Circulation tank for industrial water quality detection
By adjusting the position of the baffles to control the flow state within the flow channel, the problem of wastewater blockage during industrial water quality testing was solved, thereby improving the stability of the flow channel and the testing efficiency.
Patent Information
- Application Number
- CN202423007900.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-06
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2034-12-06
AI Technical Summary
Existing industrial water quality testing flow channels are prone to blockage due to industrial wastewater accumulation during the sealing process, which increases water pressure and damages the flow channels.
An industrial water quality testing flow channel was designed. By adjusting the positions of the first and second baffles, the flow state of industrial water in the flow channel is controlled to ensure that the water quality is kept flowing during the testing process and to avoid blockage.
It effectively prevents industrial wastewater blockage, reduces water pressure increase, and improves the discharge efficiency of industrial wastewater and the stability of the detector.
Smart Images

Figure CN223538869U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of flow channel technology, specifically a flow channel for industrial water quality testing. Background Technology
[0002] Industrial production processes generate industrial wastewater. To prevent pollution from direct discharge, industrial wastewater must be treated before discharge. In order to monitor the quality of discharged industrial wastewater in a timely manner, testing instruments are used to test its quality. However, most existing testing instruments or sensors use engineering plastic housings as connecting parts and glass housings as testing parts. Therefore, these testing instruments or sensors need to operate stably in suitable environments (such as normal temperature and low pressure).
[0003] Therefore, when using a detector to test industrial wastewater, it is necessary to extend the detector into the flow channel. However, in order to ensure a stable state during the industrial wastewater testing process, valves are usually installed at both ends of the flow channel. When the industrial wastewater flows into the testing area, the valves are used to seal both ends of the flow channel, thereby improving the efficiency and accuracy of the detector in water quality testing. However, during the sealing process of the flow channel, the industrial wastewater cannot be discharged, which will cause the industrial wastewater to accumulate and block the inside of the industrial water discharge pipe, affecting the discharge of industrial wastewater. Moreover, the continuous accumulation of industrial wastewater will lead to an increase in water pressure, which will damage the flow channel. To address this, we propose a flow channel for industrial water quality testing. Utility Model Content
[0004] To address the shortcomings of existing flow channels for industrial water quality testing, this invention provides a flow channel for industrial water quality testing. It features the ability to adjust the positions of the first and second baffles to drive industrial water into the first flow channel. Simultaneously, when industrial water becomes blocked inside the first flow channel, the second flow channel is opened. Thus, during the industrial water testing process, the flow of industrial water is continuously maintained, reducing the risk of blockage and solving the problems mentioned in the background art.
[0005] This utility model provides the following technical solution: a flow channel for industrial water quality testing, including a flow pool, a first flow channel in the middle of the flow pool, a detection tube inside the first flow channel, second flow channels at both ends inside the flow pool, an inlet pipe fixedly connected to one side of the flow pool, a first movable channel inside one side of the flow pool, a first partition plate movably fitted inside the first movable channel, threaded rods threaded on both sides of the first partition plate, a first drain hole inside the first partition plate, a second movable channel inside the other side of the flow pool, a second partition plate and a rotating handle movably installed inside the second movable channel, a second drain hole and a third drain hole inside the second partition plate, and a first water pipe and a second water pipe installed on the other side of the flow pool.
[0006] Preferably, a splicing plate is installed at the upper end of the detection tube, and a detection device is installed inside the splicing plate, while the detection tube is kept parallel to the horizontal plane.
[0007] Preferably, the water inlet pipe is interconnected with the first water tank and the second water tank, and the first partition is disposed between the water inlet pipe and the connection between the first water tank and the second water tank.
[0008] Preferably, the first drain hole is connected to the first and second water troughs respectively, and the threaded rod is connected inside the flow pool.
