Energy-saving water circulation cooling system for rabbit farm

Through the solar-powered energy-saving water circulation and cooling system, the rabbit field wall is circulated and cooled by breathable waterproof pipes, which solves the problems of low cooling efficiency and waste of water resources in traditional rabbit field, and achieves rapid cooling and energy-saving and environmentally friendly effects, improving the breeding rate and breeding benefits of rabbits.

CN223247244UActive Publication Date: 2025-08-22SICHUAN AGRI UNIV +1
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Patent Information

Application Number
CN202422544159.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-21
Publication Date
2025-08-22
Estimated Expiration
2034-10-21

AI Technical Summary

Technical Problem

Traditional rabbit field cooling methods are inefficient, unable to cool down quickly, and are seriously wasted water resources, which affects the growth rate and health of rabbits.

Method used

The energy-saving water circulation and cooling system consisting of solar energy components, temperature detection units, transformers and breathable waterproof pipes is adopted. The solar energy-driven refrigerator is used to circulate and cool the rabbit field wall through breathable waterproof pipes. Combined with the real-time monitoring and automatic adjustment of the temperature detection unit, it realizes rapid cooling and closed-loop utilization of water resources.

Benefits of technology

It has achieved rapid cooling within the rabbit farm, reduced waste of water resources, provided a suitable growth environment, improved the breeding rate and breeding benefits of rabbits, and is in line with the development concept of green and environmental protection.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an energy-saving water circulation cooling system for a rabbit farm, and belongs to the technical field of cooling. The system comprises a solar module, a master control switch, a temperature detection unit, a transformer, a refrigerator and a breathable waterproof pipeline. The solar assembly is arranged outside the rabbit farm and connected with the master control switch, the master control switch is connected with the temperature detection unit and the transformer, the transformer is connected with the refrigerating machine, the refrigerating machine is connected with the two ends of the breathable waterproof pipeline, and the breathable waterproof pipeline is connected with the temperature detection unit. The ventilation waterproof pipeline is embedded in a wall of the rabbit farm, the temperature detection unit is arranged in the rabbit farm and used for detecting the temperature in the rabbit farm, and the refrigerator is used for conveying refrigeration water into the ventilation waterproof pipeline and used for conducting circulating cooling treatment on the wall of the rabbit farm. The functions of rapid cooling and water circulation are achieved through the waterproof breathable pipeline, and the problems that the interior of the rabbit farm is cooled in a short time and water resources are wasted are solved.
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Description

Technical Field

[0001] The present application relates to the field of cooling technology, and in particular to an energy-saving water circulation cooling system for a rabbit farm. Background Art

[0002] In modern animal husbandry, rabbit farms are important economic animal breeding sites. Managing rabbit farms efficiently and optimizing their production environment are crucial to improving breeding profitability. Especially during the hot summer months, high temperatures not only affect rabbits' growth rate and health, but can also cause heat stress, which in turn affects their reproductive capacity and meat quality.

[0003] At present, traditional rabbit farm cooling methods mostly rely on natural ventilation and water spray cooling, but these methods have limited cooling effects, cannot achieve cooling inside the rabbit farm in a short time, serious waste of water resources and high energy consumption. Utility Model Content

[0004] The present application provides an energy-saving water circulation cooling system for a rabbit farm, comprising: a solar panel, a master control switch, a temperature detection unit, a transformer, a refrigerator, and a breathable and waterproof pipe;

[0005] The solar panel is arranged outside the rabbit farm, the solar panel is connected to the master control switch, the master control switch is respectively connected to the temperature detection unit and the transformer, the transformer is connected to the refrigerator, the refrigerator is connected to both ends of the breathable and waterproof pipe, the breathable and waterproof pipe is embedded in the wall of the rabbit farm, and the temperature detection unit is arranged inside the rabbit farm;

[0006] The temperature detection unit is used to detect the temperature inside the rabbit farm, the refrigerator is used to transport cooling water to the breathable and waterproof pipe, and the breathable and waterproof pipe is used in conjunction with the cooling water to circulate and cool the walls of the rabbit farm.

[0007] Optionally, the solar energy assembly includes: a solar photovoltaic panel, a photovoltaic cell and a bracket;

[0008] The solar photovoltaic panel is arranged on the roof of the rabbit farm through the bracket, and the photovoltaic cell is installed under the solar photovoltaic panel.

