A building integrated solar heating, insulation and ventilation curtain wall
By designing concave grooves and threaded cylinders in the integrated heating, insulation and ventilation curtain wall of solar buildings, and using drive motors and threaded rod systems, the problem of inconvenient replacement and maintenance of curtain wall glass is solved, rapid disassembly and installation is achieved, and maintenance efficiency is improved.
Patent Information
- Application Number
- CN202510221547.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-27
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2045-02-27
AI Technical Summary
The existing integrated heating, insulation and ventilation curtain walls of solar buildings are not convenient for rapid disassembly and installation during the replacement and maintenance of curtain wall glass, resulting in a decrease in maintenance efficiency.
An integrated heating, insulation and ventilation curtain wall of solar building including frame, positioning frame, support block, photovoltaic module, support frame, curtain wall glass, wind power module and regulation module is designed. By setting up a concave groove and threaded cylinder, the drive motor and threaded rod system facilitates rapid removal and installation of curtain wall glass.
It realizes rapid disassembly and installation of curtain wall glass, improves the efficiency of maintenance and replacement, and reduces manpower and time consumption.
Smart Images

Figure CN119711685B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of curtain walls, and specifically relates to a solar building integrated heating, insulation and ventilation curtain wall. Background Art
[0002] A solar building integrated heating, insulation and ventilation curtain wall is an innovative design that combines solar energy utilization and building energy-saving technologies, aiming to improve the energy efficiency and comfort of buildings. Solar photovoltaic modules are installed on the surface to directly convert solar energy into electrical energy for building lighting, equipment operation, etc. High-efficiency thermal insulation materials are used to reduce heat loss and improve the thermal insulation performance of the building, which helps to keep the indoor warm in winter and reduce heating costs. It can not only reduce the energy consumption of buildings and dependence on traditional energy sources, but also contribute to the development of sustainable buildings.
[0003] A Chinese patent with the publication number CN104727472A discloses a solar building integrated heating, insulation and ventilation curtain wall, which is composed of a wall fireproof insulation board, an angular heat-absorbing curtain wall body, a rolling curtain vertical rail, a sunshade and heat-insulating rolling curtain, a rolling curtain machine, a heat-insulating rolling curtain outer cover, a heat-insulating filling material and a solar heating and ventilation system; the angular heat-absorbing curtain wall body can not only directly absorb solar energy through photothermal conversion and provide clean heating for the indoor through the solar heating and ventilation system to achieve the purpose of heating, but also because it itself is a double-layer sealed structure composed of an angular panel and an angular heat-absorbing plate, and forms a double-layer cavity heat-insulating layer to improve the heat insulation performance of the wall; the externally provided sunshade and heat-insulating rolling curtain can not only shade and prevent sunburn, but also prevent wind and heat insulation, greatly reducing the energy consumption pressure of indoor air conditioners. Moreover, the structure is simple, and disassembly, installation, repair and maintenance are convenient; factory production and on-site assembly reduce the construction and operation and maintenance costs; it is low-carbon, energy-saving and environmentally friendly, and has high building quality.
[0004] However, in the process of using the existing solar building integrated heating, insulation and ventilation curtain wall, if the curtain wall glass is damaged or needs to be replaced and maintained, it often faces the problem of being inconvenient for quick disassembly and installation. This process usually takes a long time and manpower, resulting in a decline in the efficiency of maintenance work.
[0005] Therefore, the present invention provides a solar building integrated heating, insulation and ventilation curtain wall. Summary of the Invention
[0006] In order to make up for the deficiencies of the existing technology and solve the problem that the curtain wall glass is inconvenient for quick disassembly and installation, the present invention proposes a solar building integrated heating, insulation and ventilation curtain wall.
[0007] The technical solution adopted by the present invention to solve its technical problems is as follows: A solar building integrated heating, insulation and ventilation curtain wall of the present invention includes a frame, a positioning frame is fixedly installed on the frame, a support block is fixedly installed inside the frame, a photovoltaic module is fixedly installed on the support block, a support frame is arranged inside the frame, a curtain wall glass is fixedly installed inside the support frame, a positioning component is arranged on the frame, a wind power component is arranged inside the support block, a storage groove is arranged inside the support block, a strip-shaped block is arranged inside the storage groove, a concave groove is fixedly installed on the strip-shaped block, an adjusting component is arranged inside the storage groove, a limiting groove is arranged inside the frame, two limiting strips are symmetrically installed on the support frame, one of the limiting strips is arranged inside the limiting groove, and the other limiting strip is limited inside the concave groove. A square frame is arranged inside the support block, a compression component is arranged inside the square frame, a cleaning component is arranged on the concave groove, and a limiting component is arranged on the concave groove.
[0008] By adopting the above technical solution, by using a large area of curtain wall glass, natural light can be effectively introduced, the indoor lighting conditions of the building can be improved, and a comfortable living and working environment can be created. The photovoltaic module is a prior art, mainly used to convert solar energy into electrical energy, absorb sunlight through the photovoltaic effect and generate current. A storage battery is arranged on the building frame and is electrically connected to the photovoltaic module, which can store the generated electricity and provide renewable electricity for various equipment and the power grid. It contains good thermal insulation materials, which can prevent heat loss, keep the indoor temperature stable, and improve the energy efficiency of the building. This thermal insulation performance helps to reduce the energy consumption of winter heating and summer cooling. By using solar energy for heating and effective insulation, the energy consumption of the building can be reduced, thereby reducing carbon emissions. In winter, the curtain wall glass heats the indoor air by absorbing sunlight and can send the warm air into the room, thereby achieving the purpose of heating.
[0009] Preferably, the wind power component includes a frame body, a wind cylinder, a filter screen and a fan. The frame bodies are symmetrically arranged inside the support block, the wind cylinders are symmetrically installed inside the frame bodies, the filter screen is fixedly installed at one end of the wind cylinder, the fan is fixedly installed inside the wind cylinder, an air collecting groove is fixedly installed inside the frame body, and the wind cylinder is communicated with the air collecting groove. A connecting head is arranged at the top of the air collecting groove, and the connecting head is connected to the cleaning component through a pipeline.
[0010] By adopting the above technical solution, the indoor air is made to flow by the operation of the fan, and thus the indoor air quality can be improved.
