A high-pressure water equipment detection system

By introducing the automatic design of lower sample, loading block and limiting plate in the hydraulic test machine, the problem of inefficient pipeline testing efficiency in existing equipment is solved, and an efficient and stable pipeline testing process is achieved, which improves the service life and resource utilization of the equipment.

CN119469699BActive Publication Date: 2025-08-29JINGJIANG HUAHUI WATER GROUP CO LTD
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Patent Information

Application Number
CN202411474399.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-10-22
Publication Date
2025-08-29
Estimated Expiration
2044-10-22

AI Technical Summary

Technical Problem

When the existing hydraulic pressure tester is tested for multiple pipelines, the loading and deposition process is slow, resulting in inefficient testing. The existing equipment is severely friction and wear during the pipeline movement, which affects the equipment life and stability.

Method used

The combination design of the lower sample, loading block and limiting plate is adopted to realize batch automation of the pipeline through motor drive, and the moving wheel, pressure spring and buffer pad are used to reduce friction and impact, and the sliding rod and sliding groove improve stability, ensuring the stability and efficient movement of the pipeline during the test.

Benefits of technology

It realizes batch automation of pipelines, significantly shortens the test cycle, improves test efficiency, reduces equipment maintenance frequency and cost, reduces noise and vibration, extends the service life of the equipment, and ensures the stability and safety of the pipeline.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of pipeline hydraulic testing machines, and discloses a high-pressure water equipment detection system, including a hydraulic testing machine and a fixing clamp connected to the hydraulic testing machine, a motor fixedly connected to one side of the inner wall of the hydraulic testing machine, a main shaft fixedly connected to the output end of the motor, two sample lowering components sleeved on the outer wall of the main shaft, the fixing clamp located between the two sample lowering components, the sample lowering components including a connecting plate, a connecting gear rod, a lower sample plate and a fixing block, both ends of the connecting plate are fixedly connected to the inner wall of the hydraulic testing machine, the fixing block is fixedly connected to the side of the connecting plate close to the fixing clamp, the bottom of the lower sample plate is fixedly connected to two symmetrically arranged connecting gear rods, and a slide groove corresponding to the position of the connecting gear rod is provided on the surface of the fixing block. This high-pressure water equipment detection system, by using the lower sample plate, the loading block and the limit plate, enables the pipeline to be sampled and loaded at one time, thereby realizing batch automated processing of the pipeline.
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Description

Technical Field

[0001] The invention relates to the technical field of pipeline water pressure testing machines, in particular to a high-pressure water equipment detection system. Background Art

[0002] High-pressure water jet equipment testing systems are a technical system used to monitor and evaluate the performance and safety of high-pressure water jetting equipment. These systems are widely used in a variety of fields, including industrial cleaning, surface treatment, rust removal, and cutting, to ensure safe and efficient high-pressure water jet operations. Key components include pressure and flow monitoring devices, leak detection devices, pump and component health monitoring devices, remote monitoring and data logging devices, and safety protection devices.

[0003] There is a pipeline water pressure testing machine that is specifically used to verify the performance of pipelines and their connectors under specified water pressure conditions. It is crucial to ensure the safe operation of pipeline systems, especially in industries such as water supply, heating, oil, natural gas, and chemicals.

[0004] For example, in the prior art, the utility model patent with authorization announcement number CN2507006Y discloses a hydraulic pressure testing machine, which consists of a machine base, an adjustment component, a feed component, a clamping component, a pressure head, and a hydraulic mechanism. The machine base is equipped with an adjustment component, which is connected to a nut mounted on the machine base, and a screw connected to the pressure head base. The feed component is a chain-type or walking beam feeder. The clamping component is a clamping plate fixed to the machine base and the upper crossbeam, respectively, which is connected to the hydraulic mechanism. The pressure head has a guide rail on the pressure head base, on which the pressure head is mounted, and is connected to the hydraulic mechanism. One pressure head is equipped with an exhaust valve, and the other is equipped with a water filling valve and a high-pressure water pipeline. The high-pressure water pipeline is connected to a booster cylinder. The pressure head is equipped with several test pressure heads. The pressure head position can be adjusted according to the length of the steel pipe, and more than three pipes can be tested at a time. The high-pressure water pipeline connected to the booster cylinder can better meet the needs of testing different pressure resistances, and the test results are good.

