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

By designing a water pollution detection device, which utilizes a winding component to drive the cleaning component to flip and a linkage component to drive the stirring and adsorption components, the problem of interference from suspended solids and algae on the detection equipment is solved, and high accuracy in wastewater detection is achieved.

CN120427863BActive Publication Date: 2026-04-17湖南泓源科盛设备有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
湖南泓源科盛设备有限公司
Filing Date
2025-05-11
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

When testing wastewater generated during the preparation of spring water, suspended solids, algae, and humus can interfere with the accuracy of the testing equipment, and existing technologies are unable to effectively remove them.

Method used

A water pollution detection device was designed. The device uses a winding component to drive a cleaning component to rotate, which in turn drives a cleaning brush to clean the sensing end of the liquid level sensor. The device also uses a linkage component to drive a stirring component and an adsorption component to reduce the impact of suspended solids and algae, thereby improving the detection accuracy.

Benefits of technology

It effectively reduces the interference of suspended solids and algae on detection, improves the accuracy and precision of sewage sample detection, and ensures the monitoring accuracy of the liquid level sensor.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention relates to the field of wastewater testing technology, specifically to a water pollution control and testing device based on spring water. The device includes a sample box with U-shaped connecting frames fixedly connected to both sides of the top. When the cleaning component flips, it drives the internal structure to filter and retrieve floating debris from the wastewater. As the cleaning component flips, it carries the floating debris out of the wastewater. When the cleaning component flips to a vertical position above the sample box, it contacts a deflector. The deflector's internal components can then deflect the cleaning component, causing it to shake and dislodge the retrieved floating debris onto a discharge plate. This discharge plate removes the floating debris from the wastewater, thus reducing the amount of floating debris in the wastewater sample, minimizing interference during subsequent testing, and improving the accuracy of subsequent wastewater sample testing.
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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] 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 treating the wastewater, its composition must be analyzed, and treatment is based on the test results.

[0003] Currently, when testing wastewater, a portion of the wastewater inside the wastewater tank needs to be pumped into a sample box for sampling. The sampled wastewater is then tested using testing equipment. However, during wastewater sampling, a large amount of suspended solids, algae, and humic substances are extracted along with the wastewater. If these substances are not treated, they can interfere with the sensing end of the testing equipment during subsequent wastewater testing, thus easily affecting the accuracy of the wastewater testing. Summary of the Invention

[0004] (a) Technical problems to be solved

[0005] To address the shortcomings of existing technologies, this invention provides a water pollution control and detection device based on spring water. By operating the winding mechanism, the internal components of the winding mechanism pull the cleaning component, thereby removing floating objects from the sewage and reducing the content of suspended solids in the sewage. This reduces the possibility of floating objects interfering with subsequent sewage testing.

[0006] (II) Technical Solution

[0007] To achieve the above objectives, the present invention provides the following technical solution: a water pollution control and water pollution detection device based on spring water, comprising a sample box, U-shaped connecting frames fixedly connected to both sides of the top of the sample box, and a liquid level sensor fixedly connected to the middle of the top of the sample box, the bottom of the liquid level sensor having multiple sensing ends located inside the sample box, cleaning components installed on both sides of the inside of the sample box, a winding component fixedly connected to one side of the top of the U-shaped connecting frame, the winding component being kinetically connected to the cleaning component, a stirring component installed at the bottom of the inner side of the sample box, an adsorption component installed at the bottom of the inner side of the sample box, the stirring component being kinetically connected to the adsorption component, a linkage component installed on one side of the sample box, the U-shaped connecting frame, the linkage component, and the stirring component being kinetically connected, a debris removal plate fixedly connected to both sides of the sample box, and a display fixedly connected to one side of the sample box, the display being electrically connected to the liquid level sensor, a brush assembly provided at the top of the inner side of the U-shaped connecting frame, and a lever installed on one side of the U-shaped connecting frame;

[0008] The operation of the winding component drives the cleaning component, causing it to be lifted and flipped from the sample box. During this process, the winding component simultaneously drives the linkage component, which in turn drives the stirring component to operate synchronously. While the stirring component is operating, the adsorption component can be driven to operate as well.

