Cadmium telluride power generation glass roof mounting structure

By designing a mechanical linkage structure between the clamping components and the cleaning rack, combined with a V-shaped nylon plate and an elastic adjustment mechanism, the problem of insufficient cleaning capacity of cadmium telluride power generation glass roofs has been solved, achieving efficient cleaning and equipment protection, and improving power generation efficiency and service life.

CN121508428APending Publication Date: 2026-02-10FLAT LIGHT ENERGY CO LTD
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Patent Information

Application Number
CN202511557518.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-10-29
Publication Date
2026-02-10

AI Technical Summary

Technical Problem

Existing cadmium telluride photovoltaic glass roof installation structures have weak cleaning capabilities, resulting in insufficient power generation efficiency, which affects the economic benefits of photovoltaic systems and shortens their service life.

Method used

A structure comprising a clamping assembly, a fixing frame, a cleaning frame, a drive motor, a threaded rod, a threaded moving frame, an adaptive adjusting frame, and a cleaning plate was designed. Through mechanical linkage and elastic adjustment mechanisms, efficient cleaning of the cadmium telluride photovoltaic glass surface is achieved. The cleaning plate is made of V-shaped nylon sheet, combined with compression springs and buffer springs to ensure cleaning effectiveness and equipment protection.

Benefits of technology

This improves the cleaning ability of cadmium telluride photovoltaic glass, ensuring full utilization of power generation efficiency, extending service life, reducing replacement costs, and improving the economic benefits of photovoltaic systems.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a cadmium telluride power generation glass roof installation structure, and belongs to the technical field of solar power generation equipment installation, the cadmium telluride power generation glass roof installation structure comprises a clamping assembly used for fixing a cadmium telluride power generation glass roof, and the side face of the clamping assembly is provided with a fixing frame used for providing supporting force; cleaning frames used for limiting displacement are installed on the two sides of the fixing frame, guide grooves used for moving are formed in the two cleaning frames, a driving motor is installed on the side face of one cleaning frame, and an output shaft of the driving motor is connected with a threaded rod through a coupler. A guide rod is fixedly installed in the other cleaning frame, threaded moving frames are installed on the peripheries of the threaded rod and the guide rod, and self-adaptive adjusting frames are installed on the side faces of the two threaded moving frames. By means of the structure, the cleaning capacity can be improved, the power generation efficiency of the photovoltaic system can be brought into full play, and the economic benefits and energy output of the photovoltaic system are ensured; the service life of the power generation glass is prolonged and the replacement cost is reduced.
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Description

TECHNICAL FIELD

[0001] The application belongs to the technical field of solar power generation equipment installation, and particularly relates to a cadmium telluride power generation glass roof installation structure. BACKGROUND

[0002] Cadmium telluride power generation glass is a new type of photovoltaic material, has the advantages of low cost, high photoelectric conversion efficiency, etc., and has been widely used in the field of building photovoltaic integration. Dust, dirt, bird droppings and other pollutants will gradually accumulate on the surface of the glass. These pollutants act as a barrier, preventing light from penetrating the glass to reach the power generation layer. Weak cleaning ability can prevent the full play of its power generation efficiency, affect the economic benefits and energy output of the photovoltaic system, shorten the service life of the power generation glass, and increase the replacement cost.

[0003] After searching, the patent file (authorized announcement number CN221328848U) provides a cadmium telluride power generation glass roof installation structure, which belongs to the technical field of photovoltaic installation. In the utility model, the installation assembly is arranged, the cadmium telluride power generation glass can be conveniently installed, and the installation and disassembly are convenient. The subsequent maintenance and replacement operation can be more efficient, and the installation efficiency is improved. By arranging the fixing assembly and the clamping assembly, the cadmium telluride power generation glass can be fixed in multiple directions by only one operation when fixed, and the installation efficiency is improved. The device can meet the basic use requirement, but the weak cleaning ability can prevent the full play of its power generation efficiency, affect the economic benefits and energy output of the photovoltaic system, shorten the service life of the power generation glass, and increase the replacement cost. SUMMARY

[0004] The purpose of the present application is to provide a cadmium telluride power generation glass roof installation structure to solve the problems in the background art.

