Photovoltaic pet house and control method thereof

By powering the electrical components in the pet house with photovoltaic modules and batteries, and combining this with a controller to manage power distribution, the issues of convenience and cost in pet house electricity use are resolved, achieving an efficient and reliable power supply solution.

CN122004144APending Publication Date: 2026-05-12TONGWEI SOLAR ENERGY (CHENGDU) CO LID
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
TONGWEI SOLAR ENERGY (CHENGDU) CO LID
Filing Date
2026-01-20
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

Pet houses require separate wiring to power their electrical components, which affects convenience and increases electricity costs.

Method used

Photovoltaic modules and batteries are used to power electrical devices. The controller manages the power distribution, realizes the electrical connection between photovoltaic modules and batteries and electrical devices, and controls power supply and storage based on the amount of electricity generated.

Benefits of technology

It improves the convenience of electricity use, reduces electricity costs, enhances mobility and reliability, and reduces energy waste and battery charging frequency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the invention provides a photovoltaic pet house and a control method thereof. The photovoltaic pet house comprises a roof, a supporting plate, a photovoltaic assembly, a storage battery, an electric device and a controller. The supporting plate is configured to rotate relative to the roof so as to be switched between an unfolded state and a folded state. The photovoltaic assembly is arranged on the side, away from the roof, of the supporting plate and connected with the supporting plate. The photovoltaic assembly is used for converting light energy into electric energy. And the storage battery is electrically connected with the photovoltaic module. The power utilization devices are electrically connected with the photovoltaic module and the storage battery. The number of the power utilization devices is multiple. The controller is electrically connected with the photovoltaic module and the storage battery, and at least one of the photovoltaic module and the storage battery supplies power to the controller. And the controller is configured to control at least one of the photovoltaic module and the storage battery to supply power to the electric device according to the generating capacity of the photovoltaic module. According to the embodiment of the invention, the electricity utilization convenience of the photovoltaic pet house can be improved, and the electricity utilization cost of the photovoltaic pet house is reduced.
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Description

Technical Field

[0001] The embodiments of this application relate to the technical field of photovoltaic power generation, and more particularly to a photovoltaic pet house and its control method. Background Technology

[0002] Typically, a pet house consists of a building and electrical appliances. The building encloses a space where the pet can move around. The electrical appliances may include lights, air conditioning, and cameras. These appliances can be installed inside or outside the pet's living space.

[0003] During the use of pet houses, a separate circuit is usually required to power the electrical components, which affects the convenience of using electricity in the pet house and increases the electricity cost. Summary of the Invention

[0004] The embodiments of this application provide a photovoltaic pet house and its control method. The photovoltaic modules can supply power to the electrical devices without the need for separate wiring to supply power to the electrical devices, which improves the convenience of electricity use for the photovoltaic pet house and reduces the electricity cost of the photovoltaic pet house.

[0005] One embodiment of this application provides a photovoltaic pet house. The photovoltaic pet house includes a roof, a support plate, photovoltaic modules, a battery, electrical components, and a controller. One end of the support plate is rotatably connected to the roof. The support plate is configured to rotate relative to the roof to switch between an extended state and a retracted state. When the support plate is in the extended state, there is an angle between the support plate and the roof; when the support plate is in the retracted state, the support plate is attached to the roof. The photovoltaic modules are disposed on the side of the support plate away from the roof and connected to the support plate. The photovoltaic modules are used to convert light energy into electrical energy. The battery is electrically connected to the photovoltaic modules. The electrical components are electrically connected to the photovoltaic modules and the battery, and there are multiple electrical components. The controller is electrically connected to the photovoltaic modules and the battery. At least one of the photovoltaic modules and the battery powers the controller. The controller is configured to control at least one of the photovoltaic modules and the battery to power the electrical components based on the power generation of the photovoltaic modules.

[0006] In some possible implementations, the controller is configured to: control the photovoltaic modules to supply power to the designated electrical devices when the power generation of the photovoltaic modules equals the power consumption of the designated electrical devices; control the photovoltaic modules to supply power to the designated electrical devices when the power generation of the photovoltaic modules exceeds the power consumption of the designated electrical devices, and control the photovoltaic modules to store the remaining electrical energy in a battery; and control the photovoltaic modules and the battery to supply power to at least one designated electrical device when there are multiple designated electrical devices and the power generation of the photovoltaic modules is less than the power consumption of the multiple designated electrical devices.

[0007] In some possible implementations, multiple electrical devices include a first electrical device and a second electrical device, where the energy consumption of the first electrical device is less than that of the second electrical device. The first electrical device includes a first-priority electrical device and a second-priority electrical device. When the power generation of the photovoltaic module is less than the power consumption of the multiple electrical devices in a set operation, and the battery capacity is less than or equal to a first set capacity value, the controller is configured to control the photovoltaic module and the battery to supply power to at least one of the first electrical devices in a set operation. When the power generation of the photovoltaic module is less than the power consumption of the multiple electrical devices in a set operation, and the battery capacity is less than or equal to a second set capacity value, the controller is configured to control the photovoltaic module and the battery to supply power to at least one of the first-priority electrical devices in a set operation. The second set capacity value is less than the first set capacity value.

[0008] In some possible implementations, the first electrical components include lighting, a camera, a UV lamp, a sensor, an automatic feeding device, a display control panel, an electric door, and an electric ventilation window. The automatic feeding device and camera are first-priority electrical components, while the lighting, UV lamp, sensor, display control panel, electric door, and electric ventilation window are second-priority electrical components. The second electrical component includes an air conditioner. While the controller controls the photovoltaic modules and battery to supply power to the first-priority electrical components, the controller keeps the electric door in a normally open state.

[0009] In some possible implementations, the roof includes a ridge and a top plate. The ridge extends along a first direction. The top plate is disposed on at least one side of the ridge and connected to the ridge along a second direction perpendicular to the first direction. A support plate is disposed on one side of the top plate along its thickness direction, and one end of the support plate is rotatably connected to the top plate. The surface of the top plate near the support plate is a first surface, and a first receiving groove is formed on the first surface. When the support plate is in a retracted state, the support plate is embedded in the first receiving groove. The surface of the support plate opposite to the top plate is a second surface, and the second surface is flush with the first surface.

[0010] In some possible implementations, the roof slab includes a first roof slab and a second roof slab, which are disposed on opposite sides of the roof ridge along a second direction and are respectively connected to the roof ridge. The support plate includes a first support plate and a second support plate. The first support plate is disposed on one side of the first roof slab along its thickness direction, and one end of the first support plate is rotatably connected to the first roof slab. The second support plate is disposed on one side of the second roof slab along its thickness direction, and one end of the second support plate is rotatably connected to the second roof slab. The photovoltaic module includes a first photovoltaic module and a second photovoltaic module. The first photovoltaic module is disposed on the side of the first support plate away from the first roof slab and is connected to the first support plate. The second photovoltaic module is disposed on the side of the second support plate away from the second roof slab and is connected to the second support plate.

[0011] In some possible implementations, the photovoltaic pet house also includes a support rod that is detachably connected between the support plate and the top plate.

[0012] In some possible implementations, the photovoltaic pet house also includes a base, multiple wall panels, and an electrical control box. The base and roof are positioned opposite each other. Multiple wall panels are connected between the roof and the base, forming a first receiving space. One of the wall panels has an entrance / exit that extends through the wall panel along its thickness. The electrical control box is located outside the first receiving space and connected to the wall panels. The photovoltaic modules and batteries are electrically connected to the electrical control box. The photovoltaic modules supply power to the electrical devices and batteries through the electrical control box, and the batteries supply power to the electrical devices through the electrical control box.

[0013] In some possible implementations, a second receiving space is formed within the base, and multiple batteries are removably installed within the second receiving space.

[0014] In some possible implementations, the base includes a base plate, a protrusion, and a pull-out section. The base plate is connected to the wall panel. The protrusion is located on the side of the base plate away from the wall panel and is connected to the base plate; the protrusion and the base plate enclose a second receiving space. The pull-out section is disposed within the second receiving space and is removable relative to the base plate and the protrusion; the pull-out section encloses a battery receiving slot, in which a battery is disposed.

[0015] In some possible implementations, there are two pull-out sections, which are respectively pullable relative to the base plate and the protrusion.

[0016] In some possible implementations, the base also includes a sidewall located on the side of the base plate away from the wall panel and connected to the base plate. A convection port is provided on the sidewall, extending through the sidewall along its thickness, and at least a portion of the convection port is located on the side of the protrusion away from the base plate. There are multiple convection ports, with at least two of them arranged opposite each other.

[0017] On the other hand, embodiments of this application provide a control method for a photovoltaic pet house. The photovoltaic pet house includes a photovoltaic module, multiple electrical devices, and a battery. The photovoltaic module, electrical devices, and battery are electrically connected, and the battery is also electrically connected to the electrical devices. The control method for the photovoltaic pet house includes: when the power generation of the photovoltaic module equals the power consumption of the electrical devices in a set-operation state, the photovoltaic module supplies power to the electrical devices in a set-operation state. When the power generation of the photovoltaic module is greater than the power consumption of the electrical devices in a set-operation state, the photovoltaic module supplies power to the electrical devices in a set-operation state, and the photovoltaic module stores the remaining electrical energy in the battery. When there are multiple electrical devices in a set-operation state, and the power generation of the photovoltaic module is less than the power consumption of the multiple electrical devices in a set-operation state, the photovoltaic module and the battery supply power to at least one electrical device in a set-operation state.

[0018] In some possible implementations, the multiple electrical devices include a first electrical device and a second electrical device, where the energy consumption of the first electrical device is less than that of the second electrical device. The first electrical device includes a first priority electrical device and a second priority electrical device. When the power generation of the photovoltaic module is less than the power consumption of the multiple electrical devices in a set operation, the photovoltaic module and the battery supply power to at least one of the set operating electrical devices, including: when the power generation of the photovoltaic module is less than the power consumption of the multiple electrical devices in a set operation, and the battery charge is less than or equal to a first set charge value, controlling the photovoltaic module and the battery to supply power to at least one first electrical device in a set operation. When the power generation of the photovoltaic module is less than the power consumption of the multiple electrical devices in a set operation, and the battery charge is less than or equal to a second set charge value, controlling the photovoltaic module and the battery to supply power to at least one first priority electrical device in a set operation. Wherein, the second set charge value is less than the first set charge value.