[0009] Preferably, the take-up component includes a take-up roller fixedly connected to one side of the top of the U-shaped connecting frame. A servo motor is fixedly connected to the output end of the take-up roller. The servo motor is rotatably connected to one side of the top of the U-shaped connecting frame, and a rope is installed on the servo motor. The end of the rope away from the servo motor is connected to the cleaning component.

[0010] Preferably, the cleaning component includes a spring-reset shaft rotatably connected to one side inside the sample box, a flip plate fixedly connected to the spring-reset shaft, a cleaning brush plate fixedly connected to the end of the flip plate away from the spring-reset shaft, a retrieval component installed on the flip plate, a connecting ring fixedly connected to one end of the flip plate, and one end of the rope connected to the connecting ring.

[0011] Preferably, the flipping plate has inner grooves on both sides, the retrieval component includes a filter plate installed inside the flipping plate, the filter plate has movable plates fixedly connected to both sides, the movable plates are slidably connected inside the inner grooves, and multiple springs are fixedly connected to one side of the movable plates.

[0012] Preferably, the U-shaped connecting frame has an installation groove on one side, the pusher includes a protrusion rotatably connected inside the installation groove, a limiting piece is fixedly connected to one side inside the installation groove, and a plurality of return springs are fixedly connected to the side of the protrusion away from the limiting piece, and the end of the return spring away from the protrusion is connected to the inner wall of the installation groove.

[0013] Preferably, the mixing component includes a turntable symmetrically rotatably connected to the bottom of the sample box, a plurality of stirring blades fixedly connected to the top of the turntable, a gear fixedly connected to the bottom of the turntable, and a transmission component fixedly connected to the bottom of the sample box.

[0014] Preferably, the transmission component includes a transmission gear rotatably connected to the bottom of the sample box, and the transmission gear and the driven gear are connected by a transmission belt.

[0015] Preferably, the linkage includes an acceleration box fixedly connected to one side of the bottom of the sample box, a first linkage disk rotatably connected to one side of the acceleration box, a second linkage disk fixedly connected to the end of the servo motor away from the take-up roller, the first linkage disk and the second linkage disk being connected by a transmission belt three, a first transmission disk rotatably connected to the bottom of the acceleration box, a second transmission disk fixedly connected to the bottom of the transmission gear, and the first transmission disk and the second transmission disk being connected by a transmission belt two.

[0016] Preferably, a large driving gear is rotatably connected to one side of the inside of the acceleration box, and a small transmission gear is rotatably connected to the other side of the inside of the acceleration box. A small transmission gear is rotatably connected to the bottom of the inside of the acceleration box. The large driving gear meshes with the small transmission gear, and the small transmission gear meshes with the small transmission gear. One side of the large driving gear is fixedly connected to a linkage disk, and the bottom of the small transmission gear is fixedly connected to the transmission disk.

[0017] Preferably, the adsorption component includes a connecting rod rotatably connected to the bottom of the sample box, a plurality of mounting plates fixedly connected to the connecting rod, a detachable adsorption mesh box mounted on the mounting plate, and the bottom end of the mounting plate fixedly connected to a transmission gear.