[0005] To achieve the above-mentioned purpose, the present application provides the following technical scheme: a cadmium telluride power generation glass roof installation structure, comprising a clamping assembly for fixing a cadmium telluride power generation glass roof, a fixing frame for providing a supporting force is installed on the side surface of the clamping assembly, and a cleaning frame for limiting displacement is installed on both sides of the fixing frame. A guide groove for movement is arranged in the interior of each of the two cleaning frames. A drive motor is installed on the side surface of one of the cleaning frames. A threaded rod is connected to the output shaft of the drive motor through a shaft coupling. A guide rod is fixedly installed in the interior of the other cleaning frame. Threaded moving frames are installed on the outer periphery of the threaded rod and the guide rod. Self-adapting adjusting frames are installed on the side surfaces of the two threaded moving frames.

[0006] Preferably, the interior of the two adaptive adjusting frames is provided with a sliding groove, the interior of the sliding groove is provided with a compression spring, one end of the compression spring is connected with the inner top wall of the adaptive adjusting frame.

[0007] Preferably, the other end of the compression spring is connected with a moving disc, the moving disc is slidingly arranged in the interior of the sliding groove.

[0008] Preferably, the side of the moving disc away from the compression spring is welded with a connecting rod, one end of the connecting rod away from the moving disc is provided with a cleaning plate for cleaning the surface of the cadmium telluride power generation glass roof, the bottom of the cleaning plate is provided with a V-shaped nylon plate.

[0009] Preferably, the outer periphery of the threaded rod is provided with an extrusion ring for protecting the equipment, the side surface of the extrusion ring is connected with the side surface of the threaded moving frame.

[0010] Preferably, the outer periphery of the threaded rod is provided with a buffer spring, one end of the buffer spring is connected with the interior of the guide groove, the other end of the buffer spring is connected with a contact ring for contacting with the extrusion ring.

[0011] Preferably, the side surface of the two adaptive adjusting frames is welded with an L-shaped limiting frame for limiting the displacement direction of the adaptive adjusting frame, the bottom of the L-shaped limiting frame is slidingly arranged on the surface of the cleaning frame.

[0012] Preferably, one end of the clamping assembly is provided with an antiskid rubber pad for increasing the friction, the top of the clamping assembly is provided with a cadmium telluride power generation glass body for power generation.

[0013] Preferably, the bottom of the clamping assembly is provided with an adjusting support for adjusting the inclination angle of the power generation glass.

[0014] Preferably, the bottom of the adjusting support is provided with a connecting plate, the bottom of the connecting plate is provided with a base for fixing with the outside.

[0015] Compared with the prior art, the technical effects and advantages of the present application are: The cadmium telluride power generation glass roof mounting structure, thanks to the structure of the cleaning plate, the driving motor drives the threaded rod to rotate, the threaded rod drives the threaded moving frame to move in the guide groove, the threaded moving frame drives the adaptive adjusting frame to move, the adaptive adjusting frame drives the moving disc, the connecting rod and the cleaning plate to move, the cleaning plate scrapes and cleans the impurities on the surface of the cadmium telluride power generation glass body, compared with the traditional cadmium telluride power generation glass roof mounting structure which has weak cleaning ability, this structure can improve the cleaning ability, fully exert the power generation efficiency, ensure the economic benefit and energy output of the photovoltaic system, prolong the service life of the power generation glass and reduce the replacement cost.

[0016] The cadmium telluride power generation glass roof mounting structure, thanks to the structure of the extrusion ring and the contact ring, when the threaded moving frame moves to the end, the extrusion ring contacts the contact ring, the extrusion ring extrudes the contact ring and the buffer spring, the buffer spring deforms, and plays a protection role.

[0017] The cadmium telluride power generation glass roof mounting structure, thanks to the structure of the moving disc, the compression spring extrudes the moving disc, the moving disc drives the connecting rod to extrude the cleaning plate, and the contact pressure between the cleaning plate and the cadmium telluride power generation glass body is increased, which can not only ensure the cleaning ability of the cleaning plate to the cadmium telluride power generation glass body, but also adaptively clean the contact pressure between the cleaning plate and the cadmium telluride power generation glass body, thereby protecting the equipment.

