Self-generating assembly type garbage station

By combining prefabricated garbage storage modules and energy modules with power generation equipment, the problems of long construction period and complex power supply are solved, and rapid construction and self-generation of power are achieved, meeting electricity demand, with rich functions and in line with the concept of green and low-carbon development.

CN223341517UActive Publication Date: 2025-09-16SHENZHEN MICRO SPACE CONSTR TECH CO LTD
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Patent Information

Application Number
CN202421849135.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-31
Publication Date
2025-09-16
Estimated Expiration
2034-07-31

AI Technical Summary

Technical Problem

Existing garbage stations have a long construction period, consume a lot of manpower, and need to be connected to the city power grid for power supply, which makes construction complicated and inconvenient.

Method used

Prefabricated garbage storage modules and energy modules are used in combination with power generation equipment to achieve self-generation and power supply, reduce on-site construction manpower consumption and shorten the construction period, and use the solar and wind power generation devices on the roof to provide electricity for electrical equipment.

Benefits of technology

It realizes fast and convenient garbage station construction, reduces manpower consumption and construction period, and can meet electricity demand without external urban power grid. It is rich in functions and conforms to the concept of green and low-carbon development.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model discloses a self-generating assembly type garbage station which comprises a garbage storage module, an energy module and a roof structure, the garbage storage module is a prefabricated module, the garbage storage module is used for storing garbage and comprises electric equipment, the energy module is a prefabricated module, and the energy module and the garbage storage module are arranged in parallel; the energy module is electrically connected to the electric equipment and used for providing electric energy for the electric equipment, the roof structure comprises a roof part and power generation equipment, the roof part is arranged on the tops of the garbage storage module and the energy module, and the power generation equipment is arranged on the roof part and used for generating power and providing electric energy for the energy module. By the adoption of the scheme, manpower consumption can be reduced, the site construction period is shortened, and construction is facilitated.
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Description

Technical Field

[0001] The utility model relates to the technical field of garbage disposal, in particular to a self-generating assembled garbage station. Background Art

[0002] Garbage stations are usually set up in residential areas and factory areas to temporarily store garbage, which is then regularly transported to garbage treatment stations or landfills for disposal by garbage trucks. In related technologies, garbage stations usually need to be built on the construction site. However, building such a garbage station requires a lot of manpower and the on-site construction period is long, which is not convenient for the construction of garbage stations. At the same time, if electrical equipment needs to be installed in the garbage station, the garbage station usually needs to be connected to the city's power grid, which means that the garbage station needs to lay circuits to connect to the city's power grid, further increasing the on-site construction period. Utility Model Content

[0003] The embodiment of the utility model discloses a self-generating assembled garbage station, which can reduce manpower consumption, shorten the on-site construction period, and facilitate construction.

[0004] In order to achieve the above-mentioned purpose, the utility model discloses a self-generating assembled garbage station, comprising:

[0005] A garbage storage module, which is a prefabricated module used for storing garbage and includes electrical equipment;

[0006] An energy module, which is a prefabricated module and is arranged in parallel with the garbage storage module. The energy module is electrically connected to the electrical equipment and is used to provide electrical energy to the electrical equipment; and

[0007] The roof structure includes a roof portion and a power generation device. The roof portion is arranged on the top of the garbage storage module and the energy module. The power generation device is arranged on the roof portion and is used to generate electricity and provide electrical energy to the energy module.

[0008] As an optional embodiment, in an embodiment of the present utility model, the garbage storage module includes a first box body, a storage box and an electrical device, the first box body has a first accommodating cavity, the storage box is arranged in the first accommodating cavity, the storage box is used to store the garbage, and the electrical device is arranged in the first box body;

[0009] The energy module includes a second box and an energy storage device. The second box is arranged in parallel with the first box. The second box has a second accommodating cavity. The energy storage device is arranged in the second accommodating cavity. The energy storage device is electrically connected to the power-consuming device and the power-generating device. The energy storage device is used to receive and store the electric energy provided by the power-generating device and provide electric energy to the power-consuming device.

[0010] The roof portion is arranged on the tops of the first box body and the second box body.

[0011] As an optional embodiment, in an embodiment of the present utility model, the first box body is provided with an inlet connected to the first accommodating chamber, and the first box body is provided with a rotating plate corresponding to the inlet, and the rotating plate can rotate relative to the first box body to open or close the inlet;

[0012] The electrical equipment includes a rotation drive device, which is provided in the first box and connected to the rotating plate. The rotation drive device is electrically connected to the energy storage device and is used to drive the rotating plate to rotate.

