Multi-section type water level regulation and control device for culture pond
By designing a multi-stage water level control device, using five-stage water level pipes for segmented detection and adjustment, the problem that single-stage devices cannot meet the water level requirements of different growth stages is solved, thereby improving the growth rate and reproductive capacity of aquatic organisms and increasing aquaculture efficiency.
Patent Information
- Application Number
- CN202520166536.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-24
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2035-01-24
AI Technical Summary
Existing single-stage water level control devices cannot accurately meet the water level requirements of aquatic organisms at different growth stages, resulting in slower growth, longer breeding cycles, higher input-output ratios, and low breeding efficiency.
A multi-segment water level control device is designed. By using a multi-segment water level monitoring component and a water level control component in combination, the device uses five water level pipes for segmented detection and achieves precise water level regulation through inlet and outlet pipes to meet the needs of aquatic organisms at different growth stages.
It enables precise control of water levels, improves the growth rate and reproductive capacity of aquatic organisms, enhances aquaculture efficiency, and reduces input costs.
Smart Images

Figure CN223786923U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of water level control devices, and in particular to a multi-stage water level control device for aquaculture ponds. Background Technology
[0002] In aquaculture, water level regulation can control the temperature, light intensity, dissolved oxygen, pH and other physicochemical factors of the aquaculture water, as well as the vertical distribution of plankton, thereby affecting the growth rate and reproductive cycle of aquatic organisms, which is crucial to fishery production.
[0003] Existing pond water level regulation methods typically employ single-stage water level control devices. During use, these devices cannot accurately meet the water level requirements of aquatic organisms at different growth stages, resulting in slower growth rates, higher input-output ratios, and low aquaculture efficiency.
[0004] Therefore, to address the aforementioned problems, a multi-stage water level control device for aquaculture ponds can be designed. This application designs the water level control device as multi-stage, enabling precise water level regulation for different growth stages of aquatic organisms, enhancing water quality control capabilities, ensuring the survival and health of aquatic organisms, increasing growth rate and reproductive capacity, and achieving low input and high output. Utility Model Content
[0005] In order to overcome the problem that single-stage water level regulation devices cannot accurately provide the optimal water level conditions for aquatic organisms at different growth stages, resulting in slower growth, longer breeding cycles, increased input-output ratio, and low breeding efficiency, this application is made for a multi-stage water level regulation device for aquaculture ponds.
[0006] The technical solution of this utility model is as follows: a multi-stage water level control device for aquaculture ponds, including a control frame, a control console, a multi-stage water level monitoring component, and a water level control component. The control frame is provided with a control frame at the rear end of the surface of the control frame, a control console for adjusting the water level is provided above the control frame, and a multi-stage water level monitoring component is provided below the control frame. The multi-stage water level monitoring component includes a fixed pipe, a multi-stage water level pipe, and an elbow. A monitoring hole is opened in the center of the surface of the control frame, and water level control components are provided on both sides of the monitoring hole. The water level control component is electrically connected to the control console, and the water level control component includes an inlet pipe and an outlet pipe.
[0007] Preferably, compared to the water level control devices currently on the market, which cannot accurately provide suitable water level conditions for aquatic organisms at different growth stages, this application uses a multi-segment water level monitoring component in conjunction with a water level control component. This allows the multi-segment water level monitoring component to detect the water level in the pool in segments through five water level pipes. When the water level changes, the water level control component can inject or drain water into the pool through the inlet and outlet pipes, thereby controlling the water level in the pool to a level suitable for the survival of aquatic organisms. It can also provide more suitable water level conditions according to the needs of different growth stages.
[0008] Preferably, the monitoring hole has an inlet and an outlet on both sides. The inlet and outlet are located at the two edges of the control frame. By combining the inlet and outlet, the multi-stage water level monitoring component can detect changes in the water level in the pool. The staff can identify and operate the control panel to make the water level control component drain and inject water through the inlet and outlet.
[0009] Preferably, the water outlet pipe is located inside the water outlet hole, and the water inlet pipe is located inside the water inlet hole. The outer rings of the water inlet pipe and the water outlet pipe are respectively fitted with a primary fixing sleeve and a secondary fixing sleeve. The primary fixing sleeve and the secondary fixing sleeve are matched with the water inlet hole and the water outlet hole. The combination of the primary fixing sleeve and the secondary fixing sleeve can prevent the water inlet and the water outlet pipe from detaching from the water inlet and the water outlet hole.
