A water-proof overlapping solar photovoltaic module

By designing anti-water accumulation overlapped solar photovoltaic modules and adopting composite and processing structures, the problem of photovoltaic modules being easily damaged and blocked is solved, and stable fixation and efficient drainage of the equipment are achieved, thus extending the service life and improving the conversion efficiency.

CN119401900BActive Publication Date: 2025-09-16润达光伏盐城有限公司
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Patent Information

Application Number
CN202411165768.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-08-23
Publication Date
2025-09-16
Estimated Expiration
2044-08-23

AI Technical Summary

Technical Problem

Existing solar photovoltaic modules are easily damaged by water flow or external impact during installation and use, and are easily affected by obstructions, resulting in reduced conversion efficiency.

Method used

A water-proof overlapped solar photovoltaic module is designed. It adopts components such as a composite mechanism, a processing mechanism, a limiting mechanism and a fixing mechanism. Through structures such as a transparent cover, a drainage mechanism, a friction plate and an electric push rod, the photovoltaic module is protected and stably fixed to prevent rainwater erosion and external impact, thereby improving drainage efficiency and conversion efficiency.

Benefits of technology

Effectively prevent photovoltaic modules from being damaged by external forces, reduce impurity obstruction, extend equipment life, improve drainage effect and conversion efficiency, maintain structural stability, and prevent equipment shaking and wear.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a lap-type solar photovoltaic module that prevents water accumulation. The present invention relates to the field of solar energy technology and includes a composite mechanism. The lap-type solar photovoltaic module that prevents water accumulation is designed with a composite mechanism. The fixing mechanism achieves the purpose of fixing the components, thereby maintaining the stability of the structure, avoiding the shaking of the internal structure caused by external forces, reducing component wear, and extending the service life of the equipment. The photovoltaic module is protected by a composite shell to avoid damage from external forces. A transparent cover is provided on the light-collecting side of the composite shell to prevent rainwater erosion or external impact, avoid blocking the light source, and prevent the reduction of conversion efficiency. The linear module controls the sliding of the slider to make the friction plate rub against the surface of the transparent cover. On the one hand, it facilitates the discharge of water from one side of the drainage mechanism. On the other hand, the friction between the water flow and the friction plate achieves a cleaning effect on the surface of the component, prevents impurities from being deposited on the surface of the structure, and reduces the blocking of the light source.
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Description

Technical Field

[0001] The invention relates to the technical field of solar energy, in particular to a water accumulation-proof overlapping solar photovoltaic assembly. Background Art

[0002] With the continuous exploitation and consumption of non-renewable energy sources like oil and coal, the use of renewable energy like solar energy is becoming increasingly widespread. Currently, solar photovoltaic modules are installed by first mounting brackets on building roofs. The modules, which are then attached to the brackets with outer frames, are then placed vertically and horizontally at predetermined intervals, depending on the size of the roof. These modules are then fixed to the brackets until the required number of solar photovoltaic modules is installed.

[0003] The existing technology is relatively simple to install solar photovoltaic modules, but most of them are directly exposed to the outside and are easily damaged by water flow or external impact, or blocked by components, reducing conversion efficiency. Therefore, new designs have been made on how to protect solar photovoltaic modules. Summary of the Invention

[0004] To achieve the above objectives, the present invention is implemented through the following technical solutions: a water-proof overlapping solar photovoltaic module, comprising:

[0005] A composite structure for supporting solar photovoltaic components;

[0006] a processing mechanism, the processing mechanism being used to support the composite mechanism;

[0007] The bottom of the composite mechanism is fixedly connected to the top of the processing mechanism;

