High-efficiency sedimentation tank water inlet and outlet detection device
By designing a switching mechanism between the water guiding component and the detection component in the inlet and outlet detection device of the high-efficiency sedimentation tank, the problem of downtime caused by detection equipment failure was solved, and the continuous operation of the device and the guarantee of detection accuracy were achieved.
Patent Information
- Application Number
- CN202422802703.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-18
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2034-11-18
AI Technical Summary
Existing high-efficiency sedimentation tank testing equipment is prone to reduced accuracy and malfunctions during use, leading to downtime for maintenance and affecting processing efficiency.
A high-efficiency sedimentation tank inlet and outlet detection device was designed, including a first water guide pipe group, a second water guide pipe group, a water guide component, a first detection component, and a second detection component. The water guide component delivers water to the corresponding detection component for detection, and automatically switches to the other group for detection when one group of detection components fails, thus maintaining the normal operation of the device.
This technology enables the efficient sedimentation tank to continue operating normally even when the detection components fail, avoiding downtime for maintenance and ensuring continuous operation and detection accuracy of the process section.
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Figure CN223513217U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to sewage treatment detection technical field, and more particularly, to a kind of high-efficiency sedimentation tank inlet and outlet detection device. BACKGROUND
[0002] Currently, detection is the most basic, also the most important link of each sewage plant. Through the collection of water quality samples of each process section for laboratory analysis, the laboratory analysis results are fed back to each department in time, to provide accurate adjustment direction for production operation, so that each process section of plant area is normally operated, and the effluent can be stably discharged up to standard.
[0003] Therefore, two sets of detection equipment need to be configured when detecting high-efficiency sedimentation tank, but with the increase of use time, the accuracy of detection equipment may decrease, and operation failure may also occur, which leads to detection failure. In this case, the prior art adopts the way of stopping maintenance of high-efficiency sedimentation tank, and then uses it after the detection equipment is repaired, but this way will undoubtedly affect the processing efficiency. CONTENT OF THE UTILITY MODEL
[0004] The present application provides a kind of high-efficiency sedimentation tank inlet and outlet detection device to improve the above problems.
[0005] The utility model is specifically as follows:
[0006] A kind of high-efficiency sedimentation tank inlet and outlet detection device, high-efficiency sedimentation tank inlet and outlet detection device includes high-efficiency sedimentation tank, first water pipe group, second water pipe group, water guide assembly, first detection component and second detection component;
[0007] First water pipe group and second water pipe group are communicated at the water inlet and water outlet of high-efficiency sedimentation tank respectively, and first water pipe group and second water pipe group are communicated with water guide assembly;
[0008] First detection component and second detection component are communicated with water guide assembly, and water guide assembly is used to transport the water guided out of first water pipe group and second water pipe group to first detection component or second detection component.
[0009] In an embodiment of the utility model, water guide assembly includes first water tank, second water tank, first multi-way valve and second multi-way valve;
[0010] First water pipe group is communicated with first water tank, and first water tank is communicated with first detection component or second detection component by first multi-way valve;
[0011] The second water pipe assembly is connected to the second water tank, and the second water tank is connected to the second detection component or the first detection component through the second multi-way valve.
[0012] In one embodiment of this utility model, the water guiding component includes a first water tank and a second water tank; the first water tank is connected to a first detection component, and the second water tank is connected to a second detection component;
[0013] The first water pipe assembly includes a first sub-pipe and a second sub-pipe connected in parallel, and the first sub-pipe and the second sub-pipe are respectively connected to the first water tank and the second water tank, so that the water inlet can be connected to either the first water tank or the second water tank.
[0014] The second water pipe assembly includes a third sub-pipe and a fourth sub-pipe connected in parallel, and the third sub-pipe and the fourth sub-pipe are respectively connected to the first water tank and the second water tank, so that the outlet can be connected to either the first water tank or the second water tank.
[0015] In one embodiment of this utility model, the first sub-pipeline, the second sub-pipeline, the third sub-pipeline, and the fourth sub-pipeline are all equipped with on / off valves and water pumps.
[0016] In one embodiment of this utility model, a first peristaltic pump is provided on both the pipeline connecting the first detection component to the first water tank and the pipeline connecting the second water tank;
[0017] A second peristaltic pump is installed on the pipeline connecting the second detection component to the first water tank and the second water tank.
[0018] In one embodiment of this utility model, the high-efficiency sedimentation tank inlet and outlet detection device further includes a return water component connected to the inlet of the high-efficiency sedimentation tank; the return water component is connected to the overflow outlets of the first water tank and the second water tank.