[0018] Compared with the prior art, the beneficial effects of the present invention are:

[0019] 1. This invention uses a liquid level sensor to monitor the sewage sample inside the sample box in real time, thereby monitoring the water volume of the sewage sample so that people can replenish the sample in a timely manner. During monitoring, the operation of the winding component causes the internal components of the winding component to pull the cleaning component, causing the cleaning component to flip at a uniform speed, so that the cleaning component is detached from the sewage and is in a vertical position above the sample box. Then, the winding component stops pulling, thereby realizing the intermittent driving of the winding component. At this time, the internal structure of the cleaning component is used to reset, so that the cleaning component is uniformly submerged in the sewage to complete the reset. When the cleaning component flips, it can drive the internal components of the cleaning component to clean the sensing end of the liquid level sensor, thereby realizing the intermittent cleaning of the sensing end of the liquid level sensor, thereby brushing off the algae and humus adhering to the sensing end, reducing the possibility of detection signal drift caused by algae and humus adhering to the surface of the sensing end, improving the accuracy of the liquid level sensor in monitoring the sewage sample volume, and facilitating people to replenish the sewage sample in a timely manner.

[0020] 2. When the cleaning component flips over, it drives the internal structure to filter and retrieve floating objects in the sewage. As the cleaning component flips, it carries the floating objects out of the sewage. When the cleaning component flips to a vertical position above the sample box, it will contact the pusher. The internal components of the pusher can push the cleaning component, causing the internal components of the cleaning component to shake, which will shake the retrieved floating objects off and onto the discharge plate. The discharge plate will then discharge the floating objects, thus retrieving floating objects from the sewage, reducing the content of floating objects in the sewage sample, reducing the possibility of floating objects interfering with the subsequent sewage sample testing, and improving the accuracy of subsequent sewage sample testing.

[0021] 3. When the winding component is in operation, it can synchronously drive the linkage component, which in turn drives the agitator through its internal components. This agitation of the agitator's internal components stirs the wastewater sample inside the sample box, ensuring a uniform distribution of the wastewater sample composition and preventing sedimentation and water stratification. This improves the accuracy of subsequent wastewater sample testing. Simultaneously, the agitator's operation also drives the adsorption component, which adsorbs algae and humic substances from the wastewater sample, reducing their content and thus lowering the likelihood of them adhering to the sensor of the detection equipment. This reduces interference with subsequent testing and further improves accuracy. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the overall invention.

[0023] Figure 2 This is a second-view illustration of the present invention.

[0024] Figure 3 This is a schematic diagram of the internal structure of the sample box in this invention.

[0025] Figure 4 This is a schematic diagram of the connection structure between the winding component and the cleaning component in this invention.

[0026] Figure 5 This is a schematic diagram of the cleaning component in this invention.

[0027] Figure 6 This is a schematic diagram of the structure of the dial element in this invention.

[0028] Figure 7 This is a schematic diagram of the stirring component in this invention.

[0029] Figure 8 This is a schematic diagram of the linkage component in this invention.

[0030] Figure 9This is a schematic diagram of the connection structure between the linkage component and the stirring component in this invention.

[0031] Figure 10 This is a schematic diagram of the adsorption element in this invention.

[0032] In the diagram: 1. Sample box; 2. U-shaped connecting frame; 3. Liquid level sensor; 4. Cleaning component; 5. Rewinding component; 6. Mixing component; 7. Adsorption component; 8. Linkage component; 9. Pushing component; 11. Display; 12. Impurity removal plate; 21. Brush assembly; 41. Spring return shaft; 42. Tilting plate; 43. Filter plate; 44. Cleaning brush plate; 45. Movable plate; 51. Servo motor; 52. Rewinding roller; 53. Rope; 61. Turntable; 6 2. Gear; 63. Transmission gear; 64. Agitator blade; 65. Transmission belt one; 71. Connecting rod; 72. Mounting plate; 73. Adsorption mesh box; 81. Linkage disc one; 82. Drive gear; 83. Transmission pinion one; 84. Transmission pinion two; 85. Transmission disc one; 86. Transmission belt two; 87. Transmission disc two; 88. Linkage disc two; 89. Transmission belt three; 91. Protrusion; 92. Return spring; 93. Limiting plate. Detailed Implementation

[0033] 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.