[0009] Optionally, the photovoltaic cell is connected to the master control switch.

[0010] Optionally, the temperature detection unit includes: a temperature processing module, a temperature detection module and a wireless control module;

[0011] The temperature processing module is connected to the temperature detection module, and the wireless control module is connected to the temperature processing module;

[0012] The temperature detection module is arranged inside the rabbit farm, and is used to monitor the internal temperature of the rabbit farm in real time and send the data to the temperature processing module. The temperature processing module is used to send the processed data to the wireless control module.

[0013] Optionally, the wireless control module is connected to the master control switch.

[0014] Optionally, the refrigerator includes a refrigerator body and a refrigerator water tank, and the refrigerator body is connected to the refrigerator water tank.

[0015] Optionally, the refrigerator water tank is provided with a water outlet and a water inlet, one end of the breathable and waterproof pipe is connected to the water outlet, and the other end is connected to the water inlet.

[0016] Optionally, a liquid level sensor, a water change controller and an automatic water change device are provided in the water tank of the refrigerator;

[0017] The liquid level sensor and the automatic water changing device are arranged inside the refrigerator water tank, the liquid level sensor is connected to the water changing controller, and the water changing controller is connected to the automatic water changing device.

[0018] Optionally, the breathable and waterproof pipes are embedded in the wall of the rabbit farm in a serpentine distribution manner.

[0019] Optionally, the breathable and waterproof pipe is made of expanded polytetrafluoroethylene.

[0020] It can be seen from the above technical solutions that this application has the following advantages:

[0021] 1. Through the solar panels installed on the roof of the rabbit farm, the system can make full use of solar energy resources, convert them into electrical energy, and provide power for the entire cooling system.

[0022] 2. The temperature detector and master control switch work together to enable the system to automatically adjust its operating state according to the actual temperature in the rabbit farm. When the temperature exceeds the preset threshold, the system will automatically start the refrigerator to cool down the rabbit farm, ensuring that the rabbit farm environment is maintained within a suitable range, thereby improving the rabbit's reproduction rate.

[0023] 3. Rapid cooling and water circulation functions are achieved through waterproof and breathable pipes inside the rabbit farm wall, thereby cooling the interior of the rabbit farm in a short time and solving the problem of serious water waste. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 This is a schematic diagram of the overall structure of an energy-saving water circulation cooling system for a rabbit farm provided in this application;

[0025] Figure 2Schematic diagram of the solar module structure provided for this application;

[0026] Figure 3 A schematic diagram of the refrigerator structure provided in this application;

[0027] Figure 4 Schematic diagram of the refrigerator water tank structure provided for this application;

[0028] Figure 5 This is a schematic diagram of the temperature detection unit structure provided in this application. DETAILED DESCRIPTION

[0029] In order to solve the above technical problems, the present application provides an energy-saving water circulation cooling system for a rabbit farm, which is used to ensure that the rabbit farm environment is maintained within a suitable range, thereby improving the reproduction rate of rabbits and solving the problem of cooling the interior of the rabbit farm in a short period of time and serious waste of water resources.

[0030] In this application, the terms "upper", "lower", "left", "right", "front", "back", "top", "bottom", "inside", "outside", "middle", "vertical", "horizontal", "lateral", "longitudinal", etc., indicating the orientation or position relationship, are based on the orientation or position relationship shown in the accompanying drawings, and are only used to illustrate the relative position relationship between the various components or components, and do not particularly limit the specific installation orientation of the various components or components.

[0031] Furthermore, some of the above terms may be used to express other meanings besides indicating a position or location. For example, the term "on" may also be used to indicate a dependency or connection in certain circumstances. Those skilled in the art will understand the specific meanings of these terms in this application based on the specific circumstances.

[0032] Furthermore, the terms "installed," "disposed," "provided with," "connected," and "connected" should be interpreted broadly. For example, they can refer to fixed connections, removable connections, or integral structures; mechanical connections or electrical connections; direct connections, indirect connections through an intermediary, or internal communication between two devices, elements, or components. Those skilled in the art will understand the specific meanings of these terms in this application based on the specific circumstances.