[0008] Among them, the composite mechanism includes a composite shell, and the photovoltaic component is protected by the composite shell to avoid damage from external forces. The bottom of the composite shell is fixedly connected to the top of the processing mechanism, and the two sides of the top of the composite shell are fixedly connected with linear modules. The outer side of the linear module is slidably connected with a slider, and the sliding of the slider is controlled by the linear module to make the friction plate rub against the surface of the transparent cover. On the one hand, it is convenient for water to be discharged from one side of the drainage mechanism. On the other hand, the friction between the water flow and the friction plate achieves a cleaning effect on the surface of the component, prevents impurities from being deposited on the surface of the structure, and reduces the obstruction of the light source. The friction plates are fixedly connected between the opposite surfaces of the sliders, and square cutouts are provided on both sides of the outside of the friction plate. The middle of the top of the composite shell is fixedly connected with a transparent cover, and a transparent cover is provided on the light-collecting side of the composite shell. , so as to prevent rain erosion or external impact, and at the same time avoid blocking the light source and preventing the reduction of conversion efficiency. The transparent cover adopts a concave design, which is prone to water retention. One side of the outside of the transparent cover is fixedly connected with a drainage mechanism, and both sides of the inner wall of the composite shell are fixedly connected with a limiting mechanism. The limiting mechanism is squeezed to achieve the effect of limiting the movement of the components, avoiding the shaking of the internal structure caused by external forces, reducing component wear, and extending the service life of the equipment. A fixing mechanism is slidably connected between the opposite surfaces of the limiting mechanism, and one side of the composite shell adopts a sliding door method to dock the photovoltaic component with the fixing mechanism. The fixing mechanism is used to fix the components, so as to achieve the effect of maintaining structural stability. The fixing mechanism slides inside the limiting mechanism to facilitate adjustment and installation of photovoltaic components.

[0009] Preferably, the drainage mechanism includes a drainage pipe, which is designed in groups of three to increase the water intake and improve the drainage effect. The drainage pipe is designed in groups of three to increase the water intake and improve the drainage effect. There are three drainage pipes, and a fixed plate is fixedly connected to the outer side of the drainage pipe. The side of the fixed plate away from the linear module is fixedly connected to a drainage channel. The drainage channel adopts an arc structure to reduce water splashing during drainage and reduce the contact of stains with the equipment.

[0010] Preferably, the limiting mechanism includes a limiting shell, and the rotating ball rotates inside the limiting shell to increase the sliding speed of the component. The inner side of the limiting shell is slidably connected to the outer side of the fixing mechanism. A first electric push rod is fixedly connected to one side of the outside of the limiting shell. The side of the first electric push rod away from the limiting shell is fixedly connected to the inner wall of the composite shell. The middle of the inner side of the limiting shell is rotatably connected with a rotating ball. The rotating ball is made of silicone. When the first electric push rod controls the limiting shell to extend toward the middle of the inside of the device, the rotating ball is attached to the component, thereby achieving a braking effect on the component through the friction effect of the silicone, reducing the movement of the component, maintaining structural stability, and avoiding affecting the working efficiency.

[0011] Preferably, a spring rod is slidably connected to the groove of the rotating ball on the inner side of the limiting shell. When the rotating ball is in contact with the surface of the component, it is affected by pressure to move the rotating ball toward the inside of the groove of the limiting shell, and the trapezoidal block is supported by the spring rod to clamp the rotating ball, thereby limiting the rotation of the component and improving the braking effect. The trapezoidal block is fixedly connected to one side of the outside of the spring rod, and a strip-shaped cut is provided on one side of the outside of the trapezoidal block. By providing the strip-shaped cut and the groove, the contact area is increased, the friction performance is improved, and the braking effect is increased. At the same time, the groove increases the heat dissipation effect to avoid friction overheating affecting local performance.

[0012] Preferably, the fixing mechanism includes a fixed shell, and arc-shaped grooves are provided on both sides of the outside of the fixed shell, and the outer sides of the arc-shaped grooves are slidably connected to the inner side of the limiting shell. Sliding rods are slidably connected to the grooves on both sides of the outside of the fixed shell. By placing the photovoltaic component on the inside of the fixed shell, the silicone plate is supported by the sliding rod, and a spring is provided on the surface of the sliding rod. The elasticity of the spring improves the supporting effect, and the silicone plate clamps the component to achieve the function of fixing the component and prevent the component from shaking during operation. The outside of the sliding rod is fixedly connected to a silicone plate on one side close to the groove of the fixed shell. The silicone plate is made of silicone material and has certain heat resistance and friction. On the one hand, it increases the friction effect, and on the other hand, it has a waterproof effect by rubbing with the component, avoiding water vapor corrosion to the component and extending the service life of the equipment.

