Energy-saving and environmentally friendly assembled tool room

Through the design of prefabricated support plates and the integration of solar energy, wind power generation and rainwater collection systems, the problems of low assembly efficiency and energy shortage in the tool shed are solved, and rapid assembly, flexible adjustment and self-sufficient electricity and water supply are achieved, which improves portability and comfort of use.

CN120486797BActive Publication Date: 2025-09-30LAIZHOU KAIJIAN INSTALLATION ENG
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Patent Information

Application Number
CN202510990266.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-07-18
Publication Date
2025-09-30
Estimated Expiration
2045-07-18

AI Technical Summary

Technical Problem

Existing energy-saving and environmentally friendly prefabricated tool sheds have problems such as low assembly efficiency, insufficient portability and insufficient energy supply, and cannot meet the electricity and water needs of outdoor operations.

Method used

It adopts an assembled design with multiple sets of support plates and roof panels, integrates solar and wind power generation structures, is equipped with rainwater collection and purification systems, and combines ventilation and air exchange structures to achieve self-sufficiency in electricity and water resources.

Benefits of technology

The tool room can be quickly assembled and flexibly adjusted to meet outdoor electricity and water needs, improve portability and flexibility of use, and ensure fresh air and suitable temperature indoors.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention belongs to the technical field of tool sheds and discloses an energy-saving and environmentally friendly prefabricated tool shed, comprising a support base and a first support plate and a second support plate for supporting a first partition and a second partition, wherein the first support plate is fixed to the four corners of the support base, a second support plate is provided between two adjacent groups of first support plates, and a first partition and a second partition are provided between the first support plate and the second support plate. This energy-saving and environmentally friendly prefabricated tool shed has a prefabricated design and can be assembled in a few hours with the help of simple tools, greatly shortening the construction period and adapting the size of the tool shed to needs. The prefabricated design facilitates efficient transfer and compact storage, completely resolving the pain points of traditional tool sheds that occupy a large space and are difficult to carry, significantly improving space utilization efficiency and flexibility of use. At the same time, the power generation structure is designed to temporarily store electrical energy to meet the power needs of the tool shed when used outdoors.
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Description

Technical Field

[0001] The present invention relates to the technical field of tool sheds, in particular to an energy-saving and environment-friendly assembled tool shed. Background Art

[0002] In modern engineering construction, outdoor operations, and temporary facilities, tool sheds serve as crucial storage spaces for tools and equipment, or as temporary workspaces. Their functionality, environmental friendliness, and ease of assembly have always been key industry priorities. However, traditional tool sheds present numerous challenges in practical applications that require urgent resolution.

[0003] However, there are still some problems when using the existing energy-saving and environmentally friendly assembled tool rooms:

[0004] There is an existing assembled garden tool shed with Chinese patent application number CN202410206564.4, which belongs to the field of garden tool sheds and includes a house base, the upper surface of the house base is fixedly connected to a tool shed steel plate wall, one side of the tool shed steel plate wall is fixedly connected to a sliding rail sliding door, both sides of the upper surface of the tool shed steel plate wall are fixedly connected to a ridge, the tops of the two ridges are fixedly connected to a roof, the left side of the tool shed steel plate wall is fixedly connected to an extension mechanism, and two snow removal mechanisms are fixedly connected to the upper surface of the roof.

[0005] Existing tool sheds have limitations in structural design and assembly efficiency, lack portability, and are usually located outdoors. Their energy deficiencies affect the convenience of use, such as basic electricity needs such as lighting and charging of power tools.

[0006] In response to the above problems, an innovative design was carried out based on the original energy-saving and environmentally friendly prefabricated tool room. Summary of the Invention

[0007] The purpose of the present invention is to provide an energy-saving and environmentally friendly prefabricated tool shed to solve the problems raised in the above background technology, such as the limitations of existing tool shed design and assembly efficiency, insufficient portability, and energy defects affecting the convenience of use and the inability to meet basic electricity needs.