[0033] In addition, the structures, proportions, sizes, etc. drawn in the drawings in this application are only used to match the contents disclosed in the specification for those skilled in the art to understand and read, and are not used to limit the conditions under which this application can be implemented. Therefore, they have no substantive technical significance. Any structural modification, change in proportional relationship or adjustment of size should still fall within the scope of the technical content disclosed in this application without affecting the efficacy and purpose that can be achieved by this application.

[0034] The following will be combined with the accompanying drawings to clearly and completely describe the technical solutions in this application. Obviously, the embodiments described are only some of the embodiments of this application, not all of them. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.

[0035] See also Figures 1 to 5 , this application provides a rabbit farm energy-saving water circulation cooling system, including: a solar panel 01, a master control switch 02, a temperature detection unit 03, a transformer 04, a refrigerator 05 and a breathable and waterproof pipe 06;

[0036] The solar module 01 is arranged outside the rabbit farm, the solar module 01 is connected to the master control switch 02, the master control switch 02 is respectively connected to the temperature detection unit 03 and the transformer 04, the transformer 04 is connected to the refrigerator 05, the refrigerator 05 is connected to both ends of the breathable and waterproof pipe 06, the breathable and waterproof pipe 06 is embedded in the wall of the rabbit farm, and the temperature detection unit 03 is arranged inside the rabbit farm;

[0037] The temperature detection unit 03 is used to detect the temperature inside the rabbit farm. The refrigerator 05 is used to transport cooling water to the breathable and waterproof pipe 06. The breathable and waterproof pipe 06 is used to circulate and cool the walls of the rabbit farm with the cooling water.

[0038] The following describes in detail the various components of the terminal in this embodiment:

[0039] Solar Panel 01: Serving as the energy supply for the entire rabbit farm's energy-saving water circulation cooling system, Solar Panel 01 is responsible for converting solar energy into electricity. This renewable energy source makes the entire system more environmentally friendly and energy-efficient. Solar Panel 01 is typically located outside the rabbit farm, ensuring sufficient sunlight exposure. It is connected to Master Control Switch 02, transmitting the generated electricity to the system for use.

[0040] Master Control Switch 02: Serving as the control center for the entire system, Master Control Switch 02 is responsible for controlling the opening and closing of the entire circuit. When the Master Control Switch is closed, the circuit is open, and the power from Solar Panel 01 is transmitted to the rest of the system via Master Control Switch 02. It also receives signals from Temperature Detection Unit 03 and controls the operation of the chiller based on the temperature within the farm. Master Control Switch 02 is connected to Solar Panel 01, Temperature Detection Unit 03, and Transformer 04 to control the entire system circuit.

[0041] Temperature Detection Unit 03: Used to monitor the temperature inside the rabbit enclosure in real time. By sensing the temperature inside the enclosure, Temperature Detection Unit 03 transmits this data to Master Control Switch 02, allowing the system to make appropriate adjustments based on the temperature. Temperature Detection Unit 03 is located inside the enclosure to ensure accurate temperature monitoring.

[0042] Transformer 04: Transformer 04 is responsible for transforming the electrical energy transmitted by photovoltaic cells 012 through the circuit to meet the operating voltage requirements of refrigerator 05. This voltage transformation ensures stable operation of the refrigerator while preventing energy waste. Transformer 04 is connected to master switch 02 and refrigerator 05 to transform and transmit electrical energy.

[0043] Chiller 05: Chiller 05 is responsible for cooling water to a suitable temperature and delivering it to the rabbit enclosure walls via breathable and waterproof pipes 06. This circulating chilled water effectively lowers the temperature of the enclosure walls, achieving a cooling effect. Chiller 05 is connected to transformer 04 and breathable and waterproof pipes 06. Chiller 05 receives transformed electrical energy and produces chilled water, which is then delivered to breathable and waterproof pipes 06.

[0044] Breathable Waterproof Duct 06: Breathable Waterproof Duct 06 is the channel for the circulation of cooling water within the rabbit farm wall. Embedded within the wall, this channel evenly distributes the cooling water throughout the wall, achieving a circulating cooling effect. This waterproof feature ensures stable operation even in humid environments. Embedded within the wall, it ensures even distribution of the cooling water. It connects to both ends of the chiller 05, forming a circulation channel for the cooling water.