[0013] As an optional implementation, in an embodiment of the present utility model, the electrical equipment also includes a sensing device, which is provided on the first box body, and the sensing device is electrically connected to the energy storage device. The sensing device is used to sense the user and control the rotation drive device to open or close the input port.

[0014] As an optional embodiment, in an embodiment of the present utility model, the storage box is provided with a first opening, and along the height direction of the garbage storage module, the height of the first opening is higher than the height of the input port, and the electrical equipment also includes a lifting hopper and a lifting device, and the lifting hopper is arranged in the first accommodating chamber, and the lifting hopper is used to receive and store garbage input from the input port, and to move and dump the garbage from the input port to the first opening, and the lifting device is connected to the lifting hopper, and the lifting device is electrically connected to the energy storage device, and the lifting device is used to provide power for the movement of multiple lifting hoppers along the height direction of the garbage storage module.

[0015] As an optional implementation, in an embodiment of the present utility model, the electrical equipment also includes a deodorizing device, which is arranged in the first accommodating cavity, the deodorizing device is electrically connected to the energy storage device, and the deodorizing device is used to deodorize the gas in the first accommodating cavity.

[0016] As an optional implementation, in an embodiment of the present utility model, the electrical equipment further includes a display device, the display device is provided in the first box, and the display device is electrically connected to the energy storage device.

[0017] As an optional implementation, in an embodiment of the present utility model, the energy module further includes a charging device, which is electrically connected to the energy storage device, and is used to be electrically connected to an external power source and provide electrical energy to the energy storage device.

[0018] As an optional implementation, in an embodiment of the present utility model, there are multiple garbage storage modules, and the multiple garbage storage modules are arranged in parallel along a first direction. The energy module is arranged in parallel with the garbage storage module along the first direction, and the energy module is located in the middle of the multiple garbage storage modules, wherein the first direction is a direction parallel to the horizontal plane.

[0019] As an optional embodiment, in an embodiment of the present invention, the surface of the roof portion is inclined, the power generation equipment includes a solar power generation device, and the solar power generation device is arranged on the surface of the roof portion, and / or,

[0020] The power generation equipment includes a wind power generation device, and the wind power generation device is installed on the surface of the roof.

[0021] Compared with the prior art, the beneficial effects of the present invention are:

[0022] The self-generating assembled garbage station provided by the embodiment of the present invention is configured such that both the garbage storage module and the energy module are prefabricated modules. That is, the entire garbage storage module and the energy module are prefabricated in the factory. During on-site construction, it is only necessary to set the garbage storage module and the energy module side by side, and then install the roof structure on one side of the garbage storage module and the energy module. This can reduce manpower consumption, shorten the on-site construction period, and facilitate construction. In addition, the assembled garbage station of the present application is provided with power generation equipment and energy modules. The power generation equipment can generate electricity and provide electrical energy to the energy module, and the energy module can then provide electrical energy to the electrical equipment of the garbage storage module. This allows the assembled garbage station to meet the needs of electrical equipment without being connected to the city power grid, and also makes the assembled garbage station more functional. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following briefly introduces the drawings required for use in the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0024] Figure 1 It is a schematic diagram of the three-dimensional structure of the assembled garbage station disclosed in the embodiment of the present application;

[0025] Figure 2 It is a schematic diagram of the three-dimensional structure of the garbage storage module disclosed in the embodiment of the present application;

[0026] Figure 3 is a schematic diagram of the three-dimensional structure of the garbage storage module disclosed in the embodiment of the present application from another perspective;

[0027] Figure 4 yes Figure 2 Cross-sectional view of the garbage storage module in the AA direction.

[0028] Icons: 1. Prefabricated garbage station; 10. Garbage storage module; 100. First box body; 100a. First holding cavity; 100b. Input port; 100c. Rotating plate; 101. Storage box; 101a. First opening; 102. Electrical equipment; 102a. Sensing device; 102b. Lifting hopper; 102c. Lifting device; 102d. Deodorization device; 102e. Gas detection device; 102f. Display device; 11. Energy module; 110. Second box body; 110a. Second holding cavity; 111. Energy storage device; 112. Charging device; 12. Roof structure; 120. Roof portion; 121. Power generation equipment. DETAILED DESCRIPTION

[0029] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0030] The technical solution of the present utility model will be further described below in conjunction with the embodiments and drawings.