[0008] To achieve the above objectives, the present invention provides the following technical solutions: an energy-saving and environmentally friendly assembled tool room, comprising a support base and a first support plate and a second support plate for supporting a first partition and a second partition:

[0009] The four corners of the support base are fixed with first support plates, a second support plate is provided between two adjacent groups of first support plates, and a first partition plate and a second partition plate are provided between the first support plate and the second support plate;

[0010] The upper ends of the first and second support plates are connected to the roof plate, a solar power generation panel is provided at the upper end of the roof plate, a deflector is provided in the middle of the roof plate, a first impeller is provided inside the deflector, a power generation mechanism is fixed on the left side of the deflector, the power generation mechanism includes a gear box and a generator, and an energy storage module is installed on the upper end of the support base;

[0011] Both sides of the roof plate are connected to the guide grooves, the upper end of the guide grooves is installed with a filter plate, the lower end of the right side of the guide grooves is connected to the drainage pipe, and the upper end of the support base is installed with a liquid storage tank.

[0012] Preferably, the first support plate is designed in an "L" shape, and a snap-fit ​​groove is provided on both sides of the first support plate and the second support plate. The first partition plate and the second partition plate are both slidably connected to the snap-fit ​​groove. A door is provided at the upper left end of the support base, and the side of the door is hinged to the first support plate. The roof plate is designed in a "human" shape, and the solar power generation panels are snap-fitted and installed on both sides of the roof plate.

[0013] By adopting the above technical solution, through the cooperation of multiple groups of first support plates and second support plates, multiple groups of first partitions and second partitions can be assembled to form the outer wall of the tool room, and at the same time cooperate with the roof plate to protect the upper end of the tool room. The solar panels arranged on both sides of the roof plate can convert solar energy into electrical energy for storage.

[0014] Preferably, the air guide cover is designed in an arc shape, and the two groups of air guide covers are symmetrically distributed up and down. The air guide cover is designed with openings on both sides. A transmission shaft is fixed to the middle of the first impeller, and both ends of the transmission shaft are rotatably connected to the roof panel. The left end of the transmission shaft extends to the outside of the roof panel. A gear box is fixed on the left side of the roof panel, and the lower end of the gear box is connected to the generator. The gear box is connected to the transmission shaft and the generator respectively, and a protective cover is installed on the outside of the generator.

[0015] By adopting the above technical solution, the design of the air deflector allows the air to flow through the roof panel and circulate with the middle of the air deflector. Raised side panels are provided on both sides of the roof panel to ensure that the air can flow smoothly on the surface of the roof panel and pass through the air deflector. When the air flows inside the air deflector, it drives the first impeller to rotate. The first impeller uses the transmission shaft and gear box to drive the generator to rotate and further convert wind energy into electrical energy, which is convenient for electricity needs in tool rooms and outdoor use.

[0016] Preferably, guide pipes are provided at both ends of the roof panel, and the lower ends of the guide pipes extend to the lower end of the roof panel, a second impeller is provided inside the guide pipe, and both ends of the transmission shaft are connected to the second impeller, a filter is mounted on the lower end of the guide pipe, and air inlet and outlet holes are provided on the side of the guide pipe.

[0017] By adopting the above technical solution, the design of the second impeller can facilitate ventilation inside the tool room. When the drive shaft rotates, the second impeller can be driven to rotate synchronously. When the two sets of impellers circulate inside the guide pipe, air intake and air exhaust can be realized respectively, thereby continuously ventilating the tool room and maintaining air circulation inside the tool room. The filter design at the bottom of the guide pipe can prevent impurities and dust from entering the tool room.

[0018] Preferably, the filter plate is snap-connected to the upper end of the guide trough, and the upper end of the filter plate is flush with the upper surface of the roof plate, and the inner wall of the guide trough is inclined.

[0019] By adopting the above technical solution, when it rains, rainwater can flow into the diversion trough through the surface of the roof plate through the installation of the diversion trough, and when the rainwater flows into the diversion trough, the filter plate is used to filter and remove larger impurities.