[0019] In one embodiment of this utility model, the water return assembly includes a water return tank, a water return pipe, a water return pump, a first overflow pipe, and a second overflow pipe;
[0020] The overflow outlets of the first and second water tanks are connected to the return water tank through the first overflow pipe and the second overflow pipe, respectively; the return water pipe connects the return water tank to the inlet of the high-efficiency sedimentation tank, and the return water pump is installed on the return water pipe.
[0021] In one embodiment of the present invention, the water guiding component includes a water guiding tank, which is configured with a first water collection area, a second water collection area and a transition area.
[0022] The first water collection area is connected to the inlet through the first water guide pipe, and the second water collection area is connected to the outlet through the second water guide pipe.
[0023] The transition zone is connected to the first and second water collection zones via a guide pipe; and the transition zone is selectively connected to either the first or second detection component via a water guide pipe.
[0024] In one embodiment of this utility model, the high-efficiency sedimentation tank inlet and outlet detection device further includes a return water component connected to the inlet of the high-efficiency sedimentation tank; the return water component is connected to the transition zone.
[0025] In one embodiment of this utility model, the transition zone is located between the first water collection zone and the second water collection zone.
[0026] The beneficial effects of this utility model are:
[0027] The high-efficiency sedimentation tank inlet and outlet detection device includes a high-efficiency sedimentation tank, a first water guide pipe group, a second water guide pipe group, a water guide component, a first detection component, and a second detection component. The first water guide pipe group and the second water guide pipe group are respectively connected to the inlet and outlet of the high-efficiency sedimentation tank, and both the first water guide pipe group and the second water guide pipe group are connected to the water guide component. Both the first detection component and the second detection component are connected to the water guide component, and the water guide component is used to transport the water discharged from the first water guide pipe group and the second water guide pipe group to the first detection component or the second detection component.
[0028] The high-efficiency sedimentation tank inlet and outlet water detection device has a simple structure and is easy to use. It can simultaneously detect the water at the inlet and outlet, and can also maintain the normal operation of the water detection work at the inlet and outlet even if one set of detection components fails. This avoids the shutdown of the high-efficiency sedimentation tank process section due to the failure of the detection components, thus ensuring the normal operation of the process section. Attached Figure Description
[0029] To more clearly illustrate the technical solutions of the embodiments of this application, the accompanying drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this application and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.
[0030] Figure 1 A schematic diagram of the high-efficiency sedimentation tank inlet and outlet detection device provided in this application;
[0031] Figure 2 A schematic diagram of the structure of the high-efficiency sedimentation tank inlet and outlet detection device provided in this application when the first type of water guiding component is used;
[0032] Figure 3 A schematic diagram of the structure of the high-efficiency sedimentation tank inlet and outlet detection device provided in this application when the second type of water guiding component is used;
[0033] Figure 4 This is a schematic diagram of the structure of the second type of water-guiding component provided in this application;
[0034] Figure 5 A schematic diagram of the structure of the high-efficiency sedimentation tank inlet and outlet detection device provided in this application when the third type of water guiding component is used.
[0035] Icons: 100 - High-efficiency sedimentation tank inlet / outlet detection device; 200 - High-efficiency sedimentation tank; 110 - First water guide pipe assembly; 130 - Second water guide pipe assembly; 150 - Water guide component; 170 - First detection component; 190 - Second detection component; 151 - First water tank; 152 - Second water tank; 153 - First multi-way valve; 154 - Second multi-way valve; 155 - First sub-pipeline; 156 - Second sub-pipeline; 157 - Third sub-pipeline; 158 - Fourth sub-pipeline; 101 - On / off valve; 102 - Water guide pump; 103 - First peristaltic pump; 104 - Second peristaltic pump; 120 - Return water assembly; 121 - Return water tank; 122 - Return water pipe; 123 - Return water pump; 161 - Water guide tank; 162 - First water collection area; 163 - Second water collection area; 164 - Transition area. Detailed Implementation
[0036] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. The components of the embodiments of this application described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.
[0037] Therefore, the following detailed description of the embodiments of this application provided in the accompanying drawings is not intended to limit the scope of the claimed application, but merely to illustrate selected embodiments of the application. All other embodiments obtained by those skilled in the art based on the embodiments of this application without inventive effort are within the scope of protection of this application.
[0038] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other.
[0039] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.