[0009] Preferably, the interior of the second partition is divided into three areas. The first area has two sets of second drainage holes installed inside, the second area has one set of third drainage holes installed inside, and the third area has two sets of second drainage holes and one set of third drainage holes installed inside. The second drainage holes are aligned with the ends of the second water trough, and the third drainage holes are interconnected with the ends of the first water trough.
[0010] Preferably, the rotating handle is located at the upper end of the flow pool, and the second partition plate is engaged with the rotating handle.
[0011] Preferably, the inlet pipe is connected to the industrial water pipe, and the first and second water pipes are connected to the sewage pipe.
[0012] Compared with existing flow channels for industrial water quality testing, this invention has the following advantages:
[0013] 1. The flow channel for industrial water quality testing, by controlling the interior of the first baffle, drives industrial water to be transported into the interior of the first flow channel. At the same time, the interior of the second baffle is adjusted, that is, the interior of the first flow channel forms a closed state. After the industrial water is collected, the first baffle is closed, that is, both ends of the first flow channel are sealed, keeping the industrial water in a relatively static state. In other words, when using a water quality testing device to test water quality, the flow of liquid is prevented from affecting the testing effect.
[0014] 2. The flow channel for industrial water quality testing, by driving industrial water into the first flow channel and during the water quality testing process, rotates the second baffle, that is, the two ends of the second flow channel form a flow state. This means that during the testing process, the industrial water can be discharged from the inside of the second flow channel, avoiding the liquid from clogging one side of the flow channel during the industrial water testing process, which would lead to increased internal pressure in the pipeline and damage to the pipeline, thus improving the industrial water discharge efficiency. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the main structure of the present utility model;
[0016] Figure 2 This is a schematic cross-sectional view of the main body of this utility model;
[0017] Figure 3 This is a schematic cross-sectional view of the second water tank of this utility model;
[0018] Figure 4 This is a schematic cross-sectional view of the first partition of this utility model;
[0019] Figure 5 This is a cross-sectional view of the present invention without the first partition plate;
[0020] Figure 6 This is a schematic cross-sectional view of the second partition of this utility model;
[0021] Figure 7 This is a cross-sectional view of the present invention without the second partition.
[0022] In the diagram: 1. Flow tank; 2. First flow channel; 3. Detection tube; 4. Second flow channel; 5. Inlet pipe; 6. First movable channel; 7. First partition; 8. Threaded rod; 9. First drain hole; 10. Second movable channel; 11. Second partition; 12. Second drain hole; 13. Third drain hole; 14. First water pipe; 15. Rotating handle; 16. Splicing plate; 17. Second water pipe. Detailed Implementation
[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0024] Please see Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 and Figure 7 A flow channel for industrial water quality testing includes a flow pool 1. A first flow channel 2 is provided in the middle of the flow pool 1, which drives industrial water to flow into the interior of a detection tube 3. The detection tube 3 is located inside the first flow channel 2, facilitating water quality testing by a water quality testing device. Second flow channels 4 are provided at both ends inside the flow pool 1, which drive liquid outwards, preventing blockage and damage to the water pipe during water quality testing. An inlet pipe 5 is fixedly connected to one side of the flow pool 1. A first movable channel 6 is provided inside one side of the flow pool 1, and a first partition 7 is movably fitted inside the first movable channel 6. Threaded rods 8 are threaded on both sides of the first partition 7. Rotating the threaded rods 8 adjusts the position of the first partition 7, thereby controlling the inlet pipe. 5. The state of the industrial water being transported to the first flow tank 2 or the second flow tank 4 can be adjusted. The first partition 7 has a first drain hole 9 inside. The other side of the flow tank 1 has a second movable groove 10 inside. The second movable groove 10 has a second partition 11 and a rotating handle 15 installed inside. Rotating the rotating handle 15 will cause the second partition 11 to rotate. The second partition 11 has a second drain hole 12 and a third drain hole 13 inside. The other side of the flow tank 1 has a first water pipe 14 and a second water pipe 17 installed. By adjusting the position of the second partition 11, the second partition 11 can block the other end of the first flow tank 2, so that the liquid can be continuously transported to the inside of the first flow tank 2, ensuring that the industrial water remains static during water quality testing.