[0020] Preferably, the lower right end of the guide groove is connected to a drainage pipe, the middle of the second support plate on the right side passes through the collection pipe, and the upper end of the collection pipe is conductively connected to the drainage pipe, and the inner end of the collection pipe is conductively connected to the liquid storage tank.

[0021] By adopting the above technical solution, the rainwater collected inside the diversion trough can be further guided to the inside of the liquid storage tank for collection using the drainage pipe and the collection pipe, and a rainwater purification structure is provided inside the liquid storage tank to further purify and filter the rainwater.

[0022] Preferably, a circulation groove is provided on the inner wall of the second partition plate, and heat exchange plates are distributed in an array inside the circulation groove, and conducting holes are provided in an array at the upper and lower ends of the circulation groove.

[0023] By adopting the above technical solution, a heat absorbing plate is arranged on the outside of the second partition, which can absorb heat and heat the liquid inside the circulation tank. The circulation tanks inside multiple groups of second partitions are interconnected through conductive holes so that the liquid can circulate and heat inside the circulation tank.

[0024] Preferably, the second partition at the upper end is connected to a liquid inlet pipe, and the second partition at the lower end is connected to a liquid outlet pipe, and both the liquid outlet pipe and the liquid inlet pipe are connected to the circulation tank.

[0025] By adopting the above technical solution, through the design of the liquid inlet pipe and the liquid outlet pipe, the liquid inside the liquid storage tank can be driven to circulate inside the circulation groove inside the second partition in conjunction with the designed water pump, thereby continuously realizing heat exchange heating, and the liquid can absorb the heat and circulate continuously, which can prevent heat from being transferred to the room.

[0026] Preferably, the deflector cover at the lower end is slidably connected to the roof plate, the lower end of the roof plate is rotatably connected to an electric push rod, and the lower end of the deflector cover at the lower end is rotatably connected to the end of the electric push rod.

[0027] By adopting the above technical solution, the electric push rod can drive the lower end air guide cover to rotate and slide inside the roof panel, thereby changing the flow direction of the airflow when the first impeller rotates. The external airflow can be diverted to the interior of the tool room as needed, and the high-speed airflow can cool the interior of the tool room.

[0028] Compared with the existing technology, the beneficial effects of the present invention are: this energy-saving and environmentally friendly prefabricated tool shed, through its prefabricated design, can be assembled within a few hours with the help of simple tools, greatly shortening the construction period, and the size of the tool shed can be adaptively adjusted according to needs. The prefabricated design facilitates efficient transfer and compact storage, completely solving the pain points of traditional tool sheds that occupy a large space and are difficult to carry, significantly improving space utilization efficiency and flexibility of use, and at the same time, combined with the design of the power generation structure, it can temporarily store electrical energy, which can meet the power needs of the tool shed when used outdoors.

[0029] 1. In terms of energy supply, the tool shed integrates wind and solar power generation structures, which can efficiently convert solar and wind energy into electricity and store it. This can easily handle charging power tools for outdoor work or meeting basic lighting needs. It is worth mentioning that its ingenious ventilation structure is cleverly designed to simultaneously achieve ventilation inside the tool shed during the wind power generation process, ensuring fresh indoor air.

[0030] 2. In terms of water resource utilization, the tool room is equipped with a rainwater collection system. Through filtering and liquid storage devices, the collected rainwater is purified and stored to fully meet outdoor water needs. In cold environments, with the help of heat exchange structures, solar energy can be used to heat the collected rainwater, allowing users to enjoy a water experience at a suitable temperature outdoors. BRIEF DESCRIPTION OF THE DRAWINGS

[0031] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0032] Figure 2 This is a schematic structural diagram of the present invention from another perspective;

[0033] Figure 3 This is a schematic diagram of the first support plate and door structure of the present invention;

[0034] Figure 4 This is a schematic structural diagram of the first support plate and the second support plate of the present invention;

[0035] Figure 5 This is a schematic structural diagram of the second support plate and the second partition plate of the present invention;

[0036] Figure 6 This is a schematic diagram of the structure of the roof panel and solar power generation panel of the present invention;

