Floating type water quality detection equipment for aquaculture

The floating water quality detection equipment realizes automatic and real-time monitoring of water quality, which solves the cumbersome problems of water quality detection in aquaculture, improves detection efficiency and accuracy, and extends the service life of the equipment.

CN223091943UActive Publication Date: 2025-07-11SHENZHEN AOHUA GRP CO LTD
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Patent Information

Application Number
CN202421390431.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-18
Publication Date
2025-07-11
Estimated Expiration
2034-06-18

AI Technical Summary

Technical Problem

The existing water quality testing relies on manual sampling and reagent measurement in aquaculture. The process is cumbersome, time-consuming and laborious, and real-time detection cannot be achieved, resulting in untimely water quality management, affecting the benefits and output of aquaculture.

Method used

A floating water quality detection equipment is designed, using floats, mounting frames, control boxes, water quality sensors and solar power supply systems to realize automated and real-time monitoring of water quality sensors, and prevent wire damage through wire protection structures and extend the service life of the equipment.

Benefits of technology

It realizes automated and real-time monitoring of water quality, improves detection efficiency and accuracy, reduces manual intervention, avoids wire damage, and extends the equipment maintenance cycle and service life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of aquaculture, in particular to floating type water quality detection equipment for aquaculture, which comprises a buoy, a mounting frame, a control box, a probe mounting bracket and a wire protection frame. During use, the buoy is arranged on the water surface, the buoy floats on the water surface at the moment, the water quality sensors extend into water to monitor multiple aspects of water quality, manual one-by-one detection is not needed, efficiency is improved, real-time synchronous detection is achieved, the detection precision is higher, the solar panel and the storage battery serve as independent power sources in the process, and the water quality monitoring system is convenient to use. And electrical safety accidents caused by electricity in use are eliminated. Besides, the electric wire is protected through the first rod and the second rod, the electric wire is prevented from being bitten by organisms such as fishes in the use process or being damaged by water flow pulling in stormy waves, and therefore use of the water quality sensor is guaranteed, and the maintenance period and the service life of the detection equipment are prolonged.
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Description

Technical Field

[0001] The utility model relates to the field of aquaculture, in particular to a floating water quality detection device for aquaculture. Background Technique

[0002] Water quality is the most important factor in aquaculture. It directly determines the success of aquaculture, directly affects the yield and specifications of aquatic products. Currently, water quality control depends entirely on personal experience, and there is a lack of control means and technologies for key aquaculture technical indicators such as water quality management, resulting in large fluctuations in the yield and benefits of aquaculture and greater risks. Currently, the determination of aquaculture water quality mainly relies on water quality detectors and water quality test kits. For both of these detection methods, manual sampling and reagent addition are required for determination, which is not only a cumbersome process, time-consuming and laborious, but also cannot achieve real-time detection of water quality changes. Summary of the Invention

[0003] In view of the deficiencies in the above-mentioned background technique, the utility model provides a floating water quality detection device for aquaculture.

[0004] The utility model adopts the following technical scheme:

[0005] A floating water quality detection device for aquaculture, characterized in that the device includes:

[0006] A floating buoy, the floating buoy is of an annular structure, and a notch is formed in the central part of the floating buoy;

[0007] A mounting rack, the mounting rack is arranged on the upper surface of the floating buoy, and a rain shield is arranged on the upper surface of the mounting rack, and a solar panel is arranged on the rain shield;

[0008] A control box, a controller and a battery pack are arranged in the control box, the control box is mounted on the mounting rack, and the control box is located below the rain shield. The solar panel is electrically connected to the battery pack, and the battery pack is electrically connected to the controller;

[0009] A probe mounting bracket, the probe mounting bracket includes a mounting plate and a connecting column arranged on the upper surface of the mounting plate. The connecting column is connected to the inner wall of the notch, the mounting plate extends out from the lower end of the notch, and the mounting plate is used for mounting a plurality of water quality sensors. The water quality sensors are electrically connected to the controller through wires;

[0010] A wire protection frame, the wire protection frame includes a first rod and a second rod. The first rod is connected to the connecting column through a connecting rod. A first wire groove is formed in the surface of the first rod in an inwardly concave manner. The second rod is arranged to rotate in the first wire groove. A second wire groove is formed in the surface of the second rod in an inwardly concave manner, and the top of the second rod extends out from the top of the first rod;

[0011] Among them, the float floats on the water surface. After the water quality sensor is installed on the mounting plate, the water quality sensor extends into the water, the wire of the water quality sensor is embedded in the second wire groove, and after the second rod rotates, the first rod and the second rod surround the wire.