[0031] See also Figure 1The embodiment of the utility model provides a self-generating assembled garbage station 1, including a garbage storage module 10, an energy module 11 and a roof structure 12. The garbage storage module 10 is a prefabricated module, which is used to store garbage. The garbage storage module 10 includes an electrical device 102. The energy module 11 is a prefabricated module. The energy module 11 and the garbage storage module 10 are arranged in parallel. The energy module 11 is electrically connected to the electrical device 102. The energy module 11 is used to provide electrical energy to the electrical device 102. The roof structure 12 includes a roof portion 120 and a power generation device 121. The roof portion 120 is arranged on the top of the garbage storage module 10 and the energy module 11. The power generation device 121 is arranged on the roof portion 120. The power generation device 121 is used to generate electricity and provide electrical energy to the energy module 11.

[0032] The self-generating assembled garbage station 1 provided by the embodiment of the present invention is configured so that both the garbage storage module 10 and the energy module 11 are prefabricated modules, that is, the entire garbage storage module 10 and the entire energy module 11 have been prefabricated in the factory. During on-site construction, it is only necessary to set the garbage storage module 10 and the energy module 11 side by side, and then install the roof structure 12 on top of the garbage storage module 10 and the energy module 11. This can reduce manpower consumption, shorten the on-site construction period, and facilitate construction. In addition, the assembled garbage station 1 of the present application is provided with a power generation device 121 and an energy module 11. The power generation device 121 can generate electricity and provide electrical energy to the energy module 11, and then the energy module 11 can provide electrical energy to the electrical equipment 102 of the garbage storage module 10, so that the assembled garbage station 1 can meet the use requirements of the electrical equipment 102 without being connected to the city power grid, and the assembled garbage station 1 also has more functions.

[0033] Optionally, the power generation equipment 121 may include one or more of a solar power generation device and a wind power generation device, such as Figure 1 As shown, this application uses the example of a power generation device 121 including a wind power generation device. The specific configuration can be selected according to actual conditions and is not specifically limited in this embodiment. Such a configuration can reasonably utilize the idle space on the roof of the assembled garbage station to generate green energy, and use green energy to provide electricity for the electrical equipment of the garbage storage module, which is in line with the green and low-carbon development concept. When the power generation device 121 includes a solar power generation device, the roof portion 120 is tilted away from the surface of the garbage storage module 10, and the solar power generation device is arranged on this surface, which can enable the solar power generation device to better receive solar radiation energy and improve the power generation efficiency of the solar power generation device.

[0034] In some embodiments, there are multiple waste storage modules 10, wherein the waste storage modules 10 are arranged side by side along a first direction, and the energy module 11 is arranged side by side with the waste storage modules 10 along the first direction, with the energy module 11 located in the middle of the multiple waste storage modules 10. The first direction is a direction parallel to a horizontal plane. By arranging the energy module 11 in the middle of the multiple waste storage modules 10, the total path length of the circuit electrically connected between the energy storage device 111 of the energy module 11 and the electrical devices 102 of the multiple waste storage modules 10 can be shortened, facilitating the circuit design of the energy storage device 111 and the multiple electrical devices 102.

[0035] Please also refer to Figure 2 and Figure 3 In some embodiments, the garbage storage module 10 includes a first box body 100, a storage box 101 and an electrical device 102. The first box body 100 has a first accommodating cavity 100a. The storage box 101 is arranged in the first accommodating cavity 100a. The storage box 101 is used to store garbage. The electrical device 102 is arranged in the first box body 100. The energy module 11 includes a second box body 110 and an energy storage device 111. The second box body 110 is arranged in parallel with the first box body 100. The second box body 110 has a second accommodating cavity 110a. The energy storage device 111 is arranged in the second accommodating cavity 110a. The energy storage device 111 is electrically connected to the electrical device 102 and the power generation device 121. The energy storage device 111 is used to receive and store electrical energy provided by the power generation device 121, and provide electrical energy to the electrical device 102. The roof portion 120 is arranged on the top of the first box body 100 and the second box body 110.

[0036] In this way, the first receiving chamber 100a of the first box body 100 can accommodate the storage box 101, and the storage box 101 can store garbage. At the same time, the second receiving chamber 110a of the second box body 110 can accommodate the energy storage device 111. The energy storage device 111 can store the electrical energy provided by the power generation device 121 and provide electrical energy to the power-consuming device 102 when the power-consuming device 102 needs it. This makes it unnecessary for the power generation device 121 to generate electricity in real time, thereby improving the flexibility of the power generation device. In addition, the various components of the garbage storage module 10 are all arranged in the first receiving chamber 100a or on the first box body 100, and the various components of the energy module 11 (such as the energy storage device 111, or other functional components) are also all arranged in the second receiving chamber 110a or on the second box body 110. During on-site construction, the garbage storage module 10 and the energy module 11 can be installed as a whole, without the need to assemble the various components of the garbage storage module 10 and the energy module 11 on-site. This can reduce manpower consumption, shorten the on-site construction period, and facilitate construction.