[0010] Preferably, the upper end of the fixed pipe is fixedly connected to the water level monitoring hole. The water level pipe has five sections. The fixed pipe is connected to the first section of the water level pipe through an elbow. The five sections of the water level pipe are connected in sequence through elbows. Each elbow has a water level groove inside, and each water level pipe has a strip-shaped hollow groove on the outside. A liquid level float is installed inside the water level pipe. A liquid level sensor is installed inside the liquid level float. A wireless module is installed inside the liquid level sensor. The liquid level sensor is wirelessly connected to the control console through the wireless module. A magnetic block is installed on the outside of the elbow. Through the combined use of the water level groove, the liquid level float, the liquid level sensor and the magnetic block, the liquid level float keeps the water level in the pool under the action of buoyancy. When the water level changes to the segmented critical point, the liquid level float enters the water level groove and contacts the elbow. The liquid level sensor inside the float senses that the magnetic block on the outside of the elbow is activated, and then transmits the liquid level change data to the control console in segments.
[0011] Preferably, the control panel is equipped with a display panel that is electrically connected to the control panel. A control knob is located at the rear of the display panel, and five sets of liquid level indicator lights are linearly arranged at the front of the display panel. By combining the liquid level indicator lights, the display panel, and the control knob, when the water level in the pool reaches the segment critical point, the liquid level sensor will display the water level change data through the liquid level indicator lights and the display panel. Turning the control knob will start the water pump to drain water or connect an external water supply device to add water, thus completing the water level adjustment.
[0012] Preferably, four sets of fixing rods are arranged around the lower outer side of the water outlet, and a hollow pump cage is provided at the lower end of the water outlet pipe. The lower ends of the fixing rods are connected to the bottom of the hollow pump cage, and a water pump is fixedly installed at the lower end of the water outlet pipe. The water pump is located inside the hollow pump cage. The four sets of fixing rods are combined with the hollow pump cage to allow the water pump to be installed inside the hollow pump cage. The mesh gap of the hollow pump cage is such that water flows smoothly but aquatic organisms cannot pass through. When the water level is adjusted, the water outlet is connected to the water supply pipe, and the water pump is started to drain water.
[0013] Preferably, the lower end of the inlet pipe extends through the inlet hole to the bottom of the control frame, and a fixing hoop is fitted at the bottom of the inlet pipe to prevent the inlet pipe from shaking when water is introduced into the pond; when it is necessary to raise the water level, the inlet pipe can be connected to an external water supply device to inject water into the aquaculture pond.
[0014] The beneficial effects of this utility model are:
[0015] Currently available water level control devices cannot accurately provide suitable water level conditions for different growth stages of aquatic organisms. This application combines a multi-segment water level monitoring component with a water level control component. The multi-segment water level monitoring component can monitor the water level in the aquaculture pond in segments through five water level pipes. When the water level changes, the water level control component can inject or drain water into the aquaculture pond through inlet and outlet pipes, providing more precise water level parameters. This controls the water level in the aquaculture pond at a suitable height for aquatic organisms, meeting their different growth stages and reproductive needs. The monitoring hole is connected to a fixed pipe, which is connected to the first segment water level pipe via an elbow, and the five segment water level pipes are connected sequentially via elbows. The strip-shaped perforated groove communicates with the external water body, and the liquid level float maintains the same level as the water in the pond. When the water level reaches the segmented critical point, The float in the water level tank contacts the elbow, and the level sensor inside the float senses the magnetic block on the outside of the elbow, activating the level sensor and transmitting the water level data to the control panel. Five sets of level indicator lights correspond to five water level pipes. The control panel indicates the water level in the tank based on the illumination of the level indicator lights. Turning the control knob starts the water pump to complete drainage, and the inlet hole connects to an external water supply device to complete water filling. By installing a primary and secondary fixing sleeve, the inlet and outlet pipes are prevented from detaching from the inlet and outlet holes, increasing the stability of the device. By combining four sets of fixing rods with the hollow pump cage, the water pump can be securely installed in the hollow pump cage. The mesh gap of the hollow pump cage is designed to allow water to flow freely but prevent aquatic organisms from passing through. A fixing hoop is installed at the bottom of the inlet pipe, which reduces the shaking caused by the impact of water flow on the inlet pipe when filling water, increasing the stability of the device. Attached Figure Description
[0016] Figure 1 The diagram shown is a schematic representation of the overall structure of the control device of this utility model.
[0017] Figure 2The diagram shown is a schematic representation of the control frame structure of the control device of this utility model.
[0018] Figure 3 The diagram shown is a schematic representation of the control console and water inlet pipe assembly of the control device of this utility model.
[0019] Figure 4 The diagram shown is a schematic representation of the water level control component and the outlet pipe component of the control device of this utility model.
[0020] Figure 5 The diagram shown is a schematic representation of the multi-segment water level monitoring component of the control device of this utility model.