[0040] In the description of the embodiments of this application, it should be noted that the indicated orientation or positional relationship is based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship commonly used when the product is in use, or the orientation or positional relationship commonly understood by those skilled in the art, and is only for the convenience of describing this application and simplifying the description, and is not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this application. In addition, the terms "first," "second," "third," etc. are only used to distinguish descriptions and should not be construed as indicating or implying relative importance.
[0041] In the description of the embodiments of this application, it should also be noted that, unless otherwise expressly specified and limited, the terms "set," "install," and "connect" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.
[0042] Please refer to Figures 1-5 This embodiment provides a high-efficiency sedimentation tank inlet and outlet detection device 100, which includes a high-efficiency sedimentation tank 200, a first water guide pipe group 110, a second water guide pipe group 130, a water guide component 150, a first detection component 170, and a second detection component 190.
[0043] The first water guide pipe group 110 and the second water guide pipe group 130 are respectively connected to the inlet and outlet of the high-efficiency sedimentation tank 200, and both the first water guide pipe group 110 and the second water guide pipe group 130 are connected to the water guide component 150.
[0044] Both the first detection component 170 and the second detection component 190 are connected to the water guiding component 150, and the water guiding component 150 is used to transport the water discharged from the first water guiding pipe group 110 and the second water guiding pipe group 130 to the first detection component 170 or the second detection component 190.
[0045] Please refer to Figures 1-5 The working principle of the high-efficiency sedimentation tank inlet and outlet detection device 100 is as follows:
[0046] The high-efficiency sedimentation tank inlet and outlet detection device 100 includes a high-efficiency sedimentation tank 200, a first water guide pipe group 110, a second water guide pipe group 130, a water guide component 150, a first detection component 170, and a second detection component 190. The first water guide pipe group 110 and the second water guide pipe group 130 are respectively connected to the inlet and outlet of the high-efficiency sedimentation tank 200, and both the first water guide pipe group 110 and the second water guide pipe group 130 are connected to the water guide component 150. Thus, by setting up the first water guide pipe group 110 and the second water guide pipe group 130, water sampling can be carried out at the inlet and outlet of the high-efficiency sedimentation tank 200. During the sampling process, the exported water is transported to the water guide component 150 for detection.
[0047] In this embodiment, two sets of testing equipment are used for testing: a first testing component 170 and a second testing component 190. These two sets of equipment are designed to test the water at the inlet and outlet respectively, allowing for simultaneous testing of the water at both locations and facilitating comparison of the test results. Furthermore, both the first and second testing components 170 and 190 are configured as orthophosphate analyzers, as is common in the art. Orthophosphate analyzers are used to detect orthophosphate levels in the water. This configuration is chosen because orthophosphate analyzers offer fast testing speeds and allow for adjustment of the testing time as needed. In other embodiments of this invention, other types of testing instruments may be configured for the first and second testing components 170 and 190, depending on the requirements of the testing data.
[0048] As can be seen from the above, by setting the first detection component 170 and the second detection component 190, the water at the inlet and outlet can be detected separately, thereby enabling simultaneous detection of the water at the inlet and outlet, so as to compare the detection results of the water samples at the inlet and outlet. Thus, the first detection component 170 and the second detection component 190 can both be connected to the water guiding component 150. With this setting, the water out of the first water guiding pipe group 110 can be transported to the first detection component 170 through the water guiding component 150, and the water out of the second water guiding pipe group 130 can be transported to the second detection component 190.
[0049] In addition, since the water guiding component 150 in this embodiment can be used to transport the water discharged from the first water guiding pipe group 110 and the second water guiding pipe group 130 to the first detection component 170 or the second detection component 190; therefore, in addition to realizing the aforementioned function of transporting the water discharged from the first water guiding pipe group 110 to the first detection component 170 and the water discharged from the second water guiding pipe group 130 to the second detection component 190, the water guiding component 150 can also transport the water discharged from the first water guiding pipe group 110 to the second detection component 190 and the water discharged from the second water guiding pipe group 130 to the first detection component 170;
[0050] That is, by setting up the water guiding component 150, multiple conveying methods can be realized, allowing operators to choose the method of correspondingly connecting the first water guiding pipe group 110 with the first detection component 170 and the second water guiding pipe group 130 with the second detection component 190 according to the actual situation. Alternatively, in the event of a failure of either the first detection component 170 or the second detection component 190, taking the failure of the first detection component 170 to perform water body detection as an example, the water out of the inlet can be conveyed to the second detection component 190 for detection through the water guiding component 150. At this time, since the water at the inlet and outlet can be detected through the second detection component 190, the high-efficiency sedimentation tank 200 can be kept in operation, and the first detection component 170 can be maintained during operation, thereby avoiding the shutdown of the process section of the high-efficiency sedimentation tank 200 in the event of failure of one of the detection components.