[0018] The cadmium telluride power generation glass roof mounting structure can achieve the mounting effect of the cadmium telluride power generation glass roof and clean the cadmium telluride power generation glass roof, thereby ensuring the power generation capacity. BRIEF DESCRIPTION OF DRAWINGS

[0019] In order to more clearly illustrate the specific embodiments of the present application or the technical solutions in the prior art, the drawings needed in the specific embodiments or the prior art description will be briefly introduced below. Obviously, the drawings in the following description are some embodiments of the present application, and those skilled in the art can obtain other drawings according to these drawings without creative labor.

[0020] Figure 1 is a structural schematic view of the present application; Figure 2 is a sectional view of the present application; Figure 3 is a structural schematic view of the cleaning frame of the present application; Figure 4 is a sectional view of the cleaning frame of the present application; Figure 5 is a structural schematic view of the self-adaptive adjusting frame of the present application; Figure 6 is an enlarged view of A in the present application; Figure 3 is an enlarged view of B in the present application; Figure 7 Figure 4 is an enlarged view of C in the present application; Figure 8 is an enlarged view of C in the present application; Figure 5 Explanation of reference signs:

[0021] ​​In the diagram: 1. Base; 101. Connecting plate; 102. Adjusting bracket; 103. Clamping assembly; 104. Fixing frame; 105. Cadmium telluride photovoltaic glass body; 2. Cleaning frame; 201. Drive motor; 202. Guide groove; 203. Threaded rod; 204. Threaded moving frame; 205. Guide rod; 3. Adaptive adjusting frame; 301. L-shaped limiting frame; 302. Sliding groove; 303. Compression spring; 304. Moving disk; 305. Connecting rod; 306. Cleaning plate; 4. Buffer spring; 401. Contact ring; 402. Compression ring. Detailed Implementation

[0022] In the following description, numerous specific details are set forth in order to provide a more thorough understanding of the invention. However, it will be apparent to those skilled in the art that the invention can be practiced without one or more of these details. In other instances, certain technical features well-known in the art have not been described in order to avoid obscuring the invention.

[0023] The connection method can be any existing method, such as bonding, welding, or bolting, depending on the actual needs.

[0024] like Figures 1 to 8 The cadmium telluride power generation glass roof installation structure shown includes a clamping assembly 103 for fixing the cadmium telluride power generation glass roof, a fixing frame 104 for providing support force is installed on the side of the clamping assembly 103, and a cleaning frame 2 for limiting displacement is installed on both sides of the fixing frame 104. The interiors of the two cleaning racks 2 are provided with guide grooves 202 for movement, the side of one cleaning rack 2 is provided with a driving motor 201, the output shaft of the driving motor 201 is connected with a threaded rod 203 through a shaft coupling, the interior of the other cleaning rack 2 is fixedly provided with a guide rod 205, the outer periphery of the threaded rod 203 and the guide rod 205 is provided with a threaded moving frame 204, the side of the two threaded moving frames 204 is provided with a self-adapting adjusting frame 3, the driving motor 201 is started, the driving motor 201 drives the threaded rod 203 to rotate, the threaded rod 203 drives the threaded moving frame 204 to move in the guide groove 202, the threaded moving frame 204 drives the self-adapting adjusting frame 3 to move, the threaded moving frame 204 moves along the direction of the guide rod 205, the guide rod 205 limits the movement of the cleaning plate 306, after the driving motor 201 is started, the motor output power drives the threaded rod 203 to start rotating. The threaded rod 203 is matched with the threaded moving frame 204 through threads, the rotation of the threaded rod 203 is converted into the linear movement of the threaded moving frame 204, and the movement path of the threaded moving frame 204 is constrained by the guide groove 202, so that the threaded moving frame 204 moves along a specific direction. The threaded moving frame 204 is connected with the self-adapting adjusting frame 3, and drives the self-adapting adjusting frame 3 to move in the movement process. Meanwhile, the threaded moving frame 204 is guided by the guide rod 205, so that the stability and accuracy of movement are ensured, and deviation is avoided.