[0005] Although the hydraulic testing machine in the above patent can test multiple pipes at the same time, the existing hydraulic testing machine has certain defects when used; the existing hydraulic testing machine is relatively slow in the loading and unloading process. After testing multiple pipes at the same time, it is necessary to use a movable plate to move the pipes along the test station in sequence, and load and unload each pipe in sequence, which will result in a longer test interval and affect the testing efficiency of the pipe. Summary of the Invention

[0006] In view of the deficiencies in the prior art, the present invention provides a high-pressure water equipment detection system to solve the problems raised in the background art and improve the testing efficiency of a water pressure testing machine.

[0007] To achieve the above-mentioned objectives, the present invention provides the following technical solutions: a high-pressure water equipment detection system, including a water pressure testing machine and a fixing clamp connected in the water pressure testing machine, a motor is fixedly connected to one side of the inner wall of the water pressure testing machine, the output end of the motor is fixedly connected to the main shaft, and two lower sample components are sleeved on the outer wall of the main shaft, and the fixing clamp is located between the two lower sample components, and the lower sample component includes a connecting plate, a connecting gear rod, a lower sample plate and a fixed block, both ends of the connecting plate are fixedly connected to the inner wall of the water pressure testing machine, the fixed block is fixedly connected to the side of the connecting plate close to the fixing clamp, and two symmetrically arranged connecting gear rods are fixedly connected to the bottom of the lower sample plate, and a slide groove corresponding to the position of the connecting gear rod is opened on the surface of the fixing block, a driving component is connected in the connecting plate, and a plurality of sample loading components are connected to the upper sample side of the surface of the water pressure testing machine, and the sample loading components correspond to the position of the fixing clamp.

[0008] Furthermore, the driving assembly includes a driving wheel, a rotating shaft, a driven wheel, a lower sample gear and a transmission belt. The part of the main shaft located in the connecting plate is sleeved with a driving wheel, and multiple rotating shafts are rotatably connected in the connecting plate. The part of each rotating shaft located in the connecting plate is sleeved with two driven wheels, and one end of the rotating shaft located on both sides passes through the side wall of the fixed block into the slide groove and is rotatably connected to the lower sample gear. The lower sample gear is engaged with the outer wall of the connecting gear rod. The driving wheel and the driven wheel close to the driving wheel side are connected by a transmission belt, and the driving wheels on the two adjacent rotating shafts are connected by a transmission belt.

[0009] Furthermore, the loading component includes a rotating wheel, a rotating disk, an arc block, a moving rod, a loading block, a connecting groove, a clamping block, a spring sheet and a clamping tooth. The outer wall of the main shaft is fixedly connected to the rotating wheel, the outer wall of the rotating wheel is rotatably connected to the rotating disk, a plurality of connecting grooves are opened on the outer wall of the rotating wheel, the clamping block is rotatably connected in the connecting groove, a spring sheet is fixedly connected between the clamping block and the connecting groove, the inner wall of the rotating disk is provided with a clamping tooth corresponding to the position of the clamping block, the loading side of the surface of the water pressure testing machine is provided with a lifting groove corresponding to the position of the loading block, the bottom surface of the loading block is fixedly connected to the moving rod, the lifting groove is provided with a moving groove corresponding to the position of the moving rod, the outer wall of the rotating disk is fixedly connected to two arc blocks arranged symmetrically with respect to the center, the bottom end of the moving rod is in contact with the arc side wall of the arc block, and a limiting component is connected to the fixed block.