[0019] In some possible implementations, the first electrical components include lighting, a camera, a UV lamp, a sensor, an automatic feeding device, a display control panel, an electric door, and an electric ventilation window. The automatic feeding device and camera are first-priority electrical components, while the lighting, UV lamp, sensor, display control panel, electric door, and electric ventilation window are second-priority electrical components. The second electrical component includes an air conditioner. When controlling the photovoltaic modules and battery to supply power to the first-priority electrical components, the electric door is kept in a normally open state.

[0020] In summary, the embodiments of this application have at least the following beneficial effects: In the embodiments of this application, photovoltaic modules and batteries are used to power the electrical devices, eliminating the need for separate power lines. This improves the convenience of electricity use for the photovoltaic pet house and reduces its electricity costs. Furthermore, it enhances the mobility of the photovoltaic pet house, thereby increasing the freedom of use during its operation.

[0021] Furthermore, compared to using a separate battery to power electrical devices, the embodiments of this application use both photovoltaic modules and a battery to power the electrical devices, which reduces the frequency of users charging the battery and reduces the risk of power outages caused by users forgetting to charge the battery, thus improving the convenience and reliability of the photovoltaic pet house.

[0022] Understandably, the controller can control at least one of the photovoltaic modules and the battery to supply power to electrical devices based on the power generation of the photovoltaic modules, thereby achieving power supply management, reducing energy waste, and improving the power reliability of the photovoltaic pet house.

[0023] The support plate can drive the photovoltaic modules to rotate relative to the roof. In this way, the relative position of the support plate and the roof can be adjusted according to the angle of sunlight, so that the position of the photovoltaic modules can be changed, which helps to increase the intensity of light shining on the photovoltaic modules, thereby increasing the output power of the photovoltaic modules and meeting the power needs of multiple electrical devices. Attached Figure Description

[0024] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0025] Figure 1 This is a structural schematic diagram of a photovoltaic pet house provided in some embodiments of this application; Figure 2 This is a structural schematic diagram of a photovoltaic pet house provided in some other embodiments of this application; Figure 3 This application provides structural schematic diagrams of photovoltaic pet houses in some of its embodiments. Figure 4 This application provides structural schematic diagrams of photovoltaic pet houses in some of its embodiments. Figure 5 This is a schematic diagram of the structure of an electrically operated ventilation window provided in some embodiments of this application; Figure 6 This is a line graph illustrating the power generation of the photovoltaic module in different locations for some embodiments of the photovoltaic pet house provided in this application; Figure 7 A schematic diagram showing the positional relationship between the support plate and the roof when the support plate is in the unfolded state, as provided in some embodiments of this application; Figure 8 A schematic diagram showing the positional relationship between the support plate and the roof when the support plate is in a retracted state, as provided in some embodiments of this application; Figure 9 This is a schematic diagram of the structure of the top plate provided in some embodiments of this application; Figure 10 for Figure 9 A magnified schematic diagram of a portion of region B1; Figure 11 This is a schematic diagram of the structure of the support plate provided in some embodiments of this application; Figure 12 for Figure 11 A magnified schematic diagram of a portion of region B2; Figure 13 for Figure 11 A magnified schematic diagram of a portion of region B3 in the middle; Figure 14 for Figure 7 A magnified schematic diagram of a portion of region B4 in the middle; Figure 15 for Figure 7 A magnified schematic diagram of a portion of region B5 in the middle; Figure 16 This is a schematic diagram of the structure of the base provided in some embodiments of this application; Figure 17 This is a schematic diagram of the structure of the base provided in some other embodiments of this application.

[0026] Explanation of reference numerals in the attached figures: 200-Photovoltaic Pet House, 201-Electrical Central Box, 202-Ground Pegs, 203-First Connector, 204-First Connector, 205-Second Connector, 210-Roof, 211-Ridge, 212-Top Plate, 2121-First Top Plate, 2122-Second Top Plate, 220-Support Plate, 221-First Support Plate, 222-Second Support Plate, 2201-Support Plate Body, 2202-Connecting Column, 230-Photovoltaic Module, 231-First Photovoltaic Module, 232-Second Photovoltaic Module, 240-Battery, 250-Electrical Components, 251-Air Conditioner, 2511-Indoor Unit, 2511a-Filter, 2511b-Heating Wire, 2511c-Air Outlet, 2512-Outdoor Unit, 252-Lighting, 253-Camera, 256-Automatic Feeding Device, 257-Display Operation 258-Electric door, 259-Electric ventilation window, 2591-First drive unit, 2592-Ventilation plate, 270-Support rod, 271-First sub-support rod, 272-Second sub-support rod, 280-Base support, 281-Base plate, 282-Protrusion, 283-Draw-out part, 284-Side wall, 285-Baffle, 286-Anti-slip texture, 287-Supporting component, 2871-First supporting component 2872 - Second support member, 290 - Wall panel, 291 - Wall panel body, 292 - Column, X - First direction, Y - Second direction, M1 - First receiving groove, M2 - Second receiving groove, M3 - Clearance groove, M31 - First groove wall, E1 - Convection port, D1 - First receiving space, D2 - Second receiving space, N1 - First limiting hole, N2 - Second limiting hole, P1 - First surface, P2 - Second surface. Detailed Implementation

[0027] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0028] In this application, the terms "upper," "left," "right," "front," "top," "bottom," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily for the purpose of better describing this application and its embodiments, and are not intended to limit the indicated device, element, or component to having a specific orientation, or to be constructed and operated in a specific orientation.

[0029] Furthermore, in addition to indicating location or positional relationship, some of the aforementioned terms may also have other meanings. For example, the term "above" may also be used in some cases to indicate a certain dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.

[0030] Furthermore, the terms "installation," "setup," "equipped with," and "connection" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral structure; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium, or an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.

[0031] Furthermore, the terms "first," "second," etc., are primarily used to distinguish different devices, components, or parts (which may be the same or different in specific type and construction), and are not intended to indicate or imply the relative importance or quantity of the indicated devices, components, or parts. Unless otherwise stated, "a plurality of" means two or more.

[0032] With economic development and the increasing demand for companionship, the pet economy is booming, and people are more willing to improve the quality of life for their pets.

[0033] Most pet houses on the market only have a living function and no other functions. Especially pet houses placed on balconies or in villa gardens, due to objective factors such as power supply, cannot add various electrical components to meet the living needs of pets. They can only make some special designs on the appearance to meet the aesthetic needs of customers.

[0034] Figure 1 This is a structural schematic diagram of a photovoltaic pet house provided in some embodiments of this application. Figure 2 This is a structural schematic diagram of a photovoltaic pet house provided for other embodiments of this application. Figure 3 This is a structural schematic diagram of a photovoltaic pet house provided for some embodiments of this application. Figure 4 This is a structural schematic diagram of a photovoltaic pet house provided for some embodiments of this application.

[0035] like Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, the embodiments of this application provide a photovoltaic pet house 200, which not only has a living function, but also other additional functions, and can meet the daily needs of most pets.

[0036] The photovoltaic pet house 200 provided in the embodiments of this application will be illustrated below. In some examples, such as... Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, the photovoltaic pet house 200 includes a roof 210, a base 280, and multiple wall panels 290. The base 280 and the roof 210 are arranged opposite to each other, and the multiple wall panels 290 are connected between the base 280 and the roof 210. The wall panels 290, the roof 210, and the base 280 enclose a first receiving space D1.

[0037] Understandably, the first accommodating space D1 is the pet's activity space. The shape and volume of the first accommodating space D1 may vary depending on the type and breed of the pet. The embodiments of this application do not further limit the shape and volume of the first accommodating space D1.

[0038] For example, the wall panel 290 can be detachably connected to the roof 210 and the base 280 to improve the transportability of the photovoltaic pet house 200.

[0039] Alternatively, the wall panel 290, roof 210, and base support 280 can be fixedly connected to improve the reliability of the connection. The connection method between the wall panel 290 and roof 210 can be the same as or different from the connection method between the wall panel 290 and base support 280.

[0040] The embodiments of this application do not further limit the connection method between the wall panel 290, the roof 210, and the base 280.

[0041] For example, such as Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, the wall panel 290 may include a wall panel body 291 and columns 292. There may be multiple columns 292, which are spaced apart and connected to the roof 210 and the base 280 respectively.

[0042] There can be multiple wall panel bodies 291. Any one wall panel body 291 can be connected between two adjacent columns 292. Multiple wall panel bodies 291 are respectively connected to the roof 210 and the base 280.

[0043] Understandably, the wall panel 290, which includes the wall panel body 291 and the column 292, can improve the mechanical strength of the wall panel 290.

[0044] For example, the wall panel body 291 and the column 292 can be detachably connected to improve the transportability of the photovoltaic pet house 200. Alternatively, the wall panel body 291 and the column 292 can be fixedly connected to improve the reliability of the connection between them.

[0045] The embodiments of this application do not further limit the connection method between the wall panel body 291 and the column 292.

[0046] In some examples, one of the multiple wall panels 290 has an entrance / exit that extends through the wall panel 290 along its thickness. For example, the entrance / exit may be located on the wall panel body 291, allowing a pet to enter or leave the first accommodating space D1.

[0047] Continue to refer to Figure 1 , Figure 2 , Figure 3 and Figure 4 In some examples, the photovoltaic pet house 200 may also include a photovoltaic module 230, a battery 240, an electrical device 250, and a controller (not shown in the figure).

[0048] A photovoltaic module 230 is installed on the roof 210 and is used to convert light energy into electrical energy. For example, the photovoltaic module 230 may include solar cells, enabling it to convert light energy into electrical energy to achieve photovoltaic power generation.