[0037] Figure 7This is a schematic structural diagram of the guide cover and the first impeller of the present invention;

[0038] Figure 8 This is a schematic structural diagram of the first impeller and the second impeller of the present invention;

[0039] Figure 9 This is a schematic diagram of the filter plate and drainage tube structure of the present invention;

[0040] Figure 10 This is a schematic diagram of the roof plate and air guide cover structure of the present invention;

[0041] Figure 11 This is a schematic diagram of the gearbox and generator structure of the present invention;

[0042] Figure 12 This is a structural diagram of embodiment 2 of the present invention;

[0043] Figure 13 This is a schematic structural diagram of the liquid inlet pipe and the second partition of the present invention;

[0044] Figure 14 This is a structural diagram of embodiment 3 of the present invention.

[0045] In the figure: 1. Support base; 2. First support plate; 3. Second support plate; 4. First partition; 5. Door; 6. Second partition; 7. Roof plate; 8. Solar panel; 9. Guide cover; 10. First impeller; 11. Drive shaft; 12. Gear box; 13. Generator; 14. Protective cover; 15. Second impeller; 16. Guide pipe; 17. Filter screen; 18. Guide trough; 19. Filter plate; 20. Drainage pipe; 21. Collecting pipe; 22. Liquid storage tank; 23. Energy storage module; 24. Circulation tank; 25. Heat exchange plate; 26. Liquid inlet pipe; 27. Liquid outlet pipe; 28. Electric push rod. DETAILED DESCRIPTION

[0046] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments 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.

[0047] For example 1, please refer to Figure 1-11The present invention provides a technical solution: an energy-saving and environmentally friendly assembled tool shed, comprising a support base 1 and a first support plate 2 and a second support plate 3 for supporting a first partition plate 4 and a second partition plate 6. The first support plate 2 is fixed to the four corners of the support base 1, a second support plate 3 is provided between two adjacent groups of first support plates 2, and a first partition plate 4 and a second partition plate 6 are provided between the first support plate 2 and the second support plate 3; the first support plate 2 is designed in an "L" shape, and a snap-fit ​​groove is provided on both sides of the first support plate 2 and the second support plate 3. The first partition plate 4 and the second partition 6 are both slidably connected to the snap-fit ​​groove. A door 5 is provided at the upper left end of the support base 1, and the side of the door 5 is hinged to the first support plate 2. The roof plate 7 is designed in a "human" shape. When installing the tool shed, it is first necessary to fix the support base 1 to the ground to keep the tool shed stable. If it is installed on a cement floor, bolts can be used directly. If it is installed on a mud floor, it can be reinforced with the help of structures such as positioning piles. After the support base 1 is fixed, the first support plate 2 and the second support plate 3 can be fixed as needed. The first support plate 2 is fixed to the four corners of the support base 1, and the second support plate 3 is connected between two adjacent groups of first support plates 2. The first partition plates 4 are installed on the left and right sides of the support base 1, and the second partition plates 6 are installed on the front and back sides. The first partition plates 4 and the second partition plates 6 are both slidably connected to the locking grooves provided on the sides of the first and second support plates 2 and 3 (the connection is provided with a sealing strip), and multiple groups of first partition plates 4 and second partition plates 6 are locked together, and the locking seams are provided with sealing strips to prevent rainwater from entering the tool room through the gaps. The top of the tool room is sealed with a roof plate 7. The top first partition plates 4 and second partition plates 6 are adapted to the inner wall of the roof plate 7 to form a close-fitting and sealed design. This prefabricated structure can be quickly assembled to the tool room wall by means of a snap-on connection method. The operation is simple and convenient. The number of second support plates 3 can be increased or decreased according to actual use needs, thereby adjusting the overall area of ​​the tool room.

