Water pollution detection device for water pollution control based on mountain spring water

By incorporating a bottom-dispersing component and a scraping design in the wastewater tank, the problem of difficult-to-extract wastewater sediment has been solved, thereby improving the integrity of wastewater samples and the accuracy of testing.

CN120685875BActive Publication Date: 2026-02-24SHAOSHAN YUJIN LONGSHAN SPRING CO LTD
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Patent Information

Application Number
CN202510856420.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-06-25
Publication Date
2026-02-24
Estimated Expiration
2045-06-25

AI Technical Summary

Technical Problem

When sampling from the sewage tank, the sewage has been stored for a long time, making it difficult to extract the sediment, resulting in incomplete sampling and affecting the accuracy of the test results.

Method used

The agitation component is used to quickly disperse the sediment at the bottom of the sewage tank, and the sewage and sediment are extracted together by a water pump. The design of the scraper and impact component ensures the integrity of the sample and the accuracy of the test.

Benefits of technology

This improved sampling quality, reduced sediment adhesion to the inner wall of the delivery tube, maintained sample integrity, and enhanced the accuracy of subsequent testing and the continuous sampling efficiency of the device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of sewage detection, in particular to a water pollution detection device for water pollution control based on mountain spring water preparation. Through the operation of the driving element, the internal components drive the transmission element to operate, and then drive the internal components of the linkage box to operate, so that multiple stirring assemblies around the water pumping net cylinder at the bottom of the linkage box are turned, and self-rotation is realized at the same time. The stirring assemblies can quickly stir the sediments at the bottom of the sewage pool, so that the sediments rapidly spread in the sewage. At this time, the sewage pump is used to pump the sewage in the sewage pool, so that the sewage and the sediments can be pumped together, the possibility that the pumped sewage sample is incomplete due to sewage deposition is reduced, the sampling quality is improved, the accuracy of subsequent sample detection is improved, and meanwhile, when the stirring assemblies are turned, the sewage around the water pumping net cylinder can be further stirred, so that the sewage and the sediments are fully mixed, and the sampling quality is further improved.
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Description

Technical Field

[0001] This invention relates to the field of wastewater testing technology, specifically to a water pollution control and testing device based on spring water. Background Technology

[0002] Spring water typically originates from deep groundwater or streams in mountainous areas. Filtered by natural rock layers and soil, it contains fewer impurities and pollutants, resulting in naturally clear water with a low risk of initial contamination. Furthermore, the flowing water dissolves natural minerals (such as calcium, magnesium, potassium, and metasilicic acid) from the rocks, forming natural mineral water. These minerals are trace elements essential for the human body, and long-term consumption may help maintain electrolyte balance and physiological functions, making it suitable as a drinking water source. People often collect spring water and process it to produce high-quality drinking water.

[0003] The processing of spring water involves a series of steps, including pretreatment, aeration, fine filtration, sterilization, testing, and bottling, to produce drinkable spring water. This process generates a significant amount of wastewater, which is pumped into a wastewater pond for further purification and utilization. Before treatment, the wastewater's composition must be analyzed, and treatment is based on the test results. Furthermore, before testing, wastewater samples must be taken from the wastewater pond for further analysis and processing.

[0004] When sampling and testing wastewater, the wastewater is usually extracted from the wastewater tank using a pump. However, when collecting wastewater samples from the tank, sediment will form at the bottom after being stored for a long time. During sampling, the sediment is not easy to extract, resulting in uneven composition of the extracted wastewater sample and incomplete sample. This affects the quality of the wastewater sample and the subsequent test results. Summary of the Invention

[0005] (a) Technical problems to be solved

[0006] To address the shortcomings of existing technologies, this invention provides a water pollution control and detection device based on spring water. The device uses a rotating agitator to quickly disperse sediment at the bottom of the wastewater tank, thereby rapidly mixing the sediment with the wastewater. This reduces the possibility of incomplete wastewater samples due to sedimentation, improves sampling quality, and enhances the accuracy of subsequent sample testing.