[0049] For example, a solar cell may include at least one of a tunnel oxide-passivated contact solar cell (TOPCON) and a back contact solar cell. The embodiments of this application do not further limit the specific form of the solar cell.

[0050] Understandably, the storage battery 240 is capable of storing electrical energy. There can be multiple storage batteries 240, which may include lead-acid batteries, nickel-cadmium batteries, or nickel-metal hydride batteries, etc. The embodiments of this application do not further limit the number or type of storage batteries 240.

[0051] In some examples, the battery 240 and the photovoltaic module 230 are electrically connected, allowing the photovoltaic module 230 to potentially charge the battery 240. Understandably, other external power sources can also charge the battery 240.

[0052] In some examples, electrical device 250 is electrically connected to photovoltaic module 230 and battery 240, and there are multiple electrical devices 250.

[0053] Understandably, the electrical device 250 is electrically connected to the photovoltaic module 230 and the battery 240, so that both the photovoltaic module 230 and the battery 240 can supply power to the electrical device 250.

[0054] In the embodiments of this application, photovoltaic modules 230 and batteries 240 are used to power the electrical device 250, eliminating the need for a separate power supply line for the electrical device 250. This improves the convenience of power supply for the photovoltaic pet house 200 and reduces its electricity costs. Furthermore, it enhances the mobility of the photovoltaic pet house 200, thereby increasing the degree of freedom during its use.

[0055] Furthermore, compared to separately setting up a storage battery 240 to power the electrical device 250, the embodiment of this application sets up a photovoltaic module 230 and a storage battery 240 to power the electrical device 250, which can reduce the frequency of users charging the storage battery 240 and reduce the risk of power outage of the electrical device 250 due to users forgetting to charge the storage battery 240, thereby improving the ease of use and reliability of the photovoltaic pet house 200.

[0056] In some examples, the controller is electrically connected to the photovoltaic module 230 and the battery 240, at least one of which supplies power to the controller, thus enabling the controller to function properly.

[0057] For example, the controller may include a programmable logic controller (PLC) or an industrial personal computer (IPC), etc. The embodiments of this application do not further limit the specific form of the controller.

[0058] In some examples, the controller is configured to control at least one of the photovoltaic module 230 and the battery 240 to supply power to the electrical device 250 based on the power generation of the photovoltaic module 230.

[0059] Understandably, the controller can control at least one of the photovoltaic module 230 and the battery 240 to supply power to the electrical device 250 based on the power generation of the photovoltaic module 230, thereby achieving power management, reducing power waste, and improving the power reliability of the photovoltaic pet house 200.

[0060] In some examples, such as Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, the multiple electrical devices 250 include an air conditioner 251, a lighting lamp 252, a camera 253, an ultraviolet lamp (UV), a sensor, an automatic feeding device 256, a display control panel 257, an electric door 258, and an electric ventilation window 259.

[0061] Understandably, in order to illustrate the electrical components 250 disposed within the first accommodating space D1, Figure 3 and Figure 4 The wall panel body 291 and the components disposed on the wall panel body 291 (such as the display control panel 257 and the electric door 258) are omitted.

[0062] The following examples illustrate several electrical components 250.

[0063] like Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, the air conditioner 251 may include an indoor unit 2511 and an outdoor unit 2512. The indoor unit 2511 may be installed in the first accommodating space D1 and connected to the wall panel body 291, and the outdoor unit 2512 may be installed outside the first accommodating space D1 and connected to the wall panel body 291.

[0064] Air conditioner 251 can have functions such as air purification, low-temperature heating, and high-temperature cooling. For example, ... Figure 4 As shown, the indoor unit 2511 may include a filter element 2511a and an electric heating wire 2511b. The filter element 2511a can perform functions such as deodorization, hair removal, and bacteria control, while the electric heating wire 2511b can heat the air to achieve the temperature rise function. The indoor unit 2511 may have an air outlet 2511c on its outer casing, allowing cold or hot air to flow into the first receiving space D1 through the air outlet 2511c.

[0065] The lighting 252 can be installed in the first accommodating space D1 and connected to the roof 210 or wall panel 290. Understandably, the lighting 252 is capable of providing illumination to improve the living comfort of the pet.

[0066] Camera 253 is capable of capturing image information; for example, the camera can be an infrared camera. Alternatively, the camera can be other types of cameras, and the embodiments of this application do not further limit the type of camera.

[0067] The number of cameras 253 can be multiple, with multiple cameras 253 installed inside and outside the first accommodating space D1 respectively, to collect image information around the photovoltaic pet house 200.

[0068] The ultraviolet (UV) lamp can be installed within the first accommodating space D1 and connected to the roof 210 or wall panel 290. Understandably, the UV lamp emits ultraviolet light to sterilize, reduce bacterial growth, and protect the pet's health. For example, the UV lamp and lighting lamp 252 can be integrated together. Alternatively, the UV lamp and lighting lamp 252 can be installed separately.

[0069] The sensors may include environmental detection sensors, bacteria detection sensors, humidity detection sensors, dirt sensors, etc. The embodiments of this application do not further limit the specific form of the sensors. The sensors may be disposed within the first accommodating space D1. For example, the sensors may be disposed within the indoor unit 2511.

[0070] The automatic feeding device 256 can be installed in the first accommodating space D1 and connected to the wall panel body 291. The automatic feeding device 256 can feed food and water to the pet.

[0071] The display control panel 257 can be located outside the first accommodating space D1 and connected to the wall panel body 291. The display control panel 257 may include a touch screen, or a regular screen and control buttons.

[0072] The display screen can show the current status of the photovoltaic pet house 200, such as the temperature and humidity in the first holding space D1, the remaining pet food and water, and the remaining power of the battery 240. Users can control other electrical devices 250 by touching the display or pressing the control buttons, such as turning the air conditioner 251 on or off, turning the lights 252 on or off, and adjusting the temperature of the air conditioner 251.

[0073] The electric door 258 can be a sensor door. The electric door 258 is connected to the wall panel body 291 and can open or close the entrance and exit opened on the wall panel body 291.

[0074] Figure 5 This is a schematic diagram of the structure of an electrically operated ventilation window provided in some embodiments of this application.

[0075] Understandably, the electrically operated ventilation window 259 can adjust the ventilation status of the first accommodating space D1. For example, as... Figure 5 As shown, the wall panel body 291 may have multiple first ventilation holes. The electric ventilation window 259 may include a first drive unit 2591 and a ventilation plate 2592, and the ventilation plate 2592 may have multiple second ventilation holes.

[0076] The first drive unit 2591 can drive the ventilation plate 2592 to move between a first position and a second position. When the ventilation plate 2592 moves to the first position, the first ventilation hole and the second ventilation hole can communicate, and the first receiving space D1 can be ventilated through the electric ventilation window 259. When the ventilation plate 2592 moves to the second position, the first ventilation hole and the second ventilation hole can be separated, and the first receiving space D1 cannot be ventilated through the electric ventilation window 259.

[0077] Alternatively, the electric ventilation window 259 may be any other structure besides the one described above. The embodiments of this application do not further limit the specific form of the electric ventilation window 259.

[0078] For example, the photovoltaic pet house 200 may also include a remote connection module, with the photovoltaic module 230 and the battery 240 electrically connected to the remote connection module, and at least one of the photovoltaic module 230 and the battery 240 supplying power to the remote connection module so that the remote connection module can function properly.

[0079] The remote connection module can be electrically connected to the controller and the electrical device 250, and it can also remotely connect to other devices. For example, the remote connection module can connect to other devices via Bluetooth or a wireless network (Wi-Fi), or it can connect to other devices in other ways. The embodiments of this application do not further limit the way the remote connection module connects to other devices.

[0080] For example, the remote connection module can connect to an application (APP) installed on a smart device, allowing users to view the current operating status of the photovoltaic pet house 200 and obtain the current status of the pet. Furthermore, users can send control commands to the remote connection module via the APP, and the remote connection module can send the control commands to the controller to control the electrical components 250.

[0081] For example, users can control the temperature, cooling or heating, and opening or closing of the air conditioner 251 via the APP, and control the opening or closing of electrical devices 250 such as lighting 252, ultraviolet lamp, electric door 258 and electric ventilation window 259 via the APP.

[0082] When the air conditioner 251 malfunctions (e.g., when the filter 2511a needs to be replaced), or when the lighting 252, UV lamp, electric door 258, or electric ventilation window 259 is damaged, the controller can send a prompt message to the APP to remind the user to perform repairs or replacements.

[0083] Users can also view the images captured by camera 253 through the app to see their pet's current location. In case of malfunction (e.g., damage) of camera 253, the controller can send a notification to the app to remind the user to repair or replace camera 253.

[0084] Users can control the automatic feeding device 256 to feed their pets at different times and in different amounts via an app. The automatic feeding device 256 can also provide feedback to the user via the app regarding the pet's feeding time and weight. When the pet's food and water levels in the automatic feeding device 256 are low, for example, when the remaining food and water are less than the pet's needs for 1 or 3 days, the controller can send a notification to the app to remind the user to add more food and water.

[0085] The remote control module can also be electrically connected to the photovoltaic module 230 and the battery 240. Users can obtain the power generation of the photovoltaic module 230 and the stored power of the battery 240 through the APP. When the photovoltaic module 230 or the battery 240 malfunctions, the controller can send a prompt message to the APP to remind the user to perform maintenance or replacement.

[0086] When the stored power in the battery 240 is low (e.g., below 20%, 10%, or 5% of its capacity), the controller can send a notification to the app to remind the user to charge the battery, thus improving the power reliability of the photovoltaic pet house 200.

[0087] It is understood that the embodiments of this application do not further limit the information that users can view through the APP or the operations that they can perform on the electrical device 250.

[0088] For example, the controller can also control multiple electrical devices 250 to work together. For instance, a sensor can send detected information to the controller, which can then control the other electrical devices 250 to turn on or off based on the sensor's detection information.