[0048] The upper ends of the first support plate 2 and the second support plate 3 are connected to the roof plate 7. A solar power generation panel 8 is set on the upper end of the roof plate 7. The solar power generation panel 8 is installed on both sides of the roof plate 7. A deflector 9 is set in the middle of the roof plate 7. A first impeller 10 is set inside the deflector 9. A power generation mechanism is fixed on the left side of the deflector 9. The power generation mechanism includes a gear box 12 and a generator 13. An energy storage module 23 is installed on the upper end of the support base 1; the deflector 9 is designed in an arc shape, and the two groups of deflectors 9 are symmetrically distributed up and down. The deflector 9 is designed with openings on both sides. A transmission shaft 11 is fixed in the middle of the first impeller 10, and the transmission shaft 11 is fixed to the middle of the first impeller 10. Both ends of the driving shaft 11 are rotatably connected to the roof panel 7. The left end of the transmission shaft 11 extends to the outside of the roof panel 7. A gear box 12 is fixed on the left side of the roof panel 7. The lower end of the gear box 12 is connected to the generator 13. The gear box 12 is connected to the transmission shaft 11 and the generator 13 respectively. A protective cover 14 is installed on the outside of the generator 13. The solar panels 8 embedded in both sides of the roof panel 7 can convert solar energy into electrical energy and store it in the energy storage module 23 (equipped with a rectifier and voltage stabilization module), and the upper end of the solar panel 8 forms a flat surface with the upper end of the roof panel 7 to avoid affecting the flow of rain and air. The protruding side panels arranged on the left and right sides of the roof panel 7 can guide the surface airflow, so that the airflow flowing to the upper end of the side of the roof panel 7 can flow to the air guide cover 9 along the surface of the roof panel 7; the airflow flows from one side of the two sets of air guide covers 9 to the other side, and drives the first impeller 10 and the transmission shaft 11 to rotate during the flow process. The transmission shaft 11 drives the generator 13 to rotate synchronously through the gear box 12, realizing the conversion of wind energy into electrical energy and further storing the electrical energy. The interior of the tool room can be equipped with lighting to facilitate the removal and placement of tools. The inverter designed with the energy storage module 23 can provide basic electricity needs for power tools and lighting, solving the problem of outdoor electricity use in the tool room.

[0049] A guide tube 16 is provided at both ends of the roof panel 7, and the lower end of the guide tube 16 extends to the lower end of the roof panel 7. A second impeller 15 is provided inside the guide tube 16, and both ends of the drive shaft 11 are connected to the second impeller 15. A filter 17 is mounted on the lower end of the guide tube 16, and air inlet and outlet holes are provided on the side of the guide tube 16. Because the tool room is usually sealed, a ventilation structure is provided to prevent odor from occurring inside the tool room. The wind power generation structure is used to simultaneously power the ventilation structure. When the wind blows the first impeller 10 to rotate, the drive shaft 11 drives the second impeller 15 to rotate synchronously. The rotation of the second impeller 15 drives air to circulate inside the guide tube 16. By designing two sets of impellers in different directions, air intake and air exhaust can be achieved separately, ensuring air circulation inside the tool room.

[0050] Roof panel 7 is connected to a drainage trough 18 on both sides. A filter plate 19 is mounted on the top of the trough 18. A drainage pipe 20 is connected to the lower right end of the trough 18. A liquid storage tank 22 is mounted on the top of the support base 1. The filter plate 19 is snap-fitted to the top of the trough 18, and its top end is flush with the top surface of the roof panel 7. The inner wall of the trough 18 is inclined. A drainage pipe 20 is connected to the lower right end of the trough 18. A collection pipe 21 runs through the middle of the second right support panel 3. The top end of the collection pipe 21 is electrically connected to the drainage pipe 20, and the inner end of the collection pipe 21 is electrically connected to the liquid storage tank 22. A rainwater recovery system was designed to address the water needs within the tool room. The guide grooves 18 on both sides of the roof plate 7 are used to recover and divert rainwater. When it rains, rainwater flows into the guide grooves 18 along with the roof plate 7, and flows to the drainage pipe 20 according to the inclination direction of the inner wall of the guide groove 18. Then, it flows to the collection pipe 21 through the drainage pipe 20 and flows into the liquid storage tank 22 for collection. The liquid storage tank 22 is equipped with a rainwater filtration and purification structure (including: the primary filtration unit is a polypropylene fiber bundle filter layer with a filtration accuracy of 5μm; the intermediate filtration unit is an activated carbon adsorption filter tank filled with fruit shell activated carbon; the advanced filtration unit is a PVDF ultrafiltration membrane component with a membrane pore size of 0.01μm). If higher-level water is required, the filtration and purification structure can be adjusted according to demand.