[0011] Preferably, the cleaning component includes a diversion groove and spray holes. The diversion groove is embedded inside the concave groove, and the connecting head is connected to the diversion groove through a pipeline. The spray holes are arranged in an array on the diversion groove, and the spray holes are arranged parallel to the curtain wall glass.
[0012] By adopting the above technical solution, after the wind flows into the air collecting tank, through the cooperation of the connecting head and the pipeline, the wind flows into the shunt tank, and through the air injection holes, the wind flows to the surface of the curtain wall glass, thereby removing the impurities adsorbed on the surface of the curtain wall glass and improving the cleanliness of the curtain wall glass.
[0013] Preferably, the adjusting assembly includes a threaded cylinder and a threaded rod. The threaded cylinder is fixedly installed inside the strip-shaped block. The threaded rod is threadedly connected inside the threaded cylinder. A driving motor is fixedly installed inside the square frame, and one end of the threaded rod is fixedly connected to the output end of the driving motor.
[0014] By adopting the above technical solution, when the output end of the driving motor rotates clockwise, it will drive the threaded rod to rotate. The rotation of the threaded rod will cause the threaded cylinder to move. The threaded cylinder will drive the strip-shaped block to move. The strip-shaped block will drive the concave groove to move, thereby adjusting the position of the concave groove. When the output end of the driving motor rotates counterclockwise and drives the threaded rod to rotate, the threaded cylinder will reset, and then the strip-shaped block will drive the concave groove to reset.
[0015] Preferably, the compression assembly includes a connecting plate, a compression cylinder, a gas collecting pipe, a delivery pipe, a support rod and a piston block. The connecting plate is arranged inside the square frame. The compression cylinder is fixedly installed inside the square frame and is located on one side of the driving motor. The gas collecting pipe is arranged inside the square frame, and the compression cylinder is communicated with the gas collecting pipe. The delivery pipe is installed at the central position of the gas collecting pipe. The piston block is arranged inside the compression cylinder. One end of the support rod is fixedly connected to the central position of the piston block, and the other end of the support rod is fixedly connected to the connecting plate. Connecting rods are symmetrically installed on the connecting plate, and one end of the connecting rod is fixedly connected to the strip-shaped block. A guiding assembly is arranged inside the square frame.
[0016] By adopting the above technical solution, when the strip-shaped block moves upward, the connecting plate will be driven to move synchronously through the connecting rod. When the connecting plate moves, the piston block will be driven to move through the support rod. When the piston block moves inside the compression cylinder, the air inside the compression cylinder will be compressed. The compressed air will flow into the gas collecting pipe, and through the delivery pipe, the compressed air will flow into the sealing ring, causing the volume of the sealing ring to expand. Thus, the sealing ring will seal the gap between the support frame and the frame, improving the sealing performance.
[0017] Preferably, the guiding assembly includes a guiding groove and a guiding plate. The guiding grooves are symmetrically arranged inside the connecting plate. The guiding plate is snap-fitted inside the guiding groove and is fixedly connected to the square frame.
[0018] By adopting the above technical solution, when the connecting plate moves, it will drive the guiding groove to slide on the guiding plate. The cooperation between the guiding groove and the guiding plate will guide the connecting plate to move smoothly.
[0019] Preferably, a sealing ring is fixedly installed inside the frame, and the sealing ring communicates with one end of the conveying pipe. The sealing ring is located on one side of the support frame, and winding components are symmetrically arranged on the connecting plate.
[0020] By adopting the above technical solution, the frame provides an installation space for the sealing ring. When the volume of the sealing ring expands, it seals the gap between the frame and the support frame, improving the sealing performance.
[0021] Preferably, the winding component includes an activity groove, a winding wheel, a gear, a traction rope, and a limiting hole. The activity grooves are symmetrically installed on the connecting plate. The winding wheel is movably arranged inside the activity groove. One end of the traction rope is fixedly connected to the winding wheel. The gear is fixedly installed on the winding wheel. The limiting hole is arranged on the activity groove, and the traction rope passes through the limiting hole. Positioning holes are symmetrically arranged on the support frame. A rack corresponding to the gear is fixedly installed inside the square frame, and the gear meshes with the rack.
[0022] By adopting the above technical solution, when installing the curtain wall glass, the positioning holes and the limiting rings are concentrically arranged. When the connecting plate moves downward, it drives the activity groove to move. The movement of the activity groove drives the winding wheel to move. The cooperation between the gear and the rack causes the winding wheel to rotate. When the winding wheel rotates, it winds the traction rope.
[0023] Preferably, the positioning component includes a groove body, a limiting ring, a positioning shaft, a driving plate, and an L-shaped pipe. The groove bodies are symmetrically installed inside the frame. The limiting rings are fixedly installed on the groove bodies. The positioning shaft is inserted inside the limiting rings, and one end of the positioning shaft extends into the positioning holes. The driving plate is arranged inside the groove body, and the other end of the positioning shaft is fixedly connected to the driving plate. The L-shaped pipe is fixedly installed inside the groove body, and one end of the traction rope passes through the L-shaped pipe and is fixedly connected to the center position of the driving plate.
[0024] By adopting the above technical solution, when the winding wheel rotates to wind the traction rope, a slideway for the movement of the traction rope is arranged inside the frame. The L-shaped pipe guides the traction rope. When the traction rope moves, it pulls the driving plate to move. The movement of the driving plate pushes the positioning shaft to move. The positioning shaft moves into the positioning holes to position the position of the support frame, thereby improving the stability of the installation of the curtain wall glass.
[0025] Preferably, guide rods are symmetrically installed inside the groove body, and the guide rods pass through the driving plate. A return spring is fixedly installed on the driving plate, and the top end of the return spring is fixedly connected to the groove body.
[0026] By adopting the above technical solution, the guide rod will guide the driving plate, the return spring will push the driving plate to move back to its original position when reset, and the reset of the driving plate will drive the positioning shaft to reset. After the positioning shaft moves into the groove body, it will no longer position the side of the support frame, thus facilitating the quick disassembly of the support frame.