[0045] Solar panels 01 are installed outside the rabbit farm and connected to a master switch 02. They convert solar energy into electricity, which is then transmitted to the system via master switch 02 for use. Master switch 02 is connected to a temperature detection unit 03 and a transformer 04. Master switch 02 receives signals from temperature detection unit 03 and, based on the temperature inside the rabbit farm, transmits the electricity from solar panels 01 through a circuit to transformer 04 for voltage conversion, which is then used to control the operation of the refrigerator. Transformer 04 is connected to refrigerator 05, which converts the transmitted electricity into a voltage that meets its operating voltage requirements. Refrigerator 05 is connected to a breathable waterproof pipe 06, which is embedded in the rabbit farm wall. Refrigerator 05 delivers treated chilled water to this pipe, which is then evenly distributed throughout the wall, effectively cooling the rabbit farm interior.

[0046] Beneficial effects: The energy-saving water circulation cooling system for rabbit farms provided by this application mainly utilizes solar energy as its energy supply, reducing dependence on traditional electricity, and reducing energy consumption and carbon emissions. It conforms to the development concept of green, low-carbon, and environmental protection, and is of great significance for promoting the sustainable development of agriculture. Through the coordinated operation of the temperature detection unit and the master control switch, the system can monitor the temperature inside the rabbit farm in real time and automatically adjust the operation of the refrigerator as needed. The use of intelligent control methods not only improves the cooling efficiency but also avoids energy waste. The cooling water produced by the refrigerator circulates through the walls of the rabbit farm through breathable and waterproof pipes, which can effectively reduce the temperature of the wall. This circulation cooling method not only makes the temperature inside the rabbit farm evenly distributed and effectively reduced, providing a more comfortable living environment for the rabbits, but also can use the pipes to circulate the cooling water, reducing the waste of water resources. The application of this system enables the temperature inside the rabbit farm to be precisely controlled, providing a more suitable growth environment for the rabbits. This helps to improve the growth efficiency of rabbits and increase breeding benefits.

[0047] Optionally, the solar module 01 includes: a solar photovoltaic panel 011, a photovoltaic cell 012 and a bracket 013;

[0048] The solar photovoltaic panel 011 is arranged on the roof of the rabbit farm through the bracket 013 , and the photovoltaic cell 012 is installed below the solar photovoltaic panel 011 .

[0049] Solar panel 01 consists of three components: a photovoltaic panel 011, a photovoltaic cell 012, and a bracket 013. Bracket 013 is mounted on the roof of the rabbit farm and secured to prevent any accidents such as falling off. The photovoltaic panel 011 is mounted on bracket 013, and the photovoltaic cell 012 is mounted below the panel. When sunlight strikes the photovoltaic panel 011, the semiconductor material within it absorbs the light energy and excites electrons, which are then transferred to the photovoltaic cell 012. The photovoltaic cell 012 then stores the received electrical energy, which is then used to power the system when the circuit is in operation.

[0050] By integrating solar photovoltaic panels 011, photovoltaic cells 012, and brackets 013, the panels 011 achieve highly integrated solar energy collection and conversion, while the photovoltaic cells 012 store this energy for subsequent use in the system, reducing energy losses during conversion and transmission. This enables the system to operate independently without external power, further reducing dependence on traditional energy sources and improving its independence and reliability. As a clean, renewable energy source, solar energy does not pollute the environment. This helps reduce greenhouse gas emissions and environmental pollution, promoting more environmentally friendly and sustainable agricultural development.

[0051] Optionally, the photovoltaic cell 012 is connected to the master control switch 02 .

[0052] When solar photovoltaic panel 011 is exposed to sunlight, photons interact with the semiconductor material within it, generating photogenerated electron-hole pairs. These electron-hole pairs separate under the electric field of the PN junction, forming an electric current. This converts the light energy into electrical energy, which is then transferred to photovoltaic cell 012 for storage. When master switch 02 is activated, the stored electrical energy is transmitted through the circuit to various components of the system.

[0053] The direct connection between photovoltaic cell 012 and master switch 02 enables the system to directly utilize solar energy to power other components, achieving energy self-sufficiency. This not only reduces dependence on traditional electricity but also minimizes energy losses during conversion and transmission, improving energy efficiency.