[0034] Example 1

[0035] Please see Figures 1 to 4This 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 sample box 1, with U-shaped connecting frames 2 fixedly connected to both sides of the top of the sample box 1, and a liquid level sensor 3 fixedly connected to the middle of the top of the sample box 1. The bottom of the liquid level sensor 3 has a sensing end located inside the sample box 1 and submerged in the wastewater sample. Here, the liquid level sensor 3 is a hydrostatic liquid level sensor, with its sensing end located inside the sample box 1. Cleaning components 4 are installed on both sides of the inside of the sample box 1. A winding component 5 is fixedly connected to one side of the top of the U-shaped connecting frame 2, and the winding component 5 is drively connected to the cleaning component 4. A stirring component 6 is installed at the bottom inner side of the sample box 1, and an adsorption component 7 is installed at the bottom inner side of the sample box 1. The adsorption component 7 is used to remove algae and humus contained in the wastewater inside the sample box 1. The sample box 1 is equipped with a stirring component 6 and an adsorption component 7 for adsorption. A linkage component 8 is installed on one side of the sample box 1. The U-shaped connecting frame 2, the linkage component 8 and the stirring component 6 are connected by a transmission. Both sides of the sample box 1 are fixedly connected with a debris discharge plate 12. The debris discharge plate 12 is inclined and can be used to guide the floating objects falling from the cleaning component 4 and discharge them into the external debris box. A display 11 is fixedly connected to one side of the sample box 1. The display 11 is electrically connected to the liquid level sensor 3. When the liquid level sensor 3 monitors the sewage sample in real time, it can transmit the monitoring data to the display 11 so that people can check the remaining amount of sewage sample and replenish the sewage sample in time. A brush assembly 21 is set on the top of the inner side of the U-shaped connecting frame 2. A lever 9 is installed on one side of the U-shaped connecting frame 2.

[0036] The operation of the winding component 5 drives the cleaning component 4, causing the cleaning component 4 to be lifted and flipped from the sample box 1. During this process, the winding component 5 drives the linkage component 8, and the linkage component 8 drives the stirring component 6 to operate synchronously. While the stirring component 6 is operating, the adsorption component 7 can be driven to operate.

[0037] The take-up component 5 includes a take-up roller 52 fixedly connected to one side of the top of the U-shaped connecting frame 2. A servo motor 51 is fixedly connected to the output end of the take-up roller 52. Here, the start-stop time and start-stop interval of the servo motor 51 can be preset. When the cleaning component 4 is in a vertical position above the sample box 1, the servo motor 51 stops driving the take-up roller 52. After the cleaning component 4 is completely reset, the servo motor 51 drives the take-up roller 52 again, causing the cleaning component 4 to flip again. The servo motor 51 is rotatably connected to one side of the top of the U-shaped connecting frame 2, and a rope 53 is installed on the servo motor 51. The end of the rope 53 away from the servo motor 51 is connected to the cleaning component 4.

[0038] The cleaning component 4 includes a spring-reset shaft 41 rotatably connected to one side inside the sample box 1. The spring-reset shaft 41 has a high-elasticity torsion spring inside, which can be used to drive the flip plate 42 to rotate and reset. Damping bearings are provided at both ends of the spring-reset shaft 41, which, in conjunction with the spring-reset shaft 41, slowly and uniformly resets the flip plate 42. The flip plate 42 is fixedly connected to the spring-reset shaft 41, and a cleaning brush 44 is fixedly connected to the end of the flip plate 42 away from the spring-reset shaft 41. The cleaning brush 44 and the flip plate 42 are fixedly connected by bolts. When the cleaning brush 44 needs to be replaced, the bolts can be removed to disassemble and replace it. The cleaning brush 44 is made of soft bristles, which will not scratch the sensing end of the liquid level sensor 3 when cleaning it. A retrieval component is installed on the flip plate 42, and a connecting ring is fixedly connected to one end of the flip plate 42. One end of the rope 53 is connected to the connecting ring.