[0025] Both adaptive adjustment frames 3 have sliding grooves 302 inside, and compression springs 303 are installed inside the sliding grooves 302. Damping is provided between the compression springs 303 and the sliding grooves 302 to prevent vibration and other side effects. One end of the compression spring 303 is connected to the inner top wall of the adaptive adjustment frame 3, and the other end of the compression spring 303 is connected to a moving disk 304. The moving disk 304 is slidably disposed inside the sliding grooves 302. A connecting rod 305 is welded to the side of the moving disk 304 away from the compression spring 303. A cleaning plate 306 for cleaning the surface of the cadmium telluride power generation glass roof is installed at the end of the connecting rod 305 away from the moving disk 304. A V-shaped nylon plate is installed at the bottom of the cleaning plate 306. The V-shaped nylon plate at the bottom of the cleaning plate 306 is mainly based on the dual advantages of the properties of nylon material and the V-shaped structure design. The tip design of the V-shaped structure can accurately... The V-shaped nylon plate precisely cuts into the crevices of dust and dirt on the glass surface, providing a stronger scraping ability, especially for particulate impurities or dried stains. Compared to a flat structure, it improves cleaning efficiency. The V-shaped nylon plate has a certain degree of elasticity, which can conform to the slight undulations on the surface of the photovoltaic glass (such as unevenness caused by coating texture or installation errors), ensuring thorough cleaning and avoiding cleaning omissions due to surface unevenness. The nylon material itself is less hard than glass (Mohs hardness is about 2.5-3) and has a smooth surface. The edges of the V-shaped structure are frosted, so they will not scratch the cadmium telluride film or coating layer on the glass surface during cleaning, thus avoiding affecting the light transmittance and photoelectric conversion efficiency of the photovoltaic glass. When the cleaning plate 306 encounters protrusions or foreign objects during movement, the elastic deformation of the V-shaped nylon plate can buffer the instantaneous pressure, reduce the hard impact on the glass, and reduce the risk of glass breakage, making it particularly suitable for long-term maintenance of photovoltaic modules.

[0026] This cleaning structure achieves efficient cleaning and protection of cadmium telluride photovoltaic glass through mechanical linkage and elastic adjustment mechanisms. When the adaptive adjustment frame 3 moves under the action of the drive mechanism, the moving disk 304, connecting rod 305, and cleaning plate 306 connected to it move synchronously. The cleaning plate 306 contacts the surface of the photovoltaic glass, scraping away dust, dirt, and other impurities during the movement. The compression spring 303 plays a key pressure adjustment role in the structure. In its initial state, the spring is in a compressed state, continuously squeezing the moving disk 304, and transmitting the pressure to the cleaning plate 306 through the connecting rod 305, causing the cleaning plate 306 to adhere to the surface of the photovoltaic glass with a certain pressure, enhancing the cleaning force and ensuring that impurities are effectively removed. When the cleaning plate 306 encounters uneven areas on the surface of the photovoltaic glass, or when the contact pressure changes due to external forces, the elastic deformation of the compression spring 303 comes into play. If the pressure is too high, the spring is further compressed to reduce the pressure of the cleaning plate 306 on the glass, thus avoiding damage to the photovoltaic glass due to excessive pressure. If the pressure is insufficient, the spring releases its elasticity to supplement the pressure and maintain the cleaning effect. This adaptive adjustment mechanism achieves a dual function: it ensures that the cleaning plate 306 cleans the glass surface with appropriate pressure to improve cleaning efficiency, and it can dynamically adjust the pressure according to the actual contact situation to prevent damage to the photovoltaic glass body 105 and the cleaning equipment due to abnormal pressure, extend the service life of the equipment, and ensure the stable operation of the photovoltaic system.