[0013] Preferably, the processing mechanism includes a supporting top plate, one side of the top of the supporting top plate is fixedly connected to a second electric push rod, the outside of the second electric push rod is fixedly connected to one side of the bottom of the composite shell away from the supporting top plate, the other side of the top of the supporting top plate is fixedly connected to a support rod, the support rod is connected to the composite mechanism, and supports one side of the bottom of the composite mechanism, and the second electric push rod is connected to the other side of the bottom of the composite mechanism, and the second electric push rod is used to control one side of the composite mechanism to rise and fall, thereby increasing the irradiation area by lifting and improving the conversion effect, and reducing the residual impurities in rainwater by the inclined structure, and the outside of the support rod is fixedly connected to the other side of the bottom of the composite shell away from the supporting top plate, and the middle of the bottom of the supporting top plate is fixedly connected to a rotating mechanism, and the processing mechanism is rotated by the rotating mechanism to drive the composite mechanism to turn, so that the inclined side faces the light source, thereby extending the irradiation time and improving the working efficiency.

[0014] Preferably, support columns are fixedly connected to the four corners of the bottom of the support top plate, and docking blocks are inserted into the bottom of the support columns. The bottom of the docking blocks is fixedly connected to the support bottom plate, and the outer sides of the support columns are fixedly connected to the diaphragms. When pressure from the top side causes the support columns to squeeze toward the docking blocks, the docking blocks limit the sliding range of the diaphragms. Springs are installed inside the diaphragms to achieve shock absorption and buffering effects, thereby improving the stability of the equipment.

[0015] Preferably, the rotating mechanism includes a cylindrical shell, the top of the cylindrical shell is fixedly connected to the bottom of the supporting top plate, the inner side of the cylindrical shell is fixedly connected to an arc frame, the outer side of the arc frame is rotatably connected to an annular block, the inner side of the annular block is fixedly connected to a cylindrical block, the inner side of the cylindrical shell rotates on the outer side of the cylindrical block, so that the arc frame and the annular block rub against each other, thereby reducing the friction between components and extending the service life of the equipment, the bottom of the cylindrical block is fixedly connected to the rotating bottom plate, and the top of the cylindrical block is provided with a spring block, and the spring material of the spring block plays a certain shock-absorbing and buffering role to maintain the stability of the structure.

[0016] The present invention provides a water-proof overlapping solar photovoltaic module, which has the following beneficial effects:

[0017] 1. The anti-water accumulation overlapped solar photovoltaic module adopts a composite structure design. One side of the composite shell adopts a sliding door method to connect the photovoltaic module with the fixing mechanism. The fixing mechanism is used to fix the components to maintain the stability of the structure. The fixing mechanism slides inside the limiting mechanism to facilitate the adjustment and installation of the photovoltaic module. At the same time, the limiting mechanism is squeezed to limit the movement of the components, thereby avoiding the internal structure shaking caused by external forces, reducing component wear and extending the service life of the equipment. The photovoltaic module is protected by the composite shell to avoid damage from external forces. A transparent cover is provided on the light-collecting side of the composite shell to prevent rain erosion or external impact, while avoiding obstruction of the light source and preventing reduction in conversion efficiency. The transparent cover adopts an inward concave design, which is prone to water retention. The linear module controls the sliding of the slider to make the friction plate rub against the surface of the transparent cover. On the one hand, it is convenient for water to be discharged from one side of the drainage mechanism. On the other hand, the friction between the water and the friction plate achieves a cleaning effect on the surface of the component, preventing impurities from being deposited on the surface of the structure and reducing obstruction of the light source.

[0018] 2. The anti-waterlogging overlapped solar photovoltaic module is designed with a drainage mechanism. The drainage pipes are designed in groups of three to increase the water intake and improve the drainage effect. The drainage pipes adopt a short straight structure to increase the water discharge speed and reduce water retention. The drainage channel adopts an arc structure to reduce water splashing during drainage and reduce the contact of stains with equipment.

[0019] 3. The anti-water accumulation overlapped solar photovoltaic module adopts the limiting mechanism design, and the rotating bead rotates inside the limiting shell to increase the sliding speed of the component. Secondly, the rotating bead is made of silicone. When the first electric push rod controls the limiting shell to extend toward the middle of the device, the rotating bead is attached to the component, so as to have a braking effect on the component through the friction effect of silicone, reduce the movement of the component, maintain the stability of the structure, and avoid affecting the working efficiency. When the rotating bead is attached to the surface of the component, it is affected by the pressure to move the rotating bead toward the inside of the groove of the limiting shell, and the trapezoidal block is supported by the spring rod to clamp the rotating bead, so as to achieve the purpose of limiting the rotation of the component and improving the braking effect. By opening the strip incision and increasing the contact area by grooving, the friction performance is improved and the braking effect is increased. At the same time, the heat dissipation effect is increased by grooving to avoid the influence of friction overheating on local performance.