[0007] (II) Technical Solution

[0008] To achieve the above objectives, the present invention provides the following technical solution: a water pollution control and detection device based on spring water, comprising a frame, a sample box fixedly connected to the top of the frame, a connecting cylinder fixedly connected to the bottom of the frame, a linkage box fixedly connected to the bottom of the connecting cylinder, multiple agitation components installed at the bottom of the linkage box, a water pump fixedly connected to the top of the frame, a delivery pipe fixedly connected to the extraction end of the water pump, an installation plate fixedly connected to the bottom end of the delivery pipe, a detachable water-absorbing screen installed at the bottom of the installation plate, the drainage end of the water pump communicating with the sample box, a driving component fixedly connected to one side of the bottom of the frame, a transmission component installed inside the connecting cylinder, the driving component being drivenly connected to the transmission component, the transmission component being drivenly connected to the linkage box, a scraper installed inside the delivery pipe, the scraper being drivenly connected to the transmission component, and an impact component fixedly connected to the bottom of the installation plate, the impact component being located inside the water-absorbing screen.

[0009] Driven by the driving component, the transmission component is driven to operate, which in turn drives the linkage box to operate, thereby causing multiple agitation components to rotate and revolve around the water pumping cylinder. Through the operation of the water pump, external sewage is pumped from the water pumping cylinder into the delivery pipe and then into the sample box.

[0010] Preferably, the driving component includes a motor fixedly connected to one side of the bottom of the frame, and the output end of the motor is fixedly connected to a drive gear, which is located inside the connecting cylinder.

[0011] Preferably, the transmission component includes a drive gear one rotatably connected to the top of the inner side of the connecting cylinder, a plurality of connecting rods fixedly connected to the bottom of the drive gear one, a drive gear two fixedly connected to the bottom end of the connecting rods, the drive gear meshing with the drive gear one, and the drive gear two located inside the linkage box.

[0012] Preferably, an internal gear ring is fixedly connected inside the linkage box, and multiple transmission gears are meshed on the internal tooth side of the internal gear ring. The side of the transmission gear away from the internal gear ring is meshed with a drive gear. A movable groove is provided at the bottom of the linkage box, and the bottom of the transmission gear is connected to the agitation component.

[0013] Preferably, the agitation assembly includes a rotating rod fixedly connected to the bottom of the transmission gear, and an agitator is fixedly connected to the bottom end of the rotating rod.

[0014] Preferably, a stirring plate is fixedly connected to one side of the rotating rod, and a brush plate is fixedly connected to the end of the stirring plate away from the rotating rod.

[0015] Preferably, the scraper includes a connecting ring rotatably connected to the conveying pipe, and a scraper blade is fixedly connected to the inner arc side of the connecting ring, with one side of the scraper blade contacting the inner wall of the conveying pipe.

[0016] Preferably, the striking component includes connecting plates symmetrically connected to one side of the bottom of the mounting plate, a plurality of guide rods fixedly connected between the two connecting plates, a movable plate being connected through the guide rods, a symmetrical return spring being sleeved on one of the guide rods, the return spring being located on one side of the movable plate, and an elastic abutment being installed on one side of the movable plate.

[0017] Preferably, the elastic abutment includes a plurality of spring telescopic rods fixedly connected to one side of the movable plate, and one end of each spring telescopic rod is fixedly connected to an elastic striking element.

[0018] Preferably, the elastic striking element includes a striking plate fixedly connected to one side of the spring telescopic rod, and a plurality of striking balls are fixedly connected to the side of the striking plate away from the spring telescopic rod.

[0019] Compared with the prior art, the beneficial effects of the present invention are:

[0020] 1. This invention utilizes the operation of a driving component to cause its internal components to drive the transmission component, which in turn drives the internal components of the linkage box to operate. This causes multiple agitation components to rotate around the pumping screen at the bottom of the linkage box, while simultaneously rotating themselves. The rotating agitation components rapidly disperse the sediment at the bottom of the sewage tank, allowing it to spread quickly throughout the sewage. At this point, a water pump extracts the sewage from the sewage tank, allowing both sewage and sediment to be extracted together. This reduces the possibility of incomplete sewage samples due to sedimentation, improves sampling quality, and enhances the accuracy of subsequent sample testing. Furthermore, as the agitation components rotate, they further turbid the sewage around the pumping screen, ensuring thorough mixing of the sewage and sediment, further improving sampling quality.