[0054] Optionally, the temperature detection unit 03 includes: a temperature processing module 031, a temperature detection module 032 and a wireless control module 033;

[0055] The temperature processing module 031 is connected to the temperature detection module 032, and the wireless control module 033 is connected to the temperature processing module 031;

[0056] The temperature detection module 032 is set inside the rabbit farm and is used to monitor the internal temperature of the rabbit farm in real time and send the data to the temperature processing module 031. The temperature processing module 031 is used to send the processed data to the wireless control module 033.

[0057] Temperature processing module 031 is connected to temperature detection module 032 and wireless control module 033. It is responsible for receiving temperature data transmitted by temperature detection module 032 and sending instructions to wireless control module 033. Temperature detection module 032 is responsible for real-time monitoring of the temperature inside the rabbit farm and is connected to temperature processing module 031. When the temperature exceeds a preset value, temperature detection module 032 sends the detected data to temperature processing module 031. Temperature processing module 031 processes this data and generates corresponding control instructions. The control instructions are then sent to master control switch 02 via wireless control module 033. Master control switch 02 then executes the opening or closing operation according to the instructions.

[0058] It should be noted that the wireless control module 033 sends the temperature data processed by the temperature processing module 031 to the user terminal. The operator can view the temperature data inside the rabbit farm through the user terminal, and judge whether the current temperature inside the rabbit farm meets the requirements based on the temperature data inside the rabbit farm. The operator then sends a control instruction to the wireless control module 033, and the control instruction is sent to the master control switch 02 through the wireless control module 033 to control the master control switch to be turned on or off.

[0059] Temperature detection module 032 monitors the temperature inside the rabbit farm in real time, ensuring data accuracy and timeliness. Temperature processing module 031 and wireless control module 033 work together to enable precise control based on real-time temperature data, improving cooling efficiency. Wireless control module 033 transmits temperature data externally and, upon receiving external control commands, sends these commands to master control switch 02, enabling remote data transmission and monitoring, facilitating system management and maintenance.

[0060] Optionally, the wireless control module 033 is connected to the master control switch 02 .

[0061] Wireless control module 033 is connected to master switch 02. After receiving control commands, wireless control module 033 transmits them to master switch 02, causing it to execute the corresponding operation. Master switch 02 operates to open or close the circuit. When the circuit is open, the current from photovoltaic cell 012 is transmitted through the circuit and then, via master switch 02, to transformer 04. Transformer 04 transforms the electrical energy and then transmits it through the circuit to chiller 05. Chiller 05 then starts operating after receiving the electrical energy. When the circuit is open, transformer 04 stops operating due to lack of electrical energy, and chiller 05 stops operating due to lack of electrical energy transmitted by transformer 04.

[0062] The wireless control module 033 enables the system to remotely control the opening and closing of the master control switch 02, increasing system flexibility. By monitoring the temperature inside the rabbit farm in real time and activating the refrigerator 05 according to actual needs, unnecessary energy waste is avoided, operating costs are reduced, and economic efficiency is improved. The system can quickly respond to temperature changes and improve cooling efficiency.

[0063] Optionally, the refrigerator 05 includes a refrigerator body 051 and a refrigerator water tank 052 , and the refrigerator body 051 is connected to the refrigerator water tank 052 .

[0064] Refrigerator 05 consists of a main unit 051 and a water tank 052. Both units are connected and used to store and prepare chilled water. During the refrigeration cycle, some of the cooled refrigerant flows through the water tank 052, exchanging heat with the water, thereby lowering the water's temperature.

[0065] After receiving the electric energy transmitted by the transformer 04, the refrigerator body 051 starts to run the refrigeration cycle. The refrigerator body 051 transports the cooling water from the refrigerator water tank 052 to the breathable waterproof pipe 06 to achieve the cooling of the rabbit farm.

[0066] The refrigerator body 051 works in conjunction with the refrigerator water tank 052 to transfer the chilled water stored in the refrigerator water tank 052 through the refrigerator body 051 to the breathable and waterproof pipe 06, achieving heat energy conversion and cooling. This ensures efficient heat transfer and rapid cooling within the rabbit farm, providing a good living environment for the rabbits.

[0067] Optionally, the refrigerator water tank 052 is provided with a water outlet 053 and a water inlet 054, and one end of the breathable and waterproof pipe 06 is connected to the water outlet, and the other end is connected to the water inlet.