[0027] A compression ring 402 for protecting the equipment is provided on the outer periphery of the threaded rod 203. The side of the compression ring 402 is connected to the side of the threaded moving frame 204. A buffer spring 4 is provided on the outer periphery of the threaded rod 203. The buffer spring 4 is also equipped with damping. One end of the buffer spring 4 is connected to the inside of the guide groove 202, and the other end of the buffer spring 4 is connected to a contact ring 401 for contacting the compression ring 402. When the threaded moving frame 204 moves to the end, the compression ring 402 contacts the contact ring 401, and the compression ring 402 compresses the contact ring 401 and the buffer spring 4. The buffer spring 4 deforms, thus providing protection. When the threaded moving frame 204 moves to the end along the guide groove under the action of the drive mechanism, the compression ring 402 at its end will collide with the fixed contact ring 401. The compressive force generated by the continuous movement of the compression ring 402 acts on the contact ring 401, and at the same time compresses the buffer spring 4 between the two. When compressed, the buffer spring 4 undergoes elastic deformation, absorbing the impact kinetic energy of the threaded moving frame 204 through its own elastic potential energy, thus slowing down its movement and eventually bringing it to a stop. This structure dissipates impact energy through the deformation of the buffer spring 4, preventing damage to the threaded moving frame 204 from hard impacts to its ends. It also reduces the vibration impact on the entire installation structure, ensuring the stability and safety of equipment operation and playing a crucial buffering and protective role.

[0028] Both adaptive adjustment frames 3 have L-shaped limiting frames 301 welded to their sides to limit the displacement of the adaptive adjustment frame 3. The bottom of the L-shaped limiting frame 301 is slidably disposed on the surface of the cleaning frame 2.

[0029] One end of the clamping assembly 103 is equipped with an anti-slip rubber pad to increase friction. The top of the clamping assembly 103 is fitted with a cadmium telluride power-generating glass body 105 for power generation. The bottom of the clamping assembly 103 is fitted with an adjustment bracket 102 for adjusting the tilt angle of the power-generating glass. An angle sensor and a light sensor are installed on the side of the cleaning rack 2 to adjust the length of the adjustment bracket 102 according to the light sensor signal. The angle sensor outputs an electrical signal by detecting the rotation or tilt angle of the object. A potentiometer-type sensor utilizes resistance changes; when rotated, a slider moves on a resistive element, and the resistance value is proportional to the angle, converting it into a voltage signal. An encoder cuts the light source through a code disk scale, generating pulse signals; the number of pulses corresponds to the angle. A MEMS tilt sensor, based on a microelectromechanical system, utilizes the displacement of a mass block under gravity to change capacitance or resistance, which is then converted into angle data by a circuit. The light sensor converts the light signal into an electrical signal. A photoresistor's resistance decreases as light intensity increases, which is converted into a change in current or voltage through a circuit. Silicon photovoltaic cells utilize the photovoltaic effect, where light generates photogenerated carriers to form an electromotive force. Digital illuminance sensors (such as the BH1750) receive light intensity through photodiodes, and after amplification and A / D conversion, output illuminance values ​​as digital signals, directly communicating with the control system. These two types of sensors work together to provide real-time data support for adjusting the angle of cadmium telluride glass. Angle sensors and light sensors are existing technologies and not innovative aspects of this cadmium telluride power generation glass roof installation structure, so they will not be described in detail. A connecting plate 101 is installed at the bottom of the adjusting bracket 102, and a base 1 for fixing to the outside is installed at the bottom of the connecting plate 101. The connecting plate 101 and the adjusting bracket 102 are fixed in a designated position using the base 1 to form the shape of the cadmium telluride power generation glass roof support. The clamping assembly 103 uses elastic clamping arms to arrange and fix the cadmium telluride power generation glass body 105 on the clamping assembly 103 to form the cadmium telluride power generation glass roof. The length of the adjusting bracket 102 is adjusted using angle sensors and light sensors, thereby adjusting the angle of the cadmium telluride power generation glass body 105. The base 1, as a basic support component, is firmly fixed to the designated position on the roof by means of expansion bolts or embedded parts. The installation interface reserved on its top is tightly connected to the connecting plate 101. Then, the adjusting bracket 102 is fixed to the connecting plate 101 by means of welding, bolt connection, etc., to form a stable roof support frame. Subsequently, the elastic clamping arms of the clamping component 103 play a fixing role. When the cadmium telluride power generation glass body 105 is placed between the clamping arms, the elastic material automatically deforms and uses the elastic restoring force to clamp and fix the glass frame, ensuring that the glass is arranged neatly and stably. In the angle adjustment stage, the angle sensor and light sensor installed on the cleaning rack 2 and the power generation glass monitor the current glass tilt angle and light intensity and direction data in real time. Based on sensor feedback, the control system drives the telescopic mechanism (such as an electric push rod or screw drive) inside the adjusting bracket 102 to adjust the bracket length. As a key moving component in the cadmium telluride photovoltaic glass roof installation structure, the adjusting bracket 102 adopts a dual-sided independent adjustment design. Through the coordinated telescopic movement of the two side brackets, the cadmium telluride photovoltaic glass body 105 can be precisely adapted within the range of 0-135°, providing structural support for improving photoelectric conversion efficiency. In terms of structural composition, the adjusting bracket 102 is based on a high-strength alloy, with electric telescopic push rods (or screw drive mechanisms) built into both sides. The top of the push rod is hinged to the rotating connector at the bottom of the clamping assembly 103, and the bottom is stably connected to the connecting plate 101 through a fixed shaft. This dual-sided symmetrical movable structure breaks the angle limitations of traditional fixed supports. When the tilt angle of the power-generating glass needs to be adjusted, the control system can drive the telescopic components of the two side adjustment supports 102 according to the real-time light direction feedback from the light sensor and the current glass tilt angle data monitored by the angle sensor. If the tilt angle needs to be increased (such as tracking strong midday sunlight in summer), the south support can be extended and the north support can be shortened. Through the change in the height difference between the two sides, the clamping component 103 is driven to tilt upward around the rotation axis. If the tilt angle needs to be decreased (such as adapting to low-angle sunlight in winter), the telescopic amount of the two side supports is adjusted in the opposite direction, so that the glass gradually reduces the tilt angle. In terms of the angle adjustment range, the adjustment support 102 achieves full coverage of 0-135° through precise matching of the telescopic strokes on both sides. When the telescopic amount of the two side supports is exactly the same, the power-generating glass remains horizontal (0°), which is suitable for temporary maintenance or special installation scenarios. As the height difference between the two side supports gradually increases, the tilt angle increases synchronously, reaching a maximum steep slope of 135°, which can adapt to roofs where snow is easy to slide in northern winters or building facades that need to track low-angle sunlight. In addition, the telescopic mechanism of the adjustment bracket 102 has a self-locking function, which can be stably locked at any angle position to avoid angle deviation caused by wind and vibration, and ensure that the power generation glass is always in the best light receiving posture, providing a reliable angle guarantee for the cadmium telluride power generation glass body 105 to fully absorb solar energy and improve power generation efficiency.

