Water environment simulation device based on fish AI identification
By combining a fish AI recognition system with automated mechanical structures, fish activity and water quality are monitored in real time, and feeding and water quality parameters are automatically adjusted. This solves the problem of insufficient intelligence in traditional aquarium equipment, and improves breeding efficiency and fish health.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-30
- Publication Date
- 2026-03-10
AI Technical Summary
Traditional aquarium equipment is unable to meet the dynamic needs of fish growth. Existing automatic feeding systems lack real-time monitoring and feedback, have low water quality regulation efficiency and are difficult to control precisely, and lack sufficient intelligence.
By employing a fish AI recognition system combined with an automated mechanical structure, the system enables real-time monitoring of fish activity and water quality parameters within the tank. The system automatically adjusts feeding frequency, water quality parameters, and light intensity via a control panel, achieving precise regulation.
Optimize the fish growth environment, improve aquaculture efficiency and fish survival quality, achieve intelligent simulation and precise control, and avoid overfeeding or water quality problems.
Smart Images

Figure CN223979314U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to fish culture equipment technical field, concretely relates to a water environment simulation device based on fish AI identification. BACKGROUND
[0002] Traditional aquatic breeding device usually adopts fixed feeding, artificial water quality and illumination adjustment mode, and it is difficult to meet the dynamic demand of fish growth. The existing automatic feeding system is mostly based on timing feeding mechanism, and lacks real-time monitoring and feedback of fish activity state and water quality change, which can easily lead to overfeeding or insufficient feeding and affect fish health. In addition, water quality adjustment (such as adding medicine, oxygenation, etc.) also depends on manual operation, which is low in efficiency and difficult to control accurately.
[0003] With the development of artificial intelligence technology, fish AI recognition system can analyze fish behavior and water quality parameters in real time, but the existing device often fails to effectively combine these advanced technologies with automatic control system, resulting in insufficient intelligence. Therefore, a device based on fish AI recognition technology is needed to realize automatic cruising feeding, dynamic simulation of water environment and intelligent control, so as to optimize fish growth environment and improve breeding efficiency. CONTENT OF THE UTILITY MODEL
[0004] The utility model aims at providing a water environment simulation device based on fish AI identification, which can optimize fish growth environment, improve breeding efficiency, realize intelligent simulation and accurate control of fish breeding environment, and significantly improve breeding efficiency and fish survival quality.
[0005] The technical scheme adopted by the utility model is as follows:
[0006] A water environment simulation device based on fish AI identification, comprising a cylinder body, a control console, a lamp strip, a food leakage track, a food leakage box, a first motor and a lead screw driven connected with the first motor, the control console is arranged on the top of the cylinder body, the lamp strip and the food leakage track are arranged on the top of the cylinder body, and the two ends of the lamp strip and the food leakage track are connected to the control consoles on both sides, the food leakage box is arranged on the food leakage track, and the end of the lead screw passes through the food leakage box, when the first motor is started, the food leakage box is driven by the lead screw to reciprocate in the food leakage track.
[0007] In a preferred scheme, a control panel is arranged on the control console for controlling each component on the control console.
[0008] In a preferred scheme, a warehouse adding box is further arranged on the control console, a second motor is arranged on the top of the warehouse adding box, a shaft body is arranged in the warehouse adding box, the top of the shaft body is drivingly connected with the second motor, a quantitative piece is mounted on the bottom of the shaft body, and the second motor drives the quantitative piece to rotate.
[0009] In a preferred embodiment, a drain hole is provided on the control panel corresponding to the position of the metering tablet. When the metering tablet blocks the drain hole, the filling box is temporarily closed. When the metering tablet and the drain hole are intersected, the material in the filling box is discharged into the cylinder.
[0010] In a preferred embodiment, the central part of the food-leaking track is a hollow track groove, and vibration protrusions are arranged on opposite sides of the track groove. A section of the track groove is provided with a sealing strip.
[0011] In a preferred embodiment, the food-dispensing box includes a food compartment, a connecting block is provided at the lower part of the food compartment, the bottom of the connecting block extends downward to form a food-dispensing nozzle, and a "Y"-shaped food-dispensing path is formed inside the connecting block and the food-dispensing nozzle.