[0068] The water outlet 053 of the refrigerator water tank 052 is connected to one end of the breathable and waterproof pipe 06, while the water inlet 054 is connected to the other end of the breathable and waterproof pipe 06. When the refrigerator body 051 is in operation, the chilled water in the refrigerator water tank 052 is transported to the breathable and waterproof pipe 06 through the water outlet 053. At the same time, the room-temperature water in the breathable and waterproof pipe 06 is discharged into the refrigerator water tank 052 through the water inlet 054, and is prepared as chilled water for future use. The temperature detection module 032 monitors the temperature inside the rabbit farm in real time and sends the data to the temperature processing module 031. When the temperature inside the rabbit farm reaches a preset value, the temperature processing module 031 sends the data to the wireless control module 033, which controls the main control switch 02 to open the circuit. After the circuit is open, the refrigerator body 051 stops operating due to the lack of power transmitted by the transformer 04.

[0069] Beneficial Effects: The connection design between the chiller water tank 052 and the breathable and waterproof pipe 06 achieves a closed-loop water circulation and efficient thermal energy management. This ensures that heat can be effectively transferred from the rabbit farm and continuously removed through the water circulation, thus achieving efficient cooling in a short period of time and reducing water waste.

[0070] Optionally, a liquid level sensor 055, a water change controller 056 and an automatic water change device 057 are provided in the refrigerator water tank 052;

[0071] The liquid level sensor 055 and the automatic water changing device 057 are arranged inside the refrigerator water tank. The liquid level sensor 055 is connected to the water changing controller 056, and the water changing controller 056 is connected to the automatic water changing device 057.

[0072] The liquid level sensor 055 is installed inside the refrigerator water tank 052 and is used to monitor the water level in the water tank in real time. The liquid level sensor 055 transmits the signal to the water change controller 056. The water change controller receives the signal and processes it. The water change controller 056 sends an instruction to the automatic water change device 057. After receiving the instruction from the water change controller 056, the automatic water change device 057 starts to perform the water change operation. Open the water inlet of the refrigerator water tank 052 to add water. After the water change is completed, the liquid level sensor 055 will monitor the new water level again and feed back the information to the water change controller 056. The water change controller 056 will make necessary adjustments based on the new water level and the preset threshold to ensure that the amount of water in the refrigerator water tank 052 is always maintained in the optimal state.

[0073] Real-time water level monitoring and automatic water exchange ensure that the water level in the chiller tank remains at an optimal level. This prevents insufficient cooling water when needed, ensuring a stable temperature during rabbit farm operation, improving rabbit growth efficiency and increasing breeding profitability. The automatic water exchange system precisely controls water usage, avoiding unnecessary waste. Furthermore, by maintaining clean water quality, it reduces equipment failures and increased energy consumption caused by water quality issues, contributing to energy conservation, emission reduction, and environmental protection.

[0074] Optionally, the breathable and waterproof pipes 06 are embedded in the wall of the rabbit farm in a serpentine distribution manner.

[0075] The serpentine layout of the breathable waterproof duct 06 allows air to form multiple circulation paths within the wall. This serpentine distribution extends the air flow path within the wall, increasing the contact area between the air and the wall material, thereby improving heat exchange efficiency. The breathable waterproof duct 06 is equipped with a waterproof layer to prevent external moisture from penetrating the wall. The duct's air permeability allows air to circulate without allowing moisture to penetrate, ensuring the dryness of the wall.

[0076] The serpentine-shaped distribution of the breathable waterproof duct 06 effectively increases the air flow path within the wall, promoting air exchange between the inside and outside of the rabbit house. This helps to expel stale air and moisture while also introducing fresh air, significantly improving the air quality inside the rabbit house. While maintaining air circulation, the breathable waterproof duct 06 also ensures the waterproof performance of the wall. A waterproof layer inside the duct effectively prevents external moisture from penetrating the wall. This increases the contact area between air and wall material, improving heat exchange efficiency.

[0077] Optionally, the breathable and waterproof pipe 06 is made of expanded polytetrafluoroethylene.

