be unstable and the detection data to be inaccurate, but the rubber hardness detection machine used in the existing water conservancy project does not have a component for positioning the detected rubber, and therefore the detection equipment for hydraulic engineering is proposed to solve the above problems. SUMMARY
[0003] In view of the problems in the prior art, the utility model provides a detection equipment for hydraulic engineering, which has the advantages that the rubber hardness detection machine used in the water conservancy project can position the detected rubber, and solves the problems that the existing rubber waterstop is a commonly used material in the water conservancy project and is used for preventing water leakage, the rubber hardness detection equipment can accurately measure the hardness of the waterstop, so as to guarantee the waterproof effect of the water conservancy project, the rubber can be placed on the detection table of the detection machine body during use, data is obtained by extruding the rubber during detection, the rubber is prone to displacement in the extruding process due to the fact that the rubber is not positioned, which causes the detected object to be unstable and the detection data to be inaccurate, but the rubber hardness detection machine used in the existing water conservancy project does not have a component for positioning the detected rubber.
[0004] The utility model is realized in this way, a detection equipment for hydraulic engineering, including rubber hardness detection machine body and two mobile frame, mobile frame's bottom with rubber hardness detection machine body's surface fixed connection, two mobile frame opposite side all swing joint has mobile shell, the surface of rubber hardness detection machine body is provided with detection table, the top of detection table is provided with two positioning ring, the inner chamber of mobile shell is provided with moving device.
[0005] As the utility model is preferred, the mobile device includes two mobile clamping shells, the mobile clamping shell is close to the side of the detection table and extends to the outside of the inner cavity of the mobile shell, the inner cavity of the mobile shell is fixedly connected with two mobile clamping rods used in cooperation with the mobile clamping shell, the surface of the mobile clamping rod is movably connected with the inner cavity of the mobile clamping shell, the surface of the mobile clamping shell is fixedly connected with a spring, and the surface of the spring is fixedly connected with the inner cavity of the mobile shell.
[0006] As the utility model is preferred, the inner cavity of the mobile shell is provided with an extrusion column frame, the bottom of the extrusion column frame is fixedly connected with the surface of the mobile clamping shell, and the inner cavity of the mobile shell is movably connected with two extrusion rotating frames used in cooperation with the extrusion column frame through pivots.
[0007] As the utility model is preferred, the surface of the extrusion rotating frame is fixedly connected with a control rotating frame, the inner cavity of the control rotating frame is movably connected with an extrusion control rod, and the side, away from the detection table, of the extrusion control rod penetrates through the mobile shell and extends to the outside of the inner cavity of the mobile shell.
[0008] As the utility model is preferred, the surface of the extrusion rotating frame is fixedly connected with a control rotating frame, the inner cavity of the control rotating frame is movably connected with an extrusion control rod, and the side, away from the detection table, of the extrusion control rod penetrates through the mobile shell and extends to the outside of the inner cavity of the mobile shell.
[0009] As the utility model is preferred, the opposite sides of the two mobile frames are provided with mobile grooves used in cooperation with the mobile clamping shells, the surface of the mobile clamping shell is in contact with the inner cavity of the mobile groove, and the number of the mobile grooves is several and is evenly distributed on the opposite sides of the two mobile frames.
[0010] As the utility model is preferred, two mobile shell opposite sides are all fixedly connected with auxiliary moving block, the surface of auxiliary moving block is movably connected with the inner chamber of mobile frame, two auxiliary moving block opposite sides are all fixedly connected with the surface of positioning ring, through set up auxiliary moving block, when mobile shell moves, will drive auxiliary moving block moves along the inner chamber of mobile frame, the cooperation of auxiliary moving block and mobile frame has the limiting effect to the mobile position of mobile shell.
[0011] Compared with the prior art, the utility model has the advantages that:
[0012] 1, the utility model discloses a cooperation of mobile device, mobile shell, mobile rod, spring and mobile slot, solves the rubber waterstop that the existing rubber waterstop is the material commonly used in water conservancy project, is used to prevent water seepage, and the hardness of the waterstop can be accurately measured through the rubber hardness detection equipment, so as to guarantee the waterproof effect of water conservancy project, when using, the rubber is placed on the detection table of detection machine body, and the data can be obtained by extruding the rubber during detection, since the rubber is not positioned, the rubber is prone to displacement in the extruding process, causes the detection object to be unstable, and the detection data is inaccurate, but the existing rubber hardness detection machine used in water conservancy engineering does not have the component that positions the detected rubber.
