Fry rearing pond
By setting up monitoring modules and blocking parts in the fry cultivation pond, real-time monitoring of water quality parameters is achieved, the problem of difficult to monitor dynamic changes in the fry growth environment is solved, and the survival rate of fry is improved.
Patent Information
- Application Number
- CN202422190732.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-06
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2034-09-06
AI Technical Summary
In the existing fry cultivation technology, the dynamic changes in the water quality parameters of the fry growth environment are difficult to monitor in real time and accurately, which affects the survival rate and healthy growth of fry.
A fish fry cultivation pool was designed, equipped with a monitoring module, including a temperature sensor, a pH sensor and a dissolved oxygen sensor, which monitors the water temperature, pH value and dissolved oxygen in real time, and sends data to the mobile terminal through a wireless gateway, combining a blocking device to prevent the loss of fry.
Real-time monitoring of the water environment of the fry is achieved, timely detection of water quality changes, improving the survival rate of the fry is achieved, and death caused by deterioration of water quality is avoided.
Smart Images

Figure CN223080852U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of aquaculture, and particularly relates to a fry cultivation pond. Background Art
[0002] In the field of aquaculture, the survival rate of fry is directly related to the breeding efficiency and ecological balance. Since the physiological functions of newly born fry are not yet fully developed, they are extremely sensitive to subtle changes in the water quality environment. Therefore, it is crucial to provide a stable and suitable growth environment for fry in the initial stage of cultivation. However, in the existing fry cultivation technologies, the centralized pond cultivation method is generally adopted, that is, a large number of fry are placed in the same water environment for unified management. Although this cultivation method is convenient for centralized management and resource utilization, it faces a series of challenges in actual operation.
[0003] Specifically, as the fry grow and the biological activities in the pond increase, the key parameters of the water environment, such as temperature, pH value, dissolved oxygen content, etc., will inevitably change dynamically. These parameters are crucial for the growth and development of fry. They not only affect the physiological functions of fry, but also directly relate to the survival rate and healthy growth of fry. Most traditional aquaculture models rely on the personal experience of aquaculture users and regular manual detection to evaluate the water quality conditions. This method is not only inefficient, but also unable to accurately and timely grasp the dynamic changes of water quality parameters. Content of the Utility Model
[0004] Aiming at the deficiencies of the prior art, the utility model provides a fry cultivation pond, which solves the problems raised in the above background art.
[0005] To achieve the above purposes, the utility model is realized through the following technical solutions: A fry cultivation pond includes a pond body, and further includes:
[0006] A monitoring module, the monitoring module is installed inside the pond body, and the detection end of the monitoring module extends towards the bottom of the pond body. The monitoring module can monitor the water environment where the fry are located in the pond body in real time.
[0007] Furthermore, the monitoring module includes a first frame body hung on the side of the pond body. The bottom of the first frame body is connected with a second frame body through an adjustment component, and a sensor cluster is installed at the bottom of the second frame body.
[0008] Furthermore, the adjustment component includes support plates symmetrically connected to both sides of the first frame body, adjustment holes opened inside the support plates, through holes opened on both sides of the top of the second frame body, and adjustment bolts inserted inside the adjustment holes and the through holes for fastening.
[0009] Further, a first handle is connected to the top end of the first frame body, and a plurality of mounting holes are provided at the bottom end of the second frame body.
[0010] Further, the sensor cluster includes a temperature sensor, a pH sensor, and a dissolved oxygen sensor. The temperature sensor, pH sensor, and dissolved oxygen sensor can respectively monitor the water temperature, pH value, and dissolved oxygen content in the water where the fry are located.
[0011] Further, a water inlet and a water outlet are respectively reserved at the bottom of the pool body.
[0012] Further, this fry cultivation pool further includes:
[0013] A blocking member, the blocking member is installed inside the pool body, and the blocking member corresponds to the position of the water outlet.
[0014] Further, the blocking member includes guide rails symmetrically connected to both sides of the water outlet and in an "L" shape. A frame body is slidably arranged inside the guide rails. A filter screen is connected inside the frame body, and a second handle is connected to the top end of the frame body.
[0015] The present utility model provides a fry cultivation pool. Compared with the prior art, it has the following beneficial effects:
[0016] This fry cultivation pool realizes the real-time monitoring of the water environment where the fry are located in the pool body by setting up a monitoring module. Specifically, it can real-time monitor key parameters such as the temperature, pH value, and dissolved oxygen content of the water environment, can timely detect water quality changes, avoid the death of fry caused by water quality deterioration, and thus significantly improve the survival rate of fry, which is superior to the existing method that relies on the personal experience of aquaculture users and regular manual detection to evaluate the water quality status. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 is a structural schematic diagram of the present utility model;
[0018] Figure 2 is a disassembled schematic diagram of the monitoring module in the present utility model;
[0019] Figure 3 is an assembly schematic diagram of the monitoring module in the present utility model;
[0020] Figure 4 is a structural schematic diagram of the pool body in the present utility model;
[0021] Figure 5 is a structural schematic diagram of the blocking member in the present utility model.