[0027] Preferably, the limiting component includes a strip-shaped groove, a support plate, a limiting shaft and a round hole. The strip-shaped groove is fixedly installed on the concave groove, the support plate is arranged inside the strip-shaped groove, the limiting shaft is fixedly installed on the support plate, and a round hole corresponding to the limiting shaft is arranged on the limiting strip near the concave groove side, and the limiting shaft passes through the round hole. A conductive block is fixedly installed at the bottom of the strip-shaped block, and a conductive groove corresponding to the conductive block is fixedly installed inside the storage groove. An electromagnet is fixedly installed inside the strip-shaped groove, and the electromagnet is located on one side of the support plate. A hole corresponding to the limiting shaft is arranged on the concave groove, and the limiting shaft passes through the hole. A guide shaft is fixedly installed inside the strip-shaped groove, and the guide shaft penetrates the support plate. A driving spring is arranged around the guide shaft.
[0028] By adopting the above technical solution, when the limiting shaft passes through the round hole, it will limit the position of the support frame, and thus limit the curtain wall glass. When replacing the curtain wall glass, the downward movement of the concave groove drives the support frame to move downward. The cooperation between the limiting shaft and the round hole will limit the support frame to prevent the curtain wall glass from accidentally tipping over and being damaged. When the strip-shaped block completely moves downward into the storage groove, after the conductive block enters the conductive groove, the current flows into the electromagnet, and the electromagnet will generate magnetic force. The support plate is made of iron material and will attract the support plate to move, thus driving the limiting shaft to move out of the round hole, and then no longer limiting the support frame, which is convenient for replacing the curtain wall glass. After replacing the replaced curtain wall glass and the support frame, when the strip-shaped block moves upward, the conductive block is separated from the conductive groove, so that the electromagnet no longer generates magnetic force. The reset of the driving spring will push the support plate to move, and the movement of the support plate will drive the limiting shaft to re-enter the round hole for limiting. Therefore, when replacing the curtain wall glass, the limiting effect on the curtain wall glass can be improved, and accidental tipping and danger can be avoided.
[0029] The beneficial effects of the present invention are as follows:
[0030] 1. A solar building integrated heating, insulation and ventilation curtain wall according to the present invention is provided with a concave groove and a threaded cylinder to facilitate the quick disassembly and installation of the curtain wall glass. When the output end of the driving motor rotates, it drives the threaded rod to rotate. The rotation of the threaded rod causes the threaded cylinder to move. The threaded cylinder drives the strip-shaped block to move, and no longer positions the side of the support frame, thereby facilitating the quick disassembly of the support frame. After placing the replaced curtain wall glass and the support frame at the installation location, when one of the limiting strips is placed inside the limiting groove, and the adjusting assembly moves in the reverse direction, the position of the strip-shaped block is adjusted. When the strip-shaped block moves, it drives the concave groove to move, so that the other limiting strip is limited inside the concave groove, thereby limiting the support frame, and thus achieving the purpose of quickly disassembling and installing the curtain wall glass, improving work efficiency.
[0031] 2. A solar building integrated heating, insulation and ventilation curtain wall according to the present invention is provided with a positioning block and a positioning shaft to facilitate the positioning of the position of the installed curtain wall glass and improve the installation efficiency. When the connecting plate moves, it drives the movable groove to move. The movement of the movable groove drives the winding wheel to move. The gear cooperates with the rack, causing the winding wheel to rotate. When the winding wheel rotates, it winds the traction rope. The limiting hole guides the traction rope to move smoothly. When the traction rope moves, it pulls the driving plate to move. The guide rod guides the driving plate. The movement of the driving plate pushes the positioning shaft to move. The positioning shaft moves into the positioning hole to position the position of the support frame, thereby improving the stability of the installation of the curtain wall glass, achieving the purpose of quickly positioning and installing the curtain wall glass, and quickly replacing and installing the curtain wall glass, improving the work efficiency of replacing the curtain wall glass of the solar building integrated heating, insulation and ventilation curtain wall.
[0032] 3. A solar building integrated heating, insulation and ventilation curtain wall according to the present invention is provided with a compression cylinder and a sealing ring. When replacing and installing the curtain wall glass, it can improve the sealing performance and further improve the installation efficiency. When the strip-shaped block moves upward, it drives the connecting plate to move synchronously through the connecting rod. When the connecting plate moves, it drives the piston block to move through the support rod. When the piston block moves inside the compression cylinder, it compresses the air inside the compression cylinder. The compressed air flows into the collecting pipe, and through the delivery pipe, the compressed air flows into the sealing ring, causing the volume of the sealing ring to expand. Thus, the sealing ring seals the gap between the support frame and the frame, improving the sealing performance.
[0033] 4. The solar building integrated heating, heat preservation and ventilation curtain wall described in the present invention can clean the installed curtain wall glass when the indoor air flows through the set fan and air jet holes. The fan can make the indoor air flow. After the air flows into the wind tube, the wind will flow into the air collecting trough. After the wind is concentrated by the air collecting trough, the wind will flow into the connecting head, and will flow to the inside of the diversion trough through the pipeline, and will flow to the surface of the curtain wall glass through the air jet holes, thereby removing impurities adsorbed on the surface of the curtain wall glass, thereby improving the cleanliness of the curtain wall glass.
[0034] 5. The solar building integrated heating, heat preservation and ventilation curtain wall described in the present invention can improve the stability of the curtain wall glass position by setting a limit shaft, reduce the position shaking during the replacement of the curtain wall glass, and thus improve the efficiency of installing and removing the curtain wall glass. When replacing the curtain wall glass, the limit shaft moves out of the round hole, and thus the support frame is no longer limited, which is convenient for replacing the curtain wall glass. After the replaced curtain wall glass and the support frame are replaced, the strip block is moved up, and the driving spring reset will push the support plate to move. The movement of the support plate will drive the limit shaft to re-enter the round hole for limiting, and thus when replacing the curtain wall glass, the limiting effect of the curtain wall glass can be improved to avoid accidental tipping and danger, thereby achieving the purpose of facilitating the replacement of the curtain wall glass and improving the replacement efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0035] The present invention will be further described below in conjunction with the accompanying drawings.
[0036] Figure 1 It is a three-dimensional diagram of the solar building integrated heating, heat preservation and ventilation curtain wall of the present invention;
[0037] Figure 2 It is a schematic diagram of the framework structure in the present invention;
[0038] Figure 3 It is a schematic diagram of the support frame structure in the present invention;
[0039] Figure 4 It is a schematic diagram of the support block structure in the present invention;
[0040] Figure 5 It is a schematic diagram of the bar block structure in the present invention;
[0041] Figure 6 It is a schematic diagram of the frame structure in the present invention;
[0042] Figure 7 It is a structural schematic diagram of the connecting plate in the present invention;
[0043] Figure 8 The present invention Figure 7 A is a schematic diagram of the structure enlargement;
[0044] Figure 9 It is a schematic structural diagram of the tank body in the present invention;
[0045] Figure 10 It is a schematic structural diagram of the compression cylinder in the present invention;
[0046] Figure 11 It is a schematic structural diagram of the support plate in the present invention;
[0047] Figure 12 It is a schematic structural diagram of the strip groove in the present invention;
[0048] Figure 13 It is a schematic structural diagram of the storage groove in the present invention.