[0078] Expanded polytetrafluoroethylene (ePTFE) is a material with a microporous structure. The size of these pores allows gas molecules to pass smoothly, while liquid water molecules are effectively blocked due to surface tension and pore size limitations. This allows for air circulation while preventing water penetration, achieving a combination of breathability and waterproofing. The ePTFE pipes are arranged in a serpentine pattern within the wall. This design increases the air flow path within the wall and promotes air exchange between the inside and outside of the rabbit house.

[0079] Expanded polytetrafluoroethylene (ePTFE) has a unique microporous structure that allows gas molecules to pass freely while effectively blocking the penetration of liquid water molecules. This property ensures that the breathable waterproof duct 06 maintains air circulation while completely preventing moisture from entering the rabbit house, effectively preventing problems such as damp walls and mold. The serpentine distribution design of the breathable waterproof duct 06 increases the air flow path within the wall, promoting air exchange between the inside and outside of the rabbit house. This not only helps to remove polluted air and odors from the rabbit house, but also allows for the introduction of fresh air, significantly improving the air quality inside the rabbit house and providing a healthier and more comfortable environment for the rabbits.

[0080] It should be noted that the above description of the disclosed embodiments is intended to enable one skilled in the art to implement or use the present application. Various modifications to these embodiments will be readily apparent to one skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the scope of the present application. Therefore, the present application is not limited to the embodiments shown herein, but is intended to conform to the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A rabbit farm energy-saving water circulation cooling system, characterized in that: include: Solar panels, master switches, temperature detection units, transformers, refrigerators and breathable and waterproof pipes; The solar panel is arranged outside the rabbit farm, the solar panel is connected to the master control switch, the master control switch is respectively connected to the temperature detection unit and the transformer, the transformer is connected to the refrigerator, the refrigerator is connected to both ends of the breathable and waterproof pipe, the breathable and waterproof pipe is embedded in the wall of the rabbit farm, and the temperature detection unit is arranged inside the rabbit farm; The temperature detection unit is used to detect the temperature inside the rabbit farm, the refrigerator is used to transport cooling water to the breathable and waterproof pipe, and the breathable and waterproof pipe is used in conjunction with the cooling water to circulate and cool the walls of the rabbit farm.

2. The rabbit farm energy-saving water circulation cooling system according to claim 1 is characterized in that: The solar energy components include: solar photovoltaic panels, photovoltaic cells and brackets; The solar photovoltaic panel is arranged on the roof of the rabbit farm through the bracket, and the photovoltaic cell is installed under the solar photovoltaic panel.

3. The rabbit farm energy-saving water circulation cooling system according to claim 2 is characterized in that: The photovoltaic cell is connected to the master control switch.

4. The rabbit farm energy-saving water circulation cooling system according to claim 1, characterized in that: The temperature detection unit includes: a temperature processing module, a temperature detection module and a wireless control module; The temperature processing module is connected to the temperature detection module, and the wireless control module is connected to the temperature processing module; The temperature detection module is arranged inside the rabbit farm, and is used to monitor the internal temperature of the rabbit farm in real time and send the data to the temperature processing module. The temperature processing module is used to send the processed data to the wireless control module.

5. The rabbit farm energy-saving water circulation cooling system according to claim 4 is characterized in that: The wireless control module is connected to the master control switch.

6. The rabbit farm energy-saving water circulation cooling system according to claim 1, characterized in that: The refrigerator comprises a refrigerator body and a refrigerator water tank, and the refrigerator body is connected to the refrigerator water tank.

7. The rabbit farm energy-saving water circulation cooling system according to claim 6, characterized in that: The refrigerator water tank is provided with a water outlet and a water inlet. One end of the breathable and waterproof pipe is connected to the water outlet, and the other end is connected to the water inlet.

8. The rabbit farm energy-saving water circulation cooling system according to claim 6, characterized in that: The refrigerator water tank is provided with a liquid level sensor, a water change controller and an automatic water change device; The liquid level sensor and the automatic water changing device are arranged inside the refrigerator water tank, the liquid level sensor is connected to the water changing controller, and the water changing controller is connected to the automatic water changing device.

9. The rabbit farm energy-saving water circulation cooling system according to claim 1, characterized in that: The breathable and waterproof pipes are embedded in the wall of the rabbit farm in a serpentine distribution manner.

10. The rabbit farm energy-saving water circulation cooling system according to claim 1, characterized in that: The breathable and waterproof pipe is made of expanded polytetrafluoroethylene.