[0010] Furthermore, the connecting gear rod is divided into section a, section b and section c from top to bottom. Section a is fixedly connected to the lower sample plate, section b is engaged with the lower sample gear, and the bottom of section c is fixedly connected to a baffle. The upper and lower surfaces of both ends of the fixed block are fixedly connected to positioning springs, and the positioning springs correspond to the position of the baffle.

[0011] Furthermore, the limiting assembly includes a limiting wheel, a limiting gear rod and a limiting plate. A plurality of sliding grooves corresponding to the positions of the rotating shaft are opened on the surface of the fixed block. The rotating shaft of the middle part is located in the sliding groove and a limiting wheel is sleeved on one end. The limiting gear rod is slidingly connected in the sliding groove of the middle part. The limiting wheel is engaged with the limiting gear rod. The top of the limiting gear rod is fixedly connected to the limiting plate, and the limiting plate corresponds to the position of the fixed clamp.

[0012] Furthermore, the connecting gear rod and the limiting gear rod are fixedly connected to a sliding rod on one side away from the teeth, and a plurality of sliding grooves corresponding to the positions of the sliding rods are opened on the surface of the fixed block.

[0013] Furthermore, a buffer pad is fixedly connected to one side of the limiting plate close to the sample loading side of the surface of the water pressure testing machine.

[0014] Furthermore, the bottom end of the moving rod is fixedly connected to a connecting block, the bottom surface of the connecting block is rotatably connected to a moving wheel, and the outer wall of the moving wheel is in contact with the outer wall of the arc block.

[0015] Furthermore, a pressure spring is fixedly connected to the surface of the connecting block, and a spring groove corresponding to the position of the pressure spring is opened on the inner wall of the hydraulic testing machine.

[0016] Furthermore, the upper surface of the lower sample plate includes a curved surface and an inclined surface, the curved surface corresponds to the upper sample side position of the surface of the water pressure testing machine, and the inclined surface corresponds to the lower sample side position of the surface of the water pressure testing machine.

[0017] Compared with the prior art, the present invention has the following beneficial effects:

[0018] (1) This high-pressure water equipment testing system, by using a sample plate, a sample loading block and a limit plate, enables the pipeline to be sampled and loaded at one time, realizing batch automatic processing of pipelines. Compared with the operation mode of loading and unloading samples one by one in the existing technology, it significantly shortens the entire test cycle, reduces the test interval, and improves the test efficiency of the pipeline. The continuous cycle operation mode makes the entire testing process smoother, reduces the waiting time of the pipeline and the processing gap, and improves the overall work efficiency and resource utilization;

[0019] (2) The use of moving wheels can reduce the friction and wear of the moving rod and the arc block, increase the service life of the moving rod and the arc block, reduce the frequency and cost of maintenance and replacement of parts, and at the same time, the rolling motion is smoother than direct sliding, which can reduce vibration and noise during the motion process, making the entire loading process more stable;

[0020] (3) The use of a pressure spring can ensure that the sample loading block is stably retracted into the lifting groove, preventing the sample loading block from obstructing the movement of the pipeline to be tested to the top of the sample loading block and thus hindering the sample loading work, ensuring a smooth and efficient sample loading process;

[0021] (4) The use of buffer pads can effectively absorb the impact and vibration that the limit plate may be subjected to, avoiding damage to the limit plate or pipeline caused by direct hard collision, helping to reduce the shaking of the pipeline after collision, improving the stability of the pipeline, and ensuring that the pipeline stably enters the fixing clamp;

[0022] (5) The use of sliding rods and sliding grooves can improve the stability of the connecting gear rod and the limiting gear rod during the rising and falling process, effectively prevent the connecting gear rod and the limiting gear rod from deflecting or shaking during movement, ensure the linearity and stability of the movement trajectory, and at the same time make the connecting gear rod and the limiting gear rod more evenly stressed during the rising or falling process, avoid local stress concentration, reduce wear, and thus extend the service life of the components. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 It is a schematic diagram of the overall three-dimensional structure of the present invention;