[0020] 4. The anti-water accumulation overlapped solar photovoltaic module is designed with a fixing mechanism. By placing the photovoltaic module inside the fixed shell, the silicone plate is supported by a sliding rod. The sliding rod surface is provided with a spring. The elasticity of the spring improves the supporting effect. The silicone plate clamps the components to achieve the function of fixing the components and prevent the components from shaking during operation. The silicone plate is made of silicone material, which has certain heat resistance and friction properties. On the one hand, it increases the friction effect. On the other hand, it has a waterproof effect by rubbing with the components, avoiding water vapor corrosion to the components and extending the service life of the equipment.

[0021] 5. The anti-water accumulation overlapped solar photovoltaic module is designed through the processing mechanism. The support rod is connected to the composite mechanism to support one side of the bottom of the composite mechanism. The second electric push rod is connected to the other side of the bottom of the composite mechanism. The second electric push rod is used to control the lifting and lowering of one side of the composite mechanism. By lifting, the irradiation area is increased and the conversion effect is improved. At the same time, the inclined structure is used to reduce the residual impurities in rainwater. Then, the processing mechanism is rotated by the rotating mechanism to drive the composite mechanism to turn so that the inclined side faces the light source, thereby extending the irradiation time and improving the working efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 This is a schematic diagram of the external structure of the water-proof overlapping solar photovoltaic module of the present invention;

[0023] Figure 2 This is a schematic cross-sectional structure diagram of a water-proof overlapping solar photovoltaic module of the present invention;

[0024] Figure 3 Schematic diagram of the cross-sectional structure of the composite mechanism of the present invention;

[0025] Figure 4 This is a structural diagram of the drainage mechanism of the present invention;

[0026] Figure 5This is a schematic diagram of the limiting mechanism structure of the present invention;

[0027] Figure 6 This is a structural diagram of the fixing mechanism of the present invention;

[0028] Figure 7 It is a schematic diagram of the processing mechanism structure of the present invention;

[0029] Figure 8 It is a schematic diagram of the cross-sectional structure of the rotating mechanism of the present invention.

[0030] In the figure: 1. composite mechanism; 2. processing mechanism; 11. composite housing; 12. linear module; 13. slider; 14. friction plate; 15. square cutout; 16. transparent cover; 17. drainage mechanism; 18. limiting mechanism; 19. fixing mechanism; 171. drainage pipe; 172. fixing plate; 173. drainage channel; 181. limiting housing; 182. first electric push rod; 183. rotating bead; 184. trapezoidal block; 185. strip cutout ;186, spring rod; 191, fixed shell; 192, arc groove; 193, sliding rod; 194, silicone plate; 21, support top plate; 22, second electric push rod; 23, support rod; 24, support column; 25, support bottom plate; 26, docking block; 27, rotating mechanism; 28, cross partition; 271, cylindrical shell; 272, arc frame; 273, cylindrical block; 274, annular block; 275, spring block; 276, rotating bottom plate. DETAILED DESCRIPTION

[0031] The present invention will be described in further detail below with reference to the accompanying drawings and specific embodiments. The embodiments of the present invention are provided for purposes of illustration and description and are not intended to be exhaustive or to limit the invention to the disclosed forms. Many modifications and variations will be apparent to those skilled in the art. The embodiments are chosen and described to better illustrate the principles of the invention and its practical application, and to enable those skilled in the art to understand the invention and design various embodiments with various modifications suitable for specific applications.