[0089] For example, the environmental detection sensor can detect environmental parameters within the first containment space D1, such as the temperature within the first containment space D1. When the temperature within the first containment space D1 is too high or too low, the controller can control the air conditioner 251 to turn on to adjust the temperature within the first containment space D1.

[0090] The bacterial detection sensor can check the bacterial content of the first containment space D1. If the bacterial content in the first containment space D1 is too high and the pet is not in the first containment space D1, the controller can control the ultraviolet lamp to turn on to kill bacteria and avoid the ultraviolet light from harming the pet.

[0091] The humidity sensor can detect the humidity of the first containment space D1. When the humidity content in the first containment space D1 is too high, the controller can control the air conditioner 251 to dry the air. When the humidity content in the first containment space D1 is too low, the controller can control other electrical devices (such as a humidifier) ​​to turn on to humidify the air.

[0092] The dirt sensor detects the degree of dirt in the first receiving space D1. When the dirt in the first receiving space D1 is too high, for example, when water residue is detected on the base 280, the controller can control the air conditioner 251 or the electric ventilation window 259 to open for self-cleaning.

[0093] In addition, when the air conditioner 251 is turned on, if the temperature difference between the first accommodating space D1 and the ambient temperature outside the first accommodating space D1 is greater than 5 degrees Celsius, the controller can control the electric door 258 to close and the electric ventilation window 259 to close, so as to reduce the energy consumption of the air conditioner 251.

[0094] Furthermore, when the camera 253 detects favorable weather conditions, the controller can open the electric ventilation window 259 to ventilate the first enclosure space D1, improving air quality within D1, and also shut down the air conditioner 251 to reduce energy consumption. Additionally, the controller can keep the electric door 258 open to facilitate pet access.

[0095] When camera 253 detects bad weather, such as during heavy rain, if the pet is in the first containment space D1 or not near the photovoltaic pet house 200, the controller can close the electric ventilation window 259 and the electric door 258 to reduce the risk of rainwater entering the first containment space D1.

[0096] When the pet house leaves the first containment space D1, the controller can turn off the air conditioner 251 and open the electric ventilation window 259 to ventilate the first containment space D1.

[0097] Understandably, the controller can also control multiple electrical devices 250 to work together in other ways besides those described above, in order to improve the performance of the photovoltaic pet house 200.

[0098] For example, in addition to the controller controlling multiple electrical devices 250 to work in tandem and the user operating the electrical devices 250 via an APP, the multiple electrical devices 250 can also automatically turn on or off within a set time period to improve the ease of use of the photovoltaic pet house 200. For example, the air conditioner 251 can automatically turn on for 6 to 8 hours per day.

[0099] Understandably, electrical device 250 may also include other electrical devices besides those mentioned above.

[0100] For example, when the pet is a cat, the electrical device 250 may also include an electric litter box. Alternatively, the electrical device 250 may also include a water dispenser. During the first few days of use of the photovoltaic pet house 200, the controller can automatically record the daily power consumption of the photovoltaic pet house 200 and predict the remaining power supply time.

[0101] Figure 6 This is a line graph illustrating the power generation of the photovoltaic module in different locations for some embodiments of the photovoltaic pet house provided in this application.

[0102] Figure 6 In the diagram, the filled area represents solar irradiance, measured in kilowatt-hours per square meter. The horizontal axis represents different days, i.e., day 1, day 2, day 3... day 14. The vertical axis represents the power generation of the PV module 230, measured in kilowatt-hours.

[0103] from Figure 6 As can be seen, when the photovoltaic pet house 200 is placed on a balcony, the power generation of the photovoltaic module 230 is relatively small. However, when the photovoltaic pet house 200 is placed in an open outdoor area, such as a villa garden or factory platform, the power generation of the photovoltaic module 230 is relatively large.

[0104] Table 1 is a comparison table of the power, average daily working time and energy consumption of different electrical components 250 and components such as controllers and remote connection modules.

[0105] Table 1

[0106] As shown in Table 1, the daily energy consumption of the above-mentioned devices is approximately 1.24 kWh. Under normal circumstances, the power generation of the photovoltaic module 230 is greater than or equal to the power consumption of the electrical device 250 in operation.

[0107] Understandably, the power consumption of the set-operation electrical device 250 can be the total power consumption of the electrical device 250 that needs to operate within a certain time period. The number of set-operation electrical devices 250 within the same time period can be one or more, and the embodiments of this application do not further limit the number of set-operation electrical devices 250 within the same time period.

[0108] When the weather is bad or the photovoltaic module 230 is blocked by foreign objects, the power generation of the photovoltaic module 230 is small and cannot meet the energy consumption requirements of the electrical device 250 set to operate.

[0109] For example, when the power generation of the photovoltaic module 230 cannot meet the power demand of the set-operation electrical device 250, the display control panel 257 can display a prompt message, and the APP can also send a prompt message to the user.

[0110] In some examples, the controller is configured as follows: When the power generation of the photovoltaic module 230 is equal to the power consumption of the set-operation electrical device 250, the photovoltaic module 230 is controlled to supply power to the set-operation electrical device 250.

[0111] When the power generation of the photovoltaic module 230 is greater than the power consumption of the set-operation electrical device 250, the photovoltaic module 230 is controlled to supply power to the set-operation electrical device 250, and the photovoltaic module 230 is controlled to store the remaining power in the battery 240.

[0112] When there are multiple electrical devices 250 set to operate, and the power generation of the photovoltaic module 230 is less than the power consumption of the multiple electrical devices 250 set to operate, the photovoltaic module 230 and the battery 240 are controlled to supply power to at least one electrical device 250 set to operate.

[0113] Understandably, when the power generation of the photovoltaic module 230 is equal to the power consumption of the set-operation electrical device 250, the controller can control the photovoltaic module 230 to supply power to the set-operation electrical device 250, so that the set-operation electrical device 250 can work normally to meet the pet's usage needs.

[0114] When the power generation of the photovoltaic module 230 is greater than the power consumption of the set-operation electrical device 250, the controller can control the photovoltaic module 230 to supply power to the set-operation electrical device 250 and control the photovoltaic module 230 to store the remaining electrical energy in the battery 240, reducing energy waste and enabling the battery 240 to supply power to the electrical device 250 when the power generation of the photovoltaic module 230 is small.

[0115] When there are multiple electrical devices 250 set to operate, and the power generation of the photovoltaic module 230 is less than the power consumption of the multiple electrical devices 250 set to operate, the controller can control the photovoltaic module 230 and the battery 240 to supply power to at least one electrical device 250 set to operate, so that at least one electrical device 250 among the multiple electrical devices 250 set to operate can work normally under the combined action of the photovoltaic module 230 and the battery 240 to meet the pet's usage needs.

[0116] Understandably, when the number of electrical devices 250 set to operate is one, and the power generation of the photovoltaic module 230 is less than the power consumption of the multiple electrical devices 250 set to operate, the controller can control the photovoltaic module 230 and the battery 240 to supply power to the one electrical device 250 set to operate, so that the electrical device 250 can work normally to meet the pet's needs.

[0117] By adopting the above configuration, the flexibility of photovoltaic modules 230 and batteries 240 in supplying power to electrical devices 250 can be improved, power management can be realized, and the power reliability of photovoltaic pet house 200 can be improved.

[0118] In some examples, multiple electrical devices 250 include a first electrical device and a second electrical device, wherein the energy consumption of the first electrical device is less than that of the second electrical device, and the first electrical device includes a first priority electrical device and a second priority electrical device.

[0119] In some examples, the first electrical device includes a lighting fixture 252, a camera, an ultraviolet lamp, a sensor, an automatic feeding device 256, a display control panel 257, an electric door 258, and an electric ventilation window 259. The automatic feeding device and the camera are first-priority electrical devices, while the lighting fixture, ultraviolet lamp, sensor, display control panel, electric door, and electric ventilation window are second-priority electrical devices. The second electrical device includes an air conditioner 251.

[0120] When the power generation of the photovoltaic module 230 is less than the power consumption of the multiple electrical devices 250 set to operate, and the power of the battery 240 is less than or equal to a first set power value, the controller is configured to control the photovoltaic module 230 and the battery 240 to supply power to at least one first electrical device set to operate.

[0121] When the power generation of the photovoltaic module 230 is less than the power consumption of the multiple electrical devices 250 set to operate, and the power of the battery 240 is less than or equal to the second set power, the controller is configured to control the photovoltaic module 230 and the battery 240 to supply power to at least one first priority electrical device set to operate.

[0122] Wherein, the second set power value is less than the first set power value.

[0123] In other words, when the power generation of the photovoltaic module 230 is less than the power consumption of the multiple electrical devices 250 set to operate, and the power of the battery 240 is less than or equal to the first set power value, the controller can control the photovoltaic module 230 and the battery 240 to supply power to at least one of the electrical devices 250 set to operate, including the lighting 252, camera 253, ultraviolet lamp, sensor, automatic feeding device 256, display control panel 257, electric door 258 and electric ventilation window 259. That is, at this time, the photovoltaic module 230 and the battery 240 stop supplying power to the air conditioner 251, so as to reduce the energy consumption of the electrical devices 250 set to operate, extend the operating time of the electrical devices 250 set to operate, and meet most of the pet's needs.

[0124] When the power generation of the photovoltaic module 230 is less than the power consumption of the multiple electrical devices 250 set to operate, and the power of the battery 240 is less than or equal to the second set power value, the controller can control the photovoltaic module 230 and the battery 240 to supply power to at least one of the electrical devices set to operate in the automatic feeding device 256 and the camera 253. That is, at this time, the photovoltaic module 230 and the battery 240 stop supplying power to the electrical devices 250 such as the air conditioner 251, the lighting 252, the ultraviolet lamp, the sensor, the display control panel 257, the electric door 258, and the electric ventilation window 259, so as to reduce the energy consumption of the electrical devices 250 set to operate, extend the operating time of the electrical devices 250 set to operate, and meet the basic needs of the pet.

[0125] Understandably, when the power generation of the photovoltaic module 230 is less than the power consumption of the set operating electrical device 250, and the power of the battery 240 is less than or equal to the second set power value, the photovoltaic module 230 and the battery 240 can supply power to the controller and the remote connection module, enabling the controller and the remote connection module to work normally.

