Water quality monitoring equipment for water ecological restoration
By designing cleaning components in the water quality monitoring equipment and using cylinders and clamp rings to drive cleaning sponges to clean the sampling barrels, the problem of cross-infection of pollutants during the sampling process is solved, and the accuracy of monitoring data and the flexibility of the sampling equipment is improved.
Patent Information
- Application Number
- CN202421663610.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-15
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-07-15
AI Technical Summary
During the long-term sampling process of existing water quality monitoring equipment, dust, dirt and biological substances are easily accumulated outside the sampling barrel, resulting in cross-infection of pollutants and affecting the accuracy of monitoring data.
A water quality monitoring device for water ecological restoration is designed, which includes cleaning components. The cylinder pushes the sliding block and clamping ring to drive the cleaning sponge to closely contact the surface of the sampling barrel, and the up and down movement of the cleaning sponge through the threaded rod and the cylinder box to clean the outside of the barrel.
It effectively reduces pollution interference outside the sampling barrel, prevents cross-contamination, ensures that the water samples meet the characteristics of the water, and improves the flexibility and working efficiency of the sampling equipment.
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Figure CN223037922U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of monitoring equipment, and more specifically, the utility model relates to a water quality monitoring equipment for water ecological restoration. Background Art
[0002] In order to timely understand the pollution situation of water resources and make corresponding measures in time, in the prior art, it is usually necessary to monitor the water quality of water resources. Water quality monitoring is a process of monitoring and measuring the types, concentrations and changing trends of pollutants in water bodies and evaluating the water quality status. In the field of water quality monitoring, in the prior art, water quality monitoring is usually carried out by on-site measurement or sampling measurement methods.
[0003] Existing measurement personnel need to carry a large number of sampling devices to sample the water quality. It is not convenient to carry and move. For pumping water at a certain depth, it is necessary to roughly estimate, which is not accurate enough. The sampling device cannot be disassembled and is not convenient to clean.
[0004] After retrieval, the Chinese patent with the application number CN201922128978.7 discloses a water quality monitoring device for water ecological restoration. The bottom of the storage box is connected with rollers, and the side of the storage box is fixedly connected with a telescopic pull rod, which is convenient to move; the peristaltic pump is used to pump water, which is fast and convenient; a connecting pipe is connected to the water inlet pipe, and the connecting pipe is used to threadedly connect the filter pipe. The setting of the filter holes and the filter net can filter seaweeds and impurities in the lake water when pumping water, ensuring that the water inlet pipe will not be blocked. At the same time, the filter net can be replaced to prevent the filter net from being blocked after a long time. When the above-mentioned water quality monitoring device for water ecological restoration is actually used, long-term sampling will cause dust, dirt, algae or other biological attachments to accumulate on the outside of the sampling bucket. When sampling next time, cross-infection of pollutants will occur, affecting the accuracy of monitoring data. Content of the Utility Model
[0005] In order to overcome the above-mentioned defects of the prior art, the utility model provides a water quality monitoring equipment for water ecological restoration to solve the problems raised in the above background art.
[0006] To achieve the above object, the utility model provides the following technical solutions:
[0007] A water quality monitoring equipment for water ecological restoration, including a detection box, and a cleaning component is installed on one side of the detection box;
[0008] The cleaning component includes a first motor, a first rotating gear is installed at the output end of the first motor, a chain is arranged outside the first rotating gear, a second rotating gear is arranged inside the chain, threaded rods are fixedly connected to the upper surfaces of the first rotating gear and the second rotating gear, and cylinder boxes are installed outside the two threaded rods;
[0009] Inside the cylinder box, there is a cylinder. A pushing block is installed at the output end of the cylinder. Sliding blocks are arranged on both sides of the pushing block. Springs are installed on the lower surfaces of the two sliding blocks. On one side of the two sliding blocks, clamping rings are fixedly connected. Inside the two clamping rings, cleaning sponges are fixedly connected.
[0010] By adopting the above technical solution: The pushing block is pushed by the cylinder to facilitate the movement of the two sliding blocks, so that the two clamping rings can contact the surface of the sampling bucket more closely. The two sliding blocks can drive the clamping rings to move more stably by sliding inside the springs. The first rotating gear is rotationally connected to the first rotating gear through a chain, which facilitates the two threaded rods to drive the cylinder box to move up and down through the threads, so that the two cleaning sponges can clean the outside of the sampling bucket.