[0012] In a preferred embodiment, one end of the food-leaking nozzle is provided with an insertion port corresponding to the sealing strip. When the sealing strip is inserted into the insertion port, the food-leaking nozzle is closed, and food leakage stops.
[0013] The technical effects achieved by this utility model are as follows:
[0014] In this invention, AI recognition and automated mechanical structures work together. For example, the feeding box moves back and forth within the feeding track. When the fish are more active or their numbers increase, the system increases the feeding frequency and the range of movement; conversely, it reduces feeding and stores medicines or salts in the supplementary box to adjust water quality in a timely manner, optimize the fish growth environment, and improve aquaculture efficiency. This invention achieves intelligent simulation and precise control of the fish aquaculture environment, significantly improving aquaculture efficiency and fish survival quality. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0016] Figure 2 This is a schematic diagram of the control panel structure in this utility model;
[0017] Figure 3 This is a schematic diagram of the food-leaking track structure in this utility model;
[0018] Figure 4 This is a schematic diagram of the half-section structure of the feed-leakage track in this utility model;
[0019] Figure 5 This is a three-dimensional cross-sectional structural diagram of the food-dispensing box in this utility model;
[0020] Figure 6 This is a three-dimensional half-section structural diagram of the food-dispensing box in this utility model.
[0021] The attached diagram lists the components represented by each number as follows:
[0022] 1. Cylinder block;
[0023] 2. Control panel; 201. Control panel; 202. Metering tablet; 203. Second motor; 204. Shaft; 205. Filling box; 206. Leakage hole;
[0024] 3. LED strip lights;
[0025] 4. Feed leakage track; 401. Track groove; 402. Vibration convexity; 403. Sealing strip;
[0026] 5. Food-dispensing container; 501. Food compartment; 502. Connecting block; 503. Food-dispensing nozzle; 504. Food-dispensing path; 505. Socket;
[0027] 6. First motor; 7. Lead screw. Detailed Implementation
[0028] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.
[0029] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the spirit of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.
[0030] Secondly, the term "an embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in a preferred embodiment" appearing in different places in this specification does not necessarily refer to the same embodiment, nor is it a single or selective embodiment that excludes other embodiments.
[0031] Secondly, this utility model is described in detail with reference to the schematic diagrams. When describing the embodiments of this utility model, for ease of explanation, the cross-sectional views illustrating the device structure may be partially enlarged, not adhering to the usual scale. Furthermore, the schematic diagrams are merely examples and should not limit the scope of protection of this utility model. In addition, actual manufacturing should include the three-dimensional spatial dimensions of length, width, and depth.
[0032] Please see the appendix Figures 1 to 6As shown, this utility model provides an aquatic environment simulation device based on fish AI recognition, including a tank body 1, a control panel 2, a light strip 3, a food-discharging track 4, a food-discharging box 5, a first motor 6, and a lead screw 7 driven by the first motor 6. The control panel 2 is located on both sides of the top of the tank body 1. The light strip 3 and the food-discharging track 4 are arranged on the top of the tank body 1, and the two ends of the light strip 3 and the food-discharging track 4 are connected to the control panel 2 on both sides. The food-discharging box 5 is set on the food-discharging track 4. The end of the lead screw 7 passes through the food-discharging box 5. When the first motor 6 is started, the food-discharging box 5 is driven by the lead screw 7 to move back and forth in the food-discharging track 4.
[0033] Please see the appendix Figure 2 As shown, the control panel 2 is equipped with a control panel 201, which is used to control the various components on the control panel 2.
[0034] Specifically, the control panel 201 in this application mainly uses an integrated circuit chip to execute control commands, enabling functions such as automatic oxygenation, light activation, automatic circulating feeding, and increasing saline concentration on the control panel 2. In addition, the control panel 201 also has intelligent recognition capabilities. By connecting to a fish AI recognition system, it can monitor the activity status of fish and water quality in the tank 1 in real time. When the system detects abnormal fish activity or substandard water quality, the control panel 201 will automatically adjust relevant parameters through built-in sensors (such as temperature, water quality, or level sensors), such as increasing oxygen supply, adjusting light intensity, or changing feeding frequency, to simulate the most suitable aquatic environment for fish survival and ensure their healthy growth.