[0013] 2, the utility model discloses a cooperation of mobile device, when extruding column frame moves, will drive two mobile shell to move away from the side of detection table along the surface of mobile rod, and the extrusion force generated by the movement of mobile shell will make the spring elastically deformed, and the restoring force generated by the restoring of the spring will drive the mobile shell to be clamped into the inner chamber of mobile slot, and the mobile device has a limiting effect on the movement position of the positioning ring. DRAWINGS
[0014] Figure 1 It is the three-dimensional structure schematic diagram provided by the utility model embodiment;
[0015] Figure 2 It is the connection three-dimensional schematic diagram of mobile shell, mobile frame, auxiliary moving block and positioning ring provided by the utility model embodiment;
[0016] Figure 3 It is the connection three-dimensional schematic diagram of auxiliary moving block and mobile frame provided by the utility model embodiment;
[0017] Figure 4 It is the three-dimensional sectional view of mobile shell provided by the utility model embodiment.
[0018] In the diagram: 1. Rubber testing machine body; 2. Moving frame; 3. Moving shell; 4. Testing table; 5. Positioning ring; 6. Moving device; 601. Moving clasp; 602. Moving lever; 603. Spring; 7. Extrusion column frame; 8. Extrusion rotating frame; 9. Control rotating frame; 10. Extrusion control lever; 11. Limiting frame; 12. Moving groove; 13. Auxiliary moving block. Detailed Implementation
[0019] To further understand the invention content, features and effects of this utility model, the following embodiments are provided, and detailed descriptions are given in conjunction with the accompanying drawings.
[0020] The structure of this utility model will now be described in detail with reference to the accompanying drawings.
[0021] like Figures 1 to 4 As shown in the figure, the present invention provides a testing device for water conservancy projects, including a rubber hardness testing body 1 and two movable frames 2. The bottom of the movable frames 2 is fixedly connected to the surface of the rubber hardness testing body 1. Movable shells 3 are movably connected to opposite sides of the two movable frames 2. A testing platform 4 is provided on the surface of the rubber hardness testing body 1. Two positioning rings 5 are provided on the top of the testing platform 4. A moving device 6 is provided in the inner cavity of the movable shell 3.
[0022] refer to Figure 4 The moving device 6 includes two moving housings 601. The side of the moving housing 601 near the detection table 4 passes through the moving shell 3 and extends to the outside of the inner cavity of the moving shell 3. The inner cavity of the moving shell 3 is fixedly connected to two moving rods 602 that cooperate with the moving housings 601. The surface of the moving rods 602 is movably connected to the inner cavity of the moving housing 601. A spring 603 is fixedly connected to the surface of the moving housing 601. The surface of the spring 603 is fixedly connected to the inner cavity of the moving shell 3.
[0023] The above solution is adopted: by setting the moving device 6, when the positioning ring 5 needs to be adjusted according to the position of the rubber, the moving device 6 has a limiting effect on the movement position of the positioning ring 5.
[0024] refer to Figure 4 The inner cavity of the movable shell 3 is provided with a pressing column frame 7. The bottom of the pressing column frame 7 is fixedly connected to the surface of the movable housing 601. The inner cavity of the movable shell 3 is movably connected by two pressing rotating frames 8 that cooperate with the pressing column frame 7 through a rotating shaft. The inner cavity of the pressing rotating frame 8 is movably connected to the surface of the pressing column frame 7.
[0025] The above solution is adopted: by setting the extrusion column frame 7 and the extrusion rotating frame 8, when the extrusion rotating frame 8 rotates through the rotating shaft, it can generate extrusion force on the extrusion column frame 7. The extrusion column frame 7 subjected to extrusion force can drive the movable chuck 601 to move.