[0011] As a further description of the above technical solution: One side of the detection box is fixedly connected with a support plate. At the top of the support plate, two fixed plates are fixedly connected. Inside the two fixed plates, sliding rods are fixedly connected. On the outer sides of the two sliding rods, pulleys are installed. On both sides of the two pulleys, connecting rods are fixedly connected.
[0012] By adopting the above technical solution: By sliding the inner parts of the two pulleys on the outer sides of the sliding rods, the unwinding roller can be effectively supported to unwind and wind the sampling rope, which is convenient for more stable control of the unwinding length of the sampling rope.
[0013] As a further description of the above technical solution: A second motor is arranged above the detection box. A winding roller is installed at the output end of the second motor. A sampling rope is installed on the outer side of the winding roller. The bottom end of the sampling rope is fixedly connected with a sampling bucket. A water suction pipe is communicated with the bottom of the sampling bucket.
[0014] By adopting the above technical solution: The rotation of the winding roller can unwind and wind the sampling rope, so that the sampling bucket can be driven to sample the water area.
[0015] As a further description of the above technical solution: One end of the water suction pipe is installed with a water pump. The output end of the water pump is communicated with a water delivery pipe. One end of the water delivery pipe is communicated with a collection box. A water quality detector is arranged above the collection box.
[0016] By adopting the above technical solution: The water pump can transport the sampled water into the water delivery pipe through the water suction pipe. The collection box can be used to collect the sampled water, and the water quality detector can be used to detect the water.
[0017] The technical effects and advantages of the present utility model:
[0018] 1. By setting up the cleaning component, compared with the prior art, two cleaning sponges can drive the clamping ring to contact the outer side of the sampling bucket, and then by rotating two threaded rods through the cylinder box, the two clamping rings can be driven to move up and down on the outer side of the sampling bucket, which can effectively reduce the pollution interference of the outer side of the sampling bucket by attachments and dirt, prevent cross-contamination between different sampling points, and ensure that the collected water sample is more in line with the water area characteristics.
[0019] 2. By setting up the second motor, unwinding roller, sampling rope, sliding rod, pulley and connecting rod, compared with the prior art, unwinding the sampling rope by the unwinding roller can control the sinking depth of the sampling bucket, adapt to different water depths and water area environments, enhance the flexibility of sampling, and then the two pulleys sliding on the outer side of the sliding rod facilitate the winding of the sampling rope, reduce manual operation work, and improve work efficiency. Description of the Drawings
[0020] Figure 1 It is a schematic diagram of the overall structure of the present utility model.
[0021] Figure 2 It is a schematic diagram of the internal structure of the detection box of the present utility model.
[0022] Figure 3 It is a schematic diagram of the top structure of the detection box of the present utility model.
[0023] Figure 4 It is a partial structure diagram of the connection part of the fixing plate of the present utility model.
[0024] Figure 5 It is a partial structure diagram of the connection part between the cylinder box and the threaded rod of the present utility model.
[0025] Figure 6 It is a partial structure diagram of the connection part of the pulley of the present utility model.
[0026] Reference numerals are: 1. Detection box; 2. First motor; 3. First rotating gear; 4. Chain; 5. Second rotating gear; 6. Threaded rod; 7. Cylinder box; 8. Cylinder; 9. Pushing block; 10. Sliding block; 11. Spring; 12. Clamping ring; 13. Cleaning sponge; 14. Support plate; 15. Fixing plate; 16. Sliding rod; 17. Pulley; 18. Connecting rod; 19. Second motor; 20. Unwinding roller; 21. Sampling rope; 22. Sampling bucket; 23. Water extraction pipe; 24. Water pump; 25. Water delivery pipe; 26. Collection box; 27. Water quality detector. Detailed Embodiment
[0027] The following will clearly and completely describe the technical solutions in the embodiments of the present utility model in conjunction with the accompanying drawings in 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 creative efforts shall fall within the protection scope of the present utility model.