[0021] 2. When the drive component drives the transmission component to operate, the transmission component can synchronously drive the scraper, so that the internal components of the scraper can operate inside the delivery pipe. The scraper can scrape off the sediment adhering to the inside of the delivery pipe, so that the sediment is pumped into the sample box along with the sewage. This reduces the possibility of some sediment adhering to the inner wall of the delivery pipe and reducing the sample quality when the sewage sample is sampled and pumped. It maximizes the integrity of the sample and improves the accuracy of subsequent sample testing.

[0022] 3. When the scraper is in operation, its internal components can intermittently drive the striking components, causing the internal components of the striking components to operate and intermittently strike the pumping screen cylinder. This causes the pumping screen cylinder to vibrate, thereby shaking off the sediment particles adhering to the pumping screen cylinder, reducing the possibility of them adhering to the pumping screen cylinder and causing blockage, thus maintaining the water flow efficiency of the pumping screen cylinder and maintaining the continuous sampling efficiency of the device. When the agitation component is in operation, its internal components can intermittently clean the pumping screen cylinder, further cleaning the pumping screen cylinder. Combined with the vibration of the pumping screen cylinder, the attached sediment is quickly removed, maximizing the sampling efficiency. Attached Figure Description

[0023] Figure 1 This is a schematic diagram of the overall invention.

[0024] Figure 2 This is a partial structural diagram of the present invention.

[0025] Figure 3 This is a schematic diagram of the connection structure of the delivery pipe in this invention.

[0026] Figure 4 This is a schematic diagram of the connection structure of the driving component, transmission component and linkage box in this invention.

[0027] Figure 5 This is a schematic diagram of the connection structure between the driving component and the transmission component in this invention.

[0028] Figure 6 This is a schematic diagram of the linkage box in this invention.

[0029] Figure 7 This is a schematic diagram of the agitation component in this invention.

[0030] Figure 8 This is a schematic diagram of the scraper component in this invention.

[0031] Figure 9 This is a schematic diagram of the installation structure of the striking component in this invention.

[0032] Figure 10 This is a schematic diagram of the striking component in this invention.

[0033] In the diagram: 1. Hand frame; 2. Sample box; 3. Connecting cylinder; 4. Linkage box; 5. Agitation assembly; 6. Pumping net cylinder; 7. Scraper; 8. Driving component; 9. Transmission component; 10. Striking component; 11. Water pump; 12. Delivery pipe; 13. Mounting plate; 41. Internal gear ring; 42. Transmission gear; 43. Movable groove; 51. Rotating rod; 52. Agitating plate; 53. Brush plate; 54. Agitating head; 71. Connecting ring; 72. Scraper; 81. Motor; 82. Drive gear; 91. Drive gear one; 92. Connecting rod; 93. Drive gear two; 101. Connecting plate; 102. Guide rod; 103. Return spring; 104. Moving plate; 105. Spring telescopic rod; 106. Striking plate; 107. Striking ball. Detailed Implementation

[0034] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0035] Example 1

[0036] Please see Figures 1 to 7This is the first embodiment of the present invention, providing a technical solution: a water pollution control and detection device based on spring water, comprising a frame 1, with a sample box 2 fixedly connected to the top of the frame 1. The sample box 2 has a drain outlet on one side for discharging collected wastewater samples, and a miniature cooler on the other side for conducting cold conduction inside the sample box 2, thus refrigerating and storing the wastewater samples inside to prevent excessive microbial growth that could affect the accuracy of subsequent detection. A connecting cylinder 3 is fixedly connected to the bottom of the frame 1. A linkage box 4 is fixedly connected to the bottom of the connecting cylinder 3. Multiple agitation components 5 are installed at the bottom of the linkage box 4. A water pump 11 is fixedly connected to the top of the frame 1. A conveying pipe 12 is fixedly connected to the extraction end of the water pump 11. An installation plate 13 is fixedly connected to the bottom end of the conveying pipe 12. The conveying pipe 12 is located inside the connecting cylinder 3. A detachable water-absorbing screen cylinder 6 is installed at the bottom of the installation plate 13. The water-absorbing screen cylinder 6 is made of woven stainless steel wire and can block debris in the sewage to prevent debris from entering. Inside the conveying pipe 12, debris is prevented from being drawn in along with the sewage, thus improving the quality of the sewage sample. The pumping screen 6 is fixedly connected to the mounting plate 13 by bolts. When the pumping screen 6 needs to be replaced, the bolts can be removed to replace and maintain the pumping screen 6. The drain end of the pumping pump 11 is connected to the sample box 2. A drive component 8 is fixedly connected to one side of the bottom of the scaffold 1. A transmission component 9 is installed inside the connecting cylinder 3. The drive component 8 and the transmission component 9 are connected in a transmission manner. The connecting cylinder 3 is provided with a mechanism for installing the transmission component. The space of the moving part 9 can be used for the installation of the transmission part 9, and the driving part 8 will not cause interference when driving the transmission part 9. The transmission part 9 is connected to the linkage box 4. The inside of the conveying pipe 12 is equipped with a scraper 7, and the conveying pipe 12 is located inside the connecting cylinder 3. The scraper 7 is connected to the transmission part 9. The bottom of the mounting plate 13 is fixedly connected with a striking part 10. The striking part 10 is located inside the pumping net cylinder 6. The pumping net cylinder 6 is located at the lowest end of the conveying pipe 12 and forms a wrap around its water inlet to prevent debris in the sewage from entering the conveying pipe 12.