[0024] Figure 2 It is a schematic diagram of the three-dimensional cross-sectional structure of the present invention as a whole;

[0025] Figure 3 It is a schematic diagram of the three-dimensional cross-sectional structure of the lifting groove, the moving groove and the spring groove of the present invention;

[0026] Figure 4 This is a schematic diagram of the three-dimensional structure of the sample assembly, motor and main shaft of the present invention;

[0027] Figure 5 It is a schematic diagram of the three-dimensional structure of the motor, main shaft, arc block, rotating disk and sample loading block of the present invention;

[0028] Figure 6 It is a schematic diagram of the three-dimensional structure of the rotating wheel, rotating disk, clamping block and spring sheet of the present invention;

[0029] Figure 7 It is a schematic diagram of the three-dimensional structure of the rotating wheel, the clamping block and the spring sheet of the present invention;

[0030] Figure 8 This is a schematic diagram of the three-dimensional structure of the sample loading block, moving rod, connecting block and moving wheel of the present invention;

[0031] Figure 9 Schematic diagram of the three-dimensional structure of the sample unloading component and the limiting component of the present invention;

[0032] Figure 10 It is a schematic diagram of the three-dimensional structure of the sample unloading component, connecting plate, fixing block and limiting component of the present invention;

[0033] Figure 11 is a schematic diagram of a three-dimensional cross-sectional structure of a drive assembly of the present invention;

[0034] Figure 12It is a schematic diagram of the three-dimensional cross-sectional structure of the connecting gear rod, the lower sample gear and the driven wheel of the present invention;

[0035] Figure 13 It is a schematic diagram of the three-dimensional structure of the fixing block and the positioning spring of the present invention;

[0036] Figure 14 It is a schematic diagram of the three-dimensional structure of the sample unloading component, baffle and sliding rod of the present invention.

[0037] Figure: 1, hydraulic testing machine; 2, fixing clamp; 3, motor; 4, main shaft; 5, connecting plate; 6, driving wheel; 7, rotating shaft; 8, driven wheel; 9, sample unloading gear; 10, connecting gear rod; 11, sample unloading plate; 12, fixing block; 13, slide groove; 14, sliding rod; 15, sliding groove; 16, transmission belt; 17, rotating wheel; 18, rotating disk; 19, arc block; 20, moving rod; 21, sample loading Block; 22. Connecting block; 23. Connecting slot; 24. Clamping block; 25. Spring sheet; 26. Clamping tooth; 27. Pressure spring; 28. Lifting slot; 29. ​​Moving slot; 30. Spring slot; 31. Limiting wheel; 32. Limiting gear rod; 33. Limiting plate; 34. Positioning spring; 35. Baffle; 36. Buffer pad; 37. Moving wheel; 1001. Section a; 1002. Section b; 1003. Section c. DETAILED DESCRIPTION