[0039] Wastewater and sewage are generated during the preparation of spring water. These are collected and stored in an external sewage tank. During the purification process, the internal components of the sewage are tested. Before testing, the sewage in the sewage tank needs to be sampled. The sewage can be discharged into sample box 1 by an external sewage pump. The sewage sample is collected and stored in sample box 1, thus realizing the sewage sampling process. Afterwards, the amount of sewage sample in sample box 1 can be monitored in real time through the sensing end of liquid level sensor 3, and the detection data is transmitted to display 11 so that people can view the amount of sewage sample and replenish the sewage sample in a timely manner.

[0040] When the liquid level sensor 3 monitors the sewage sample in real time, the operation of the winding roller 52 drives the servo motor 51 to rotate, causing the servo motor 51 to wind up the rope 53. At this time, the other end of the rope 53 pulls the flip plate 42, causing the flip plate 42 to rotate around the spring reset shaft 41, thus flipping the flip plate 42 upward from inside the sample box 1. When the flip plate 42 moves, it can drive the cleaning brush plate 44 to rotate, using the rotating cleaning brush plate 44 to clean the sensing end, thereby cleaning the sensing end, brushing off the algae and humus adhering to the sensing end, reducing the possibility of detection signal drift caused by algae and humus adhering to the surface of the sensing end, and maximizing the accuracy of the liquid level sensor 3 in monitoring the water volume of the sewage sample. The flip plate 42 flips upward. After the flip plate reaches the vertical position, the servo motor 51 stops rotating. At this time, the flip plate 42 loses its pulling force. Through the elastic action of the spring return shaft 41, the flip plate 42 can be driven to rotate back. With the help of the damping bearing, the flip plate 42 is slowly and evenly reset, allowing it to slowly sink into the sewage to complete the reset, avoiding splashing water during the reset. At the same time, when the flip plate 42 is rotating back to reset, the cleaning brush plate 44 can be driven again to clean the sensing end, thus achieving intermittent cleaning of the sensing end of the liquid level sensor 3. When the flip plate 42 flips up to the vertical position, the cleaning brush plate 44 can contact the brush assembly 21, so that the multiple protrusions of the brush assembly 21 are inserted into the brush of the flip plate 42. The brush assembly 21 can easily scrape off and clean the debris adhering to the flip plate 42, thereby ensuring the cleaning effect of the flip plate 42 on the sensing end.

[0041] Example 2

[0042] Please see Figure 5 and Figure 6 This is the second embodiment of the present invention. The difference between this embodiment and the first embodiment is that: both sides of the flipping plate 42 are provided with inner grooves, and the retrieval component includes a filter screen plate 43 installed inside the flipping plate 42. The filter screen plate 43 is in an arc-shaped concave shape. When retrieval of suspended matter, it can be placed inside the filter screen plate 43 and pulled out of the sewage with flipping. Both sides of the filter screen plate 43 are fixedly connected with movable plates 45. The movable plates 45 are slidably connected inside the inner grooves, and one side of the movable plates 45 is fixedly connected with multiple springs.

[0043] The U-shaped connecting bracket 2 has an installation groove on one side. The pusher 9 includes a protrusion 91 that is rotatably connected inside the installation groove. A limiting piece 93 is fixedly connected to one side inside the installation groove. A plurality of return springs 92 are fixedly connected to the side of the protrusion 91 away from the limiting piece 93. The end of the return spring 92 away from the protrusion 91 is connected to the inner wall of the installation groove.

[0044] When the rope 53 pulls the flipping plate 42 upward, it can drive the filter screen plate 43 to flip and move upward. During the movement, the filter screen plate 43 can scoop up suspended solids in the sewage and remove them from the sewage as the flipping plate 42 flips. This reduces the content of suspended solids in the sewage, reduces the possibility of floating objects interfering with the subsequent sewage sample testing, and improves the accuracy of subsequent sewage sample testing.