[0035] Please see the appendix Figure 2 As shown, the control panel 2 is also equipped with a filling box 205. A second motor 203 is installed on the top of the filling box 205. A shaft 204 is installed inside the filling box 205. The top of the shaft 204 is connected to the second motor 203 for transmission. A metering strip 202 is installed at the bottom of the shaft 204. The second motor 203 drives the metering strip 202 to rotate. A leakage hole 206 is opened on the control panel 2 at the position corresponding to the metering strip 202. When the metering strip 202 blocks the leakage hole 206, the filling box 205 is temporarily closed. When the metering strip 202 and the leakage hole 206 are intersected, the material in the filling box 205 is discharged into the cylinder 1.
[0036] Specifically, by filling the inside of the feeding box 205 with the medicine or salt required by the fish, when the sensor transmits water quality data to the integrated circuit chip, the control panel 201 receives and analyzes the water quality data in real time. The integrated circuit chip built into the control panel 201 controls the second motor 203 to drive the metering plate 202 to rotate, so that the metering plate 202 is misaligned with the leakage hole 206, and the material in the feeding box 205 is leaked into the cylinder 1. The control panel 201 selectively rotates the motor on the feeding box 205 according to the data, thereby realizing the function of automatic feeding, adjusting the dosage in the water environment, and simulating the water environment required by the fish.
[0037] Please see the appendix Figures 3-4 As shown, the middle part of the feed-leaking track 4 is a hollow track groove 401, and vibration protrusions 402 are arranged on opposite sides of the track groove 401. A sealing strip 403 is provided in one section of the track groove 401.
[0038] Please see the appendix Figure 5 As shown, the food-dispensing box 5 includes a food compartment 501. A connecting block 502 is provided at the lower part of the food compartment 501. The bottom of the connecting block 502 extends downward to form a food-dispensing nozzle 503. A "Y"-shaped food-dispensing path 504 is provided inside the connecting block 502 and the food-dispensing nozzle 503.
[0039] Specifically, the fish food in the feeding chamber 501 leaks out of the feeding chamber 501 through the feeding path 504. When the feeding box 5 is driven by the lead screw 7 to move back and forth in the feeding track 4, the feeding box 5 is intermittently vibrated by the vibration protrusion 402, which allows the fish food to leak out smoothly from the feeding path 504 and avoid blockage. At the same time, the design of the feeding track 4 ensures the stability of the feeding box 5 during movement, and the setting of the vibration protrusion 402 increases the uniformity and efficiency of feeding.
[0040] Please see the appendix Figure 6 As shown, one end of the food-leaking nozzle 503 is provided with a socket 505 corresponding to the sealing strip 403. When the sealing strip 403 is inserted into the socket 505, the food-leaking nozzle 503 is closed and food leakage stops.
[0041] In summary, the first motor 6 drives the connected lead screw 7 to rotate, while the feed-dispensing box 5 connected to the lead screw 7 is confined within the feed-dispensing track 4. When the lead screw 7 rotates, it simultaneously drives the feed-dispensing box 5 to reciprocate within the feed-dispensing track 4. One end of the feed chamber 501 is provided with an insertion port 505 corresponding to the sealing strip 403. When the feed chamber 501 reaches its end point, the sealing strip 403 is inserted into the insertion port 505, causing the feed-dispensing nozzle 503 to close, stopping the leakage of food, and preserving the fish food in the feed chamber 501, thus realizing the function of automatic feeding. In addition, the first motor 6 is controlled by the control panel 201, which can intelligently adjust the feeding frequency and amount. When the fish are highly active or their numbers increase, the system will automatically increase the feeding frequency and the amount of fish food to ensure the healthy growth of the fish; conversely, it will reduce feeding to avoid water pollution caused by overfeeding.