[0038] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0039] See also Figures 1-14, a high-pressure water equipment detection system, including a water pressure testing machine 1 and a fixing clamp 2 connected to the water pressure testing machine 1, a motor 3 is fixedly connected to one side of the inner wall of the water pressure testing machine 1, the output end of the motor 3 is fixedly connected to the main shaft 4, the outer wall of the main shaft 4 is provided with two lower sample components, the fixing clamp 2 is located between the two lower sample components, the lower sample component includes a connecting plate 5, a connecting gear rod 10, a lower sample plate 11 and a fixing block 12, both ends of the connecting plate 5 are fixedly connected to the inner wall of the water pressure testing machine 1, the fixing block 12 is fixedly connected to the side of the connecting plate 5 close to the fixing clamp 2, the bottom of the lower sample plate 11 is fixedly connected to two symmetrically arranged connecting gear rods 10, and the surface of the fixing block 12 is provided with a slide groove 13 corresponding to the position of the connecting gear rod 10. The connecting plate 5 is connected with a driving component, and the sample loading side of the surface of the hydraulic testing machine 1 is connected with multiple sample loading components, and the sample loading components correspond to the position of the fixing clamp 2; the driving component includes a driving wheel 6, a rotating shaft 7, a driven wheel 8, a sample lower gear 9 and a transmission belt 16. The part of the main shaft 4 located in the connecting plate 5 is sleeved with a driving wheel 6, and the connecting plate 5 is rotatably connected with multiple rotating shafts 7. The part of each rotating shaft 7 located in the connecting plate 5 is sleeved with two driven wheels 8. One end of the rotating shaft 7 on both sides passes through the side wall of the fixed block 12 into the slide groove 13, and is rotatably connected with the sample lower gear 9. The sample lower gear 9 is meshed with the outer wall of the connecting gear rod 10. The driving wheel 6 and the driven wheel 8 close to the side of the driving wheel 6 are connected by a transmission belt 16, and the adjacent two The driving wheel 6 on the rotating shaft 7 is connected by a transmission belt 16; the sample loading assembly includes a rotating wheel 17, a rotating disk 18, an arc block 19, a moving rod 20, a sample loading block 21, a connecting groove 23, a clamping block 24, a spring sheet 25 and a clamping tooth 26. The outer wall of the main shaft 4 is fixedly connected to the rotating wheel 17, and the outer wall of the rotating wheel 17 is rotatably connected to the rotating disk 18. A plurality of connecting grooves 23 are opened on the outer wall of the rotating wheel 17, and the clamping block 24 is rotatably connected in the connecting groove 23. A spring sheet 25 is fixedly connected between the clamping block 24 and the connecting groove 23. The inner wall of the rotating disk 18 is provided with a clamping tooth 26 corresponding to the position of the clamping block 24. The sample loading side of the surface of the hydraulic pressure testing machine 1 is provided with a lifting groove 28 corresponding to the position of the sample loading block 21. , the bottom surface of the loading block 21 is fixedly connected to the moving rod 20, and a moving groove 29 corresponding to the position of the moving rod 20 is opened in the lifting groove 28. The outer wall of the rotating disk 18 is fixedly connected to two arc blocks 19 arranged symmetrically with the center. The bottom end of the moving rod 20 is in contact with the arc side wall of the arc block 19, and a limiting component is connected to the fixed block 12; the connecting gear rod 10 is divided into section a 1001, section b 1002 and section c 1003 from top to bottom, section a 1001 is fixedly connected to the lower sample plate 11, section b 1002 is meshed with the lower sample gear 9, and the bottom of section c 1003 is fixedly connected to a baffle 35, and the upper and lower surfaces of both ends of the fixed block 12 are fixedly connected to positioning springs 34, and the positioning springs 34 correspond to the positions of the baffle 35;The limiting assembly includes a limiting wheel 31, a limiting gear rod 32 and a limiting plate 33. The surface of the fixed block 12 is provided with a plurality of slide grooves 13 corresponding to the position of the rotating shaft 7. The middle part of the rotating shaft 7 is located in the slide groove 13. One end of the limiting wheel 31 is sleeved. The sliding groove 13 of the middle part is slidably connected to the limiting gear rod 32. The limiting wheel 31 is meshed with the limiting gear rod 32. The top of the limiting gear rod 32 is fixedly connected to the limiting plate 33. The limiting plate 33 corresponds to the position of the fixed clamp 2. The connecting gear rod 10 and the side of the limiting gear rod 32 away from the teeth are fixedly connected to the sliding rod 14. The surface of the fixed block 12 is provided with a plurality of positions corresponding to the sliding rod 14. The corresponding sliding groove 15; the side of the limit plate 33 near the upper sample side of the surface of the hydraulic tester 1 is fixedly connected to a buffer pad 36; the bottom end of the movable rod 20 is fixedly connected to the connecting block 22, and the bottom surface of the connecting block 22 is rotatably connected to a movable wheel 37, the outer wall of the movable wheel 37 is in contact with the outer wall of the curved block 19; the surface of the connecting block 22 is fixedly connected to the pressure spring 27, and the inner wall of the hydraulic tester 1 is provided with a spring groove 30 corresponding to the position of the pressure spring 27; the upper surface of the lower sample plate 11 includes a curved surface and an inclined surface, the curved surface corresponding to the upper sample side of the surface of the hydraulic tester 1, and the inclined surface corresponding to the lower sample side of the surface of the hydraulic tester 1.