[0049] In the figure: 1. Frame; 2. Positioning frame; 3. Support block; 4. Photovoltaic module; 5. Support frame; 6. Curtain wall glass; 7. Frame body; 8. Air duct; 9. Filter screen; 10. Fan; 11. Air collecting groove; 12. Connector; 13. Storage groove; 14. Strip block; 15. Concave groove; 16. Threaded cylinder; 17. Threaded rod; 18. Driving motor; 19. Shunt groove; 20. Air injection hole; 21. Limit strip; 22. Square frame; 23. Connecting plate; 24. Guide groove; 25. Guide plate; 26. Compression cylinder; 27. Gas collecting pipe; 28. Delivery pipe; 29. Sealing ring; 30. Rack; 31. Support rod; 32. Piston block; 33. Connecting rod; 34. Activity groove; 35. Winding wheel; 36. Gear; 37. Traction rope; 38. Limit hole; 39. Positioning hole; 40. Limit groove; 41. Tank body; 42. Limit ring; 43. Positioning shaft; 44. Driving plate; 45. Guide rod; 46. Return spring; 47. L-shaped pipe; 48. Strip groove; 49. Conductive block; 50. Electromagnet; 51. Support plate; 52. Limit shaft; 53. Hole; 54. Guide shaft; 55. Driving spring; 56. Conductive groove; 57. Round hole. Specific embodiments
[0050] In order to make the technical means, creative features, achieved purposes and effects of the present invention easy to understand, the present invention will be further described below in conjunction with specific embodiments.
[0051] Such as Figures 1 to 10As shown in the figure, an integrated solar building heating, insulation and ventilation curtain wall according to an embodiment of the present invention includes a frame 1, a positioning frame 2 is fixedly installed on the frame 1, a support block 3 is fixedly installed inside the frame 1, a photovoltaic module 4 is fixedly installed on the support block 3, a support frame 5 is arranged inside the frame 1, a curtain wall glass 6 is fixedly installed inside the support frame 5, a positioning component is arranged on the frame 1, a wind power component is arranged inside the support block 3, a storage groove 13 is arranged inside the support block 3, a strip block 14 is arranged inside the storage groove 13, a concave groove 15 is fixedly installed on the strip block 14, an adjusting component is arranged inside the storage groove 13, a limiting groove 40 is arranged inside the frame 1, two limiting strips 21 are symmetrically installed on the support frame 5, one of the limiting strips 21 is arranged inside the limiting groove 40, and the other limiting strip 21 is limited inside the concave groove 15. A square frame 22 is arranged inside the support block 3, a compression component is arranged inside the square frame 22, and a cleaning component is arranged on the concave groove 15. When installing and using the integrated solar building heating, insulation and ventilation curtain wall, a connecting piece is fixed at the installation site. After using a positioning bolt to pass through the positioning frame 2 and thread it with the connecting piece, the integrated solar building heating, insulation and ventilation curtain wall can be fixedly installed. By adopting a large-area curtain wall glass 6, natural light can be effectively introduced, the indoor lighting conditions of the building can be improved, and a comfortable living and working environment can be created. The photovoltaic module 4 is a prior art, mainly used for converting solar energy into electrical energy, absorbing sunlight through the photovoltaic effect and generating current. A storage battery is arranged on the building frame and is electrically connected to the photovoltaic module 4, which can store the generated electricity and provide renewable electricity for various devices and the power grid. It contains good thermal insulation materials, which can prevent heat loss, keep the indoor temperature stable, and improve the energy efficiency of the building. This thermal insulation performance helps to reduce the energy consumption of winter heating and summer cooling. By using solar energy for heating and effective thermal insulation, the energy consumption of the building is reduced, thereby reducing carbon emissions. In winter, the curtain wall glass 6 heats the indoor air by absorbing sunlight and can send the warm air into the room, thereby achieving the purpose of heating. After using the integrated solar building heating, insulation and ventilation curtain wall for a long time, when a single curtain wall glass 6 is damaged and needs to be maintained or replaced, an artificial glass negative pressure suction cup is used to limit the curtain wall glass 6, and then the adjusting component is moved, which will adjust the position of the strip block 14. When the strip block 14 moves, it will drive the concave groove 15 to move, and at the same time, it will drive the positioning component to move, and no longer limit the support frame 5, so that the curtain wall glass 6 can be disassembled. After placing the replaced curtain wall glass 6 and the support frame 5 at the installation site, when one of the limiting strips 21 is placed inside the limiting groove 40, the adjusting component is moved in the reverse direction, which will adjust the position of the strip block 14. When the strip block 14 moves, it will drive the concave groove 15 to move, so that the other limiting strip 21 is limited inside the concave groove 15, and then the support frame 5 will be limited. At the same time, the positioning component will be reset, and further position the support frame 5, so as to quickly position and install the curtain wall glass 6.The purpose of being able to quickly replace and install the curtain wall glass 6 improves work efficiency. At the same time, it will cause the compression component to move, and the compressed component compresses the air flow into the inside of the sealing ring 29, causing the volume of the sealing ring 29 to expand. Furthermore, it can seal the gap between the support frame 5 and the frame 1, thereby further improving the sealing performance. When it is necessary to make the indoor air flow to achieve the ventilation effect, the wind power component is moved, and then it will cause the indoor air to flow, thereby achieving the purpose of ventilation. After the wind power flows into the cleaning component, the cleaning component will make the wind power flow to the surface of the curtain wall glass 6, and then it can remove the impurities adsorbed on the surface of the curtain wall glass 6, improving the cleaning efficiency. There is a window (prior art) on the building frame. When indoor ventilation is required, the window is opened, or the indoor door is opened to make the indoor not in a sealed state. One end of the air duct 8 is located indoors. When the wind power component moves, the fan 10 works to extract the indoor air. The indoor air flow will flow into the inside of the air duct 8. When the indoor air flows, the outside air will flow into the room through the window or the door body, achieving the purpose of indoor air circulation and then achieving the purpose of ventilation. The air duct 8 is connected to the air collecting groove 11. The air extracted by the fan 10 will flow into the inside of the air collecting groove 11. The connecting head 12 is connected to the air collecting groove 11. The connecting head 12 is connected to the flow dividing groove 19 through a pipeline. The wind power entering the inside of the air collecting groove 11 will enter the flow dividing groove 19 through the connecting head 12. Through the air injection holes 20, the wind power will flow to the surface of the curtain wall glass 6, thereby achieving the purpose of indoor air flow. One end of the air duct 8 is connected to the indoor, and the other end is sealed. The air entering the inside of the air duct 8 is mainly discharged through the connecting head 12 and finally flows to the outside through the air injection holes 20. And a one-way valve is provided inside the air injection holes 20. When exhausting, the wind power can flow to the outside, but the outside wind power cannot flow in. Therefore, it will not be ventilated all the time. By making the wind power flow outwards through the air injection holes 20, it will flow to the surface of the curtain wall glass 6. As long as the wind power flows to the surface of the curtain wall glass 6, it can remove the nearby impurities, rather than comprehensively cleaning the curtain wall glass 6. The main purpose is to achieve auxiliary cleaning and can reuse the flowing wind power, reducing resource waste.