[0032] The first embodiment, as Figures 1 to 3 As shown, the present invention provides a technical solution: a water-proof overlapping solar photovoltaic assembly, comprising a composite structure 1, the composite structure 1 is used to support the solar photovoltaic assembly;

[0033] A processing mechanism 2, which is used to support the composite mechanism 1;

[0034] The bottom of the composite mechanism 1 is fixedly connected to the top of the processing mechanism 2;

[0035] Among them, the composite mechanism 1 includes a composite shell 11, the bottom of the composite shell 11 is fixedly connected to the top of the processing mechanism 2, linear modules 12 are fixedly connected to both sides of the top of the composite shell 11, and a slider 13 is slidably connected to the outer side of the linear module 12. A friction plate 14 is fixedly connected between the opposite surfaces of the slider 13, and square cutouts 15 are provided on both sides of the outside of the friction plate 14. A transparent cover 16 is fixedly connected to the middle of the top of the composite shell 11, and a drainage mechanism 17 is fixedly connected to one side of the outside of the transparent cover 16. A limiting mechanism 18 is fixedly connected to both sides of the inner wall of the composite shell 11, and a fixing mechanism 19 is slidably connected between the opposite surfaces of the limiting mechanism 18. One side of the composite shell 11 adopts a sliding door method to connect the photovoltaic module with the fixing mechanism 19. The fixing mechanism 19 is used to fix the components to maintain the stability of the structure. The fixing mechanism 19 slides inside the limiting mechanism 18 to facilitate the adjustment and installation of the photovoltaic module. At the same time, it is squeezed by the limiting mechanism 18 to limit the movement of the components, thereby avoiding the internal structure shaking caused by external forces, reducing component wear, and extending the service life of the equipment. The photovoltaic module is protected by the composite shell 11 to avoid damage from external forces. A transparent cover 16 is set on the light-collecting side of the composite shell 11 to prevent rain erosion or external impact, while avoiding blocking the light source and preventing a reduction in conversion efficiency. The transparent cover 16 adopts an inward concave design, which is prone to water retention. The linear module 12 controls the sliding of the slider 13 to make the friction plate 14 rub against the surface of the transparent cover 16. On the one hand, it is convenient for water to be discharged from the side of the drainage mechanism 17. On the other hand, the friction between the water flow and the friction plate 14 can achieve the effect of cleaning the surface of the component, prevent impurities from being deposited on the surface of the structure, and reduce blocking of the light source.

[0036] The second embodiment, based on the first embodiment, see Figures 4 to 6 As shown, the drainage mechanism 17 includes three drain pipes 171. A fixing plate 172 is fixedly connected to the outside of the drain pipes 171. A drainage channel 173 is fixedly connected to the side of the fixing plate 172 away from the linear module 12. The drain pipes 171 are arranged in groups of three to increase water intake and improve drainage efficiency. The drain pipes 171 are short and straight to increase water discharge velocity and reduce water retention. The drainage channels 173 are curved to minimize water splashing during drainage and reduce contact between dirt and the equipment.

[0037] The limiting mechanism 18 includes a limiting housing 181, the inner side of which is slidably connected to the outer side of the fixing mechanism 19. A first electric push rod 182 is fixedly connected to one side of the outer portion of the limiting housing 181. The side of the first electric push rod 182 away from the limiting housing 181 is fixedly connected to the inner wall of the composite housing 11. A rotating bead 183 is rotatably connected to the middle of the inner side of the limiting housing 181. The rotating bead 183 rotates inside the limiting housing 181 to increase the sliding speed of the component. Secondly, the rotating bead 183 is made of silicone. When the first electric push rod 182 controls the limiting housing 181 to extend toward the middle of the device, the rotating bead 183 is attached to the component. The friction effect of the silicone acts as a brake on the component, reducing component movement, maintaining structural stability, and avoiding affecting operating efficiency.

[0038] A spring rod 186 is slidably connected to the groove inside the limiting housing 181 near the rotating ball 183. A trapezoidal block 184 is fixedly connected to one side of the outer portion of the spring rod 186. A strip-shaped cutout 185 is provided on one side of the outer portion of the trapezoidal block 184. When the rotating ball 183 is pressed against the surface of the component, it is affected by pressure and moves into the groove of the limiting housing 181. The spring rod 186 supports the trapezoidal block 184, clamping the rotating ball 183. This restricts component rotation and improves braking effectiveness. The strip-shaped cutout 185 increases contact area through the grooves, improving friction and enhancing braking effectiveness. The grooves also increase heat dissipation, preventing frictional overheating from affecting local performance.