[0051] In summary, the high-efficiency sedimentation tank inlet and outlet detection device 100 has a simple structure and is easy to use. It can simultaneously detect the water at the inlet and outlet, and can also maintain the normal operation of the water detection work at the inlet and outlet even if one of the detection components fails, thereby avoiding the shutdown of the high-efficiency sedimentation tank 200 process section due to the failure of the detection component, thus ensuring the normal operation of the process section.
[0052] It should be noted that, please refer to Figures 1-5 In the above content, taking the failure of the first detection component 170 to perform water body detection as an example, the water body discharged from the inlet can be transported to the second detection component 190 for detection through the water guiding component 150. In this process, the second detection component 190 performs the detection of the water body at the inlet and outlet in steps, thereby avoiding mutual interference between the detection of water bodies at different locations.
[0053] Furthermore, based on the above structural configuration, during use, the water guiding component 150 allows water from the inlet and outlet to be transported to the first detection component 170 and the second detection component 190. This method also enables rapid mutual calibration of the detection components. That is, water from the inlet can be guided to the first detection component 170 and the second detection component 190. When calibrating one of the first detection component 170 and the second detection component 190, the calibration of the other device can be completed. This improves the maintenance efficiency of the first detection component 170 and the second detection component 190, thereby ensuring the accuracy of water detection.
[0054] Furthermore, in this embodiment, based on the above structural configuration, there are multiple configuration methods for the water guiding component 150. Some of these configuration methods will be described below:
[0055] Method 1:
[0056] Please refer to Figure 1 and Figure 2 When configuring the water guiding assembly 150, the water guiding assembly 150 may include a first water tank 151, a second water tank 152, a first multi-way valve 153, and a second multi-way valve 154; the first water guiding pipe group 110 is connected to the first water tank 151, and the first water tank 151 is connected to the first detection assembly 170 or the second detection assembly 190 through the first multi-way valve 153; the second water guiding pipe group 130 is connected to the second water tank 152, and the second water tank 152 is connected to the second detection assembly 190 or the first detection assembly 170 through the second multi-way valve 154.
[0057] Thus, with this configuration, the water from the inlet can be guided to the first water tank 151 through the first water guide pipe group 110, and the water from the outlet can be guided to the second water tank 152 through the second water guide pipe group 130.
[0058] Then, by adjusting or controlling the first multi-way valve 153 and the second multi-way valve 154, the water in the first water tank 151 is directed to the first detection component 170 or the second detection component 190, and the water in the second water tank 152 is directed to the second detection component 190 or the first detection component 170.
[0059] It should be noted that under normal operating conditions, the first multi-way valve 153 connects the first water tank 151 to the first detection component 170, and the second multi-way valve 154 connects the second water tank 152 to the second detection component 190. That is, the water in the first water tank 151 is directed to the first detection component 170, and the water in the second water tank 152 is directed to the second detection component 190. However, when the first detection component 170 malfunctions and cannot perform water detection normally, the first multi-way valve 153 connects the first water tank 151 to the second detection component 190, and the second multi-way valve 154 connects the second water tank 152 to the second detection component 190. Therefore, the water at the inlet and outlet can be detected step by step through the second detection component 190.
[0060] Method 2:
[0061] Please refer to Figures 1-4 The water guiding assembly 150 may also include a first water tank 151 and a second water tank 152;
[0062] Unlike the above-mentioned water guiding component 150, the first water tank 151 is connected to the first detection component 170, and the second water tank 152 is connected to the second detection component 190; the first water guiding pipe group 110 includes a first sub-pipe 155 and a second sub-pipe 156 connected in parallel, and the first sub-pipe 155 and the second sub-pipe 156 are respectively connected to the first water tank 151 and the second water tank 152, so that the water inlet can be selectively connected to either the first water tank 151 or the second water tank 152;
[0063] The second water pipe assembly 130 includes a third sub-pipe 157 and a fourth sub-pipe 158 connected in parallel, and the third sub-pipe 157 and the fourth sub-pipe 158 are respectively connected to the first water tank 151 and the second water tank 152, so that the outlet can be selectively connected to one of the first water tank 151 and the second water tank 152.
[0064] That is, this configuration connects the first water tank 151 to the first detection component 170, and the second water tank 152 to the second detection component 190.