[0052] Such as Figure 4 And Figure 6As shown in the figure, the wind power component includes a frame body 7, a wind cylinder 8, a filter screen 9 and a fan 10. The frame body 7 is symmetrically arranged inside the support block 3. The wind cylinder 8 is symmetrically installed inside the frame body 7. The filter screen 9 is fixedly installed at one end of the wind cylinder 8. The fan 10 is fixedly installed inside the wind cylinder 8. An air collecting groove 11 is fixedly installed inside the frame body 7, and the wind cylinder 8 is communicated with the air collecting groove 11. A connecting head 12 is arranged at the top of the air collecting groove 11, and the connecting head 12 is connected to the cleaning component through a pipeline. When the fan 10 works, the indoor air flows. After the air flows into the wind cylinder 8, the wind power will flow into the air collecting groove 11. After the wind power is concentrated by the air collecting groove 11, the wind power will flow into the connecting head 12, and through the pipeline, the wind power will flow into the cleaning component, and the cleaning component will clean the curtain wall glass 6.
[0053] As Figure 4 and Figure 7 shown in the figure, the cleaning component includes a flow dividing groove 19 and air jet holes 20. The flow dividing groove 19 is embedded inside the concave groove 15, and the connecting head 12 is communicated with the flow dividing groove 19 through a pipeline. The air jet holes 20 are arranged in an array on the flow dividing groove 19, and the air jet holes 20 are arranged parallel to the curtain wall glass 6. After the wind power flows into the air collecting groove 11, through the cooperation of the connecting head 12 and the pipeline, the wind power flows into the flow dividing groove 19, and through the air jet holes 20, the wind power will flow to the surface of the curtain wall glass 6, so as to remove the impurities adsorbed on the surface of the curtain wall glass 6 and improve the cleanliness of the curtain wall glass 6.
[0054] As Figure 4 and Figure 5 shown in the figure, the adjusting component includes a threaded cylinder 16 and a threaded rod 17. The threaded cylinder 16 is fixedly installed inside the strip-shaped block 14, and the threaded rod 17 is threadedly connected inside the threaded cylinder 16. A driving motor 18 is fixedly installed inside the square frame 22, and one end of the threaded rod 17 is fixedly connected to the output end of the driving motor 18. When the adjusting component works, when the output end of the driving motor 18 rotates clockwise, it will drive the threaded rod 17 to rotate. The rotation of the threaded rod 17 will cause the threaded cylinder 16 to move. The threaded cylinder 16 will drive the strip-shaped block 14 to move, and the strip-shaped block 14 will drive the concave groove 15 to move, so as to adjust the position of the concave groove 15. When the output end of the driving motor 18 rotates counterclockwise and drives the threaded rod 17 to rotate, the threaded cylinder 16 will reset, and then the concave groove 15 will be driven to reset by the strip-shaped block 14.
[0055] As Figure 4 , Figure 7 and Figure 10As shown in the figure, the compression assembly includes a connecting plate 23, a compression cylinder 26, a gas collecting pipe 27, a conveying pipe 28, a support rod 31 and a piston block 32. The connecting plate 23 is arranged inside the square frame 22. The compression cylinder 26 is fixedly installed inside the square frame 22 and is located on one side of the driving motor 18. The gas collecting pipe 27 is arranged inside the square frame 22, and the compression cylinder 26 is communicated with the gas collecting pipe 27. The conveying pipe 28 is installed at the central position of the gas collecting pipe 27. The piston block 32 is arranged inside the compression cylinder 26. One end of the support rod 31 is fixedly connected to the central position of the piston block 32, and the other end of the support rod 31 is fixedly connected to the connecting plate 23. Connecting rods 33 are symmetrically installed on the connecting plate 23, and one end of each connecting rod 33 is fixedly connected to the strip-shaped block 14. A guiding assembly is arranged inside the square frame 22. When the strip-shaped block 14 moves upward, the connecting plate 23 will be driven to move synchronously through the connecting rods 33. When the connecting plate 23 moves, the piston block 32 will be driven to move through the support rod 31. When the piston block 32 moves inside the compression cylinder 26, the air inside the compression cylinder 26 will be compressed. The compressed air will flow into the gas collecting pipe 27. Through the conveying pipe 28, the compressed air will flow into the sealing ring 29, causing the volume of the sealing ring 29 to expand. Thus, the sealing ring 29 will seal the gap between the support frame 5 and the frame 1, improving the sealing performance. When the strip-shaped block 14 moves downward, the connecting plate 23 is driven to move through the connecting rods 33, and then the piston block 32 is driven to move through the support rod 31. When the piston block 32 moves downward, the air inside the sealing ring 29 will be extracted, and thus the volume of the sealing ring 29 will no longer expand.
[0056] As Figure 4 shown, the guiding assembly includes a guiding groove 24 and a guiding plate 25. The guiding grooves 24 are symmetrically arranged inside the connecting plate 23. The guiding plates 25 are snap-fitted inside the guiding grooves 24 and are fixedly connected to the square frame 22. When the connecting plate 23 moves, it will drive the guiding grooves 24 to slide on the guiding plates 25. The cooperation between the guiding grooves 24 and the guiding plates 25 will guide the connecting plate 23 to move smoothly.