[0012] As a further improvement, a fixed hook is provided on the side of the mounting bracket. The fixed hook is used to bind a towing rope, and the towing rope is used to pull the float.

[0013] As a further improvement, a number of mounting openings are provided on the outer side of the mounting plate. A detachable pipe clamp is provided at the mounting opening. When the water quality sensor is placed in the mounting opening, the pipe clamp is used to press and fix the water quality sensor in the mounting opening.

[0014] As a further improvement, a number of limiting grooves are provided on the inner wall of the first wire groove, and a number of protruding limiting parts are provided on the second rod. When the second rod rotates in the first wire groove, the limiting parts rotate in the limiting grooves.

[0015] As a further improvement, a filter cartridge is covered outside the probe mounting bracket. A number of filter holes are provided on the surface of the filter cartridge, and the filter cartridge is used to protect the water quality sensor.

[0016] As a further improvement, a connecting ring is provided at the top of the filter cartridge, and the connecting ring is threadedly connected to the notch.

[0017] From the above description of the structure of the present invention, compared with the prior art, the present invention has the following advantages: When in use, the float is placed on the water surface. At this time, the float floats on the water surface, and multiple water quality sensors extend into the water to monitor multiple aspects of the water quality. There is no need for manual detection one by one, which not only improves the efficiency, but also realizes real-time synchronous detection, and the detection accuracy is higher. During the process, the solar panel and the storage battery are used as independent power sources, eliminating the potential electrical safety accidents caused by electricity during use. In addition, the wire is protected by the first rod and the second rod, avoiding the wire being bitten by fish and other organisms or being pulled by the water flow in the wind and waves during use, thus ensuring the use of the water quality sensor and extending the maintenance period and service life of the detection equipment. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 It is a three-dimensional structural diagram of the present invention.

[0019] Figure 2 It is a three-dimensional structural diagram of another perspective of the present invention.

[0020] Figure 3Schematic three-dimensional structure diagram of the probe mounting bracket and the wire protection bracket.

[0021] Figure 4 Schematic three-dimensional structure diagram of the probe mounting bracket and the water quality sensor.

[0022] Figure 5 Exploded structure diagram of the wire protection bracket.

[0023] Figure 6 Top view structure diagram of the wire protection bracket and the wire.

[0024] Figure 7 Schematic three-dimensional structure diagram of the wire protection bracket and the wire.

[0025] Figure 8 Schematic three-dimensional structure diagram of the first rod and the second rod surrounding the wire.

[0026] Figure 9 Schematic three-dimensional structure diagram of the water quality sensor, the probe mounting bracket and the wire protection bracket.

[0027] Figure 10 Schematic three-dimensional structure diagram of the filter cartridge.

[0028] Figure 11 Schematic three-dimensional structure diagram of the filter cartridge, the float and the water quality sensor. Detailed implementation manners

[0029] The following describes the detailed implementation manners of the present utility model with reference to the accompanying drawings.

[0030] As shown in the attached Figure 1 and Figure 2 figures, a floating water quality detection device for aquaculture includes a float 1, a mounting frame 2, a control box 3, a probe mounting bracket 7 and a wire protection bracket 8.

[0031] As shown in the attached Figure 1 figures, the upper surface of the float 1 is provided with a mounting frame 2, on which a control box 3 is mounted, and a rain shield 4 is provided on the upper surface of the mounting frame 2, and the control box 3 is located below the rain shield 4. The rain shield 4 can play a role in protecting against wind and rain, reducing the risk of aging and damage of the control box 3 during use, thereby extending the maintenance cycle and service life of the control box 3. The control box 3 is provided with a controller and a battery pack. The solar panel 5 provided on the upper surface of the rain shield 4 is electrically connected to the battery pack, and the battery pack is electrically connected to the controller. During use, the battery pack stores the electric energy converted by the solar panel 5 for use by the controller and the water quality sensor 6.