[0028] The embodiment of the present application discloses a water quality monitoring device for water ecological restoration, including a detection box 1. A cleaning component is installed on one side of the detection box 1. The cleaning component includes a first motor 2. A first rotating gear 3 is installed at the output end of the first motor 2. A chain 4 is arranged outside the first rotating gear 3. A second rotating gear 5 is arranged inside the chain 4. Threaded rods 6 are fixedly connected to the upper surfaces of both the first rotating gear 3 and the second rotating gear 5. Cylinder boxes 7 are installed outside both threaded rods 6. A cylinder 8 is arranged inside the cylinder box 7. A pushing block 9 is installed at the output end of the cylinder 8. Sliding blocks 10 are arranged on both sides of the pushing block 9. Springs 11 are installed on the lower surfaces of both sliding blocks 10. Clamping rings 12 are fixedly connected to one side of both sliding blocks 10. Cleaning sponges 13 are fixedly connected to the inner sides of both clamping rings 12. The springs 11 provide a guiding function for the two sliding blocks 10, facilitating the relative movement of the two clamping rings 12 driven by the reset elastic force of the springs for the two sliding blocks 10, and facilitating the two clamping rings 12 to drive the cleaning sponges 13 to closely contact the outer side of the sampling bucket 22. At the same time, the first motor 2 is used to drive the first rotating gear 3 to rotate, so that the first rotating gear 3 drives the first rotating gear 5 to rotate through the chain 4, facilitating the first rotating gear 3 and the first rotating gear 5 to drive the threaded rods 6 to rotate, so that the two threaded rods 6 drive the cylinder boxes 7 to move up and down through the threads, facilitating the two cleaning sponges 13 to move up and down on the outer side of the sampling bucket 22, thereby cleaning the outer side of the sampling bucket 22, preventing cross-contamination between different sampling points, avoiding the erosion of corrosive substances on the sampling bucket 22, and being beneficial to ensuring that the collected water samples are more in line with the water area characteristics.
[0029] Refer to Figure 6 As shown in the figure, a support plate 14 is fixedly connected to one side of the detection box 1. Two fixing plates 15 are fixedly connected to the top of the support plate 14. Slide rods 16 are fixedly connected to the inner sides of both fixing plates 15. Pulleys 17 are installed outside both slide rods 16. Connecting rods 18 are fixedly connected to both sides of both pulleys 17. The two pulleys 17 are connected through the connecting rods 18, enabling the two pulleys 17 to slide outside the slide rods 16 simultaneously, facilitating the unwinding and rewinding of the sampling rope 21 by the unwinding roller 20.
[0030] Refer to Figure 3As shown, a second motor 19 is provided above the detection box 1. The output end of the second motor 19 is equipped with a unwinding roller 20. A sampling rope 21 is installed outside the unwinding roller 20. The bottom end of the sampling rope 21 is fixedly connected to a sampling bucket 22. By unwinding the sampling rope 21 with the unwinding roller 20, the sampling bucket 22 can adapt to different water depths and water area environments. At the same time, the position and depth of the sampling point can be accurately controlled, improving the accuracy of water quality monitoring.
[0031] Referring to Figure 2 As shown, a water extraction pipe 23 is connected to the bottom of the sampling bucket 22. One end of the water extraction pipe 23 is equipped with a water pump 24. The output end of the water pump 24 is connected to a water delivery pipe 25. One end of the water delivery pipe 25 is connected to a collection box 26. A water quality detector 27 is provided above the collection box 26. By using the water pump 24 to transport the sampled water into the collection box 26, it is convenient to collect the sampled water and at the same time convenient for the water quality detector 27 to detect the sampled water.