[0057] As Figure 3 shown, a sealing ring 29 is fixedly installed inside the frame 1, and the sealing ring 29 is communicated with one end of the conveying pipe 28. The sealing ring 29 is located on one side of the support frame 5. Reeling assemblies are symmetrically arranged on the connecting plate 23. The frame 1 provides an installation space for the sealing ring 29. When the volume of the sealing ring 29 expands, it will seal the gap between the frame 1 and the support frame 5, improving the sealing performance. When the connecting plate 23 moves, it will drive the reeling assemblies to move and reel in the towing rope 37.
[0058] As Figure 7 and Figure 8As shown in the figure, the winding component includes a movable slot 34, a winding wheel 35, a gear 36, a traction rope 37, and a limit hole 38. The movable slots 34 are symmetrically installed on the connecting plate 23. The winding wheel 35 is movably arranged inside the movable slot 34. One end of the traction rope 37 is fixedly connected to the winding wheel 35. The gear 36 is fixedly installed on the winding wheel 35. The limit hole 38 is arranged on the movable slot 34, and the traction rope 37 passes through the limit hole 38. Positioning holes 39 are symmetrically arranged on the support frame 5. A rack 30 corresponding to the gear 36 is fixedly installed inside the square frame 22, and the gear 36 meshes with the rack 30. A slideway is arranged inside the frame 1 to facilitate the movement of the traction rope 37. When installing the curtain wall glass 6, the positioning holes 39 and the limit ring 42 are concentrically arranged. When the connecting plate 23 moves downward, it will drive the movable slot 34 to move. The movement of the movable slot 34 will drive the winding wheel 35 to move. The cooperation between the gear 36 and the rack 30 will cause the winding wheel 35 to rotate. When the winding wheel 35 rotates, it will wind the traction rope 37. The limit hole 38 will guide the traction rope 37 to make the traction rope 37 move smoothly.
[0059] As Figure 3 and Figure 9 shown in the figure, the positioning component includes a groove body 41, a limit ring 42, a positioning shaft 43, a driving plate 44, and an L-shaped pipe 47. The groove bodies 41 are symmetrically installed inside the frame 1. The limit ring 42 is fixedly installed on the groove body 41. The positioning shaft 43 is inserted inside the limit ring 42, and one end of the positioning shaft 43 extends into the positioning hole 39. The driving plate 44 is arranged inside the groove body 41, and the other end of the positioning shaft 43 is fixedly connected to the driving plate 44. The L-shaped pipe 47 is fixedly installed inside the groove body 41, and one end of the traction rope 37 passes through the L-shaped pipe 47 and is fixedly connected to the center position of the driving plate 44. Guide rods 45 are symmetrically installed inside the groove body 41, and the guide rods 45 pass through the driving plate 44. A return spring 46 is fixedly installed on the driving plate 44, and the top end of the return spring 46 is fixedly connected to the groove body 41. When the winding wheel 35 rotates to wind the traction rope 37, a slideway for the movement of the traction rope 37 is arranged inside the frame 1. The L-shaped pipe 47 will guide the traction rope 37. When the traction rope 37 moves, it will pull the driving plate 44 to move. The guide rods 45 will guide the driving plate 44. The movement of the driving plate 44 will push the positioning shaft 43 to move. The positioning shaft 43 moves into the positioning hole 39 to position the position of the support frame 5, thereby improving the stability of the installation of the curtain wall glass 6. When the winding wheel 35 rotates in the reverse direction and relaxes the traction rope 37 instead of winding it, the return spring 46 resets and pushes the driving plate 44 to move back to its original position. The reset of the driving plate 44 will drive the positioning shaft 43 to reset. After the positioning shaft 43 moves into the groove body 41, it no longer positions the side of the support frame 5, thereby facilitating the quick disassembly of the support frame 5.
[0060] As Figure 11 , Figure 12 and Figure 13As shown in the figure, the limit assembly includes a strip groove 48, a support plate 51, a limit shaft 52 and a round hole 57. The strip groove 48 is fixedly installed on the concave groove 15. The support plate 51 is arranged inside the strip groove 48. The limit shaft 52 is fixedly installed on the support plate 51. A round hole 57 corresponding to the limit shaft 52 is arranged on the limit strip 21 on the side close to the concave groove 15. The limit shaft 52 penetrates inside the round hole 57. A conductive block 49 is fixedly installed at the bottom of the strip block 14. A conductive groove 56 corresponding to the conductive block 49 is fixedly installed inside the storage groove 13. An electromagnet 50 is fixedly installed inside the strip groove 48, and the electromagnet 50 is located on one side of the support plate 51. A hole 53 corresponding to the limit shaft 52 is arranged on the concave groove 15, and the limit shaft 52 penetrates inside the hole 53. A guide shaft 54 is fixedly installed inside the strip groove 48, and the guide shaft 54 penetrates through the support plate 51. A driving spring 55 is arranged around the guide shaft 54. The conductive groove 56 is electrically connected to a storage battery arranged on the building frame. The conductive block 49 is electrically connected to the electromagnet 50. During the installation of the curtain wall glass 6, the limit shaft 52 penetrates inside the round hole 57, which will limit the position of the support frame 5, and then will limit the curtain wall glass 6. When replacing the curtain wall glass 6, the downward movement of the concave groove 15 drives the support frame 5 to move downward. The cooperation between the limit shaft 52 and the round hole 57 will limit the support frame 5 to prevent the curtain wall glass 6 from accidentally tipping over and being damaged. When the strip block 14 completely moves downward into the storage groove 13, after the conductive block 49 enters the conductive groove 56 and the current flows into the electromagnet 50, the electromagnet 50 will generate a magnetic force. The support plate 51 is made of iron material, which will attract the support plate 51 to move, and then will drive the limit shaft 52 to move out of the round hole 57, and then no longer limit the support frame 5, facilitating the replacement of the curtain wall glass 6. After replacing the replaced curtain wall glass 6 and the support frame 5, when the strip block 14 moves upward, the conductive block 49 is separated from the conductive groove 56, and then the electromagnet 50 no longer generates a magnetic force. The reset of the driving spring 55 will push the support plate 51 to move. The movement of the support plate 51 will drive the limit shaft 52 to re-enter the round hole 57 for limiting. Then, when replacing the curtain wall glass 6, the limiting effect on the curtain wall glass 6 can be improved, preventing accidental tipping over and causing danger, achieving the purpose of facilitating the replacement of the curtain wall glass 6 and improving the replacement efficiency.