[0045] When the flip plate 42 is about to reach a vertical position, the filter plate 43 can drive the movable plate 45 to move towards the protrusion 91 and make contact with the protrusion 91. The protrusion 91 can move the movable plate 45, causing the movable plate 45 to drive the filter plate 43 to move inside the flip plate 42. As the flip plate 42 flips, the movable plate 45 can continuously resist the protrusion 91, causing the protrusion 91 to rotate and then resist the limiting piece 93. At this time, the movable plate 45 passes the protrusion 91 and loses the reaction force applied by the protrusion 91. Then, under the elastic action of multiple springs, the movable plate 45 can be quickly reset, causing the movable plate 45 to collide with the flip plate 42, thereby causing the filter plate 43 to vibrate, thus shaking the suspended matter scooped by the filter plate 43 to fall onto the waste discharge plate 12. The waste discharge plate 12 guides it into the external waste box, thereby realizing the scooping and discharge of suspended matter.

[0046] When the flip plate 42 begins to reset, it drives the movable plate 45 to push against the protrusion 91 again, causing the protrusion 91 to rotate away from the limit plate 93. After the movable plate 45 passes the protrusion 91, the protrusion 91 can be reset by the elastic action of the reset spring 92, so that the protrusion 91 will not affect the reset movement of the flip plate 42.

[0047] The remaining structure is the same as that in Example 1.

[0048] Example 3

[0049] Please see Figures 7 to 10 This is the third embodiment of the present invention. The difference between this embodiment and the first and second embodiments is that the stirring component 6 includes a turntable 61 symmetrically rotatably connected to the bottom of the sample box 1. A plurality of stirring blades 64 are fixedly connected to the top of the turntable 61, and a gear 62 is fixedly connected to the bottom of the turntable 61. A transmission component is fixedly connected to the bottom of the sample box 1. Here, there is a gap between the top of the stirring blades 64 and the flipping plate 42, so that the stirring blades 64 will not interfere with the flipping of the flipping plate 42 when they are running.

[0050] The transmission component includes a transmission gear 63 rotatably connected to the bottom of the sample box 1, and the transmission gear 63 and the driven gear 62 are connected by a transmission belt 65.

[0051] The linkage component 8 includes an acceleration box fixedly connected to one side of the bottom of the sample box 1. A linkage disk 81 is rotatably connected to one side of the acceleration box. A linkage disk 88 is fixedly connected to the end of the servo motor 51 away from the take-up roller 52. The linkage disk 81 and the linkage disk 88 are connected by a transmission belt 89. A transmission disk 85 is rotatably connected to the bottom of the acceleration box. A transmission disk 87 is fixedly connected to the bottom of the transmission gear 63. The transmission disk 85 and the transmission disk 87 are connected by a transmission belt 86.

[0052] The inside of the accelerator box is rotatably connected to a large drive gear 82 on one side, and a small drive gear 83 is rotatably connected to the other side of the accelerator box. A small drive gear 84 is rotatably connected to the bottom of the inside of the accelerator box. The large drive gear 82 is meshed with the small drive gear 83, and the small drive gear 83 is meshed with the small drive gear 84. One side of the large drive gear 82 is fixedly connected to a linkage disc 81, and the bottom of the small drive gear 84 is fixedly connected to a transmission disc 85.

[0053] The adsorption component 7 includes a connecting rod 71 rotatably connected to the bottom of the sample box 1. Multiple mounting plates 72 are fixedly connected to the connecting rod 71. A detachable adsorption mesh box 73 is installed on the mounting plate 72. The bottom end of the mounting plate 72 is fixedly connected to the transmission gear 63. Here, the adsorption mesh box 73 is filled with activated carbon particles, which have a strong adsorption effect on algae and humus.