[0037] Driven by the drive component 8, the transmission component 9 is driven to operate, which in turn drives the linkage box 4 to operate, thereby causing multiple agitation components 5 to rotate and revolve around the water pumping net cylinder 6. Through the operation of the water pump 11, external sewage is pumped from the water pumping net cylinder 6 into the delivery pipe 12 and then into the sample box 2.

[0038] The driving component 8 includes a motor 81 fixedly connected to one side of the bottom of the frame 1. The output end of the motor 81 is fixedly connected to a drive gear 82. Here, a waterproof cover is provided on the outside of the motor 81 to prevent sewage from entering the motor 81 when sampling sewage, thus avoiding malfunction of the motor 81 during sampling. The drive gear 82 is located inside the connecting cylinder 3, and the connecting cylinder 3 has a space inside so that the drive gear 82 will not be interfered with when it is running, which facilitates the transmission between the drive gear 82 and the transmission component 9.

[0039] The transmission component 9 includes a drive gear 91 rotatably connected to the top of the inner side of the connecting cylinder 3. Multiple connecting rods 92 are fixedly connected to the bottom of the drive gear 91. A drive gear 93 is fixedly connected to the bottom of the connecting rods 92. The drive gear 82 meshes with the drive gear 91. The drive gear 93 is located inside the linkage box 4. Here, both the drive gear 91 and the drive gear 93 have inner arc cavities. The conveying pipe 12 is set in the inner arc cavities of the drive gear 91 and the drive gear 93 and extends through the inner arc cavities to the pumping screen cylinder 6. When the drive gear 91 and the drive gear 93 are running, they will not affect the conveying pipe 12.

[0040] An internal gear ring 41 is fixedly connected inside the linkage box 4. Multiple transmission gears 42 are meshed on the internal tooth side of the internal gear ring 41. The side of the transmission gear 42 away from the internal gear ring 41 meshes with the second drive gear 93. Here, the circumference of the second drive gear 93 is larger than the circumference of the transmission gear 42. When the second drive gear 93 rotates at a constant speed, the transmission gear 42 can rotate rapidly under the drive of the second drive gear 93, thereby driving the agitation component 5 to rotate rapidly. A movable groove 43 is provided at the bottom of the linkage box 4. The bottom of the transmission gear 42 is connected to the agitation component 5. When the transmission gear 42 drives the agitation component 5 to operate, the agitation component 5 can rotate inside the arc of the movable groove 43.

[0041] The agitation assembly 5 includes a rotating rod 51 fixedly connected to the bottom of the transmission gear 42. A stirring head 54 is fixedly connected to the bottom end of the rotating rod 51. Here, the stirring head 54 is conical in shape. When rotating, the cone-shaped corner can be embedded in the sediment layer to quickly agitate it. The rotating rod 51 is installed inside the movable groove 43. When the transmission gear 42 is running, the rotating rod 51 can rotate along the inner arc side of the movable groove 43 as the transmission gear 42 is running, and rotates itself while rotating.