[0026] refer toFigure 4 The surface of the extrusion rotating frame 8 is fixedly connected with a control rotating frame 9, the inner cavity of the control rotating frame 9 is movably connected with an extrusion control rod 10, and the side, away from the detection table 4, of the extrusion control rod 10 penetrates through the moving shell 3 and extends to the outside of the inner cavity of the moving shell 3.
[0027] By adopting the above scheme, when the extrusion control rod 10 moves, the extrusion control rod 10 can generate extrusion force on the control rotating frame 9, and the control rotating frame 9 can drive the extrusion rotating frame 8 to rotate through the rotating shaft under the extrusion force.
[0028] Reference Figure 4 The surface of the moving shell 3 is fixedly connected with a limiting frame 11 used in cooperation with the extrusion control rod 10, and the surface of the limiting frame 11 is movably connected with the inner cavity of the extrusion control rod 10.
[0029] By adopting the above scheme, when the extrusion control rod 10 is pulled, the extrusion control rod 10 is driven to move along the surface of the limiting frame 11, and the limiting frame 11 limits the moving position of the extrusion control rod 10.
[0030] Reference Figure 2 The opposite side of each of the two moving frames 2 is provided with a moving slot 12 used in cooperation with a moving clamping shell 601, the surface of the moving clamping shell 601 is in contact with the inner cavity of the moving slot 12, and the number of the moving slots 12 is several and is evenly distributed on the opposite side of each of the two moving frames 2.
[0031] By adopting the above scheme, when the moving shell 3 moves to a suitable position, the extrusion control rod 10 is loosened, the restoring force generated by the restoring of the spring 603 will drive the moving clamping shell 601 to be clamped into the inner cavity of the moving slot 12, and the cooperation of the moving clamping shell 601 and the moving slot 12 limits the position of the moving shell 3.
[0032] Reference Figure 3 The opposite side of each of the two moving shells 3 is fixedly connected with an auxiliary moving block 13, the surface of the auxiliary moving block 13 is movably connected with the inner cavity of the moving frame 2, and the opposite side of each of the two auxiliary moving blocks 13 is fixedly connected with the surface of the positioning ring 5.
[0033] By adopting the above scheme, when the moving shell 3 moves, the auxiliary moving block 13 will be driven to move along the inner cavity of the moving frame 2, and the cooperation of the auxiliary moving block 13 and the moving frame 2 limits the moving position of the moving shell 3.
[0034] Working principle of the utility model:
[0035] In use, when the rubber hardness detection machine used in water conservancy needs to position the detected rubber, first the user places the rubber on the top of the detection table 4, then pulls the extrusion control rod 10 to the side opposite to the other extrusion control rod 10, which drives the extrusion control rod 10 to move along the surface of the limiting frame 11, and the extrusion force of the extrusion control rod 10 on the control rotating frame 9 will drive the two control rotating frames 9 to rotate towards each other, which will drive the two extrusion rotating frames 8 to rotate away from each other through the rotating shaft, and when the extrusion rotating frame 8 rotates, it will drive the extrusion column frame 7 to move away from the detection table 4, and when the extrusion column frame 7 moves, it will drive the two moving clamping shells 601 to move away from the detection table 4 along the surface of the moving clamping rod 602, and the extrusion force generated by the movement of the moving clamping shell 601 will cause the spring 603 to elastically deform, when the moving clamping shell 601 moves completely into the inner cavity of the moving shell 3, pull the moving shell 3 towards the rubber, when the moving shell 3 moves, it will drive the auxiliary moving block 13 to move along the inner cavity of the moving frame 2, and at the same time drive the positioning ring 5 to move towards the rubber, when the surface of the positioning ring 5 contacts the surface of the rubber, release the extrusion control rod 10, and the restoring force generated by the restoration of the spring 603 will drive the moving clamping shell 601 to be clamped into the inner cavity of the moving slot 12, the cooperation of the moving clamping shell 601 and the moving slot 12 limits the position of the moving shell 3 and the positioning ring 5, at this time the rubber hardness detection machine used in water conservancy completes the positioning of the detected rubber, and can stably detect the rubber.