[0061] Working principle: First, when installing and using the integrated solar building heating, insulation and ventilation curtain wall, connectors are fixed at the installation site. After using positioning bolts to pass through the positioning frame 2 and threadedly connect with the connectors, the integrated solar building heating, insulation and ventilation curtain wall can be fixedly installed. By adopting a large-area curtain wall glass 6, natural light can be effectively introduced, the indoor lighting conditions of the building can be improved, and a comfortable living and working environment can be created. The photovoltaic module 4 is a prior art, mainly used to convert solar energy into electrical energy, absorb sunlight through the photovoltaic effect and generate current. A storage battery is arranged on the building frame and is electrically connected to the photovoltaic module 4, which can store the generated electricity and provide renewable electricity for various equipment and the power grid. It contains good thermal insulation materials, which can prevent heat loss, keep the indoor temperature stable, and improve the energy efficiency of the building. This thermal insulation performance helps to reduce the energy consumption of winter heating and summer cooling. By using solar energy for heating and effective insulation, the energy consumption of the building is reduced, thereby reducing carbon emissions. In winter, the curtain wall glass 6 heats the indoor air by absorbing sunlight and can send the warm air into the room, thus achieving the purpose of heating. After long-term use of the integrated solar building heating, insulation and ventilation curtain wall, when a single curtain wall glass 6 is damaged and needs to be maintained or replaced, manually use a glass negative pressure suction cup to limit the position of the curtain wall glass 6, so that the rotation of the output end of the driving motor 18 will drive the rotation of the threaded rod 17. The rotation of the threaded rod 17 will cause the threaded barrel 16 to move. Through the threaded barrel 16, the strip-shaped block 14 will be driven to move. Through the strip-shaped block 14, the concave groove 15 will be driven to move, and then the position of the concave groove 15 will be adjusted. When the winding wheel 35 rotates in the reverse direction, the traction rope 37 will be relaxed and no longer wound. The reset spring 46 will reset and push the driving plate 44 to move and reset. The reset of the driving plate 44 will drive the positioning shaft 43 to reset. After the positioning shaft 43 moves into the inside of the groove body 41, the side of the support frame 5 will no longer be positioned, thus facilitating the rapid disassembly of the support frame 5. After placing the replaced curtain wall glass 6 and the support frame 5 at the installation site, when one of the limiting strips 21 is placed inside the limiting groove 40, and the adjusting assembly moves in the reverse direction, the position of the strip-shaped block 14 will be adjusted. When the strip-shaped block 14 moves, it will drive the concave groove 15 to move, so that the other limiting strip 21 is limited inside the concave groove 15, and then the support frame 5 will be limited. When the connecting plate 23 moves, it will drive the movable groove 34 to move. The movement of the movable groove 34 will drive the winding wheel 35 to move. The gear 36 cooperates with the rack 30, which will cause the winding wheel 35 to rotate. When the winding wheel 35 rotates, it will wind the traction rope 37. The limiting hole 38 will guide the traction rope 37 to make the traction rope 37 move smoothly. When the traction rope 37 moves, it will pull the driving plate 44 to move. The guide rod 45 will guide the driving plate 44. The movement of the driving plate 44 will push the positioning shaft 43 to move. The positioning shaft 43 moves into the positioning hole 39 to position the position of the support frame 5, thereby improving the installation stability of the curtain wall glass 6 and realizing the rapid positioning and installation of the curtain wall glass 6.The purpose of being able to quickly replace and install the curtain wall glass 6 improves work efficiency. At the same time, when the strip block 14 moves upward, the connecting rod 33 will drive the connecting plate 23 to move synchronously. When the connecting plate 23 moves, the support rod 31 will drive the piston block 32 to move. When the piston block 32 moves inside the compression cylinder 26, the air inside the compression cylinder 26 will be compressed. The compressed air will flow into the gas collecting pipe 27, and through the delivery pipe 28, the compressed air will flow into the sealing ring 29, causing the volume of the sealing ring 29 to expand. Thus, the sealing ring 29 will seal the gap between the support frame 5 and the frame 1, improving the sealing performance. When it is necessary to make the indoor air flow to achieve the ventilation effect, the fan 10 works to make the indoor air flow. After the air flows into the air duct 8, the wind force will flow into the air collecting groove 11. After the wind force is concentrated through the air collecting groove 11, the wind force will flow into the connecting head 12, and through the pipeline, the wind force will flow into the diversion groove 19, and through the air injection holes 20, the wind force will flow to the surface of the curtain wall glass 6, thereby removing the impurities adsorbed on the surface of the curtain wall glass 6 and improving the cleanliness of the curtain wall glass 6.,
[0062] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. What is described in the above embodiments and the specification only illustrates the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.
Claims
1. A solar building integrated heating, heat preservation and ventilation curtain wall, characterized by: The invention comprises a frame (1), a positioning frame (2) is fixedly mounted on the frame (1), a support block (3) is fixedly mounted inside the frame (1), a photovoltaic assembly (4) is fixedly mounted on the support block (3), a support frame (5) is arranged inside the frame (1), a curtain wall glass (6) is fixedly mounted inside the support frame (5), a positioning assembly is arranged on the frame (1), a wind assembly is arranged inside the support block (3), a storage groove (13) is arranged inside the support block (3), a strip block (14) is arranged inside the storage groove (13), and the strip block (14) ) is fixedly mounted with a concave groove (15), an adjusting component is arranged inside the storage groove (13), a limiting groove (40) is arranged inside the frame (1), two limiting strips (21) are symmetrically mounted on the support frame (5), one limiting strip (21) is arranged inside the limiting groove (40), and the other limiting strip (21) is limited inside the concave groove (15), a square frame (22) is arranged inside the support block (3), a compression component is arranged inside the square frame (22), a cleaning component is arranged on the concave groove (15), and a limiting component is arranged on the concave groove (15); The compression assembly comprises a connecting plate (23), a compression cylinder (26), an air collecting pipe (27), a delivery pipe (28), a support rod (31) and a piston block (32); the connecting plate (23) is arranged inside the square frame (22); the compression cylinder (26) is fixedly mounted inside the square frame (22), and the compression cylinder (26) is located on one side of the drive motor (18); the air collecting pipe (27) is arranged inside the square frame (22), and the compression cylinder (26) is connected to the air collecting pipe (27). The delivery pipe (28) is installed at the center of the gas collecting pipe (27), the piston block (32) is arranged inside the compression cylinder (26), one end of the support rod (31) is fixedly connected to the center of the piston block (32), and the other end of the support rod (31) is fixedly connected to the connecting plate (23), the connecting plate (23) is symmetrically mounted with connecting rods (33), and one end of the connecting rod (33) is fixedly connected to the strip block (14), and a guide component is arranged inside the square frame (22).