[0022] In the figure: 1. pool body; 11. water inlet; 12. water outlet; 2. monitoring module; 21. first frame; 22. second frame; 23. sensor cluster; 231. temperature sensor; 232. PH sensor; 233. dissolved oxygen sensor; 24. support plate; 25. adjustment hole; 26. through hole; 27. adjustment bolt; 28. first handle; 29. mounting hole; 3. blocking piece; 31. guide rail; 32. frame body; 33. filter; 34. second handle. DETAILED DESCRIPTION
[0023] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.
[0024] See also Figures 1-5 The utility model provides a technical solution: a fish fry cultivation pond, which is composed of a pond body 1, a monitoring module 2 and a blocking member 3, wherein a water inlet 11 and a water outlet 12 are respectively reserved at the bottom of the pond body 1, and the blocking member 3 is arranged at the position of the water outlet 12, and the blocking member 3 can prevent the fish fry from passing through while passing water, thereby preventing the fish fry from being lost;
[0025] In addition, the monitoring module 2 is composed of an adjustable bracket and a sensor cluster 23. Among them, the adjustable bracket is composed of a first frame body 21 and a second frame body 22. The first frame body 21 and the second frame body 22 are connected by an adjustment component. The adjustment component is composed of support plates 24 symmetrically connected to both sides of the first frame body 21, adjustment holes 25 opened inside the support plates 24, through holes 26 opened on both sides of the top of the second frame body 22, and adjustment bolts 27 inserted inside the adjustment holes 25 and the through holes 26 to play a fastening role. The sensor cluster 23 includes a temperature sensor 231, a PH sensor 232, and a dissolved oxygen sensor 233. The heights of the temperature sensor 231, the PH sensor 232, and the dissolved oxygen sensor 233 can be adjusted through the adjustment component until the detection ends of the temperature sensor 231, the PH sensor 232, and the dissolved oxygen sensor 233 are all submerged in water for monitoring. The first frame body 21 is hung on the side wall of the pool body 1. The top end of the first frame body 21 is connected with a first handle 28. A plurality of mounting holes 29 are provided at the bottom end of the second frame body 22. The temperature sensor 231, the PH sensor 232, and the dissolved oxygen sensor 233 are respectively installed in the mounting holes 29. The temperature sensor 231, the PH sensor 232, and the dissolved oxygen sensor 233 can respectively monitor the water temperature, PH value, and dissolved oxygen content in the water where the fry are located. And the real-time monitored data can be remotely sent to a mobile terminal (such as a laptop or a mobile phone) through a wireless gateway. An APP is built into the mobile terminal for users to view (transmitting the data to the mobile terminal wirelessly is a known public technology and will not be elaborated here);
[0026] Finally, the blocking member 3 includes guide rails 31 symmetrically connected to both sides of the water outlet 12 and in an "L" shape. A frame body 32 is slidably arranged inside the guide rails 31. A filter screen 33 is connected inside the frame body 32. And the top end of the frame body 32 is connected with a second handle 34. The setting of the filter screen 33 can block the fry from passing through, and the frame body 32 where the filter screen 33 is located can be detached from the guide rails 31 in a pulling manner, so as to facilitate the cleaning of the filter screen 33.
Claims
1. A fry cultivation pond, comprising a pond body (1), characterized in that, Further comprising: A monitoring module (2), which is installed inside the pond body (1), and the detection end of the monitoring module (2) extends towards the bottom end of the pond body (1), and the monitoring module (2) can monitor the water environment where the fry are located in the pond body (1) in real time; The monitoring module (2) includes a first frame body (21) hung on the side of the pond body (1), the bottom of the first frame body (21) is connected with a second frame body (22) through an adjusting component, and a sensor cluster (23) is installed at the bottom of the second frame body (22); The sensor cluster (23) includes a temperature sensor (231), a PH sensor (232) and a dissolved oxygen sensor (233), and the temperature sensor (231), the PH sensor (232) and the dissolved oxygen sensor (233) can respectively monitor the water temperature, the PH value and the dissolved oxygen content in the water where the fry are located.
2. The fry cultivation pond according to claim 1, wherein, The adjusting component includes support plates (24) symmetrically connected to both sides of the first frame body (21), adjusting holes (25) opened inside the support plates (24), through holes (26) opened on both sides of the top of the second frame body (22), and adjusting bolts (27) inserted inside the adjusting holes (25) and the through holes (26) to play a fastening role.
3. A fry cultivation pond according to claim 1, wherein, The top end of the first frame body (21) is connected with a first handle (28), and a plurality of mounting holes (29) are arranged at the bottom end of the second frame body (22).
4. A fry cultivation pond according to claim 1, characterized in that, An inlet (11) and an outlet (12) are respectively reserved at the bottom of the pond body (1).
5. A fry cultivation pond according to claim 1, characterized in that, Further comprising: A blocking member (3), which is installed inside the pond body (1), and the blocking member (3) corresponds to the position of the outlet (12).
6. The fry cultivation pond according to claim 5, characterized in that, The blocking member (3) includes guide rails (31) symmetrically connected to both sides of the outlet (12) and in an "L" shape, a frame body (32) is slidably arranged inside the guide rails (31), a filter screen (33) is connected inside the frame body (32), and a second handle (34) is connected to the top end of the frame body (32).