[0030] Working principle In use, the cadmium telluride (CTD) power generation glass roof installation structure first uses the base 1 to fix the connecting plate 101 and the adjusting bracket 102 in the designated position, forming the shape of the CTD power generation glass roof support. The clamping assembly 103 uses elastic clamping arms to arrange and fix the CTD power generation glass body 105 on the clamping assembly 103, forming the CTD power generation glass roof. The length of the adjusting bracket 102 is adjusted using angle sensors and light sensors, thereby adjusting the angle of the CTD power generation glass body 105. When there is dust or other impurities on the CTD power generation glass body 105, the drive motor 201 is turned on. The drive motor 201 drives the threaded rod 203 to rotate. The threaded rod 203 drives the threaded moving frame 204 to move in the guide groove 202. The threaded moving frame 204 drives the adaptive adjusting frame 3 to move. The adaptive adjusting frame 3 drives the moving disk 304, the connecting rod 305, and the cleaning plate 306. The cleaning plate 306 moves to scrape and clean impurities on the surface of the cadmium telluride photovoltaic glass body 105. As the cleaning plate 306 moves, the threaded moving frame 204 moves along the guide rod 205. The guide rod 205 limits the movement of the cleaning plate 306. The compression spring 303 presses the moving disc 304, which in turn drives the connecting rod 305 to press the cleaning plate 306, increasing the contact pressure between the cleaning plate 306 and the cadmium telluride photovoltaic glass body 105. This ensures the cleaning ability of the cleaning plate 306 on the cadmium telluride photovoltaic glass body 105 and adapts to the contact pressure between the cleaning plate 306 and the cadmium telluride photovoltaic glass body 105, thereby protecting the equipment. When the threaded moving frame 204 moves to the end, the compression ring 402 contacts the contact ring 401. The compression ring 402 compresses the contact ring 401 and the buffer spring 4, causing the buffer spring 4 to deform and provide protection.