2. The solar building integrated heating, heat preservation and ventilation curtain wall according to claim 1, characterized in that: The wind power component comprises a frame (7), a wind tube (8), a filter (9) and a fan (10); the frame (7) is symmetrically arranged inside the support block (3); the wind tube (8) is symmetrically installed inside the frame (7); the filter (9) is fixedly installed at one end of the wind tube (8); the fan (10) is fixedly installed inside the wind tube (8); an air collecting trough (11) is fixedly installed inside the frame (7); the wind tube (8) is connected to the air collecting trough (11); a connector (12) is arranged at the top of the air collecting trough (11); and the connector (12) is connected to the cleaning component through a pipeline.
3. The solar building integrated heating, insulation and ventilation curtain wall according to claim 2, characterized in that: The cleaning component comprises a diverter groove (19) and air jet holes (20); the diverter groove (19) is embedded in the concave groove (15); the connector (12) is connected to the diverter groove (19) via a pipeline; the air jet holes (20) are arranged in an array on the diverter groove (19); and the air jet holes (20) are arranged parallel to the curtain wall glass (6).
4. The solar building integrated heating, insulation and ventilation curtain wall according to claim 3 is characterized by: The adjustment assembly comprises a threaded barrel (16) and a threaded rod (17); the threaded barrel (16) is fixedly mounted inside the bar block (14); the threaded rod (17) is threadedly connected inside the threaded barrel (16); a driving motor (18) is fixedly mounted inside the square frame (22); and one end of the threaded rod (17) is fixedly connected to an output end of the driving motor (18).
5. The solar building integrated heating, heat preservation and ventilation curtain wall according to claim 4, characterized in that: The guide assembly comprises a guide groove (24) and a guide plate (25), wherein the guide groove (24) is symmetrically arranged inside the connecting plate (23), the guide plate (25) is clamped inside the guide groove (24), and the guide plate (25) is fixedly connected to the square frame (22).
6. The solar building integrated heating, heat preservation and ventilation curtain wall according to claim 5, characterized in that: A sealing ring (29) is fixedly installed inside the frame (1), and the sealing ring (29) is connected to one end of the conveying pipe (28). The sealing ring (29) is located on one side of the support frame (5), and a winding assembly is symmetrically arranged on the connecting plate (23).
7. The solar building integrated heating, heat preservation and ventilation curtain wall according to claim 6, characterized in that: The winding assembly comprises a movable groove (34), a winding wheel (35), a gear (36), a traction rope (37) and a limiting hole (38); the movable groove (34) is symmetrically mounted on the connecting plate (23); the winding wheel (35) is movably arranged inside the movable groove (34); one end of the traction rope (37) is fixedly connected to the winding wheel (35); the gear (36) is fixedly mounted on the winding wheel (35); the limiting hole (38) is arranged on the movable groove (34); and the traction rope (37) passes through the limiting hole (38); positioning holes (39) are symmetrically arranged on the support frame (5); and a rack (30) corresponding to the gear (36) is fixedly mounted inside the square frame (22); and the gear (36) is meshed with the rack (30).
8. The solar building integrated heating, heat preservation and ventilation curtain wall according to claim 7, characterized in that: The positioning assembly comprises a groove body (41), a limiting ring (42), a positioning shaft (43), a driving plate (44) and an L-shaped tube (47); the groove body (41) is symmetrically mounted inside the frame (1); the limiting ring (42) is fixedly mounted on the groove body (41); the positioning shaft (43) is inserted into the limiting ring (42); one end of the positioning shaft (43) extends into the positioning hole (39); the driving plate (44) is arranged inside the groove body (41); and the positioning shaft (43) is fixedly mounted on the groove body (41); 3) the other end is fixedly connected to the driving plate (44), the L-shaped tube (47) is fixedly installed inside the trough body (41), and one end of the traction rope (37) passes through the L-shaped tube (47) and is fixedly connected to the center position of the driving plate (44), the trough body (41) is symmetrically installed with guide rods (45), and the guide rods (45) pass through the driving plate (44), and a return spring (46) is fixedly installed on the driving plate (44), and the top end of the return spring (46) is fixedly connected to the trough body (41).
9. The solar building integrated heating, heat preservation and ventilation curtain wall according to claim 8, characterized in that: The limiting assembly comprises a strip groove (48), a support plate (51), a limiting shaft (52) and a circular hole (57); the strip groove (48) is fixedly mounted on the concave groove (15); the support plate (51) is arranged inside the strip groove (48); the limiting shaft (52) is fixedly mounted on the support plate (51); a circular hole (57) corresponding to the limiting shaft (52) is arranged on the limiting strip (21) on one side close to the concave groove (15); and the limiting shaft (52) is passed through the circular hole (57); a conductive block (49) is fixedly mounted on the bottom of the strip block (14); and the storage groove (13) A conductive groove (56) corresponding to the conductive block (49) is fixedly installed inside the strip groove (48), an electromagnet (50) is fixedly installed inside the strip groove (48), and the electromagnet (50) is located on one side of the support plate (51), a hole (53) corresponding to the limit shaft (52) is provided on the concave groove (15), and the limit shaft (52) is penetrated inside the hole (53), a guide shaft (54) is fixedly installed inside the strip groove (48), and the guide shaft (54) passes through the support plate (51), and a driving spring (55) is arranged around the guide shaft (54).
Citation Information
Patent Citations
Solar building integrated heating heat preservation ventilation curtain wall
CN104727472A
Anti-shaking photovoltaic glass curtain wall
CN113338498A
Building curtain wall with fireproof and flame-retardant functions
CN216810482U