[0025] Please see Figure 2A splicing plate 16 is installed at the upper end of the detection tube 3, and a detection device is installed inside the splicing plate 16. At the same time, the detection tube 3 is kept parallel to the horizontal plane. The detection device is a type of water quality detection device, and this application does not improve the detection device, so it will not be described. The detection device can be installed through the splicing plate 16 at the upper end of the detection tube 3. After the detection device extends into the interior of the detection tube 3, the detection device comes into contact with the liquid filling the interior of the detection tube 3. That is, the detection device can detect and treat industrial water quality. At the same time, the detection tube 3 is kept perpendicular to the horizontal plane, which improves the stability of industrial water inside the detection tube 3.
[0026] Please see Figure 2 The inlet pipe 5 is interconnected with the first water tank 2 and the second water tank 4. At the same time, the first partition 7 is set between the inlet pipe 5 and the first water tank 2 and the second water tank 4. The inlet pipe 5 is interconnected with the first water tank 2 and the second water tank 4, that is, the inlet pipe 5 can drive the liquid to flow out from the inside of the first water tank 2 and the second water tank 4. At the same time, the first partition 7 is set between the inlet pipe 5 and the first water tank 2 and the second water tank 4, that is, the first partition 7 seals or blocks the flow of water supply.
[0027] Please see Figure 4 The first drain hole 9 is interconnected with the first flow tank 2 and the second flow tank 4. The threaded rod 8 is connected inside the flow pool 1. By rotating the threaded rod 8, the height of the first baffle 7 inside the flow pool 1 is adjusted. When the first baffle 7 is moved upward, the two sets of installed first drain holes 9 are connected to the second flow tank 4, meaning that liquid can be discharged through the second flow tank 4. The first baffle 7 blocks the first flow tank 2. When the first baffle 7 is moved downward, the first drain hole 9 in the middle is connected to the first flow tank 2, meaning that industrial water can be transported into the interior of the first flow tank 2. The first baffle 7 also blocks one end of the second flow tank 4, improving the liquid flow efficiency inside the first flow tank 2.
[0028] Please see Figure 6 and Figure 7The interior of the second partition 11 is divided into three areas. The first area contains two sets of second drain holes 12, the second area contains one set of third drain holes 13, and the third area contains two sets of second drain holes 12 and one set of third drain holes 13. The second drain holes 12 are aligned with the ends of the second water trough 4, and the third drain holes 13 are interconnected with the ends of the first water trough 2. These are located inside the second movable trough 10 via the second partition 11. When the first area moves to the outside of the first water trough 2 and the second water trough 4, the second drain holes 12... The second drain hole 12 is connected to the second water tank 4, meaning that liquid is discharged through the second water tank 4. At the same time, when the second area is controlled to move to the outside of the first water tank 2 and the second water tank 4, the third drain hole 13 is connected to the first water tank 2, meaning that liquid can be discharged through the first water tank 2, and the second water tank 4 is blocked. When the third area is controlled to move to the outside of the first water tank 2 and the second water tank 4, both the second drain hole 12 and the third drain hole 13 are connected to each other between the second water tank 4 and the first water tank 2, meaning that liquid can be discharged through both the first water tank 2 and the second water tank 4.
[0029] Please see Figure 1 The rotating handle 15 is located at the upper end of the flow cell 1. The second partition 11 and the rotating handle 15 are meshed together. By rotating the rotating handle 15, the rotating handle 15 and the second partition 11 are meshed together, and the angle of the second partition 11 inside the flow cell 1 can be adjusted.
[0030] Please see Figure 2 and Figure 3 The inlet pipe 5 is connected to the industrial water pipe, and the first water pipe 14 and the second water pipe 17 are connected to the sewage pipe. The industrial water can be transported to the interior of the flow tank 1 through the inlet pipe 5. At the same time, the first water pipe 14 and the second water pipe 17 discharge the liquid flowing inside the flow tank 1. The industrial water pipe and the sewage pipe are both existing technologies, and this application does not improve them, so they will not be described.