[0037] It is understandable that the first box body 100 may be made of, for example, a steel frame or an aluminum alloy frame.

[0038] Optionally, the energy storage device 111 may be a battery, a battery stack, etc., which may be selected according to actual conditions and is not specifically limited in this embodiment.

[0039] Optionally, the electrical equipment 102 includes but is not limited to various driving devices, various sensors, a deodorizing device 102d and a display device 102f, etc., which will be briefly described below.

[0040] Since the first box body 100 is usually provided with an inlet 100b so that the user can put the garbage into the storage box 101 through the inlet 100b, the odor generated by the garbage in the storage box 101 is likely to leak out through the inlet 100b that is always open, causing the environment around the garbage station to be polluted. Figure 2 In some embodiments, the first box body 100 is provided with an inlet 100b connected to the first accommodating chamber 100a, and the first box body 100 is provided with a rotating plate 100c corresponding to the inlet 100b. The rotating plate 100c can rotate relative to the first box body 100 to open or close the inlet 100b. The electrical equipment 102 includes a rotation drive device (not shown). The rotation drive device is provided in the first box body 100 and connected to the rotating plate 100c. The rotation drive device is electrically connected to the energy storage device 111, and the rotation drive device is used to drive the rotating plate 100c to rotate.

[0041] In this way, by setting the rotating plate 100c and the rotating drive device, when the user needs to put garbage in from the input port 100b, the rotating drive device drives the rotating plate 100c to rotate to open the input port 100b, and after the user has put the garbage in from the input port 100b, the rotating drive device drives the rotating plate 100c to rotate to close the input port 100b again, so that the input port 100b is in a normally closed state, which can reduce the occurrence of odor in the garbage storage module 10 leaking from the input port 100b. At the same time, the energy storage device 111 can provide electrical energy for the operation of the rotating drive device.

[0042] Optionally, the number of the input port 100b and the rotating plate 100c can be one or more, etc., which can be selected according to actual conditions and is not specifically limited in this embodiment.

[0043] Optionally, the rotating plate 100c and the first box body 100 can be rotatably connected by setting a rotating shaft on one of the two and setting an axis hole on the other one, or an additional hinge structure can be set to connect the two through the hinge structure to achieve a rotational connection between the two. The specific selection can be made according to actual conditions and is not specifically limited in this embodiment.

[0044] Optionally, the rotation driving device may be a motor, an electric push rod, etc., which may be selected according to actual conditions and is not specifically limited in this embodiment.

[0045] In some embodiments, the electrical device 102 further includes a sensing device 102a, which is disposed on the first housing 100 and electrically connected to the energy storage device 111. The sensing device 102a is configured to sense a user and control the rotational drive device to open or close the inlet 100b. By providing the sensing device 102a, when the sensing device 102a does not detect a user approaching the waste storage module 10, the rotational drive device can be controlled to rotate the rotational plate 100c to close the inlet 100b, thereby reducing the possibility of odor within the waste storage module 10 leaking out of the inlet 100b. When the sensing device 102a detects a user approaching the waste storage module 10, the rotational drive device can be controlled to rotate the rotational plate 100c to open the inlet 100b, thereby improving the convenience of using the waste storage module 10. At the same time, the energy storage device 111 can provide electrical energy for the operation of the sensing device 102a.

[0046] Optionally, the sensing device 102a may be an infrared sensor, a distance measuring sensor, a visual sensor, etc., which may be selected according to actual conditions and is not specifically limited in this embodiment.

[0047] Since the garbage will fall down under the action of gravity when the user throws it into the inlet 100b, the height of the opening of the storage box 101 usually needs to be lower than the height of the inlet 100b. However, this will reduce the capacity of the storage box 101. Figure 4 In some embodiments, the storage box 101 is provided with a first opening 101a. Along the height direction of the garbage storage module 10, the height of the first opening 101a is higher than the height of the input port 100b. The electrical equipment 102 also includes a lifting hopper 102b and a lifting device 102c. The lifting hopper 102b is provided in the first accommodating chamber 100a. The lifting hopper 102b is used to receive and store garbage input from the input port 100b, and to move and dump the garbage from the input port 100b to the first opening 101a. The lifting device 102c is connected to the lifting hopper 102b. The lifting device 102c is electrically connected to the energy storage device 111. The lifting device 102c is used to provide power for the movement of multiple lifting hoppers 102b along the height direction of the garbage storage module 10.