[0032] As shown in the attached Figures 2 to 4As shown in the figure, the float 1 is of a ring structure. A notch 11 is formed at the central part of the float 1. A probe mounting bracket 7 is provided in the notch 11. The probe mounting bracket 7 includes a mounting plate 71 and a connecting column 74 provided on the upper surface of the mounting plate 71. The connecting column 74 is connected to the inner wall of the notch 11 through a support rod (not shown in the figure). The mounting plate 71 extends out from the lower end of the notch 11, and the mounting plate 71 is used to mount a plurality of water quality sensors 6. Specifically, a number of mounting openings 72 are provided on the outer side of the mounting plate 71. A detachable pipe clamp 73 is provided at the mounting opening 72. The pipe clamp 73 is fixed to the mounting plate 71 by screws. When the water quality sensor 6 is placed into the mounting opening 72, the pipe clamp 73 is used to press and fix the water quality sensor 6 in the mounting opening 72, thereby mounting the water quality sensor 6 onto the mounting plate 71. The water quality sensor 6 is electrically connected to the controller through an electric wire 61. During use, the float 1 is placed on the water surface. At this time, the float 1 floats on the water surface, and the water quality sensor 6 extends into the water to monitor the water quality. The detection data of the water quality sensor 6 can be stored in the controller, and the controller can remotely transmit the data to devices such as technicians' mobile phones and computers through wireless technologies such as Bluetooth or WiFi, facilitating technicians to view the detection data at any time. Among them, the plurality of water quality sensors 6 include sensors for water quality detection such as a water temperature sensor, a dissolved oxygen sensor, and a pH value sensor. Further, as shown in the appendix Figure 1 As shown in the figure, a fixed hook 21 is provided on the side of the mounting frame 2. The fixed hook 21 is used to bind the towing rope. When maintenance of the detection device is required, the float 1 is pulled by the towing rope, thereby pulling the detection device back to the shore for operation.

[0033] As shown in the appendix Figure 3 and Figures 5 to 9 As shown in the figure, a wire protection frame 8 is provided on the probe mounting bracket 7 to protect the electric wire 61 of the water quality sensor 6. Specifically, the wire protection frame 8 includes a first rod 81 and a second rod 82. The first rod 81 is connected to the connecting column 74 through a connecting rod 75. A first wire groove 811 recessed inward is provided on the surface of the first rod 81. The second rod 82 is disposed to rotate in the first wire groove 811. By using the limiting effect of the notch of the first wire groove 811 on the surface of the second rod 82, the second rod 82 is prevented from being directly pulled out horizontally from the first wire groove 811 during use. A second wire groove 821 recessed inward is provided on the surface of the second rod 82, and the top of the second rod 82 extends out from the top of the first rod 81. After the water quality sensor 6 is mounted on the mounting plate 71, the electric wire 61 of the water quality sensor 6 is embedded into the second wire groove 821 of the second rod 82, and then the top of the second rod 82 is rotated so that the first rod 81 and the second rod 82 surround the electric wire 61, protecting the electric wire 61 by the first rod 81 and the second rod 82, avoiding the electric wire 61 from being bitten by organisms such as fish or being pulled by the water flow in the wind and waves during use, thus ensuring the use of the water quality sensor 6 and extending the maintenance period and service life of the water quality sensor 6.

[0034] It is worth mentioning that, as shown in the appended Figure 5 and Figure 6 , a number of limiting grooves 812 are provided on the inner wall of the first wire groove 811, and a number of protruding limiting parts 822 are provided on the second rod 82. When the second rod 82 rotates within the first wire groove 811, the limiting parts 822 rotate within the limiting grooves 812. By utilizing the restricting effect of the inner wall of the limiting groove 812 on the side wall of the limiting part 822, it is possible to prevent the second rod 82 from sliding upward under force during use and disengaging from the first wire groove 811. And when the first rod 81 and the second rod 82 enclose the electric wire 61, the first rod 81 and the second rod 82 can be tied tightly with a strip-shaped object such as a rope or a cable tie to prevent the second rod 82 from rotating and exposing the electric wire 61 during use, thereby better protecting the electric wire 61.