[0051] For example 2, please refer to Figure 12 、 Figure 13The present invention provides a technical solution. This embodiment adds a solar heat exchange structure on the basis of the first embodiment, which can heat the collected rainwater. A circulation groove 24 is opened on the inner wall of the second partition 6, and heat exchange plates 25 are distributed in an array inside the circulation groove 24. Conductive holes are opened in an array at the upper and lower ends of the circulation groove 24; the upper end of the second partition 6 is connected to the liquid inlet pipe 26, and the lower end of the second partition 6 is connected to the liquid outlet pipe 27, and the liquid outlet pipe 27 and the liquid inlet pipe 26 are both connected to the circulation groove 24. The liquid storage tank 22 is designed to be thermally insulated as a whole, and an insulating partition is provided inside it to divide the interior of the liquid storage tank 22 into two parts. The collected rainwater can evenly enter the two storage areas (provided with a diversion structure), and the circulating water pump is designed to pump part of the rainwater into the liquid inlet pipe 26 and flow to the circulation groove 24 opened inside the second partition 6. In this embodiment, the outer side of the second partition 6 is a metal plate made of heat-absorbing material, and the surface is coated with a heat-absorbing coating, which absorbs solar energy and transfers heat to the water circulating inside. The heat exchange plate 25 designed in an array inside the circulation groove 24 can accelerate the heat transfer. The circulation pump transports the purified rainwater to the circulation groove 24 through the liquid inlet pipe 26, and after passing through multiple groups of second partitions 6, it is returned to the interior of the liquid storage tank 22 through the liquid outlet pipe 27. The circulation pump is driven by the solar power generation panel 8. When the sunlight is weak and cannot generate electricity or it is cloudy, the circulation pump stops working, and a large amount of liquid is stored in the liquid storage tank 22 for insulation. The liquid storage tank 22 can be designed to be suspended high and used with external pipeline valves. According to actual usage requirements, a three-way valve can be installed to connect the two storage areas of the liquid storage tank 22 (one part stores unheated liquid, and the other part stores liquid heated by the sun, and the heated liquid can be kept warm) to achieve temperature control of the faucet.

[0052] For example three, please refer to Figure 14 The present invention provides a technical solution. This embodiment adds a wind direction control structure to the first embodiment. The lower end air deflector 9 is slidably connected to the roof panel 7. The lower end of the roof panel 7 is rotatably connected to an electric push rod 28. The lower end of the lower end air deflector 9 is rotatably connected to the end of the electric push rod 28. When the wind power generation structure is in normal use, air flows from one side of the roof panel 7 to the other side. If personnel need to rest inside the tool shed during hot weather, the electric push rod 28 can be extended and retracted to drive the lower end air deflector 9 to rotate, sealing the air outlet side of the roof panel 7. The rotation of the first impeller 10 can guide the airflow into the tool shed. When the ambient wind is weak, the energy storage module 23 can directly power the generator 13 (the generator 13 is designed as a reversible motor and can be used as an electric motor), driving the first impeller 10 to rotate and blow air, thereby improving the practicality of the tool shed.