[0126] For example, the first set power can be 0.3 kWh, and the second set power can be 0.15 kWh. Alternatively, the first set power and the second set power can also be other values. The embodiments of this application do not further limit the values ​​of the second set power and the first set power.

[0127] In other examples, when the power generation of the photovoltaic module 230 is less than the power consumption of the plurality of electrical devices 250 set to operate, and the power of the battery 240 is less than or equal to a first power percentage, the controller is configured to control the photovoltaic module 230 and the battery 240 to supply power to at least one first electrical device set to operate.

[0128] When the power generation of the photovoltaic module 230 is less than the power consumption of the multiple electrical devices 250 set to operate, and the power of the battery 240 is less than or equal to a second power percentage, the controller is configured to control the photovoltaic module 230 and the battery 240 to supply power to at least one first priority electrical device set to operate.

[0129] The second battery percentage is less than the first battery percentage.

[0130] Understandably, the battery percentage is the ratio of the remaining charge of the battery 240 to its capacity. The first battery percentage can be 25% or 20%, and the second battery percentage can be 10% or 5%. Alternatively, the first battery percentage and the second battery percentage can be other values, and the embodiments of this application do not further limit the values ​​of the first battery percentage and the second battery percentage.

[0131] In some examples, the controller keeps the electric door 258 in a normally open state while the controller controls the photovoltaic module 230 and the battery 240 to supply power to the first priority electrical device.

[0132] This design allows pets to move freely in and out, reducing the impact of insufficient power from the photovoltaic module 230 and the battery 240 on pet activities.

[0133] In some examples, the controller keeps the motorized ventilation window 259 in a normally open state while the controller controls the photovoltaic module 230 and the battery 240 to supply power to the first priority electrical device.

[0134] This configuration allows the air in the first containment space D1 to flow freely, reducing the impact of insufficient power from the photovoltaic module 230 and the battery 240 on the air quality in the first containment space D1.

[0135] like Figure 2 As shown, in some examples, the electrical control box 201 is located outside the first receiving space D1 and connected to the wall panel 290. The photovoltaic module 230 and the battery 240 are electrically connected to the electrical control box 201, respectively. The photovoltaic module 230 supplies power to at least one of the electrical device 250 and the battery 240 through the electrical control box 201, and the battery 240 supplies power to the electrical device 250 through the electrical control box 201.

[0136] Understandably, the electrical energy generated by the photovoltaic module 230 can be collected in the electrical control box 201, and then supplied to the battery 240 and the electrical device 250 through the electrical control box 201. The electrical energy output by the battery 240 can be collected in the electrical control box 201, and then supplied to the electrical device 250 through the electrical control box 201.

[0137] For example, the photovoltaic pet house 200 may also include a maximum power point tracker (MPPT), which can be located within the electrical summary box 201. The MPPT is electrically connected to the photovoltaic module 230, enabling the photovoltaic module 230 to operate at its maximum output power, thereby maximizing the output power of the photovoltaic module 230.

[0138] Figure 7 This is a schematic diagram showing the positional relationship between the support plate and the roof when the support plate is in the unfolded state, according to some embodiments of this application. Figure 8 This is a schematic diagram showing the positional relationship between the support plate and the roof when the support plate is in a retracted state, as provided in some embodiments of this application.

[0139] Continue to refer to Figure 1 and Figure 2In some examples, the photovoltaic pet house 200 also includes a support plate 220. One end of the support plate 220 is rotatably connected to the roof 210, and the support plate 220 is configured to rotate relative to the roof 210 to switch between an extended state and a retracted state. Figure 7 As shown, when the support plate 220 is in the unfolded state, there is an angle between the support plate 220 and the roof 210. Figure 8 As shown, when the support plate 220 is in the retracted state, the support plate 220 is attached to the roof 210. The photovoltaic module 230 is disposed on the side of the support plate 220 away from the roof 210 and is connected to the support plate 220.

[0140] The support plate 220 and the roof 210 are rotatably connected, allowing the support plate 220 to switch between an extended state and a retracted state. The photovoltaic module 230 is located on the side of the support plate 220 away from the roof 210 and is connected to the support plate 220, so that when the support plate 220 rotates relative to the roof 210, it can drive the photovoltaic module 230 to rotate relative to the roof 210.

[0141] Understandably, the support plate 220 is rotatable relative to the roof 210, so that the angle between the support plate 220 and the roof 210 is adjustable when the support plate 220 is in the unfolded state. The embodiments of this application do not further limit the value of the angle between the support plate 220 and the roof 210 when the support plate 220 is in the unfolded state.

[0142] The support plate 220 can drive the photovoltaic module 230 to rotate relative to the roof 210. In this way, the relative position of the support plate 220 and the roof 210 can be adjusted according to the angle of sunlight, so that the position of the photovoltaic module 230 can be changed, which helps to increase the intensity of light shining on the photovoltaic module 230, thereby increasing the output power of the photovoltaic module 230 and meeting the power needs of multiple electrical devices 250.

[0143] In some examples, the support plate 220 can be manually rotated so that the support plate 220 and the photovoltaic module 230 can rotate relative to the roof 210, allowing the support plate 220 to switch between an extended state and a retracted state.

[0144] In other examples, the photovoltaic pet house 200 may also include a second drive unit, which may include a cylinder or a motor. The second drive unit may be connected to the support plate 220 to drive the support plate 220 to rotate relative to the roof 210, thereby enabling the support plate 220 to switch between an extended state and a retracted state.

[0145] Refer again Figure 1 , Figure 2 , Figure 3 and Figure 4In some examples, the photovoltaic pet house 200 also includes a support rod 270 that can support the support plate 220 so that the support plate 220 can be kept in the unfolded state.

[0146] In some examples, such as Figure 1 , Figure 2 and Figure 3 As shown, the roof 210 includes a ridge 211 and a top plate 212. The ridge 211 extends along a first direction X. The top plate 212 is disposed along a second direction Y on at least one side of the ridge 211 and connected to the ridge 211, the second direction Y being perpendicular to the first direction X.

[0147] For example, the second direction Y and the first direction X can be perpendicular or approximately perpendicular. That is, the angle between the second direction Y and the first direction X can be 90°, or it can be 88° or 89°, etc.

[0148] The number of roof panels 212 can be one or two. When there is one roof panel 212, the roof panel 212 is disposed on one side of the ridge 211 along the second direction Y and connected to the ridge 211. When there are two roof panels 212, the two roof panels 212 are disposed on both sides of the ridge 211 along the second direction Y and connected to the ridge 211 respectively.

[0149] For example, such as Figure 1 , Figure 2 and Figure 3 As shown, along the direction from the ridge 211 to the top plate 212, the top plate 212 can gradually approach the bottom support 280. Alternatively, along the direction from the ridge 211 to the top plate 212, the distance between the top plate 212 and the bottom support 280 at different positions can also be equal or approximately equal.

[0150] Continue to refer to Figure 1 , Figure 2 and Figure 3 In some examples, the support plate 220 is disposed on one side of the top plate 212 along the thickness direction of the top plate 212, and one end of the support plate 220 is rotatably connected to the top plate 212. Understandably, the support plate 220 is rotatably connected to the side of the top plate 212 away from the base 280.

[0151] This arrangement allows the photovoltaic module 230, located on the side of the support plate 220 away from the top plate 212, to be exposed, so that light can reach the photovoltaic module 230.

[0152] The support plate 220 can rotate relative to the top plate 212 about a first direction X, or the support plate 220 can also rotate relative to the top plate 212 about a second direction Y. Alternatively, the support plate 220 can also rotate about other directions, and the embodiments of this application do not further limit this.

[0153] Refer again Figure 1 , Figure 2 and Figure 3 In some examples, the roof slab 212 includes a first roof slab 2121 and a second roof slab 2122, which are disposed on both sides of the ridge 211 along the second direction Y and are respectively connected to the ridge 211.

[0154] The support plate 220 includes a first support plate 221 and a second support plate 222. The first support plate 221 is disposed on one side of the first top plate 2121 along the thickness direction of the first top plate 2121, and one end of the first support plate 221 is rotatably connected to the first top plate 2121. The second support plate 222 is disposed on one side of the second top plate 2122 along the thickness direction of the second top plate 2122, and one end of the second support plate 222 is rotatably connected to the second top plate 2122.

[0155] The photovoltaic module 230 includes a first photovoltaic module 231 and a second photovoltaic module 232. The first photovoltaic module 231 is disposed on the side of the first support plate 221 away from the first top plate 2121 and is connected to the first support plate 221. The second photovoltaic module 232 is disposed on the side of the second support plate 222 away from the second top plate 2122 and is connected to the second support plate 222.

[0156] This setup increases the number of photovoltaic modules 230 in the photovoltaic pet house 200, thereby increasing the power generation of the photovoltaic modules 230 and meeting the power needs of multiple electrical devices 250.

[0157] Understandably, the first support plate 221 and the second support plate 222 can rotate relative to the first top plate 2121 and the second top plate 2122 respectively, thereby reducing the mutual influence between the first support plate 221 and the second support plate 222 during rotation.

[0158] Figure 9 This is a schematic diagram of the structure of the top plate provided in some embodiments of this application. Figure 10 for Figure 9 A magnified schematic diagram of the local structure of region B1.

[0159] In some examples, such as Figure 7 and Figure 8 As shown, the surface of the top plate 212 near the support plate 220 is the first surface P1, as... Figure 9 and Figure 10 As shown, a first receiving groove M1 is provided on the first surface P1. When the support plate 220 is in the retracted state, the support plate 220 is embedded in the first receiving groove M1. The surface of the support plate 220 facing away from the top plate 212 is the second surface P2, and the second surface P2 is flush with the first surface P1.

[0160] Understandably, when the support plate 220 is in the retracted state, the second surface P2 and the first surface P1 can be flush or approximately flush.

