Automatic feeding structure of cloud interaction feeding machine
By integrating sensors and cloud interaction modules into the automatic feeding structure of the cloud-interactive feeder, the problems of single function and lack of remote monitoring of the feeder are solved, and precise feeding and remote management based on environmental and biological needs are realized.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 安徽芯远科技有限公司
- Filing Date
- 2025-06-09
- Publication Date
- 2026-05-08
AI Technical Summary
Existing feeders have limited functionality and cannot be flexibly adjusted according to the breeding environment or pet needs. They also lack remote monitoring and interactive functions, making it impossible for users to understand the feeding situation and equipment status in real time.
The automatic feeding structure of the cloud-interactive feeder integrates light sensors, water temperature sensors, dissolved oxygen sensors, and biological activity sensors. It connects to the cloud interaction module through the controller to realize remote monitoring and automatic adjustment of feeding amount and time. It supports multiple communication protocols, and users can view and adjust feeding parameters through terminal devices.
It enables precise feeding based on environmental parameters and biological needs, improving feeding efficiency and accuracy. Users can remotely monitor and manage the status of the feeder to meet the feeding needs of the organisms.
Smart Images

Figure CN224205965U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of aquaculture technology, and in particular to an automatic feeding structure for a cloud-interactive feeder. Background Technology
[0002] In aquaculture, feeders are widely used for automatic feeding. A feeder is a mechanical device that dispenses feed to aquatic organisms at set times and in measured quantities. There are two main types: spray feeders and pellet feed dispensers. The former consists of a pump, hopper, conveying pipes, and a sprayer, spraying liquid feed. The latter is a mechanical feeder consisting of a hopper, feeding and dispensing mechanisms, and a timer. There are also fish-driven feeders, which utilize the water ripples created by fish swimming or competing for food to trigger the feed plate and automatically dispense feed.
[0003] Most existing feeders have limited functions and cannot be flexibly adjusted according to the breeding environment or the needs of pets. At the same time, the lack of remote monitoring and interactive functions makes it impossible for users to understand the feeding situation and equipment status in real time. Therefore, a cloud-interactive feeder automatic feeding structure is needed to improve the above-mentioned problems. Utility Model Content
[0004] To address the limitations of existing feeders, which are mostly single-function and unable to be flexibly adjusted according to the breeding environment or pet needs, and lack remote monitoring and interactive functions that prevent users from understanding the feeding situation and equipment status in real time, this utility model proposes a cloud-interactive feeder automatic feeding structure.
[0005] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is: an automatic feeding structure for a cloud interactive feeder, including a main body, a control component is provided on the top of the main body, and an automatic feeding component is fixedly connected to the top of the control component;
[0006] The main body includes a ground surface, and the interior of the ground surface contains a pool. Inside the pool are installed light sensors, water temperature sensors, dissolved oxygen sensors, and biological activity sensors. The biological activity sensors are infrared sensors.
[0007] The control component includes a base plate, a top frame fixedly connected to the top of the base plate, a control box inside the top frame, a mounting plate fixedly connected inside the control box, and a power supply, a controller, a cloud interaction module, and a filtering unit fixedly connected to the side of the mounting plate.
[0008] In a preferred embodiment of this invention, the power supply, controller, cloud interaction module, and filter unit are all electrically connected.
[0009] As a preferred embodiment of this utility model, the control box is equipped with a cooling fan, and there are two cooling fans.
[0010] As a preferred embodiment of this utility model, the control box is provided with a cabinet door on its side, and a handle is fixedly connected to the side of the cabinet door.
[0011] As a preferred embodiment of this utility model, the automatic feeding component includes a storage bin, and a connecting pipe is fixedly connected to the bottom of the storage bin.
[0012] As a preferred embodiment of this utility model, a conveying valve chamber is fixedly connected to the bottom of the connecting pipe, a variable frequency motor is installed on the side of the conveying valve chamber, and a support rod is fixedly connected to the bottom of the storage hopper.
[0013] As a preferred embodiment of this utility model, a valve plate is fixedly connected to the output end of the variable frequency motor, and a conveying pipe is fixedly connected to the bottom of the conveying valve chamber.
[0014] As a preferred embodiment of this utility model, four support rods are provided, and each of the four support rods is equipped with a pad at its bottom.
[0015] Compared with the prior art, the beneficial effects of this utility model include:
[0016] 1. This utility model utilizes a light sensor, a water temperature sensor, a dissolved oxygen sensor, and a biological activity sensor to monitor the aquaculture environment and biological activity in real time. The cloud interaction module connects to the controller and communicates with the cloud platform via a wireless network to achieve remote monitoring, data transmission, and command reception. It can automatically adjust the feeding amount and feeding time according to environmental parameters and biological needs, improving feeding efficiency and accuracy. The biological activity sensor uses an infrared sensor to detect the frequency and location of biological activity to determine the feeding needs of the organisms.