[0048] In this way, the height of the first opening 101a of the storage box 101 can be made higher, thereby increasing the garbage storage capacity of the storage box 101. The lifting hopper 102b can temporarily store the garbage thrown in from the input port 100b, and driven by the lifting device 102c, the lifting hopper 102b can be moved from the input port 100b to the first opening 101a, and the garbage can be dumped into the storage box 101 from the first opening 101a. Then, driven by the lifting device 102c, the lifting hopper 102b is moved from the first opening 101a back to the input port 100b, so that the user can put garbage into the lifting hopper 102b from the input port 100b. At the same time, the energy storage device 111 can provide electrical energy for the operation of the lifting device 102c.

[0049] Optionally, the lifting device 102c may be a push rod device, a crawler device or a slide rail device, etc., which can be selected according to actual conditions and is not specifically limited in this embodiment.

[0050] In some embodiments, the electrical device 102 further includes a deodorizing device 102d, which is disposed within the first accommodating chamber 100a and electrically connected to the energy storage device 111. The deodorizing device 102d is configured to deodorize the gas within the first accommodating chamber 100a. The provision of the deodorizing device 102d deodorizes the gas within the first accommodating chamber 100a, thereby improving the air quality within the first accommodating chamber 100a and preventing a user from inhaling poor-quality gas when opening the inlet 100b.

[0051] Optionally, the deodorization device 102d may be a biological deodorization device 102d, an activated carbon adsorption device, etc., which may be selected according to actual conditions and is not specifically limited in this embodiment.

[0052] In some embodiments, the electrical device 102 further includes a gas detection device 102e, which is disposed within the first receiving chamber 100a. The gas detection device 102e is electrically connected to the energy storage device 111 and the deodorization device 102d. The gas detection device 102e is configured to detect the air quality within the first receiving chamber 100a. The deodorization device 102d can deodorize the gas within the first receiving chamber 100a based on the air quality detected by the gas detection device 102e. By providing the gas detection device 102e, the gas detection device 102e can detect the air quality within the first receiving chamber 100a. When the air quality within the first receiving chamber 100a is detected to be poor, the deodorization device 102d is activated to deodorize the gas within the first receiving chamber 100a. When the air quality within the first receiving chamber 100a is detected to be good, the deodorization device 102d is deactivated. This ensures relatively good air quality within the receiving chamber and conserves the electrical energy required by the deodorization device 102d.

[0053] Optionally, the gas detection device 102e may include an ammonia sensor, a hydrogen sulfide sensor, a methane sensor, etc., which can be selected according to actual conditions and are not specifically limited in this embodiment.

[0054] See also Figure 2 In some embodiments, the electrical device 102 further includes a display device 102f, which is disposed in the first housing 100 and electrically connected to the energy storage device 111. The display device 102f can be used to play advertisements, cultural promotions, and other content, thereby increasing the functionality of the prefabricated garbage station 1.

[0055] Optionally, the display device 102f may be an LED display screen or a liquid crystal display screen, etc., which may be selected according to actual conditions and is not specifically limited in this embodiment.

[0056] From the above, it can be seen that the prefabricated garbage station 1 of the present application is provided with an energy storage device 111 and a gas detection device 102e, and the display device 102f can also be electrically connected to the energy storage device 111 and the gas detection device 102e, so as to display the remaining power of the energy storage device 111 and the air quality detected by the gas detection device 102e, thereby improving the data visualization of the prefabricated garbage station 1 and further facilitating users to use the prefabricated garbage station 1.

[0057] See also Figure 3 In some embodiments, the energy module 11 further includes a charging device 112 , which is electrically connected to the energy storage device 111 . The charging device 112 is configured to be electrically connected to an external power source and provide electrical energy to the energy storage device 111 .

[0058] In this way, when the electric energy provided by the power generation equipment 121 is insufficient to supply the electric equipment 102, the charging device 112 can provide electric energy from an external power source to the energy storage device 111 to ensure that the electric equipment 102 of the assembled garbage station 1 can be used normally.

[0059] Optionally, the number of the garbage storage modules 10 may be one or more. The number of the garbage storage modules 10 may be selected according to the actual needs of the assembled garbage station 1 and is not specifically limited in this embodiment.