[0161] When the support plate 220 is in the retracted state, the second surface P2 and the first surface P1 are flush, which can improve the structural regularity of the photovoltaic pet house 200 and reduce the risk of the support plate 220 rubbing against other objects when it is in the retracted state.

[0162] For example, the length of the support plate 220 along the second direction Y and the length of the first receiving groove M1 along the second direction Y can be equal or approximately equal, so that when the support plate 220 is in the retracted state, the side wall of the end of the support plate 220 away from the ridge 211 and the groove wall of the first receiving groove M1 can fit together, thereby improving the structural regularity of the photovoltaic module 230.

[0163] Alternatively, the length of the support plate 220 along the second direction Y can be less than the length of the first receiving groove M1 along the second direction Y, so that when the support plate 220 is in the retracted state, the side wall of the support plate 220 away from the ridge 211 and the groove wall of the first receiving groove M1 can be spaced apart, so that the side wall of the support plate 220 away from the ridge 211 can be exposed, thereby improving the convenience of switching the support plate 220 from the retracted state to the unfolded state.

[0164] Figure 11 This is a schematic diagram of the structure of a support plate provided in some embodiments of this application. For example, such as... Figure 11 As shown, a second receiving groove M2 can be formed on the second surface P2, and the photovoltaic module 230 can be embedded in the second receiving groove M2 and connected to the support plate 220. The surface of the photovoltaic module 230 away from the top plate 212 can be approximately flush with the second surface P2 to improve the structural regularity of the photovoltaic pet house 200 and reduce the risk of the photovoltaic module 230 rubbing against other objects.

[0165] As described above, the support plate 220 and the roof 210 are rotatably connected to switch between an extended state and a retracted state. The following is an example illustrating the rotatable connection between the support plate 220 and the roof 210.

[0166] In some examples, such as Figure 9 and Figure 10 As shown, a clearance groove M3 may be provided on the first surface P1. The clearance groove M3 is disposed on one side of the first receiving groove M1 along the second direction Y, and the clearance groove M3 and the first receiving groove M1 are connected.

[0167] like Figure 10As shown, the clearance groove M3 includes a first groove wall M31 and a second groove wall (not shown in the figure) arranged opposite each other along the first direction X. The first groove wall M31 and the second groove wall are respectively provided with a first limiting hole N1.

[0168] Figure 12 for Figure 11 A magnified schematic diagram of a portion of region B2. For example, as shown... Figure 11 and Figure 12 As shown, the support plate 220 may include a support plate body 2201 and a connecting column 2202. The support plate body 2201 has a plate-like structure, and a first receiving groove M1 and a clearance groove M3 are formed on the support plate body 2201. The connecting column 2202 has a cylindrical or approximately cylindrical structure.

[0169] There are two connecting posts 2202. Along the second direction Y, the two connecting posts 2202 are arranged on both sides of the support plate body 2201 and are respectively connected to the support plate body 2201.

[0170] The connecting post 2202 can be embedded in the first limiting hole N1 and can rotate within the first limiting hole N1. The clearance groove M3 can avoid the end of the support plate body 2201 approaching the connecting post 2202, so that the support plate 220 can rotate relative to the top plate 212 around the first direction X.

[0171] Understandably, the support plate 220 may also be rotatably connected to the top plate 212 in other ways. The embodiments of this application do not further limit the way the support plate 220 and the top plate 212 are rotatably connected.

[0172] In some examples, the support rod 270 is detachably connected between the support plate 220 and the top plate 212.

[0173] Understandably, when the support plate 220 is in the unfolded state, the support rod 270 can support the support plate 220, so that the support plate 220 can be kept in the unfolded state, thereby increasing the light intensity irradiated to the photovoltaic module 230 and thus increasing the output power of the photovoltaic module 230.

[0174] For example, the number of support rods 270 can be one or more. When there are multiple support rods 270, the multiple support rods 270 can be spaced apart along the first direction X, and can be detachably connected between the support plate 220 and the top plate 212 respectively.

[0175] Understandably, before the support plate 220 switches from the unfolded state to the retracted state, the support rod 270, the support plate 220, and the top plate 212 can be separated so that the support plate 220 can fit into the top plate 212.

[0176] In some examples, such as Figure 7 As shown, the support rod 270 may include a first sub-support rod 271 and a second sub-support rod 272. The second sub-support rod 272 is sleeved on the first sub-support rod 271, and the first sub-support rod 271 is telescopic relative to the second sub-support rod 272.

[0177] For example, the first sub-support rod 271 and the second sub-support rod 272 can be connected by external and internal threads, so that the first sub-support rod 271 and the second sub-support rod 272 can be relatively fixed together. Alternatively, the first sub-support rod 271 and the second sub-support rod 272 can also be relatively fixed together by a structure such as a pin. The embodiments of this application do not further limit the method of relatively fixing the first sub-support rod 271 and the second sub-support rod 272.

[0178] Understandably, the first sub-support rod 271 is telescopic relative to the second sub-support rod 272, and the first sub-support rod 271 and the second sub-support rod 272 can be relatively fixed, so that the length of the support rod 270 can be adjusted, and the support rod 270 can be maintained at different unfolding angles to meet the irradiation requirements under different light angles, which is beneficial to improving the output power of the photovoltaic module 230.

[0179] Or, such as Figure 2 and Figure 3 As shown, the support rod 270 can also be an integral structure, excluding the first and second sub-rods. The embodiments of this application do not further limit the specific structure of the support rod 270.

[0180] The following example illustrates the detachable connection between the support rod 270, the support plate 220, and the top plate 212.

[0181] Figure 13 for Figure 11 A magnified schematic diagram of the local structure of region B3. Figure 14 for Figure 7 A magnified schematic diagram of the local structure of region B4. Figure 15 for Figure 7 A magnified schematic diagram of the local structure of region B5.

[0182] In some examples, such as Figure 13 As shown, a second limiting hole N2 is provided on the surface of the support plate 220 near the top plate 212. Figure 14 As shown, the photovoltaic pet house 200 may also include a first connector 204, which is rotatably connected to the end of the support rod 270. For example, the first connector 204 may be rotatably connected to the end of the first sub-support rod 271 away from the second sub-support rod 272.

[0183] A third limiting hole (located in the figure) may be provided on the end face of the first connector 204 away from the support rod 270. The third limiting hole and the second limiting hole N2 are arranged opposite to each other. The photovoltaic module 230 may also include a first plug-in 203. One end of the first plug-in 203 may be embedded in the second limiting hole N2, and the other end may be embedded in the third limiting hole. The first plug-in 203 is separable relative to the second limiting hole N2 and the third limiting hole, so that the support rod 270 and the support plate 220 can be detachably connected.

[0184] Furthermore, the first connector 204 and the support rod 270 are rotatably connected, making the included angle between the support rod 270 and the first connector 204 adjustable, thereby improving the applicability of the support rod 270.

[0185] like Figure 15 As shown, the support rod 270 may also include a second connector 205, which is rotatably connected to the end of the support rod 270 away from the first connector 204. For example, the second connector 205 may be rotatably connected to the end of the second sub-support rod 272 away from the first sub-support rod 271.

[0186] The second connector 205 may have a fourth limiting hole, and the top plate 212 may have a fifth limiting hole, with the fourth and fifth limiting holes positioned opposite each other. The photovoltaic module 230 may also include a second connector, one end of which may be inserted into the fourth limiting hole and the other end of which may be inserted into the fifth limiting hole. The second connector is separable from the fourth and fifth limiting holes, allowing the support rod 270 and the top plate 212 to be detachably connected.

[0187] Furthermore, the second connector 205 and the support rod 270 are rotatably connected at the ends away from the first connector 204, making the included angle between the support rod 270 and the second connector 205 adjustable, thus improving the applicability of the support rod 270.

[0188] Figure 16 This is a schematic diagram of the structure of the base provided in some embodiments of this application. Figure 17 This is a schematic diagram of the structure of the base provided in some other embodiments of this application.

[0189] In some examples, such as Figure 16 and Figure 17 As shown, a second receiving space D2 is formed inside the base 280, and multiple batteries 240 are detachably installed in the second receiving space D2.

[0190] This design ensures that the battery 240 does not take up space where the pet can move around, and the base 280 can cover the battery 240, thus protecting the battery 240 and reducing the risk of damage to the battery 240.

[0191] Continue to refer to Figure 16 and Figure 17 In some examples, the base 280 includes a base plate 281, a protrusion 282, and a pull-out portion 283. The base plate 281 is connected to the wall panel 290. The protrusion 282 is located on the side of the base plate 281 away from the wall panel 290 and is connected to the base plate 281. For example, the protrusion 282 and the base plate 281 can be an integrally formed structure to improve the reliability of their connection.

[0192] The protrusion 282 and the base plate 281 enclose a second receiving space D2. A pull-out part 283 is disposed in the second receiving space D2. The pull-out part 283 can be pulled out relative to the base plate 281 and the protrusion 282. The pull-out part 283 encloses a battery receiving slot, and the battery 240 is disposed in the battery receiving slot.

[0193] For example, the pull-out portion 283 and the protrusion 282 can be pulled out relative to the base plate 281 and the protrusion 282 through the cooperation structure of the guide rail and the slider. Alternatively, the pull-out portion 283 can also be pulled out relative to the base plate 281 and the protrusion 282 through a structure such as a pulley. The embodiments of this application do not further limit this.

[0194] The pull-out section 283 is retractable relative to the protrusion 282 and the base plate 281. The battery 240 is located in the battery receiving slot enclosed by the pull-out section 283, which improves the convenience of taking out or putting back the battery 240, thereby improving the ease of use of the photovoltaic pet house 200.

[0195] In some examples, such as Figure 2 As shown, there are two pull-out parts 283, which can be pulled out relative to the base plate 281 and the protrusion 282, respectively.

[0196] In this way, the battery 240 located in the battery receiving slot enclosed by one pull-out section 283 can be taken out for charging or maintenance, and the battery 240 located in the battery receiving slot enclosed by another pull-out section 283 can supply power to the electrical device 250, reducing the risk that the electrical device 250 will not work properly due to insufficient power.