[0039] The fixing mechanism 19 includes a fixed housing 191. Arc-shaped grooves 192 are provided on both sides of the exterior of the fixed housing 191. The outer sides of the arc-shaped grooves 192 are slidably connected to the inner side of the limiting housing 181. Sliding rods 193 are slidably connected to the grooves on both sides of the exterior of the fixed housing 191. A silicone plate 194 is fixedly connected to the outer side of the sliding rod 193, which is close to the groove of the fixed housing 191. By placing the photovoltaic module inside the fixed housing 191, the silicone plate 194 is supported by the sliding rod 193. The surface of the sliding rod 193 is provided with a spring, and the elasticity of the spring improves the support effect. The silicone plate 194 clamps the component to achieve the function of fixing the component and preventing it from shaking during operation. The silicone plate 194 is made of silicone material, which has certain heat resistance and friction properties. On the one hand, it increases the friction effect. On the other hand, it has a waterproof effect by rubbing against the component, preventing water vapor from corroding the component and extending the service life of the equipment.

[0040] The third embodiment, based on the first and second embodiments, see Figures 7 and 8As shown, the processing mechanism 2 includes a support top plate 21, a second electric push rod 22 fixedly connected to one side of the top of the support top plate 21, and an outer side of the second electric push rod 22, away from the support top plate 21, fixedly connected to one side of the bottom of the composite shell 11. A support rod 23 is fixedly connected to the other side of the top of the support top plate 21, and an outer side of the support rod 23, away from the support top plate 21, is fixedly connected to the other side of the bottom of the composite shell 11. A rotation mechanism 27 is fixedly connected to the middle of the bottom of the support top plate 21. The support rod 23 is connected to the composite mechanism 1, providing support for one side of the bottom of the composite mechanism 1. The second electric push rod 22 is connected to the other side of the bottom of the composite mechanism 1. The second electric push rod 22 controls the lifting and lowering of one side of the composite mechanism 1, thereby increasing the irradiation area and improving the conversion effect. At the same time, the tilting structure reduces the residual impurities in rainwater. The processing mechanism 2 is then rotated by the rotation mechanism 27, causing the composite mechanism 1 to turn so that the tilted side faces the light source, extending the irradiation time and improving the working efficiency.

[0041] The four corners of the bottom of the support top plate 21 are fixedly connected to support columns 24. The bottom of the support columns 24 is plugged with docking blocks 26. The bottom of the docking blocks 26 is fixedly connected to the support bottom plate 25. The outer side of the support columns 24 is fixedly connected to the diaphragm 28. When the pressure from the top side causes the support columns 24 to squeeze toward the docking blocks 26, the docking blocks 26 limit the sliding range of the diaphragm 28. The diaphragm 28 is equipped with a spring to achieve a shock-absorbing and buffering effect, thereby improving the stability of the equipment.

[0042] The rotating mechanism 27 includes a cylindrical housing 271, the top of which is fixedly connected to the bottom of the supporting top plate 21. An arc-shaped frame 272 is fixedly connected to the inside of the cylindrical housing 271. An annular block 274 is rotatably connected to the outside of the arc-shaped frame 272. A cylindrical block 273 is fixedly connected to the inside of the annular block 274. A rotating base plate 276 is fixedly connected to the bottom of the cylindrical block 273. A spring block 275 is provided on the top of the cylindrical block 273. The inside of the cylindrical housing 271 rotates outside the cylindrical block 273, causing the arc-shaped frame 272 to rub against the annular block 274. This reduces friction between components and extends the service life of the device. The spring material of the spring block 275 provides a certain degree of shock absorption and buffering, maintaining structural stability.

[0043] When in use, the sliding door on one side of the composite mechanism 1 is opened, and the photovoltaic component is fixed by the fixing mechanism 19, and the photovoltaic component is pushed into the interior of the composite mechanism 1. The fixing mechanism 19 is squeezed by the limiting mechanism 18 to limit the movement of the components, thereby avoiding shaking during external operations and affecting the conversion effect. The composite mechanism 1 protects the photovoltaic component, reduces rain erosion and external impact, and extends the service life of the equipment. While the composite mechanism 1 protects the photovoltaic component, a good lighting effect is ensured by the transparent cover 16.

[0044] A processing mechanism 2 is provided at the bottom of the composite mechanism 1. The processing mechanism 2 can keep one side of the composite mechanism 1 tilted so that it can be fully illuminated and improve the working efficiency. Secondly, the processing mechanism 2 can adjust the direction of the composite mechanism 1 and adjust it according to the light source to extend the working time and improve the conversion effect.