[0017] 2. This utility model utilizes the electrical connection between the controller and light sensors, water temperature sensors, dissolved oxygen sensors, biological activity sensors, and the variable frequency motor for automatic feeding. This allows the controller to receive sensor data and control the operation of the automatic feeding device. Based on the data collected by the sensor modules and a preset feeding strategy, the controller automatically calculates the feeding amount and feeding time, and controls the operation of the automatic feeding device. The cloud interaction module supports multiple communication protocols, including Wi-Fi, 4G, and 5G, ensuring stable data transmission and remote control. The cloud platform provides a user interface, allowing users to log in via mobile phones, computers, and other terminal devices to view the operating status of the feeder, environmental data, and feeding records, and to remotely adjust feeding parameters. Attached Figure Description
[0018] The disclosure of this utility model is illustrated with reference to the accompanying drawings. It should be understood that the drawings are for illustrative purposes only and are not intended to limit the scope of protection of this utility model. In the drawings, the same reference numerals are used to refer to the same parts. Wherein:
[0019] Figure 1 The schematic diagram shows an overall structural schematic diagram according to one embodiment of the present invention;
[0020] Figure 2 The schematic diagram shows a structural diagram of a sensor module assembly according to one embodiment of the present invention;
[0021] Figure 3 The schematic diagram shows a control component structure according to one embodiment of the present invention;
[0022] Figure 4 The diagram illustrates the structure of an automatic material control assembly according to one embodiment of the present invention.
[0023] Numbered in the diagram: 1. Main body; 101. Ground; 102. Pool body; 103. Light sensor; 104. Water temperature sensor; 105. Dissolved oxygen sensor; 106. Biological activity sensor; 2. Control components; 201. Base plate; 202. Top frame; 203. Control box; 204. Cabinet door; 205. Handle; 206. Cooling fan; 207. Mounting plate; 208. Power supply; 209. Controller; 210. Cloud interaction module; 211. Filtering unit; 3. Automatic feeding components; 301. Storage bin; 302. Support rod; 303. Connecting pipe; 304. Feeding valve bin; 305. Variable frequency motor; 306. Valve plate; 307. Feeding pipe. Detailed Implementation
[0024] It is readily understood that, based on the technical solution of this utility model, those skilled in the art can propose various interchangeable structural methods and implementations without altering the essential spirit of this utility model. Therefore, the following detailed embodiments and accompanying drawings are merely illustrative descriptions of the technical solution of this utility model and should not be considered as the entirety of this utility model or as limitations or restrictions on the technical solution of this utility model.
[0025] For examples, please refer to Figures 1-4 This utility model provides a technical solution:
[0026] The cloud-interactive feeder automatic feeding structure includes a main body 1; a control component 2 is set on the top of the main body 1, and an automatic feeding component 3 is fixedly connected to the top of the control component 2.
[0027] According to one embodiment of the present invention, in conjunction with Figure 1 , Figure 2 and Figure 3As shown, the main body 1 includes a ground 101, inside which is a pool 102. Inside the pool 102 are installed a light sensor 103, a water temperature sensor 104, a dissolved oxygen sensor 105, and a biological activity sensor 106. The biological activity sensor 106 is an infrared sensor. The control assembly 2 includes a base plate 201, with a top frame 202 fixedly connected to the top of the base plate 201. Inside the top frame 202 is a control box 203, and inside the control box 203 is a mounting plate 207 fixedly connected. A power supply 208, a controller 209, and a cloud interaction module are fixedly connected to the side of the mounting plate 207. Block 210 and filter unit 211, using light sensor 103, water temperature sensor 104, dissolved oxygen sensor 105 and biological activity sensor 106, can be used to monitor the breeding environment and biological activity in real time. Cloud interaction module 210 is connected to controller 209 and communicates with cloud platform through wireless network to realize remote monitoring, data transmission and command reception. It can automatically adjust the feeding amount and feeding time according to environmental parameters and biological needs to improve feeding efficiency and accuracy. Biological activity sensor 106 adopts infrared sensor to detect the activity frequency and location of organisms to determine the feeding needs of organisms.
[0028] The power supply 208, controller 209, cloud interaction module 210, and filter unit 211 are all electrically connected. The control box 203 has two cooling fans 206 inside. A cabinet door 204 is located on the side of the control box 203, and a handle 205 is fixedly connected to the side of the cabinet door 204. The controller 209 is electrically connected to a light sensor 103, a water temperature sensor 104, a dissolved oxygen sensor 105, a biological activity sensor 106, and an automatic feeding variable frequency motor 305. This allows the controller to receive sensor data and control the operation of the automatic feeding device. The controller 209 automatically calculates the feeding amount and feeding time based on data collected by the light sensor 103, water temperature sensor 104, dissolved oxygen sensor 105, and biological activity sensor 106, combined with a preset feeding strategy, and controls the operation of the automatic feeding device. The cloud interaction module 210 supports multiple communication protocols, including Wi-Fi, 4G, and 5G, to ensure stable data transmission and remote control. The cloud platform provides a user interface, allowing users to log in to the cloud platform via mobile phones, computers, and other terminal devices to view the operating status of the feeder, environmental data, and feeding records, and to remotely adjust the feeding parameters.