[0021] Explanation of reference numerals in the attached diagram: 1. Control frame; 2. Control console; 3. Multi-segment water level monitoring component; 4. Water level control component; 5. Control frame; 6. Monitoring hole; 7. Water inlet; 8. Water outlet; 9. Control knob; 10. Display panel; 11. Liquid level indicator light; 12. Primary fixing sleeve; 13. Water inlet pipe; 14. Fixing clamp; 15. Water outlet pipe; 16. Secondary fixing sleeve; 17. Fixing rod; 18. Hollowed-out pump cage; 19. Water pump; 301. Fixing pipe; 302. Water level pipe; 303. Water level trough; 304. Strip hollowed-out trough; 305. Liquid level float; 306. Elbow; 307. Magnetic block. Detailed Implementation
[0022] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0023] Please see Figure 1 This utility model provides an embodiment: a multi-stage water level control device for aquaculture ponds, including a control frame 1, a control console 2, a multi-stage water level monitoring component 3, and a water level control component 4. A control frame 5 is provided at the rear end of the surface of the control frame 1. A control console 2 for adjusting the water level is provided above the control frame 5. A multi-stage water level monitoring component 3 is provided below the control frame 1. The multi-stage water level monitoring component 3 includes a fixed pipe 301, a multi-stage water level pipe 302, and an elbow 306. A monitoring hole 6 is opened at the center of the surface of the control frame 1. Water level control components 4 are provided on both sides of the monitoring hole 6. The water level control component 4 is electrically connected to the control console 2. The water level control component 4 includes an inlet pipe 13 and an outlet pipe 15.
[0024] Please see Figures 2-4In this embodiment, inlet holes 7 and outlet holes 8 are provided on both sides of the monitoring hole 6. The inlet holes 7 and outlet holes 8 are located at the two side edges of the control frame 1, respectively. The outlet pipe 15 is located inside the outlet hole 8, and the inlet pipe 13 is located inside the inlet hole 7. The outer rings of the inlet pipe 13 and the outlet pipe 15 are respectively fitted with a primary fixing sleeve 12 and a secondary fixing sleeve 16. The primary fixing sleeve 12 and the secondary fixing sleeve 16 are matched with the inlet hole 7 and the outlet hole 8. The combination of the primary fixing sleeve 12 and the secondary fixing sleeve 16 can prevent the inlet pipe 13 and the outlet pipe 15 from detaching from the inlet hole 7 and the outlet hole 8. (Below the outlet hole 8) Four sets of fixing rods 17 are arranged around the lower outer side of the outlet hole 8. The lower end of the fixing rods 17 is provided with a hollow pump cage 18. The lower end of the fixing rods 17 is connected to the bottom of the hollow pump cage 18. A water pump 19 (model DELIXI) is fixedly installed at the lower end of the outlet pipe 15. The water pump 19 (370W) is located inside the hollow pump cage 18 and is combined with the hollow pump cage 18 by four sets of fixing rods 17. The water pump 19 can be securely placed inside the hollow pump cage 18. The mesh gap of the hollow pump cage 18 is such that water flows smoothly but aquaculture organisms cannot pass through. When the aquaculture pond is drained, the water pump 19 can discharge the pond water through the outlet pipe 15 inside the hollow pump cage 18. The lower end of the inlet pipe 13 extends through the inlet hole 7 to the bottom of the control frame 1. The bottom end of the inlet pipe 13 is fitted with a fixing hoop 14, which can fix the lower end of the inlet pipe 13 to prevent the water flow from impacting the inlet pipe 13 and causing shaking when the pond is filled with water. When it is necessary to raise the water level, an external water supply device can be connected to the inlet pipe 13 to inject water into the aquaculture pond.
[0025] Please see Figures 3-5In this embodiment, the multi-segment water level monitoring component 3 includes a fixed pipe 301 and a water level pipe 302. The upper end of the fixed pipe 301 is fixedly connected to the water level monitoring hole 6. The water level pipe 302 has five segments. The fixed pipe 301 is connected to the first segment of the water level pipe 302 through an elbow 306. The five segments of the water level pipe 302 are connected sequentially through the elbows 306. Each elbow 306 has a water level groove 303 inside. Each water level pipe 302 has a strip-shaped hollow groove 304 on its outer side. A liquid level float 305 is provided inside the water level pipe 302. The level float 305 contains a level sensor (model SJ-0021), which in turn contains a wireless module (model DAQ-GP-TLL4G). The level sensor and control console 2 are wirelessly connected via the wireless module. The level float 305 can move without damping within the water level pipe 302 and the elbow 306. The elbow 306 has a water level groove 303 in its recessed part, and the water level groove 303 contains the contact point between the level float 305 and the elbow 306. A magnetic block 307 is provided on the outer side of 06; the strip-shaped hollow groove 304 is connected to the external water body, and the liquid level float 305 is always kept consistent with the water level of the aquaculture pond. When the water level in the pond reaches the segmented critical point, that is, when the liquid level float 305 is located in the water level groove 303, the float contacts the elbow 306, and the liquid level sensor senses the magnetic block 307 on the outer side of the elbow 306 and is activated, thereby transmitting the liquid level data to the control console 2 in segments; the control console 2 is provided with a display panel 10, which is electrically connected to the control console 2. One side of the control panel 10 is equipped with a control knob 9, and the other side is equipped with five sets of liquid level indicator lights 11. The liquid level indicator lights 11 are arranged linearly and correspond to the critical points of the five water level pipes 302. When the liquid level indicator lights 11 are lit, the display panel 10 indicates the water level in the aquaculture pond. When the aquaculture pond needs to be drained, the control knob 9 is turned to start the water pump 19 to drain the water. When the water level needs to be increased, the external water supply facility is connected to the inlet pipe 13 to inject water. At the same time, the liquid level indicator lights 11 on the control panel 2 and the display panel 10 indicate the water level in the aquaculture pond.