[0054] When the servo motor 51 winds up the rope 53, it synchronously drives the second linkage disk 88 to rotate. The rotating linkage disk 88 drives the first linkage disk 81 to rotate via the third transmission belt 89, which in turn drives the large drive gear 82 to rotate. The rotating large drive gear 82 drives the small transmission gear 83 to rotate, which in turn drives the second small transmission gear 84 to rotate, thereby driving the first transmission disk 85. The first transmission disk 85 drives the second transmission disk 87 to rotate via the second transmission belt 86, which in turn drives the transmission gear 63 to rotate. The rotating transmission gear 63 can be driven by the third transmission belt 89... The servo motor 51 drives two driven gears 62 to rotate synchronously, thereby driving two turntables 61 to rotate and driving multiple stirring blades 64 to stir the sewage. This intermittent stirring of the sewage ensures that the sewage sample components inside the sample box are evenly distributed, avoiding sedimentation and water quality stratification, and thus improving the accuracy of subsequent sewage sample testing. Here, the circumference of the large driving gear 82 is larger than that of the small transmission gear 83, so when the large driving gear 82 rotates at a constant speed, it will drive the small transmission gear 83 to rotate rapidly. Therefore, the rotation speed of the turntable 61 is greater than the rotation speed of the servo motor 51.

[0055] When the transmission gear 63 rotates, it drives the connecting rod 71 to rotate. The rotating connecting rod 71 drives multiple mounting plates 72 to rotate, which in turn drives multiple adsorption net boxes 73 to rotate. When the adsorption net boxes 73 rotate, the sewage sample passes through the adsorption net box 73. Through the activated carbon particles filled inside the adsorption net box 73, algae and humic substances in the sewage sample can be adsorbed, thereby reducing the content of algae and humic substances in the sewage sample. This reduces the possibility of them subsequently adhering to the sensing point of the detection equipment, reduces the interference to the subsequent detection equipment, and further improves the accuracy of subsequent detection. Here, the adsorption net box 73 and the mounting plate 72 are detachably connected by bolts. When it is necessary to replace the adsorption net box 73, the bolts can be manually removed to replace the adsorption net box 73.

[0056] The remaining structures are the same as those in Examples 1 and 2.

[0057] 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 sample box (1), characterized in that: The sample box (1) is fixedly connected to U-shaped connecting frames (2) on both sides of the top, and a liquid level sensor (3) is fixedly connected to the middle of the top of the sample box (1). The liquid level sensor (3) has multiple sensing ends at its bottom, and the sensing ends are located inside the sample box (1). Cleaning components (4) are installed on both sides of the inside of the sample box (1). A winding component (5) is fixedly connected to one side of the top of the U-shaped connecting frame (2). The winding component (5) is connected to the cleaning component (4) in a transmission manner. A stirring component (6) is installed at the bottom inside the sample box (1). An adsorption element (7) is installed, and the stirring element (6) is connected to the adsorption element (7) in a transmission manner. A linkage element (8) is installed on one side of the sample box (1). The winding element (5), the linkage element (8) and the stirring element (6) are connected in a transmission manner. A waste removal plate (12) is fixedly connected to both sides of the sample box (1), and a display (11) is fixedly connected to one side of the sample box (1). The display (11) is electrically connected to the liquid level sensor (3). A brush assembly (21) is provided on the top inner side of the U-shaped connecting frame (2), and a lever element (9) is installed on one side of the U-shaped connecting frame (2). The operation of the winding component (5) drives the cleaning component (4), causing the cleaning component (4) to be lifted and flipped from the sample box (1). During this period, the winding component (5) drives the linkage component (8) in sync, and the linkage component (8) drives the stirring component (6) to operate in sync. While the stirring component (6) is operating, the adsorption component (7) can be driven to operate.

2. The water pollution control and detection device based on spring water as described in claim 1, characterized in that: The take-up component (5) includes a take-up roller (52) fixedly connected to one side of the top end of the U-shaped connecting frame (2). A servo motor (51) is fixedly connected to the output end of the take-up roller (52). The servo motor (51) is rotatably connected to one side of the top end of the U-shaped connecting frame (2), and a rope (53) is installed on the servo motor (51). The end of the rope (53) away from the servo motor (51) is connected to the cleaning component (4).