[0065] By configuring the first water guide pipe group 110 as a first sub-pipe 155 and a second sub-pipe 156 connected in parallel, the water at the inlet can be guided to the first water tank 151 or the second water tank 152 through the first sub-pipe 155 and the second sub-pipe 156. Similarly, the water at the outlet can be guided to the first water tank 151 or the second water tank 152 through the third sub-pipe 157 and the fourth sub-pipe 158. Moreover, the first sub-pipe 155, the second sub-pipe 156, the third sub-pipe 157 and the fourth sub-pipe 158 are all equipped with on / off valves 101 and water pumps 102.
[0066] Therefore, during use, by adjusting the conduction status of the first sub-pipe 155, the second sub-pipe 156, the third sub-pipe 157, and the fourth sub-pipe 158, the device can be configured such that, under normal operating conditions, the inlet, the first water tank 151, and the first detection component 170 are connected, and the outlet, the second water tank 152, and the second detection component 190 are connected. At this time, the first sub-pipe 155 and the third sub-pipe 157 are connected, while the second sub-pipe 156 and the fourth sub-pipe 158 are blocked.
[0067] When the first detection component 170 malfunctions or is under maintenance, the first sub-pipe 155 is blocked, the second sub-pipe 156 is open, the third sub-pipe 157 is open, and the fourth sub-pipe 158 is blocked. As a result, the water at the inlet is introduced into the second water tank 152 through the second sub-pipe 156, and can then be detected after being introduced into the second detection component 190.
[0068] Furthermore, in this embodiment, in order to improve detection efficiency, a first peristaltic pump 103 is provided on the pipeline connecting the first detection component 170 to the first water tank 151 and the second water tank 152; and a second peristaltic pump 104 is provided on the pipeline connecting the second detection component 190 to the first water tank 151 and the second water tank 152.
[0069] Furthermore, in order to simplify the difficulty of water return treatment for the tested water, the excess water is returned to the high-efficiency sedimentation tank 200. Based on this, the high-efficiency sedimentation tank inlet and outlet detection device 100 also includes a return water component 120 connected to the inlet of the high-efficiency sedimentation tank 200; the return water component 120 is connected to the overflow outlets of the first water tank 151 and the second water tank 152.
[0070] Specifically, the water return assembly 120 includes a water return tank 121, a water return pipe 122, a water return pump 123, a first overflow pipe, and a second overflow pipe; the overflow ports of the first water tank 151 and the second water tank 152 are respectively connected to the water return tank 121 through the first overflow pipe and the second overflow pipe; the water return pipe 122 connects the water return tank 121 to the inlet of the high-efficiency sedimentation tank 200, and the water return pump 123 is installed on the water return pipe 122.
[0071] Method 3:
[0072] Please refer to Figures 1-5 Unlike the above-mentioned methods 1 and 2, the water guiding component 150 includes a water guiding tank 161, which is equipped with a first water collecting area 162, a second water collecting area 163 and a transition area 164; the first water collecting area 162 is connected to the water inlet through a first water guiding pipe, and the second water collecting area 163 is connected to the water outlet through a second water guiding pipe.
[0073] The transition zone 164 is connected to the first water collection zone 162 and the second water collection zone 163 through a guide pipe; and the transition zone 164 is selectively connected to the first detection component 170 and the second detection component 190 through a water guide pipe.
[0074] Therefore, with this configuration, during use, water can be directed into different zones of the water distribution tank 161 through the inlet and outlet, and then into the first detection component 170 and the second detection component 190 for detection. When one of the first detection component 170 or the second detection component 190 malfunctions or is under maintenance, taking the first detection component 170 as an example, the first zone is disconnected from the first detection component 170, causing the continuous water in the first zone to overflow into the transition zone 164. Since the transition zone 164 can be connected to the first detection component 170 and the second detection component 190, but the first detection component 170 is out of service, the pipeline connecting the transition zone 164 and the first detection component 170 is blocked. At this time, the water in the transition zone 164 will enter the second detection component 190 for detection.
[0075] To simplify the structure of the water guide tank 161, the three zones can be arranged side by side, with the transition zone 164 located between the first water collection zone 162 and the second water collection zone 163. Furthermore, to prevent overflow in the transition zone 164, the high-efficiency sedimentation tank inlet / outlet detection device 100 also includes a return water component 120 connected to the inlet of the high-efficiency sedimentation tank 200; the return water component 120 is connected to the transition zone 164.