[0053] The contents not described in detail in this specification belong to the prior art known to professional and technical personnel in this field. Although the embodiments of the present invention have been shown and described, it is understood by those skilled in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An energy-saving and environmentally friendly assembled tool room, comprising a support base (1) and a first support plate (2) and a second support plate (3) for supporting a first partition plate (4) and a second partition plate (6), characterized in that: The support base (1) is fixed with first support plates (2) at the four corners, a second support plate (3) is provided between two adjacent groups of first support plates (2), and a first partition plate (4) and a second partition plate (6) are provided between the first support plate (2) and the second support plate (3); The upper ends of the first support plate (2) and the second support plate (3) are connected to the roof plate (7), a solar power generation panel (8) is provided on the upper end of the roof plate (7), a deflector (9) is provided in the middle of the roof plate (7), a first impeller (10) is provided inside the deflector (9), a power generation mechanism is fixed on the left side of the deflector (9), the power generation mechanism includes a gear box (12) and a generator (13), and an energy storage module (23) is installed on the upper end of the support base (1); The deflector (9) is designed in an arc shape, and the two groups of deflectors (9) are symmetrically distributed up and down. The deflector (9) is designed with openings on both sides. A transmission shaft (11) is fixed to the middle of the first impeller (10), and both ends of the transmission shaft (11) are rotatably connected to the roof plate (7). The left end of the transmission shaft (11) extends to the outside of the roof plate (7). A gear box (12) is fixed to the left side of the roof plate (7). The lower end of the gear box (12) is connected to the generator (13). The gear box (12) is connected to the transmission shaft (11) and the generator (13) respectively. A protective cover (14) is installed on the outside of the generator (13). The roof plate (7) is provided with a guide pipe (16) at both ends, and the lower end of the guide pipe (16) extends to the lower end of the roof plate (7). A second impeller (15) is provided inside the guide pipe (16), and both ends of the transmission shaft (11) are connected to the second impeller (15). A filter screen (17) is mounted on the lower end of the guide pipe (16), and an air inlet and outlet hole is provided on the side of the guide pipe (16); Both sides of the roof plate (7) are connected to guide grooves (18), a filter plate (19) is installed at the upper end of the guide groove (18), the lower end of the right side of the guide groove (18) is connected to a drainage pipe (20), and a liquid storage tank (22) is installed at the upper end of the support base (1).

2. The energy-saving and environmentally friendly assembled tool room according to claim 1, characterized in that: The first support plate (2) is designed in an "L" shape, and both sides of the first support plate (2) and the second support plate (3) are provided with a snap-fit ​​groove, and the first partition plate (4) and the second partition plate (6) are both slidably connected to the snap-fit ​​groove. A door (5) is provided at the upper left end of the support base (1), and the side of the door (5) is hingedly connected to the first support plate (2). The roof plate (7) is designed in a "human" shape, and the solar power generation panels (8) are snap-fitted and installed on both sides of the roof plate (7).

3. The energy-saving and environmentally friendly assembled tool shed according to claim 1, characterized in that: The filter plate (19) is snap-connected to the upper end of the guide groove (18), and the upper end of the filter plate (19) is flush with the upper surface of the roof plate (7), and the inner wall of the guide groove (18) is designed to be inclined.

4. The energy-saving and environmentally friendly assembled tool room according to claim 3, characterized in that: The lower right end of the guide groove (18) is connected to a drainage pipe (20), the middle of the second support plate (3) on the right side passes through a collection pipe (21), and the upper end of the collection pipe (21) is conductively connected to the drainage pipe (20), and the inner end of the collection pipe (21) is conductively connected to the liquid storage tank (22).

5. The energy-saving and environment-friendly assembled tool room according to claim 4, characterized in that: A circulation groove (24) is provided on the inner wall of the second partition plate (6), and heat exchange plates (25) are distributed in an array inside the circulation groove (24). Conducting holes are provided in an array at the upper and lower ends of the circulation groove (24).

6. The energy-saving and environment-friendly assembled tool shed according to claim 5, characterized in that: The second partition plate (6) at the upper end is connected to a liquid inlet pipe (26), and the second partition plate (6) at the lower end is connected to a liquid outlet pipe (27), and both the liquid outlet pipe (27) and the liquid inlet pipe (26) are in communication with the circulation tank (24).

7. The energy-saving and environment-friendly assembled tool shed according to claim 1, characterized in that: The deflector cover (9) at the lower end is slidably connected to the roof plate (7), the lower end of the roof plate (7) is rotatably connected to an electric push rod (28), and the lower end of the deflector cover (9) at the lower end is rotatably connected to the end of the electric push rod (28).