3. The water pollution control and detection device based on spring water as described in claim 2, characterized in that: The cleaning component (4) includes a spring-reset shaft (41) rotatably connected to one side inside the sample box (1). A flip plate (42) is fixedly connected to the spring-reset shaft (41). A cleaning brush plate (44) is fixedly connected to one end of the flip plate (42) away from the spring-reset shaft (41). A retrieval component is installed on the flip plate (42). A connecting ring is fixedly connected to one end of the flip plate (42). One end of the rope (53) is connected to the connecting ring.

4. The water pollution control and detection device based on spring water as described in claim 3, characterized in that: The flip plate (42) has an inner groove on both sides. The retrieval component includes a filter plate (43) installed inside the flip plate (42). Movable plates (45) are fixedly connected to both sides of the filter plate (43). The movable plates (45) are slidably connected inside the inner groove. Multiple springs are fixedly connected to one side of the movable plates (45).

5. The water pollution control and detection device based on spring water as described in claim 1, characterized in that: The U-shaped connecting frame (2) has an installation groove on one side. The pusher (9) includes a protrusion (91) rotatably connected inside the installation groove. A limiting piece (93) is fixedly connected to one side inside the installation groove. Multiple return springs (92) are fixedly connected to the side of the protrusion (91) away from the limiting piece (93). The end of the return spring (92) away from the protrusion (91) is connected to the inner wall of the installation groove.

6. The water pollution control and detection device based on spring water as described in claim 2, characterized in that: The mixing component (6) includes a turntable (61) symmetrically rotatably connected to the bottom of the sample box (1). Multiple stirring blades (64) are fixedly connected to the top of the turntable (61), a gear (62) is fixedly connected to the bottom of the turntable (61), and a transmission component is fixedly connected to the bottom of the sample box (1).

7. The water pollution control and detection device based on spring water as described in claim 6, characterized in that: The transmission component includes a transmission gear (63) rotatably connected to the bottom of the sample box (1), and the transmission gear (63) and the driven gear (62) are connected by a transmission belt (65).

8. The water pollution control and detection device based on spring water as described in claim 7, characterized in that: The linkage component (8) includes an acceleration box fixedly connected to one side of the bottom of the sample box (1). A linkage disk one (81) is rotatably connected to one side of the acceleration box. A linkage disk two (88) is fixedly connected to one end of the servo motor (51) away from the take-up roller (52). The linkage disk one (81) and the linkage disk two (88) are connected by a transmission belt three (89). A transmission disk one (85) is rotatably connected to the bottom of the acceleration box. A transmission disk two (87) is fixedly connected to the bottom of the transmission gear (63). The transmission disk one (85) and the transmission disk two (87) are connected by a transmission belt two (86).

9. The water pollution control and detection device based on spring water as described in claim 8, characterized in that: The inside of the accelerator box is rotatably connected to a large drive gear (82) on one side, and a small drive gear (83) is rotatably connected to the other side of the accelerator box. A small drive gear (84) is rotatably connected to the bottom of the inside of the accelerator box. The large drive gear (82) meshes with the small drive gear (83), and the small drive gear (83) meshes with the small drive gear (84). One side of the large drive gear (82) is fixedly connected to a linkage disk (81), and the bottom of the small drive gear (84) is fixedly connected to a transmission disk (85).

10. The water pollution control and detection device based on spring water as described in claim 7, characterized in that: The adsorption component (7) includes a connecting rod (71) rotatably connected to the bottom of the sample box (1). Multiple mounting plates (72) are fixedly connected to the connecting rod (71). A detachable adsorption mesh box (73) is installed on the mounting plate (72). The bottom end of the mounting plate (72) is fixedly connected to the transmission gear (63).

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