[0042] A stirring plate 52 is fixedly connected to one side of the rotating rod 51, and a brush plate 53 is fixedly connected to the end of the stirring plate 52 away from the rotating rod 51. Here, the brush plate 53 and the stirring plate 52 are fixed together by bolts. When the brush plate 53 needs to be replaced or maintained, the bolts can be removed manually to replace it. In addition, the brush plate 53 is made of nylon bristles, which has a good cleaning effect and will not damage the pumping screen cylinder 6. It can quickly brush off the sediment particles adhering to the pumping screen cylinder 6.

[0043] The preparation of spring water generates a large amount of wastewater, which is usually placed in a sedimentation tank for subsequent purification and reuse. When purifying wastewater, it is necessary to first sample and test the wastewater, and then formulate a purification plan based on the test data to achieve efficient purification of the wastewater.

[0044] When testing wastewater, a sample is first taken. A person holds a hand scaffold 1 and inserts a suction screen 6 into the wastewater tank. The pump 11 draws the wastewater from the tank through the suction screen 6 into a delivery pipe 12, which then transports it to a sample box 2 for storage. This process allows for the sampling and treatment of wastewater from the tank. Before the pump 11 is turned on, the drive unit 8 is activated. The motor 81 rotates the drive gear 82, which in turn drives the first drive gear 91, causing it to rotate. This rotation, along with multiple connecting rods 92, drives the second drive gear 93 to rotate synchronously. When the second drive gear 93 rotates, it synchronously drives multiple transmission gears 42, causing them to rotate around the internal gear ring 41. The rotating mechanism drives the rotating rod 51 to rotate, which in turn drives the stirring head 54 to rotate. The stirring head 54 disperses the sediment at the bottom of the sewage, allowing it to spread rapidly throughout the sewage. At this time, the sewage is pumped out of the sewage tank by the water pump 11, which can extract the sewage and sediment together, reducing the possibility of incomplete sewage samples due to sedimentation, improving sampling quality, and increasing the accuracy of subsequent sample testing. At the same time, when the rotating rod 51 rotates, it drives the stirring plate 52 to operate, which further stirs the sewage around the pumping net cylinder 6, allowing the sewage and sediment to mix thoroughly, further improving sampling quality. After the sewage is pumped into the sample box 2, the sewage sample is refrigerated and stored in the sample box 2 for subsequent sample testing and analysis.

[0045] Example 2

[0046] Please see Figure 8This is the second embodiment of the present invention. The difference between this embodiment and the first embodiment is that the scraper 7 includes a connecting ring 71 rotatably connected to the conveying pipe 12. A scraper 72 is fixedly connected to the inner arc side of the connecting ring 71, and the outer arc side of the connecting ring 71 is fixedly connected to the drive gear 91. The connecting ring 71 and the conveying pipe 12 are sealed to prevent leakage when the sewage sample flows inside the conveying pipe 12. One side of the scraper 72 is in contact with the inner wall of the conveying pipe 12. Here, the outer surface of the scraper 72 is smoothed to reduce the adhesion of sediment particles. The bottom end of the scraper 72 extends out of the conveying pipe 12. When the scraper 72 is running, its end running trajectory is at the same height as the top of the striking member 10. When the scraper 72 is running, it can intermittently drive the striking member 10.

[0047] When the drive gear 91 rotates, it drives the connecting ring 71 to rotate. The rotating connecting ring 71 drives the scraper 72 to rotate. The rotating scraper 72 can scrape the inner wall of the delivery pipe 12. When the sewage sample enters the sample box 2 from the delivery pipe 12, the scraper 72 can scrape off the sediment adhering to the inner wall of the delivery pipe 12, so that the sediment is pumped into the sample box 2 along with the sewage. This reduces the possibility that some sediment inside the sample will adhere to the inner wall of the delivery pipe 12 and reduce the sample quality when the sewage sample is sampled and pumped. It maximizes the integrity of the sample and improves the accuracy of subsequent sample testing.

[0048] The remaining structure is the same as that in Example 1.