[0042] The working principle of this invention is as follows: This device monitors the activity status of fish and water quality parameters (such as temperature, dissolved oxygen, salinity, etc.) in the tank 1 in real time through a fish AI recognition system, and transmits the data to the integrated circuit chip of the control panel 201 for analysis and processing. Based on the analysis results, the control panel 201 automatically adjusts the following functions:
[0043] 1. The first motor 6 drives the lead screw 7 to rotate, causing the feed-dispensing box 5 to move back and forth within the feed-dispensing track 4. Fish food in the feed-dispensing box 5 is evenly dispensed through the "Y"-shaped feed-dispensing path 504. The vibrating convex 402 intermittently shakes the feed-dispensing box 5 during movement to prevent blockage. When the fish are more active or their numbers increase, the system increases the feeding frequency and movement range; conversely, it reduces feeding. When the feed-dispensing box 5 reaches the end point, the sealing strip 403 is inserted into the socket 505, automatically sealing the feed-dispensing nozzle 503 and stopping feeding.
[0044] 2. The filling box 205 stores drugs or salts. The second motor 203 drives the metering plate 202 to rotate according to the water quality data. When the metering plate 202 is misaligned with the leakage hole 206, the material falls into the cylinder 1, and the water quality parameters (such as salinity and drug concentration) are precisely adjusted.
[0045] 3. The light strip 3 adjusts the light intensity and cycle according to the fish's habits and AI recognition results to simulate the natural light environment.
[0046] In summary, this device, through the collaborative work of AI recognition and automated mechanical structures, achieves intelligent simulation and precise control of the fish farming environment, significantly improving farming efficiency and fish survival quality.
[0047] The above description is merely a preferred embodiment of this utility model. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principle of this utility model, and these improvements and modifications should also be considered within the scope of protection of this utility model. Structures, devices, and operating methods not specifically described or explained in this utility model, unless otherwise specified or limited, shall be implemented using conventional methods in the field.
Claims
1. An aquatic environment simulation device based on fish AI recognition, characterized by: The utility model relates to a kind of automatic feeding device, including Cylinder (1); Control console (2), the control console (2) is provided in the top of cylinder (1) both sides; Lamp strip (3) and food leakage track (4), the lamp strip (3), food leakage track (4) are arranged in the top of cylinder (1), and both ends of lamp strip (3), food leakage track (4) are connected to both sides control console (2); Food leakage box (5), the food leakage box (5) is arranged on food leakage track (4); First motor (6) and screw rod (7) drivenly connected with first motor (6), the end of screw rod (7) passes through food leakage box (5), when first motor (6) is started, food leakage box (5) is driven in food leakage track (4) and reciprocating walking by screw rod (7). 2.The water environment simulation device based on fish AI recognition of claim 1, wherein: Control panel (201) is provided on the control console (2), for controlling each component on control console (2). 3.The water environment simulation device based on fish AI recognition of claim 1, wherein: Addition box (205) is further provided on the control console (2), the top of addition box (205) is provided with second motor (203), the inside of addition box (205) is provided with shaft body (204), the top of shaft body (204) is drivingly connected with second motor (203), the bottom of shaft body (204) is provided with ration piece (202), and second motor (203) drives ration piece (202) to rotate. 4.The water environment simulation device based on fish AI recognition of claim 3, wherein: Corresponding to the position of ration piece (202) on the control console (2) is provided with leak hole (206), when ration piece (202) blocks leak hole (206), addition box (205) is temporarily closed, when ration piece (202) and leak hole (206) are staggered, material in addition box (205) is discharged into cylinder (1). 5.The water environment simulation device based on fish AI recognition of claim 1, wherein: The middle part of food leakage track (4) is hollow track groove (401), and vibration convex (402) is arranged on the opposite sides of track groove (401), and one of track groove (401) is provided with closed insertion strip (403). 6.The water environment simulation device based on fish AI recognition of claim 5, wherein: The food leakage box (5) includes food bin (501), the lower part of food bin (501) is provided with connecting block (502), the bottom of connecting block (502) protrudes downward and extends to form food leakage nozzle (503), and "Y” shaped food leakage path (504) is arranged in the inside of connecting block (502) and food leakage nozzle (503). 7.The water environment simulation device based on fish AI recognition of claim 6, wherein: One end of food leakage nozzle (503) is provided with insertion opening (505) corresponding to closed insertion strip (403), when the closed insertion strip (403) is inserted into the inside of insertion opening (505), food leakage nozzle (503) is closed, and food leakage is stopped.