[0029] According to one embodiment of the present invention, in conjunction with Figure 1 and Figure 4As shown, the automatic feeding assembly 3 includes a storage bin 301, a connecting pipe 303 fixedly connected to the bottom of the storage bin 301, a feeding valve bin 304 fixedly connected to the bottom of the connecting pipe 303, a variable frequency motor 305 mounted on the side of the feeding valve bin 304, a support rod 302 fixedly connected to the bottom of the storage bin 301, a valve plate 306 fixedly connected to the output end of the variable frequency motor 305, a feeding pipe 307 fixedly connected to the bottom of the feeding valve bin 304, and four support rods 302, each with a pad at its bottom. When the sensor detects changes in environmental parameters such as water temperature and dissolved oxygen, or an increase in the frequency of biological activity, the controller 209 controls the variable frequency motor 305 to start and adjust the tilt angle of the valve plate 306 to automatically adjust the feeding amount to meet the feeding needs of the organisms.
[0030] In this embodiment, the feeder is installed in a suitable location in the aquaculture area, connected to the network, and the sensors are calibrated and the parameters are set. The light sensor 103, water temperature sensor 104, dissolved oxygen sensor 105 and biological activity sensor 106 are used to collect water temperature, dissolved oxygen, light and biological activity data in real time and transmit them to the controller 209. The controller 209 then uses the preset feeding strategy and sensor data. The controller 209 calculates the current feeding amount and feeding time, controls the variable frequency motor 305 to start and adjusts the tilt angle of the valve plate 306 to automatically adjust the feeding amount and transport the feed from the storage bin 301 to the conveying pipe 307 for feeding. The cloud interaction module 210 uploads the operating status and environmental data of the feeder to the cloud platform. Users can view and remotely adjust the feeding parameters through terminal devices. When the light sensor 103, water temperature sensor 104, dissolved oxygen sensor 105 and biological activity sensor 106 detect changes in environmental parameters such as water temperature and dissolved oxygen, or an increase in biological activity frequency, the controller 209 automatically adjusts the feeding amount and feeding time to meet the survival needs of the organisms.
[0031] The technical scope of this utility model is not limited to the content described above. Those skilled in the art can make various modifications and variations to the above embodiments without departing from the technical concept of this utility model, and all such modifications and variations should fall within the protection scope of this utility model.
Claims
1. An automatic feeding structure for a cloud-interactive feeder, characterized in that: It includes a main body (1), a control component (2) is provided on the top of the main body (1), and an automatic feeding component (3) is fixedly connected to the top of the control component (2); The main body (1) includes a ground (101), and the interior of the ground (101) is a pool (102). Inside the pool (102) are installed a light sensor (103), a water temperature sensor (104), a dissolved oxygen sensor (105), and a biological activity sensor (106). The biological activity sensor (106) is an infrared sensor. The control component (2) includes a base plate (201), a top frame (202) is fixedly connected to the top of the base plate (201), a control box (203) is provided inside the top frame (202), an installation plate (207) is fixedly connected inside the control box (203), and a power supply (208), a controller (209), a cloud interaction module (210) and a filter unit (211) are fixedly connected to the side of the installation plate (207).
2. The automatic feeding structure of the cloud-interactive feeding machine according to claim 1, characterized in that, The power supply (208), controller (209), cloud interaction module (210) and filter unit (211) are all electrically connected.
3. The automatic feeding structure of the cloud-interactive feeding machine according to claim 1, characterized in that, The control box (203) is equipped with a cooling fan (206), and there are two cooling fans (206).
4. The automatic feeding structure of the cloud-interactive feeding machine according to claim 1, characterized in that, The control box (203) has a cabinet door (204) on its side, and a handle (205) is fixedly connected to the side of the cabinet door (204).
5. The automatic feeding structure of the cloud-interactive feeding machine according to claim 1, characterized in that, The automatic feeding component (3) includes a storage bin (301), and a connecting pipe (303) is fixedly connected to the bottom of the storage bin (301).
6. The automatic feeding structure of the cloud-interactive feeder according to claim 5, characterized in that, The bottom of the connecting pipe (303) is fixedly connected to a conveying valve chamber (304), a variable frequency motor (305) is installed on the side of the conveying valve chamber (304), and a support rod (302) is fixedly connected to the bottom of the storage chamber (301).
7. The automatic feeding structure of the cloud-interactive feeder according to claim 6, characterized in that, The output end of the variable frequency motor (305) is fixedly connected to a valve plate (306), and the bottom of the material conveying valve chamber (304) is fixedly connected to a material conveying pipe (307).
8. The automatic feeding structure of the cloud-interactive feeder according to claim 6, characterized in that, Four support rods (302) are provided, and each of the four support rods (302) is equipped with a pad at its bottom.