[0049] Example 3

[0050] Please see Figure 9 and Figure 10This is the third embodiment of the present invention. This embodiment differs from the first and second embodiments in that: the striking component 10 includes connecting plates 101 symmetrically connected to one side of the bottom of the mounting plate 13. Multiple guide rods 102 are fixedly connected between the two connecting plates 101. A movable plate 104 is connected through the guide rods 102. A symmetrical return spring 103 is sleeved on one guide rod 102, located on one side of the movable plate 104. An elastic abutment is installed on one side of the movable plate 104. Here, the movable plate 104 is T-shaped, and its upper end is connected through the guide rod 102. The protruding part of the movable plate 104 corresponds to the bottom end of the scraper 72. When the scraper 72 rotates, it can impact the movable plate. One end of 104 is pushed against, thereby driving the entire moving plate 104 to drive the entire striking component 10 intermittently. This causes the striking component 10 to intermittently strike the pumping screen cylinder 6, causing the pumping screen cylinder 6 to vibrate under the impact force. The outer surface of the return spring 103 is coated with an anti-corrosion layer, which can protect the return spring 103 from corrosion, improve its corrosion resistance, and extend the service life of the return spring 103. In addition, the outer surface of the guide rod 102 is smoothed, which can reduce the friction between the moving plate 104 and the guide rod 102, improve the smoothness of the movement of the moving plate 104 on the guide rod 102, and thus ensure the vibration effect of the striking component 10 on the pumping screen cylinder 6.

[0051] The elastic abutment includes multiple spring telescopic rods 105 fixedly connected to one side of the movable plate 104. One end of each spring telescopic rod 105 is fixedly connected to an elastic striking element. Here, the spring telescopic rod 105 is composed of a sleeve rod, a spring, and an inner rod. The inner rod slides inside the sleeve rod and is rebounded and reset by the elastic action of the spring. This buffers the impact force between the elastic striking element and the pumping screen 6, preventing excessive impact force from damaging the pumping screen 6. The inner wall of the sleeve rod and the outer wall of the inner rod are both smoothed to reduce friction between them, making the inner rod slide more smoothly when it extends and retracts inside the sleeve rod, further improving the buffering effect. The spring inside the spring telescopic rod 105 is treated with corrosion resistance to reduce the erosion of sewage and improve its service life.

[0052] The elastic striking element includes a striking plate 106 fixedly connected to one side of the spring telescopic rod 105. Multiple striking balls 107 are fixedly connected to the side of the striking plate 106 away from the spring telescopic rod 105. Here, the striking balls 107 are made of rubber and have strong elasticity, which can improve the striking effect on the pumping net cylinder 6 and will not damage the inner wall of the pumping net cylinder 6. At the same time, the corners of the striking plate 106 are arc-shaped, so that when the striking plate 106 drives the striking balls 107 to strike the pumping net cylinder 6, its corners will not damage the pumping net cylinder 6 when they come into contact with it, further improving the service life of the pumping net cylinder 6 and reducing its replacement frequency.

[0053] When the scraper blade 72 rotates, its bottom end intermittently contacts and pushes against the top side of the moving plate 104, causing the moving plate 104 to slide on the guide rod 102 under force. This, in turn, drives the spring telescopic rod 105 and the striking plate 106 to move towards the inner wall of the pumping net cylinder 6, and strikes the pumping net cylinder 6 with the striking ball 107. When the moving plate 104 loses the driving force of the scraper blade 72, it can be reset by the elastic action of the return spring 103. This achieves the reciprocating striking of the pumping net cylinder 6 by the striking element 10, thus enabling the pumping of water. The vibration of the screen cylinder 6 dislodges the sediment particles adhering to it, reducing the likelihood of blockage and maximizing the water flow efficiency. This ensures continuous sampling efficiency. The rotation of the agitator plate 52 drives the brush plate 53 to rotate, intermittently cleaning the surface of the screen cylinder 6. This, combined with the vibration of the screen cylinder 6, quickly removes the attached sediment, maximizing sampling efficiency and improving the overall efficiency of the wastewater testing process.

[0054] The remaining structures are the same as those in Examples 1 and 2.