[0040] Working principle: After the pipeline is tested, the fixing clamp 2 will cancel the clamping of the pipeline, the motor 3 will start, and drive the main shaft 4 and the driving wheel 6 and the rotating wheel 17 thereon to rotate counterclockwise. At this time, the driving wheel 6 will drive all the driven wheels 8 to rotate counterclockwise together through the transmission belt 16. At this time, the lower sample gear 9 and the limiting wheel 31 are driven to rotate counterclockwise, thereby driving the connecting gear rod 10 and the limiting gear rod 32 to rise. Since the initial position of the lower sample plate 11 is higher than the limiting plate 33, the lower sample plate 11 will first contact the pipeline, driving the pipeline to rise and separate from the fixing clamp 2. Then the pipeline will slide along the inclined surface of the lower sample plate 11 to the lower sample side of the hydraulic pressure testing machine 1, and then The lower sample gear 9 will contact the c section 1003 of the connecting gear rod 10. Since the c section 1003 has no teeth, the lower sample plate 11 cannot continue to rise. Since the positioning spring 34 is in contact with the baffle 35, the lower sample plate 11 cannot fall either. At this time, since the rotating wheel 17 rotates accordingly, the engaging block 24 on the rotating wheel 17 engages with the engaging teeth 26 under the pressure of the spring sheet 25, thereby driving the rotating disk 18 to rotate. During the rotation of the rotating disk 18, the moving wheel 37 will gradually move upward along the arc surface of the arc block 19, and then drive the loading block 21 to rise through the moving rod 20. The loading block 21 will lift the pipe to be tested on the upper sample side of the surface of the hydraulic testing machine 1. When the pipe is lifted up, it will slide onto the lower sample plate 11. As the rotating wheel 17 rotates continuously, multiple pipes will slide on the lower sample plate 11 at equal intervals. When the pipe is close to the fixed clamp 2 of the corresponding station, as the limiting wheel 31 rotates, the height of the limiting plate 33 will exceed the lower sample plate 11, and the limiting plate 33 will separate the pipe to be tested and position the pipe to be tested above the fixed clamp 2. Then the motor 3 is reversed. At this time, the latching teeth 26 will continuously press the clamping block 24 into the connecting groove 23, so the rotating disk 18 will not rotate, thereby stopping the loading of the pipe to be tested. At this time, under the pressure of the positioning spring 34, the b section 1002 of the connecting gear rod 10 will be connected to the fixed clamp 2. The lower sample gear 9 is re-engaged, thereby driving the connecting gear rod 10 and the lower sample plate 11 to move downward, the limit plate 33 and the pipe to be tested on the lower sample plate 11 will move downward synchronously, and then the lower sample plate 11 will drop below the fixing clamp 2, and the pipe to be tested will fall into the fixing clamp 2, and then the a section 1001 of the connecting gear rod 10 will contact the lower sample gear 9. Under the action of the positioning spring 34, the lower sample plate 11 will stop descending. At this time, the limit plate 33 will continue to descend until it is separated from the pipe to be tested. The pipe to be tested can then be fixed by the fixing clamp 2 and tested by the hydraulic testing machine 1. The limit plate 33 will finally drop below the lower sample plate 11, waiting for the next loading and unloading work.