[0026] After the above steps, this application uses a multi-segment water level monitoring component 3 with five-segment water level tubes 302 to detect the water level in the aquaculture pond in segments. When the water level changes and reaches the critical identification point, the liquid level sensor is activated, and the segmented liquid level data is transmitted to the control console 2. The liquid level indicator light 11 illuminates and the display panel 10 provides a prompt, allowing the operator to easily identify the water level. The operator can then start the water pump 19 to drain the water or connect an external water supply device to add water and monitor the water level in the aquaculture pond after regulation, thus serving fishery production.
Claims
1. A multi-stage water level control device for aquaculture ponds, comprising a control frame (1); characterized in that: It also includes a control console (2), a multi-segment water level monitoring component (3) and a water level control component (4). The control frame (1) has a control frame (5) at the rear end of its surface. The control frame (5) has a control console (2) for adjusting the water level above it. The control frame (1) has a multi-segment water level monitoring component (3) below it. The multi-segment water level monitoring component (3) includes a fixed pipe (301), a multi-segment water level pipe (302) and an elbow (306). The control frame (1) has a monitoring hole (6) at the center of its surface. The monitoring hole (6) has water level control components (4) on both sides. The water level control components (4) are electrically connected to the control console (2). The water level control components (4) include an inlet pipe (13) and an outlet pipe (15).
2. The multi-stage water level control device for aquaculture ponds according to claim 1, characterized in that: The monitoring hole (6) has an inlet hole (7) and an outlet hole (8) on both sides, and the inlet hole (7) and outlet hole (8) are located at the two sides of the control frame (1).
3. The multi-stage water level control device for aquaculture ponds according to claim 1, characterized in that: The water outlet pipe (15) is located inside the water outlet hole (8), and the water inlet pipe (13) is located inside the water inlet hole (7). The outer rings of the water inlet pipe (13) and the water outlet pipe (15) are respectively fitted with a first-level fixing sleeve (12) and a second-level fixing sleeve (16). The first-level fixing sleeve (12) and the second-level fixing sleeve (16) are matched with the water inlet hole (7) and the water outlet hole (8).
4. A multi-stage water level control device for aquaculture ponds according to claim 2 or 3, characterized in that: Four sets of fixing rods (17) are arranged around the lower outer side of the water outlet (8). A hollow pump cage (18) is provided at the lower end of the water outlet pipe (15). The lower end of the fixing rod (17) is connected to the bottom of the hollow pump cage (18). A water pump (19) is fixedly installed at the lower end of the water outlet pipe (15). The water pump (19) is located inside the hollow pump cage (18).
5. The multi-stage water level control device for aquaculture ponds according to claim 1, characterized in that: The upper end of the fixed pipe (301) is fixedly connected to the water level monitoring hole (6). The water level pipe (302) is provided with five sections. The fixed pipe (301) is connected to the first section of the water level pipe (302) through an elbow (306). The five sections of the water level pipe (302) are connected in sequence through elbows (306). A water level groove (303) is opened inside the elbow (306). A strip-shaped hollow groove (304) is opened on the outside of the water level pipe (302). A liquid level float (305) is provided inside the water level pipe (302). A liquid level sensor is provided inside the liquid level float (305). A wireless module is provided inside the liquid level sensor. The liquid level sensor is wirelessly connected to the control console (2) through the wireless module. A magnetic block (307) is provided on the outside of the elbow (306).
6. The multi-stage water level control device for aquaculture ponds according to claim 1, characterized in that: The control panel (2) is equipped with a display panel (10), which is electrically connected to the control panel (2). The rear end of the display panel (10) is equipped with a control knob (9), and the front of the display panel (10) is equipped with five sets of liquid level indicator lights (11).
7. The multi-stage water level control device for aquaculture ponds according to claim 1, characterized in that: The lower end of the water inlet pipe (13) extends through the water inlet hole (7) to the bottom of the control frame (1), and a fixing hoop (14) is fitted at the bottom of the water inlet pipe (13).