[0076] It should be noted that, in this embodiment, taking the first detection component 170 malfunctioning or undergoing maintenance as an example, the first detection component 170 cannot perform normal water detection work, and at this time, the pipeline connected to the first detection component 170 is blocked, that is, the water tank mentioned above cannot deliver water to the first detection component 170.
[0077] The above are merely preferred embodiments of this application and are not intended to limit this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the protection scope of this application.
Claims
1. A high-efficiency sedimentation tank inlet and outlet detection device, characterized in that: The high-efficiency sedimentation tank inlet and outlet detection device includes a high-efficiency sedimentation tank, a first water guide pipe group, a second water guide pipe group, a water guide component, a first detection component, and a second detection component; The first water guide pipe group and the second water guide pipe group are respectively connected to the inlet and outlet of the high-efficiency sedimentation tank, and both the first water guide pipe group and the second water guide pipe group are connected to the water guide component. Both the first detection component and the second detection component are connected to the water guiding component, and the water guiding component is used to transport the water discharged from the first water guiding pipe group and the second water guiding pipe group to the first detection component or the second detection component.
2. The high-efficiency sedimentation tank inlet and outlet detection device according to claim 1, characterized in that: The water guiding assembly includes a first water tank, a second water tank, a first multi-way valve, and a second multi-way valve; The first water pipe assembly is connected to the first water tank, and the first water tank is connected to the first detection component or the second detection component through the first multi-way valve; The second water pipe assembly is connected to the second water tank, and the second water tank is connected to the second detection component or the first detection component through the second multi-way valve.
3. The high-efficiency sedimentation tank inlet and outlet detection device according to claim 1, characterized in that: The water guiding component includes a first water tank and a second water tank; the first water tank is connected to the first detection component, and the second water tank is connected to the second detection component; The first water pipe assembly includes a first sub-pipe and a second sub-pipe connected in parallel, and the first sub-pipe and the second sub-pipe are respectively connected to the first water tank and the second water tank, so that the water inlet can be selectively connected to either the first water tank or the second water tank. The second water pipe assembly includes a third sub-pipe and a fourth sub-pipe connected in parallel, and the third sub-pipe and the fourth sub-pipe are respectively connected to the first water tank and the second water tank, so that the water outlet can be selectively connected to either the first water tank or the second water tank.
4. The high-efficiency sedimentation tank inlet and outlet detection device according to claim 3, characterized in that: Each of the first sub-pipeline, the second sub-pipeline, the third sub-pipeline, and the fourth sub-pipeline is equipped with an on / off valve and a water pump.
5. The high-efficiency sedimentation tank inlet and outlet detection device according to any one of claims 2-4, characterized in that: A first peristaltic pump is installed on the pipeline connecting the first detection component to the first water tank and the second water tank. A second peristaltic pump is installed on the pipeline connecting the second detection component to the first water tank and the second water tank.
6. The high-efficiency sedimentation tank inlet and outlet detection device according to any one of claims 2-4, characterized in that: The high-efficiency sedimentation tank inlet and outlet detection device also includes a return water component connected to the inlet of the high-efficiency sedimentation tank; the return water component is connected to the overflow outlets of the first water tank and the second water tank.
7. The high-efficiency sedimentation tank inlet and outlet detection device according to claim 6, characterized in that: The water return assembly includes a water return tank, a water return pipe, a water return pump, a first overflow pipe, and a second overflow pipe; The overflow outlets of the first water tank and the second water tank are respectively connected to the return water tank through the first overflow pipe and the second overflow pipe; the return water pipe connects the return water tank to the inlet of the high-efficiency sedimentation tank, and the return water pump is installed on the return water pipe.
8. The high-efficiency sedimentation tank inlet and outlet detection device according to claim 1, characterized in that: The water guiding component includes a water guiding tank, which is configured with a first water collection area, a second water collection area, and a transition area. The first water collection area is connected to the water inlet through the first water guide pipe, and the second water collection area is connected to the water outlet through the second water guide pipe; The transition zone is connected to the first water collection area and the second water collection area through a guide pipe; and the transition zone is selectively connected to the first detection component and the second detection component through a water guide pipe.
9. The high-efficiency sedimentation tank inlet and outlet detection device according to claim 8, characterized in that: The high-efficiency sedimentation tank inlet and outlet detection device also includes a return water component connected to the inlet of the high-efficiency sedimentation tank; the return water component is connected to the transition zone.
10. The high-efficiency sedimentation tank inlet and outlet detection device according to claim 9, characterized in that: The transition zone is located between the first water collection zone and the second water collection zone.