[0197] Continue to refer to Figure 16 and Figure 17 In some examples, the base 280 also includes a sidewall 284 located on the side of the base plate 281 away from the wall panel 290 and connected to the base plate 281. Understandably, the sidewall 284 can enclose a protrusion 282. For example, the sidewall 284 and the base plate 281 can be an integrally formed structure to improve the reliability of their connection.

[0198] A convection port E1 is provided on the side wall 284, and the convection port E1 penetrates the side wall 284 along the thickness direction of the side wall 284, and at least a portion of the convection port E1 is located on the side of the protrusion 282 away from the bottom plate 281. There are multiple convection ports E1, and at least two of the multiple convection ports E1 are arranged opposite each other.

[0199] For example, multiple convection ports E1 can be arranged relative to each other along the first direction X, or relative to each other along the second direction Y, or relative to each other along other directions in the XY plane (the plane containing the first direction X and the second direction Y). The embodiments of this application do not further limit this.

[0200] Understandably, air can flow through the convection port E1 and over the protrusion 282, thereby dissipating heat from the battery 240 located within the protrusion 282 and reducing the risk of the battery 240 malfunctioning due to excessive temperature.

[0201] When the ambient temperature is high, such as in summer, the air flowing through the convection port E1 and the protrusion 282 dissipates heat from the battery 240, so that the heat emitted by the battery 240 can be conducted into the first housing space D1 as little as possible, thereby reducing the energy consumption of the air conditioner 251 and reducing the risk that the power generation of the photovoltaic module 230 cannot meet the power consumption of the air conditioner 251.

[0202] Refer again Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, in some examples, the base 280 may also include a baffle 285, which is detachably connected to the sidewall 284 and is capable of closing the convection port E1.

[0203] When the ambient temperature is low, such as in winter, the baffle 285 can be installed on the side wall 284 so that more of the heat dissipated by the battery 240 can be conducted into the first housing space D1, thereby reducing the energy consumption of the air conditioner 251 for heating and reducing the risk that the power generation of the photovoltaic module 230 cannot meet the power consumption of the air conditioner 251.

[0204] By setting up convection vent E1 and baffle 285, the first accommodation space D1 can be kept warm in winter and cool in summer, which is beneficial for pets to live in.

[0205] In some examples, the photovoltaic pet house 200 may also include an insect screen, which is detachably connected to the side wall 284 and can close the convection vent E1 to prevent insects.

[0206] Continue to refer to Figure 1 , Figure 2 and Figure 4In some examples, the base 280 may be provided with anti-slip texture 286. For example, the anti-slip texture 286 may be provided on the base plate 281 and the side wall 284. The anti-slip texture 286 may be positioned opposite to the electric door 258 to prevent slippage and reduce the risk of pets slipping when entering or exiting.

[0207] Continue to refer to Figure 1 , Figure 2 , Figure 3 and Figure 4 The photovoltaic pet house 200 may also include ground nails 202, and mounting holes may be provided on the base plate 281 and side wall 284. The ground nails 202 can pass through the mounting holes and protrude from the side wall 284.

[0208] Understandably, when the photovoltaic pet house 200 is placed on soft ground, such as on lawns or sandy ground, the part of the ground nail 202 protruding from the side wall 284 can be embedded in the ground to fix it and reduce the risk of the photovoltaic pet house 200 shifting or tipping over under external force.

[0209] like Figure 17 As shown in the example, the base 280 may also include a support 287, which may include a first support 2871 and a second support 2872.

[0210] The first support member 2871 is connected to the side of the base plate 281 away from the wall panel 290. For example, the first support member 2871 and the base plate 281 can be detachably connected to improve the installation flexibility of the first support member 2871 and enhance the transport convenience of the photovoltaic pet house 200. For instance, the first support member 2871 and the base plate 281 can be detachably connected by means of clips, threads, and bolts. Alternatively, the first support member 2871 and the base plate 281 can also be fixedly connected to improve the reliability of the connection.

[0211] There can be multiple first support members 2871, and these multiple first support members 2871 can be arranged in an array. The connection methods between the multiple first support members 2871 and the base plate 281 can be the same or different.

[0212] The second support member 2872 is connected to the side of the protrusion 282 away from the wall panel 290. For example, the second support member 2872 and the protrusion 282 can be detachably connected to improve the installation flexibility of the second support member 2872 and enhance the transportability of the photovoltaic pet house 200. For instance, the second support member 2872 and the protrusion 282 can be detachably connected by means of clips, threads, or bolts. Alternatively, the second support member 2872 and the protrusion 282 can also be fixedly connected to improve the reliability of the connection.

[0213] There can be multiple second support members 2872, and these multiple second support members 2872 can be arranged in an array. The connection methods between the multiple second support members 2872 and the protrusion 282 can be the same or different.

[0214] Understandably, the number of the first support member 2871 and the second support member 2872 may be equal or unequal. The embodiments of this application do not further limit the number of the first support member 2871 and the second support member 2872.

[0215] For example, the side of the first support member 2871 away from the base plate 281 can be flush with or approximately flush with the side of the side wall 284 away from the base plate 281, and the side of the second support member 2872 away from the protrusion 282 can be flush with or approximately flush with the side wall 284 away from the base plate 281. This allows the support members 287 (including the first support member 2871 and the second support member 2872) to support the base plate 281, which helps improve the mechanical strength of the base 280 and enhances the reliability of the photovoltaic pet house 200.

[0216] On the other hand, embodiments of this application provide a control method for a photovoltaic pet house. This control method can be used in the photovoltaic pet house 200 as described above.

[0217] The control methods for photovoltaic pet houses include: When the power generation of the photovoltaic module is equal to the power consumption of the electrical device in operation, the photovoltaic module supplies power to the electrical device in operation.

[0218] When the power generation of the photovoltaic module is greater than the power consumption of the set-operation electrical device, the photovoltaic module supplies power to the set-operation electrical device, and the photovoltaic module stores the remaining electrical energy in the battery.

[0219] When there are multiple electrical devices set to operate, and the power generation of the photovoltaic module is less than the power consumption of the multiple electrical devices set to operate, the photovoltaic module and the battery supply power to at least one electrical device set to operate.

[0220] Understandably, when the power generation of the photovoltaic module 230 is equal to the power consumption of the set-operation electrical device 250, the photovoltaic module 230 can be controlled to supply power to the set-operation electrical device 250, so that the set-operation electrical device 250 can work normally to meet the pet's usage needs.

[0221] When the power generation of the photovoltaic module 230 is greater than the power consumption of the set-operation electrical device 250, the photovoltaic module 230 can be controlled to supply power to the set-operation electrical device 250, and the photovoltaic module 230 can be controlled to store the remaining electrical energy in the battery 240, reducing energy waste, so that when the power generation of the photovoltaic module 230 is small, the battery 240 can supply power to the electrical device 250.

[0222] When there are multiple electrical devices 250 set to operate, and the power generation of the photovoltaic module 230 is less than the power consumption of the multiple electrical devices 250 set to operate, the photovoltaic module 230 and the battery 240 can be controlled to supply power to at least one electrical device 250 set to operate, so that at least one electrical device 250 among the multiple electrical devices 250 set to operate can work normally under the combined action of the photovoltaic module 230 and the battery 240 to meet the pet's usage needs.

[0223] By adopting the above configuration, the flexibility of photovoltaic modules 230 and batteries 240 in supplying power to electrical devices 250 can be improved, power management can be realized, and the power reliability of photovoltaic pet house 200 can be improved.

[0224] In some examples, when the power generation of the photovoltaic module is less than the power consumption of multiple electrical devices set to operate, the photovoltaic module and the battery supply power to at least one electrical device set to operate, including: When the power generation of the photovoltaic module is less than the power consumption of multiple electrical devices set to operate, and the power of the battery is less than or equal to a first set power value, the photovoltaic module and the battery are controlled to supply power to at least one first electrical device set to operate.

[0225] When the power generation of the photovoltaic module is less than the power consumption of multiple electrical devices set to operate, and the power of the battery is less than or equal to the second set power, the photovoltaic module and the battery are controlled to supply power to at least one first priority electrical device set to operate.

[0226] Wherein, the second set power value is less than the first set power value.

[0227] In other words, when the power generation of the photovoltaic module 230 is less than the power consumption of the multiple electrical devices 250 set to operate, and the power of the battery 240 is less than or equal to the first set power value, the photovoltaic module 230 and the battery 240 can be controlled to supply power to at least one of the electrical devices 250 set to operate, including the lighting 252, camera 253, ultraviolet lamp, sensor, automatic feeding device 256, display control panel 257, electric door 258 and electric ventilation window 259. That is, at this time, the photovoltaic module 230 and the battery 240 stop supplying power to the air conditioner 251, so as to reduce the energy consumption of the set electrical devices 250, extend the operating time of the set electrical devices 250, and meet most of the pet's needs.

[0228] When the power generation of the photovoltaic module 230 is less than the power consumption of the multiple electrical devices 250 set to operate, and the power of the battery 240 is less than or equal to the second set power value, the photovoltaic module 230 and the battery 240 can be controlled to supply power to at least one of the electrical devices set to operate in the automatic feeding device 256 and the camera 253. That is, at this time, the photovoltaic module 230 and the battery 240 stop supplying power to the electrical devices 250 such as the air conditioner 251, the lighting 252, the ultraviolet lamp, the sensor, the display control panel 257, the electric door 258, and the electric ventilation window 259, so as to reduce the energy consumption of the electrical devices 250 set to operate, extend the operating time of the electrical devices 250 set to operate, and meet the basic needs of the pet.

[0229] Understandably, when the power generation of the photovoltaic module 230 is less than the power consumption of the set operating electrical device 250, and the power of the battery 240 is less than or equal to the second set power value, the photovoltaic module 230 and the battery 240 can supply power to the remote connection module, enabling the remote connection module to work normally.