[0041] The high-pressure water equipment detection system of the present invention, by using the lower sample plate 11, the loading block 21 and the limit plate 33, enables the pipeline to be sampled and loaded at one time, realizing batch automatic processing of the pipeline. Compared with the operation mode of loading and unloading samples one by one in the prior art, the entire test cycle is significantly shortened, the test interval is reduced, and the test efficiency of the pipeline is improved. The continuous cycle operation mode makes the entire detection process smoother, reduces the waiting time and processing idle time of the pipeline, and improves the overall work efficiency and resource utilization; the use of the moving wheel 37 can reduce the friction and wear of the moving rod 20 and the arc block 19, increase the service life of the moving rod 20 and the arc block 19, and reduce the frequency and cost of maintenance and replacement of parts. At the same time, the rolling motion is smoother than direct sliding, which can reduce vibration and noise during the motion, making the entire loading process more stable; the use of the pressure spring 27 can ensure that the loading block 21 is stably retracted into the lifting groove 28, preventing the loading block 21 from obstructing the movement of the pipeline to be tested to the top of the loading block 21 and thus obstructing the loading work, thereby ensuring a smooth and efficient loading process; the buffer pad 36 can effectively absorb the impact force and vibration that the limit plate 33 may be subjected to, avoiding direct hard collision to cause damage to the limit plate 33 or the pipeline, helping to reduce the shaking caused by the pipeline collision, improving the stability of the pipeline, and ensuring that the pipeline stably enters the fixed clamp 2; the sliding rod 14 and the sliding groove 15 can improve the stability of the connecting gear rod 10 and the limiting gear rod 32 during the rising and falling process, effectively preventing the connecting gear rod 10 and the limiting gear rod 32 from deflecting or shaking during movement, ensuring the linearity and stability of the movement trajectory, and at the same time making the connecting gear rod 10 and the limiting gear rod 32 more evenly stressed during the rising or falling process, avoiding local stress concentration, reducing wear, and thus extending the service life of the components.

[0042] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. A high-pressure water equipment detection system, comprising a water pressure testing machine (1) and a fixing clamp (2) connected to the water pressure testing machine (1), characterized in that: A motor (3) is fixedly connected to one side of the inner wall of the hydraulic tester (1), and an output end of the motor (3) is fixedly connected to a main shaft (4). Two lower sample components are sleeved on the outer wall of the main shaft (4), and the fixing clamp (2) is located between the two lower sample components. The lower sample component includes a connecting plate (5), a connecting gear rod (10), a lower sample plate (11) and a fixing block (12). Both ends of the connecting plate (5) are fixedly connected to the inner wall of the hydraulic tester (1), and the fixing block (12) is fixedly connected to a side of the connecting plate (5) close to the fixing clamp (2). The bottom of the lower sample plate (11) is fixedly connected to two symmetrically arranged connecting gear rods (10), and a sliding groove (13) corresponding to the position of the connecting gear rod (10) is opened on the surface of the fixing block (12). The connecting plate (5) is connected with a driving component, and the sample loading side of the surface of the water pressure testing machine (1) is connected with multiple sample loading components, and the sample loading components correspond to the position of the fixing clamp (2); the driving component includes a driving wheel (6), a rotating shaft (7), a driven wheel (8), a sample unloading gear (9) and a transmission belt (16), the part of the main shaft (4) located in the connecting plate (5) is provided with a driving wheel (6), and the connecting plate (5) is rotatably connected with multiple rotating shafts (7), and each of the rotating shafts (7) located in the connecting plate (5) is provided with two driven wheels (8), and one end of the rotating shaft (7) on both sides passes through the side wall of the fixed block (12) and enters the slide groove (13), and is rotatably connected with the sample unloading gear (9), and the sample unloading gear (9) is connected to the connecting plate (5). The outer wall of the gear rod (10) is meshed with each other, the driving wheel (6) and the driven wheel (8) on the side close to the driving wheel (6) are connected by a transmission belt (16), and the driving wheels (6) on the two adjacent rotating shafts (7) are connected by a transmission belt (16); the loading assembly includes a rotating wheel (17), a rotating disk (18), an arc block (19), a moving rod (20), a loading block (21), a connecting groove (23), a clamping block (24), a spring sheet (25) and a clamping tooth (26); the outer wall of the main shaft (4) is fixedly connected to the rotating wheel (17), the outer wall of the rotating wheel (17) is rotatably connected to the rotating disk (18), the outer wall of the rotating wheel (17) is provided with a plurality of connecting grooves (23), and the inner wall of the connecting groove (23) is rotatably connected to the inner wall of the connecting groove (23). A clamping block (24), a spring sheet (25) is fixedly connected between the clamping block (24) and the connecting groove (23), a clamping tooth (26) corresponding to the position of the clamping block (24) is provided on the inner wall of the rotating disk (18), a lifting groove (28) corresponding to the position of the loading block (21) is provided on the sample loading side of the surface of the water pressure testing machine (1), a moving rod (20) is fixedly connected to the bottom surface of the loading block (21), a moving groove (29) corresponding to the position of the moving rod (20) is provided in the lifting groove (28), two arc blocks (19) arranged symmetrically with respect to the center are fixedly connected to the outer wall of the rotating disk (18), the bottom end of the moving rod (20) is in contact with the arc side wall of the arc block (19), and a limiting component is connected to the fixed block (12);The connecting gear rod (10) is divided into a section a (1001), a section b (1002) and a section c (1003) from top to bottom. The section a (1001) is fixedly connected to the lower sample plate (11). The section b (1002) is meshed with the lower sample gear (9). The bottom of the section c (1003) is fixedly connected to a baffle (35). The upper and lower surfaces of both ends of the fixed block (12) are fixedly connected to positioning springs (34). The positioning springs (34) correspond to the positions of the baffle (35).