[0035] In addition, as shown in the appended Figure 10 and Figure 11 , a filter cartridge 9 is covered outside the probe mounting bracket 7. Specifically, a connecting ring 91 is provided at the top of the filter cartridge 9, and this connecting ring 91 is threadedly connected to the notch 11. During use, the connecting ring 91 is screwed into the notch 11. At this time, the filter cartridge 9 covers the outside of the probe mounting bracket 7, which is used to protect the water quality sensor 6, reduce the obstruction of sundries and organisms such as branches, waterweeds, and fish to the water quality sensor 6, avoid affecting the use of the water quality sensor 6, and can also extend the service life of the water quality sensor 6. The several filter holes provided on the surface of the filter cartridge 9 are for ensuring the fluidity of the water flow around the water quality sensor 6 to ensure the accuracy of the detection result.

[0036] In summary, when the present utility model is in use, the floating buoy 1 is placed on the water surface. At this time, the floating buoy 1 floats on the water surface, and multiple water quality sensors 6 extend into the water to monitor multiple aspects of the water quality. There is no need for manual detection one by one, which not only improves the efficiency but also realizes real-time synchronous detection with higher detection accuracy. During the process, the solar panel 5 and the storage battery are used as independent power sources, eliminating the electrical safety accidents caused by electricity during use. In addition, the electric wire 61 is protected by the first rod 81 and the second rod 82 to prevent the electric wire 61 from being bitten by organisms such as fish or being pulled by the water flow in the wind and waves during use, thereby ensuring the use of the water quality sensor 6 and extending the maintenance period and service life of the detection equipment.

[0037] The above is only the specific embodiment of the present utility model, but the design concept of the present utility model is not limited thereto. Any non-substantive modification made to the present utility model using this concept shall fall within the scope of infringement of the protection of the present utility model.

Claims

1. A floating water quality detection device for aquaculture, characterized in that, The device includes: A float, the float is of an annular structure, and a notch is formed in the central part of the float; A mounting frame, the mounting frame is arranged on the upper surface of the float, and a rain shield is arranged on the upper surface of the mounting frame, and a solar panel is arranged on the rain shield; A control box, a controller and a battery pack are arranged in the control box, the control box is mounted on the mounting frame, and the control box is located below the rain shield, the solar panel is electrically connected to the battery pack, and the battery pack is electrically connected to the controller; A probe mounting bracket, the probe mounting bracket includes a mounting plate and a connecting column arranged on the upper surface of the mounting plate, the connecting column is connected to the inner wall of the notch, the mounting plate extends out from the lower end of the notch, and the mounting plate is used for mounting a plurality of water quality sensors, and the water quality sensors are electrically connected to the controller through wires; A wire protection frame, the wire protection frame includes a first rod and a second rod, the first rod is connected to the connecting column through a connecting rod, a first wire groove recessed inward is arranged on the surface of the first rod, the second rod is arranged to rotate in the first wire groove, a second wire groove recessed inward is arranged on the surface of the second rod, and the top of the second rod extends out from the top of the first rod; Wherein, the float floats on the water surface. After the water quality sensors are installed on the mounting plate, the water quality sensors extend into the water, the wires of the water quality sensors are embedded in the second wire groove, and after the second rod rotates, the first rod and the second rod surround the wires.

2. The floating water quality detection device for aquaculture according to claim 1, characterized in that: A fixed hook is arranged on the side of the mounting frame, the fixed hook is used for binding a towing rope, and the towing rope is used for pulling the float.

3. A floating water quality detection device for aquaculture according to claim 1, characterized in that: A plurality of mounting openings are arranged on the outer side of the mounting plate, and detachable pipe clamps are arranged at the mounting openings. When the water quality sensors are placed in the mounting openings, the pipe clamps are used for pressing and fixing the water quality sensors in the mounting openings.

4. The floating water quality detection device for aquaculture according to claim 1, characterized in that: A plurality of limiting grooves are arranged on the inner wall of the first wire groove, and a plurality of protruding limiting parts are arranged on the second rod. When the second rod rotates in the first wire groove, the limiting parts rotate in the limiting grooves.

5. The floating water quality detection device for aquaculture according to claim 1, characterized in that: A filter cylinder covers the outside of the probe mounting bracket, and a plurality of filter holes are arranged on the surface of the filter cylinder, and the filter cylinder is used for protecting the water quality sensors.

6. The floating water quality detection device for aquaculture according to claim 5, characterized in that: A connecting ring is arranged at the top of the filter cylinder, and the connecting ring is threadedly connected into the notch.