[0230] For example, the first set power can be 0.3 kWh, and the second set power can be 0.15 kWh. Alternatively, the first set power and the second set power can also be other values. The embodiments of this application do not further limit the values ​​of the second set power and the first set power.

[0231] In other examples, when the power generation of the photovoltaic module 230 is less than the power consumption of the plurality of electrical devices 250 set to operate, and the power of the battery 240 is less than or equal to a first power percentage, the photovoltaic module 230 and the battery 240 are configured to supply power to at least one first electrical device set to operate.

[0232] When the power generation of the photovoltaic module 230 is less than the power consumption of the multiple electrical devices 250 set to operate, and the power of the battery 240 is less than or equal to a second power percentage, it is configured to control the photovoltaic module 230 and the battery 240 to supply power to at least one first priority electrical device set to operate.

[0233] The second battery percentage is less than the first battery percentage.

[0234] Understandably, the battery percentage is the ratio of the remaining charge of the battery 240 to its capacity. The first battery percentage can be 25% or 20%, and the second battery percentage can be 10% or 5%. Alternatively, the first battery percentage and the second battery percentage can be other values, and the embodiments of this application do not further limit the values ​​of the first battery percentage and the second battery percentage.

[0235] In some examples, the electric gate is kept open while controlling the photovoltaic modules and batteries to supply power to the first priority electrical devices.

[0236] This design allows pets to move freely in and out, reducing the impact of insufficient power from the photovoltaic module 230 and the battery 240 on pet activities.

[0237] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.

Claims

1. A photovoltaic pet house, characterized in that, include: roof; A support plate, one end of which is rotatably connected to the roof, the support plate being configured to rotate relative to the roof to switch between an extended state and a retracted state, wherein when the support plate is in the extended state, there is an angle between the support plate and the roof, and when the support plate is in the retracted state, the support plate is attached to the roof. A photovoltaic module is disposed on the side of the support plate away from the roof and connected to the support plate. The photovoltaic module is used to convert light energy into electrical energy. The storage battery is electrically connected to the photovoltaic module; The electrical components are electrically connected to the photovoltaic module and the battery, and there are multiple electrical components; A controller, electrically connected to the photovoltaic module and the battery, wherein at least one of the photovoltaic module and the battery supplies power to the controller, and the controller is configured to: Based on the power generation of the photovoltaic module, at least one of the photovoltaic module and the battery is controlled to supply power to the electrical device.

2. The photovoltaic pet house according to claim 1, characterized in that, The controller is configured to: When the power generation of the photovoltaic module is equal to the power consumption of the electrical device in the set operation, the photovoltaic module is controlled to supply power to the electrical device in the set operation. When the power generation of the photovoltaic module is greater than the power consumption of the electrical device in the set operation, the photovoltaic module is controlled to supply power to the electrical device in the set operation, and the photovoltaic module is controlled to store the remaining electrical energy in the battery. When the number of the electrical devices set to operate is multiple, and the power generation of the photovoltaic module is less than the power consumption of the multiple electrical devices set to operate, the photovoltaic module and the battery are controlled to supply power to at least one of the electrical devices set to operate.

3. The photovoltaic pet house according to claim 2, characterized in that, The plurality of electrical devices include a first electrical device and a second electrical device, wherein the energy consumption of the first electrical device is less than that of the second electrical device, and the first electrical device includes a first priority electrical device and a second priority electrical device. When the power generation of the photovoltaic module is less than the power consumption of the plurality of electrical devices set to operate, and the power of the storage battery is less than or equal to a first set power value, the controller is configured to control the photovoltaic module and the storage battery to supply power to at least one of the first electrical devices set to operate. When the power generation of the photovoltaic module is less than the power consumption of the plurality of electrical devices set to operate, and the power of the storage battery is less than or equal to a second set power, the controller is configured to control the photovoltaic module and the storage battery to supply power to at least one of the first priority electrical devices set to operate. Wherein, the second set power value is less than the first set power value.

4. The photovoltaic pet house according to claim 3, characterized in that, The first electrical device includes a lighting lamp, a camera, an ultraviolet lamp, a sensor, an automatic feeding device, a display control panel, an electric door, and an electric ventilation window. The automatic feeding device and the camera are the first priority electrical devices, and the lighting lamp, the ultraviolet lamp, the sensor, the display control panel, the electric door, and the electric ventilation window are the second priority electrical devices. The second electrical appliance includes an air conditioner; When the controller controls the photovoltaic module and the battery to supply power to the first priority electrical device, the controller controls the electric door to be in the normally open state.

5. The photovoltaic pet house according to claim 1, characterized in that, The roof includes: The roof ridge extends along the first direction; A top plate is disposed along a second direction on at least one side of the ridge and connected to the ridge, wherein the second direction is perpendicular to the first direction; The support plate is disposed on one side of the top plate along the thickness direction of the top plate, and one end of the support plate is rotatably connected to the top plate; The surface of the top plate near the support plate is the first surface, and a first receiving groove is formed on the first surface. When the support plate is in the retracted state, the support plate is embedded in the first receiving groove. The surface of the support plate away from the top plate is the second surface, and the second surface is flush with the first surface.

6. The photovoltaic pet house according to claim 5, characterized in that, The roof slab includes a first roof slab and a second roof slab, which are disposed on both sides of the roof ridge along the second direction and are respectively connected to the roof ridge; The support plate includes: A first support plate is disposed on one side of the first top plate along the thickness direction of the first top plate, and one end of the first support plate is rotatably connected to the first top plate. The second support plate is disposed on one side of the second top plate along the thickness direction of the second top plate, and one end of the second support plate is rotatably connected to the second top plate; The photovoltaic module includes: The first photovoltaic module is disposed on the side of the first support plate away from the first top plate and is connected to the first support plate; The second photovoltaic module is disposed on the side of the second support plate away from the second top plate and is connected to the second support plate.

7. The photovoltaic pet house according to claim 5, characterized in that, Also includes: A support rod, which is detachably connected between the support plate and the top plate.

8. The photovoltaic pet house according to claim 1, characterized in that, Also includes: The base is positioned opposite the roof. Multiple wall panels are connected between the roof and the base, and the wall panels, the roof and the base enclose a first receiving space. One of the wall panels has an inlet and outlet that penetrate the wall panel along its thickness direction. An electrical control box is located outside the first accommodating space and connected to the wall panel. The photovoltaic module and the battery are respectively electrically connected to the electrical control box. The photovoltaic module is used to supply power to the electrical devices and the battery through the electrical control box, and the battery is used to supply power to the electrical devices through the electrical control box.

9. The photovoltaic pet house according to claim 8, characterized in that, A second receiving space is formed inside the base, and multiple batteries are detachably installed in the second receiving space.

10. The photovoltaic pet house according to claim 9, characterized in that, The base includes: The base plate is connected to the wall panel; A protrusion is located on the side of the base plate away from the wall panel and is connected to the base plate. The protrusion and the base plate enclose the second receiving space. A pull-out section is disposed within the second accommodating space. The pull-out section is retractable relative to the base plate and the protrusion. The pull-out section surrounds a battery accommodating groove, and the battery is disposed within the battery accommodating groove.

11. The photovoltaic pet house according to claim 10, characterized in that, The number of pull-out parts is two, and the two pull-out parts are respectively pullable relative to the base plate and the protrusion.

12. The photovoltaic pet house according to claim 10, characterized in that, The base also includes: The sidewall is located on the side of the base plate away from the wall panel and is connected to the base plate; A convection port is provided on the side wall, the convection port penetrates the side wall along the thickness direction of the side wall, and at least a portion of the convection port is located on the side of the protrusion away from the bottom plate; The number of convection ports is multiple, and at least two of the multiple convection ports are arranged opposite to each other.

13. A control method for a photovoltaic pet house, characterized in that, The photovoltaic pet house includes photovoltaic modules, multiple electrical components, and a battery. The photovoltaic modules, the electrical components, and the battery are electrically connected, and the battery is electrically connected to the electrical components. The control method for the photovoltaic pet house includes: When the power generation of the photovoltaic module is equal to the power consumption of the electrical device in operation, the photovoltaic module supplies power to the electrical device in operation. When the power generation of the photovoltaic module is greater than the power consumption of the electrical device in operation, the photovoltaic module supplies power to the electrical device in operation, and the photovoltaic module stores the remaining electrical energy in the battery. When the number of electrical devices set to operate is multiple, and the power generation of the photovoltaic module is less than the power consumption of the multiple electrical devices set to operate, the photovoltaic module and the battery supply power to at least one of the electrical devices set to operate.

14. The control method for a photovoltaic pet house according to claim 13, characterized in that, The plurality of electrical devices include a first electrical device and a second electrical device, wherein the energy consumption of the first electrical device is less than that of the second electrical device, and the first electrical device includes a first priority electrical device and a second priority electrical device. When the power generation of the photovoltaic module is less than the power consumption of the plurality of electrical devices set to operate, the photovoltaic module and the battery supply power to at least one of the electrical devices set to operate, including: When the power generation of the photovoltaic module is less than the power consumption of the plurality of electrical devices set to operate, and the power of the storage battery is less than or equal to a first set power value, the photovoltaic module and the storage battery are controlled to supply power to at least one of the first electrical devices set to operate. When the power generation of the photovoltaic module is less than the power consumption of the plurality of electrical devices set to operate, and the power of the storage battery is less than or equal to a second set power, the photovoltaic module and the storage battery are controlled to supply power to at least one of the first priority electrical devices set to operate. Wherein, the second set power value is less than the first set power value.

15. The control method for a photovoltaic pet house according to claim 14, characterized in that, The first electrical device includes a lighting lamp, a camera, an ultraviolet lamp, a sensor, an automatic feeding device, a display control panel, an electric door, and an electric ventilation window. The automatic feeding device and the camera are the first priority electrical devices, and the lighting lamp, the ultraviolet lamp, the sensor, the display control panel, the electric door, and the electric ventilation window are the second priority electrical devices. The second electrical appliance includes an air conditioner; When controlling the photovoltaic module and the battery to supply power to the first priority electrical device, the electric door is controlled to be in the normally open state.