2. A high-pressure water equipment detection system according to claim 1, characterized in that: The limiting assembly comprises a limiting wheel (31), a limiting gear rod (32) and a limiting plate (33); a plurality of slide grooves (13) corresponding to the positions of the rotating shaft (7) are provided on the surface of the fixed block (12); one end of the rotating shaft (7) in the middle portion located in the slide groove (13) is sleeved with a limiting wheel (31); a limiting gear rod (32) is slidably connected in the slide groove (13) in the middle portion; the limiting wheel (31) is meshed with the limiting gear rod (32); the top of the limiting gear rod (32) is fixedly connected to the limiting plate (33); and the limiting plate (33) corresponds to the position of the fixing clamp (2).

3. A high-pressure water equipment detection system according to claim 2, characterized in that: The connecting gear rod (10) and the limiting gear rod (32) are both fixedly connected to a sliding rod (14) on the side away from the teeth, and a plurality of sliding grooves (15) corresponding to the positions of the sliding rods (14) are provided on the surface of the fixed block (12).

4. A high-pressure water equipment detection system according to claim 2, characterized in that: A buffer pad (36) is fixedly connected to one side of the limiting plate (33) close to the sample loading side of the surface of the hydraulic testing machine (1).

5. A high-pressure water equipment detection system according to claim 1, characterized in that: The bottom end of the moving rod (20) is fixedly connected to a connecting block (22), and the bottom surface of the connecting block (22) is rotatably connected to a moving wheel (37), and the outer wall of the moving wheel (37) is in contact with the outer wall of the arc block (19).

6. A high-pressure water equipment detection system according to claim 5, characterized in that: A pressure spring (27) is fixedly connected to the surface of the connecting block (22), and a spring groove (30) corresponding to the position of the pressure spring (27) is provided on the inner wall of the water pressure testing machine (1).

7. A high-pressure water equipment detection system according to claim 1, characterized in that: The upper surface of the lower sample plate (11) includes a curved surface and an inclined surface, the curved surface corresponds to the upper sample side position of the surface of the hydraulic pressure testing machine (1), and the inclined surface corresponds to the lower sample side position of the surface of the hydraulic pressure testing machine (1).

Citation Information

Patent Citations

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