[0036] In summary: the detection equipment for water conservancy, by setting the moving device 6, the moving clamping shell 601, the moving clamping rod 602, the spring 603 and the moving slot 12, solves the problem that the existing rubber waterstop is a commonly used material in water conservancy, which is used to prevent water leakage, and through the rubber hardness detection equipment, the hardness of the waterstop can be accurately measured, so as to ensure the waterproof effect of water conservancy, and when in use, the rubber is placed on the detection table of the detection machine body, and during detection, data is obtained by extruding the rubber, and since the rubber is not positioned, displacement of the rubber is easy to occur during extrusion, causing unstable detection object and inaccurate detection data, but the existing rubber hardness detection machine used in water conservancy does not have the problem of positioning the detected rubber.
[0037] It is to be noted that, in the present document, relational terms such as first and second and the like can be used solely to distinguish one entity or action from another entity or action without necessarily requiring or implying any actual such relationship or order between such entities or actions. Moreover, the terms "comprises", "comprising", or any other variation thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements but can include other elements not expressly listed or inherent to such process, method, article, or apparatus.
[0038] While the embodiments of the present application have been illustrated and described, it will be understood by those skilled in the art that various changes, modifications, substitutions, and alterations can be made therein without departing from the spirit and scope of the application, which is defined by the appended claims and their equivalents.
Claims
1. A detection device for hydraulic engineering, comprising a rubber hardness detection machine body (1) and two moving frames (2), characterized in that: The bottom of the moving frame (2) is fixedly connected with the surface of the rubber hardness detection machine body (1), the opposite side of the two moving frames (2) is movably connected with a moving shell (3), the surface of the rubber hardness detection machine body (1) is provided with a detection table (4), the top of the detection table (4) is provided with two positioning rings (5), and the inner cavity of the moving shell (3) is provided with a moving device (6).
2. The detection device for hydraulic engineering according to claim 1, characterized in that: The moving device (6) comprises two moving clamping shells (601), one side of the moving clamping shell (601) near the detection table (4) penetrates through the moving shell (3) and extends to the outside of the inner cavity of the moving shell (3), the inner cavity of the moving shell (3) is fixedly connected with two moving clamping rods (602) used in cooperation with the moving clamping shell (601), the surface of the moving clamping rod (602) is movably connected with the inner cavity of the moving clamping shell (601), the surface of the moving clamping shell (601) is fixedly connected with a spring (603), and the surface of the spring (603) is fixedly connected with the inner cavity of the moving shell (3).
3. The detection device for hydraulic engineering according to claim 2, characterized in that: The inner cavity of the moving shell (3) is provided with an extrusion column frame (7), the bottom of the extrusion column frame (7) is fixedly connected with the surface of the moving clamping shell (601), the inner cavity of the moving shell (3) is movably connected with two extrusion rotating frames (8) used in cooperation with the extrusion column frame (7) through a rotating shaft, and the inner cavity of the extrusion rotating frame (8) is movably connected with the surface of the extrusion column frame (7).
4. The detection device for hydraulic engineering of claim 3, wherein: The surface of the extrusion rotating frame (8) is fixedly connected with a control rotating frame (9), the inner cavity of the control rotating frame (9) is movably connected with an extrusion control rod (10), one side of the extrusion control rod (10) away from the detection table (4) penetrates through the moving shell (3) and extends to the outside of the inner cavity of the moving shell (3).
5. The detection device for hydraulic engineering of claim 1, wherein: The surface of the moving shell (3) is fixedly connected with a limiting frame (11) used in cooperation with the extrusion control rod (10), and the surface of the limiting frame (11) is movably connected with the inner cavity of the extrusion control rod (10).
6. The detection device for hydraulic engineering of claim 2, wherein: The opposite side of the two moving frames (2) is provided with a moving groove (12) used in cooperation with the moving clamping shell (601), the surface of the moving clamping shell (601) is in contact with the inner cavity of the moving groove (12), and the number of the moving grooves (12) is several and evenly distributed on the opposite side of the two moving frames (2).
7. The detection device for hydraulic engineering of claim 1, wherein: The opposite side of the two moving shells (3) is fixedly connected with an auxiliary moving block (13), the surface of the auxiliary moving block (13) is movably connected with the inner cavity of the moving frame (2), and the opposite side of the two auxiliary moving blocks (13) is fixedly connected with the surface of the positioning ring (5).