[0031] It should be noted that in this article, relational terms such as one and two are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations.

[0032] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A cadmium telluride power generation glass roof mounting structure, comprising a clamping assembly (103) for fixing the cadmium telluride power generation glass roof, characterized in that: The clamping assembly (103) has a fixing frame (104) for providing support force on its side, and cleaning frames (2) for limiting displacement are installed on both sides of the fixing frame (104). Both cleaning frames (2) are provided with guide grooves (202) for movement inside. One of the cleaning frames (2) is equipped with a drive motor (201) on its side. The output shaft of the drive motor (201) is connected to a threaded rod (203) through a coupling. The other cleaning frame (2) is fixedly installed with a guide rod (205) inside. Threaded moving frames (204) are installed on the outer periphery of the threaded rod (203) and the guide rod (205). Adaptive adjustment frames (3) are installed on the sides of both threaded moving frames (204).

2. The cadmium telluride power generation glass roof mounting structure according to claim 1, characterized in that: Both of the adaptive adjustment frames (3) are provided with sliding grooves (302) inside, and compression springs (303) are provided inside the sliding grooves (302). One end of the compression springs (303) is connected to the inner top wall of the adaptive adjustment frame (3).

3. The cadmium telluride power generation glass roof mounting structure according to claim 2, characterized in that: The other end of the compression spring (303) is connected to a movable disk (304), which is slidably disposed inside the sliding groove (302).

4. The cadmium telluride power generation glass roof installation structure according to claim 3, characterized in that: A connecting rod (305) is welded to the side of the movable disk (304) away from the compression spring (303). A cleaning plate (306) for cleaning the surface of the cadmium telluride power generation glass roof is installed at the end of the connecting rod (305) away from the movable disk (304). A V-shaped nylon plate is installed at the bottom of the cleaning plate (306).

5. The cadmium telluride power generation glass roof mounting structure according to claim 1, characterized in that: The outer periphery of the threaded rod (203) is provided with a compression ring (402) for protecting the equipment, and the side of the compression ring (402) is connected to the side of the threaded moving frame (204).

6. The cadmium telluride power generation glass roof mounting structure according to claim 1, characterized in that: A buffer spring (4) is provided on the outer periphery of the threaded rod (203). One end of the buffer spring (4) is connected to the inside of the guide groove (202), and the other end of the buffer spring (4) is connected to a contact ring (401) for contacting the extrusion ring (402).

7. The cadmium telluride power generation glass roof mounting structure according to claim 1, characterized in that: Both of the adaptive adjustment frames (3) have L-shaped limit frames (301) welded to their sides to limit the displacement of the adaptive adjustment frame (3), and the bottom of the L-shaped limit frame (301) is slidably disposed on the surface of the cleaning frame (2).

8. The cadmium telluride power generation glass roof mounting structure according to claim 1, characterized in that: One end of the clamping assembly (103) is provided with an anti-slip rubber pad for increasing friction, and the top of the clamping assembly (103) is equipped with a cadmium telluride power generation glass body (105) for power generation.

9. The cadmium telluride power generation glass roof mounting structure according to claim 1, characterized in that: The bottom of the clamping assembly (103) is equipped with an adjustment bracket (102) for adjusting the tilt angle of the power generation glass.

10. The cadmium telluride power generation glass roof mounting structure according to claim 9, characterized in that: The bottom of the adjusting bracket (102) is equipped with a connecting plate (101), and the bottom of the connecting plate (101) is equipped with a base (1) for fixing to the outside.

Citation Information

Patent Citations

  • Cadmium telluride power generation glass roof mounting structure

    CN221328848U