[0055] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A water pollution control and detection device based on spring water, comprising a scaffold (1), characterized in that: The top of the scaffold (1) is fixedly connected to a sample box (2), and the bottom of the scaffold (1) is fixedly connected to a connecting cylinder (3). The bottom of the connecting cylinder (3) is fixedly connected to a linkage box (4). Multiple agitation components (5) are installed at the bottom of the linkage box (4). The top of the scaffold (1) is fixedly connected to a water pump (11). The extraction end of the water pump (11) is fixedly connected to a conveying pipe (12). The bottom end of the conveying pipe (12) is fixedly connected to an installation plate (13). A detachable water-absorbing mesh cylinder (6) is installed at the bottom of the installation plate (13). The drainage end of the water pump (11) is connected to the sample box (2). A drive component (8) is fixedly connected to one side of the bottom of the hand frame (1). A transmission component (9) is installed inside the connecting cylinder (3). The drive component (8) is connected to the transmission component (9). The transmission component (9) is connected to the linkage box (4). A scraper (7) is installed inside the conveying pipe (12). The scraper (7) is connected to the transmission component (9). A striking component (10) is fixedly connected to the bottom of the mounting plate (13). The striking component (10) is located inside the water pumping net cylinder (6). Driven by the drive component (8), the transmission component (9) is driven to operate, and the linkage box (4) is driven to operate, which in turn drives multiple agitation components (5) to rotate and revolve around the water pumping net cylinder (6). Through the operation of the water pump (11), external sewage is pumped from the water pumping net cylinder (6) to the delivery pipe (12) and then pumped into the sample box (2). The drive unit (8) includes a motor (81) fixedly connected to one side of the bottom of the frame (1), and the output end of the motor (81) is fixedly connected to a drive gear (82), which is located inside the connecting cylinder (3). The transmission component (9) includes a drive gear one (91) rotatably connected to the top of the inner side of the connecting cylinder (3). Multiple connecting rods (92) are fixedly connected to the bottom of the drive gear one (91). A drive gear two (93) is fixedly connected to the bottom of the connecting rods (92). The drive gear (82) meshes with the drive gear one (91). The drive gear two (93) is located inside the linkage box (4). The internal gear ring (41) is fixedly connected to the inside of the linkage box (4). Multiple transmission gears (42) are meshed on the internal tooth side of the internal gear ring (41). The side of the transmission gear (42) away from the internal gear ring (41) is meshed with the second drive gear (93). The bottom of the linkage box (4) is provided with a movable groove (43). The bottom of the transmission gear (42) is connected to the stirring assembly (5). The scraper (7) includes a connecting ring (71) rotatably connected to the conveying pipe (12), a scraper (72) is fixedly connected to the inner arc side of the connecting ring (71), and the outer arc side of the connecting ring (71) is fixedly connected to the drive gear (91). One side of the scraper (72) is in contact with the inner wall of the conveying pipe (12).

2. The water pollution control and detection device based on spring water as described in claim 1, characterized in that: The stirring assembly (5) includes a rotating rod (51) fixedly connected to the bottom of the transmission gear (42), and a stirring head (54) is fixedly connected to the bottom end of the rotating rod (51).

3. The water pollution control and detection device based on spring water as described in claim 2, characterized in that: A stirring plate (52) is fixedly connected to one side of the rotating rod (51), and a brush plate (53) is fixedly connected to the end of the stirring plate (52) away from the rotating rod (51).

4. The water pollution control and detection device based on spring water as described in claim 1, characterized in that: The striking component (10) includes a connecting plate (101) symmetrically connected to one side of the bottom of the mounting plate (13). A plurality of guide rods (102) are fixedly connected between the two connecting plates (101). A movable plate (104) is connected through the guide rod (102). A symmetrical reset spring (103) is sleeved on one of the guide rods (102). The reset spring (103) is located on one side of the movable plate (104). An elastic abutment is installed on one side of the movable plate (104).

5. The water pollution control and detection device based on spring water as described in claim 4, characterized in that: The elastic abutment includes a plurality of spring telescopic rods (105) fixedly connected to one side of the movable plate (104), and one end of the spring telescopic rod (105) is fixedly connected to an elastic striking element.

6. The water pollution control and detection device based on spring water as described in claim 5, characterized in that: The elastic striking element includes a striking plate (106) fixedly connected to one side of the spring telescopic rod (105), and a plurality of striking balls (107) are fixedly connected to the side of the striking plate (106) away from the spring telescopic rod (105).

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