[0045] Obviously, the embodiments described are only some of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field and related fields without making creative efforts should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention shall be implemented in accordance with conventional means in the field unless otherwise specified or limited.

Claims

1. A water-proof overlapping solar photovoltaic module, characterized in that: include: A composite structure (1), the composite structure (1) is used to support a solar photovoltaic component; A processing mechanism (2), the processing mechanism (2) is used to support the composite mechanism (1); The bottom of the composite mechanism (1) is fixedly connected to the top of the processing mechanism (2); The composite mechanism (1) comprises a composite shell (11), the bottom of the composite shell (11) is fixedly connected to the top of the processing mechanism (2), the two sides of the top of the composite shell (11) are fixedly connected to linear modules (12), the outer side of the linear module (12) is slidably connected to a slider (13), a friction plate (14) is fixedly connected between the opposite surfaces of the slider (13), and square cutouts (15) are provided on both sides of the outside of the friction plate (14), a transparent cover (16) is fixedly connected to the middle of the top of the composite shell (11), and a drainage mechanism (17) is fixedly connected to one side of the outside of the transparent cover (16), a limiting mechanism (18) is fixedly connected to both sides of the inner wall of the composite shell (11), a fixing mechanism (19) is slidably connected between the opposite surfaces of the limiting mechanism (18), and the drainage mechanism (17) includes a plurality of grooves. The invention relates to a device for treating a plurality of drain pipes (171) comprising a plurality of drain pipes (171), wherein the plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided. The plurality of drain pipes (171) are provided.

2. The anti-waterlogging overlapped solar photovoltaic module according to claim 1, characterized in that: A fixing plate (172) is fixedly connected to the outside of the drainage pipe (171), and a side of the fixing plate (172) away from the linear module (12) is fixedly connected to a drainage channel (173).

3. The water-proof overlapping solar photovoltaic assembly according to claim 1, characterized in that: The inner side of the limiting shell (181) is slidably connected to the outer side of the fixing mechanism (19), and the side of the first electric push rod (182) away from the limiting shell (181) is fixedly connected to the inner wall of the composite shell (11).

4. The water-proof overlapping solar photovoltaic assembly according to claim 3, characterized in that: A spring rod (186) is slidably connected to a groove on the inner side of the limiting housing (181) near the rotating bead (183), and a trapezoidal block (184) is fixedly connected to one side of the outer side of the spring rod (186). A strip-shaped cutout (185) is provided on one side of the outer side of the trapezoidal block (184).

5. The water-proof overlapping solar photovoltaic assembly according to claim 1, characterized in that: Arc-shaped grooves (192) are provided on both sides of the exterior of the fixed shell (191), and the exterior of the arc-shaped groove (192) is slidably connected to the interior of the limiting shell (181).

6. The water-proof overlapping solar photovoltaic assembly according to claim 1, characterized in that: The side of the second electric push rod (22) away from the support top plate (21) is fixedly connected to one side of the bottom of the composite shell (11), the side of the support rod (23) away from the support top plate (21) is fixedly connected to the other side of the bottom of the composite shell (11), and the middle of the bottom of the support top plate (21) is fixedly connected to a rotating mechanism (27).

7. The water-proof overlapping solar photovoltaic assembly according to claim 6, characterized in that: The four corners of the bottom of the support top plate (21) are fixedly connected to support columns (24), the bottom of the support column (24) is plugged with a docking block (26), the bottom of the docking block (26) is fixedly connected to the support bottom plate (25), and the outer side of the support column (24) is fixedly connected to a transverse partition (28).

8. The water-proof overlapping solar photovoltaic assembly according to claim 6, characterized in that: The rotating mechanism (27) comprises a cylindrical shell (271), the top of the cylindrical shell (271) is fixedly connected to the bottom of the supporting top plate (21), the inner side of the cylindrical shell (271) is fixedly connected to an arc frame (272), the outer side of the arc frame (272) is rotatably connected to an annular block (274), the inner side of the annular block (274) is fixedly connected to a cylindrical block (273), the bottom of the cylindrical block (273) is fixedly connected to a rotating bottom plate (276), and the top of the cylindrical block (273) is provided with a spring block (275).

Citation Information

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