[0060] The above is a detailed introduction to the self-generating assembled garbage station disclosed in the embodiment of the present invention. Specific examples are used in this article to illustrate the principles and implementation methods of the present invention. The description of the above embodiments is only used to help understand the self-generating assembled garbage station of the present invention and its core idea; at the same time, for general technical personnel in this field, according to the idea of ​​the present invention, there will be changes in the specific implementation method and application scope. In summary, the content of this specification should not be understood as a limitation on the present invention.

Claims

1. A self-generating assembled garbage station, characterized in that: include: A garbage storage module, which is a prefabricated module used for storing garbage and includes electrical equipment; An energy module, which is a prefabricated module and is arranged in parallel with the garbage storage module. The energy module is electrically connected to the electrical equipment and is used to provide electrical energy to the electrical equipment; as well as The roof structure includes a roof portion and a power generation device. The roof portion is arranged on the top of the garbage storage module and the energy module. The power generation device is arranged on the roof portion and is used to generate electricity and provide electrical energy to the energy module.

2. The self-generating assembled garbage station according to claim 1, characterized in that: The garbage storage module includes a first box body, a storage box, and an electrical device. The first box body has a first accommodating cavity. The storage box is arranged in the first accommodating cavity and is used to store the garbage. The electrical device is arranged in the first box body. The energy module includes a second box and an energy storage device. The second box is arranged in parallel with the first box. The second box has a second accommodating cavity. The energy storage device is arranged in the second accommodating cavity. The energy storage device is electrically connected to the power-consuming device and the power-generating device. The energy storage device is used to receive and store the electric energy provided by the power-generating device and provide electric energy to the power-consuming device. The roof portion is arranged on the tops of the first box body and the second box body.

3. The self-generating assembled garbage station according to claim 2, characterized in that: The first box body is provided with an inlet connected to the first accommodating cavity, and the first box body is provided with a rotating plate at a position corresponding to the inlet, and the rotating plate can rotate relative to the first box body to open or close the inlet; The electrical equipment includes a rotation drive device, which is provided in the first box and connected to the rotating plate. The rotation drive device is electrically connected to the energy storage device and is used to drive the rotating plate to rotate.

4. The self-generating assembled garbage station according to claim 3 is characterized in that: The electrical equipment further includes a sensing device, which is provided on the first box body and electrically connected to the energy storage device. The sensing device is used to sense the user and control the rotation drive device to open or close the input port.

5. The self-generating assembled garbage station according to claim 3 is characterized in that: The storage box is provided with a first opening. Along the height direction of the garbage storage module, the height of the first opening is higher than the height of the input port. The electrical equipment also includes a lifting hopper and a lifting device. The lifting hopper is provided in the first accommodating chamber. The lifting hopper is used to receive and store garbage input from the input port, and to move the garbage from the input port and dump it to the first opening. The lifting device is connected to the lifting hopper. The lifting device is electrically connected to the energy storage device. The lifting device is used to provide power for the movement of multiple lifting hoppers along the height direction of the garbage storage module.

6. The self-generating assembled garbage station according to claim 2, characterized in that: The electrical equipment further includes a deodorizing device, which is disposed in the first accommodating chamber and electrically connected to the energy storage device. The deodorizing device is used to deodorize the gas in the first accommodating chamber.

7. The self-generating assembled garbage station according to any one of claims 2 to 6, characterized in that: The electrical equipment further includes a display device, which is disposed in the first housing and electrically connected to the energy storage device.

8. The self-generating assembled garbage station according to any one of claims 2 to 6, characterized in that: The energy module further includes a charging device, which is electrically connected to the energy storage device. The charging device is used to be electrically connected to an external power source and provide electrical energy to the energy storage device.

9. The self-generating assembled garbage station according to any one of claims 1 to 6, characterized in that: There are multiple garbage storage modules, and the multiple garbage storage modules are arranged in parallel along a first direction. The energy module is arranged in parallel with the garbage storage modules along the first direction, and the energy module is located in the middle of the multiple garbage storage modules, wherein the first direction is a direction parallel to the horizontal plane.

10. The self-generating assembled garbage station according to any one of claims 1 to 6, characterized in that: The surface of the roof portion is inclined, the power generation equipment includes a solar power generation device, and the solar power generation device is arranged on the surface of the roof portion, and / or, The power generation equipment includes a wind power generation device, and the wind power generation device is installed on the surface of the roof.