[0031] Working principle: In use, the inlet pipe 5 is installed on the industrial water pipe. Simultaneously, the threaded rod 8 is rotated to adjust the position of the first baffle 7, ensuring communication between the first water trough 2 and the inlet pipe 5. At the same time, the handle 15 is rotated, causing the third area inside the second baffle 11 to be installed outside the first water trough 2 and the second water trough 4. Industrial water is injected into the flow tank 1 through the inlet pipe 5, while the first water trough 2 collects the industrial water. Rotating the second baffle 11 installs the first area outside the first water trough 2, i.e., the first water trough 2... When the end of the first water tank 2 is blocked, after sufficient industrial water is collected inside the first water tank 2, the position of the first baffle 7 is adjusted so that the first baffle 7 blocks one end of the first water tank 2. At the same time, the industrial water can be discharged through the second water tank 4. Meanwhile, the water quality detection device is extended into the detection tube 3 to detect the water quality of the industrial water. After the water quality detection is completed, the second baffle 11 is rotated and the third area is installed outside the first water tank 2, that is, the liquid collected inside the first water tank 2 is discharged. By repeating this operation, the water quality of the industrial water can be detected cyclically.
[0032] Although embodiments of the present 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 present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A flow channel for industrial water quality testing, comprising a flow pool (1), wherein a first flow channel (2) is provided in the middle of the flow pool (1), a detection tube (3) is provided inside the first flow channel (2), and a second flow channel (4) is provided at both ends inside the flow pool (1), characterized in that: A water inlet pipe (5) is fixedly connected to one side of the flow pool (1). A first movable groove (6) is opened inside one side of the flow pool (1). A first partition (7) is movably sleeved inside the first movable groove (6). Threaded rods (8) are threaded on both sides of the first partition (7). A first drain hole (9) is opened inside the first partition (7). A second movable groove (10) is opened inside the other side of the flow pool (1). A second partition (11) and a rotating handle (15) are movably installed inside the second movable groove (10). A second drain hole (12) and a third drain hole (13) are opened inside the second partition (11). A first water pipe (14) and a second water pipe (17) are installed on the other side of the flow pool (1).
2. The flow channel for industrial water quality testing according to claim 1, characterized in that: The upper end of the detection tube (3) is equipped with a splicing plate (16), and the inside of the splicing plate (16) is equipped with a detection device. At the same time, the detection tube (3) is kept parallel to the horizontal plane.
3. The flow channel for industrial water quality testing according to claim 1, characterized in that: The water inlet pipe (5) is connected to the first water tank (2) and the second water tank (4), and the first partition (7) is set between the water inlet pipe (5) and the first water tank (2) and the second water tank (4).
4. The flow channel for industrial water quality testing according to claim 1, characterized in that: The first drain hole (9) is connected to the first water tank (2) and the second water tank (4) respectively, and the threaded rod (8) is connected inside the flow pool (1).
5. The flow channel for industrial water quality testing according to claim 1, characterized in that: The interior of the second partition (11) is divided into three areas. The first area has two sets of second drainage holes (12), the second area has a set of third drainage holes (13), and the third area has two sets of second drainage holes (12) and a set of third drainage holes (13). The second drainage holes (12) are aligned with the ends of the second water trough (4), and the third drainage holes (13) are connected to the ends of the first water trough (2).
6. The flow channel for industrial water quality testing according to claim 1, characterized in that: The rotating handle (15) is located at the upper end of the flow pool (1), and the second partition (11) is meshed with the rotating handle (15).
7. The flow channel for industrial water quality testing according to claim 1, characterized in that: The inlet pipe (5) is connected to the industrial water pipe, and the first water pipe (14) and the second water pipe (17) are connected to the sewage pipe.