[0032] The working principle of the present utility model: The present utility model designs a water quality monitoring device for water ecological restoration. The specific structure is as shown in the attached Figures 1-6 As shown in the specification. In this technical solution, through the mutual cooperation between various structures, when water quality needs to be detected, first start the second motor 19, use the second motor 19 to drive the unwinding roller 20 to rotate, so that the sampling rope 21 drives the sampling bucket 22 to sink into the water. At the same time, control the sinking depth of the sampling bucket 22 through the sampling rope 21. When the detected water enters the sampling bucket 22, start the water pump 24. The water pump 24 can pump out the detected water inside the sampling bucket 22 through the water extraction pipe 23 and transport it to the collection box 26 through the water delivery pipe 25. Then, the water quality detector 27 can detect the detected water. When the detection is completed, turn off the second motor 19. Use the two pulleys 17 to slide outside the sliding rod 16 to facilitate the winding of the sampling rope 21. At the same time, start the air cylinder 8, use the air cylinder 8 to push the pushing block 9 to move, so that the pushing block 9 can push the two sliding blocks 10 to move to both sides, facilitating the sampling bucket 22 to move to the inside of the two cleaning sponges 13. At the same time, the sampling rope 21 can drive the convex top of the sampling bucket 22 to insert into the bottom end of the support plate 14. At the same time, the brush inside the groove of the support plate 14 can clean the surface of the sampling rope 21. When the outside of the sampling bucket 22 needs to be cleaned, use the air cylinder 8 to pull the pushing block 9 to move. Due to the sliding block 10 losing the extrusion force, the two cleaning sponges 13 are driven by the reset of the two springs to contact the outside of the sampling bucket 22. Then start the first motor 2, use the first motor 2 to drive the first rotating gear 3 to rotate, so that the first rotating gear 3 drives the first rotating gear 5 to rotate through the chain 4. The rotation of both the first rotating gear 3 and the first rotating gear 5 can drive the threaded rod 6 to rotate. Thus, the two air cylinder boxes 7 can be rotated to helically drive the air cylinder boxes 7 to move up and down, facilitating the two clamping rings 12 to drive the cleaning sponges 13 to move up and down outside the sampling bucket 22, and the outside of the sampling bucket 22 can be cleaned.
[0033] Among them, in the attached drawings of the disclosed embodiments of the present utility model, only the structures related to the disclosed embodiments are involved. For other structures, reference can be made to the general design. Without conflict, the same embodiment and different embodiments of the present utility model can be combined with each other;
[0034] The content not described in detail in the specification belongs to the prior art well-known to those skilled in the art, and the model parameters of each electrical appliance are not specifically limited. Conventional equipment can be used. In this technical solution, since the electrical control components not mentioned belong to the prior art, they are not shown in the drawings and will not be described herein again.
[0035] Finally: The above are only the preferred embodiments of the present utility model and are not used to limit the present utility model. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present utility model shall be included in the protection scope of the present utility model.
Claims
1. A water quality monitoring device for water ecological restoration, comprising a detection box (1), characterized in that: A cleaning component is installed on one side of the detection box (1); The cleaning assembly comprises a first motor (2), a first rotating gear (3) is installed at the output end of the first motor (2), a chain (4) is arranged outside the first rotating gear (3), a second rotating gear (5) is arranged inside the chain (4), threaded rods (6) are fixedly connected to the upper surfaces of the first rotating gear (3) and the second rotating gear (5), and cylinder boxes (7) are installed outside the two threaded rods (6); A cylinder (8) is arranged inside the cylinder box (7), a push block (9) is installed at the output end of the cylinder (8), sliding blocks (10) are arranged on both sides of the push block (9), springs (11) are installed on the lower surfaces of the two sliding blocks (10), one side of the two sliding blocks (10) is fixedly connected to a clamping ring (12), and the inner sides of the two clamping rings (12) are fixedly connected to a cleaning sponge (13).
2. The water quality monitoring equipment for water ecological restoration according to claim 1 is characterized by: A support plate (14) is fixedly connected to one side of the detection box (1), two fixed plates (15) are fixedly connected to the top of the support plate (14), and sliding rods (16) are fixedly connected to the inner sides of the two fixed plates (15).
3. The water quality monitoring equipment for water ecological restoration according to claim 2 is characterized by: Pulleys (17) are installed on the outsides of the two slide bars (16), and connecting rods (18) are fixedly connected to both sides of the two pulleys (17).
4. The water quality monitoring equipment for water ecological restoration according to claim 1 is characterized by: A second motor (19) is arranged above the detection box (1), a reeling roller (20) is installed at the output end of the second motor (19), and a sampling rope (21) is installed on the outside of the reeling roller (20).
5. The water quality monitoring equipment for water ecological restoration according to claim 4 is characterized by: The bottom end of the sampling rope (21) is fixedly connected to a sampling barrel (22), and the bottom of the sampling barrel (22) is connected to a water pumping pipe (23).
6. The water quality monitoring equipment for water ecological restoration according to claim 5 is characterized by: A water pump (24) is installed at one end of the water pumping pipe (23), and the output end of the water pump (24) is connected to a water delivery pipe (25).
7. The water quality monitoring equipment for water ecological restoration according to claim 6 is characterized by: One end of the water delivery pipe (25) is connected to a collection box (26), and a water quality detector (27) is arranged above the collection box (26).
Citation Information
Patent Citations
Water quality monitoring device for water ecological restoration
CN211627537U