Wind power flow guide curtain wall for high-rise building

By designing the wind diversion curtain wall, using electric telescopic rods and elastic plates to adjust the air inlet and outlet, combined with the air exchange pump body and energy storage mechanism, the problem of slow heat dissipation in the building curtain wall is solved, and air circulation and heat dissipation is achieved, which improves the heat insulation performance and energy utilization efficiency of the building.

CN120401707AInactive Publication Date: 2025-08-01CHANGZHOU INST OF TECH
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Patent Information

Application Number
CN202510608283.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-13
Publication Date
2025-08-01
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing building curtain walls cannot effectively divert air, causing the temperature to rise rapidly under direct sunlight in summer, the heat dissipation is slow, and the indoor temperature also rises accordingly.

Method used

A wind-drive curtain wall for high-rise buildings is designed. Through the support frame and the curtain wall mechanism installed inside it, including the air inlet and air outlet components, the electric telescopic rod and elastic plate are used to adjust the opening and closing of the air inlet and air outlet, and combined with the air exchange pump body and energy storage mechanism, air circulation and heat dissipation are achieved.

Benefits of technology

The effective circulation of air and the rapid dissipation of heat are achieved, and the heat dissipation is accelerated through the principle of heat transfer. The wind power is used to drive the energy storage device to generate electricity, which improves the thermal insulation performance and energy utilization efficiency of the building.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a wind power flow guide curtain wall for a high-rise building, and relates to the technical field of curtain walls. The wind power flow guide curtain wall for the high-rise building comprises a curtain wall mechanism, the curtain wall mechanism comprises an outer curtain wall plate and an inner curtain wall plate, a rectangular curtain wall frame is fixedly installed between the outer curtain wall plate and the inner curtain wall plate, an air inlet assembly and an air outlet assembly are sequentially installed on the surface of the outer curtain wall plate, and the air inlet assembly comprises an air inlet and a first electric telescopic rod; the air outlet assembly comprises an air outlet and a second electric telescopic rod, a baffle is hinged to the extending end of the second electric telescopic rod, and a second elastic piece is fixedly connected between the top of the baffle and the top of an inner cavity of the rectangular curtain wall frame. The side of the surface of the baffle is fixedly connected with a trapezoid piece, the purpose of heat exchange is achieved, heat insulation, gas diversion, heat exchange and heat dissipation acceleration can be achieved, and safety and reliability are achieved.
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Description

Technical Field

[0001] The present invention relates to the technical field of curtain walls, and particularly to a wind diversion curtain wall for high-rise buildings. Background Art

[0002] A building curtain wall is a building exterior enclosure structure or decorative structure composed of a support structure system and a panel, which can have a certain displacement ability relative to the main structure and does not bear the load and action of the main structure. The curtain wall is the exterior wall enclosure of a building, which is not load-bearing and is hung like a curtain, so it is also called a suspended wall. It is a lightweight wall with a decorative effect commonly used in modern large-scale and high-rise buildings. It is composed of a structural frame and inlaid plates, and is a building enclosure structure that does not bear the load and action of the main structure. At present, the traditional curtain walls are mainly stone curtain walls, glass curtain walls and metal curtain walls, and these three curtain walls can basically meet the basic decoration needs of industrial and civil buildings.

[0003] At present, the existing building curtain walls are inconvenient for air diversion. Especially under direct sunlight in summer, the temperature rises rapidly, heat exchange is inconvenient, heat dissipation is slow, resulting in the indoor temperature rising accordingly. Summary of the Invention

[0004] In order to achieve the effective flow of air in the cavity of the building curtain wall and promote heat exchange, so as to achieve the goal of heat dissipation, the present invention realizes the above design purpose through the following technical solutions:

[0005] A wind diversion curtain wall for high-rise buildings, comprising:

[0006] A support frame, and a curtain wall mechanism installed inside the support frame;

[0007] The curtain wall mechanism includes an outer curtain wall panel and an inner curtain wall panel. The surface edge of the outer curtain wall panel is fixedly connected to the inner wall of the support frame. A rectangular curtain wall frame is fixedly installed between the outer curtain wall panel and the inner curtain wall panel. An air inlet component and an air outlet component are sequentially installed on the surface of the outer curtain wall panel. The whole curtain wall mechanism is installed and fixed by the support frame, and the outer curtain wall panel and the inner curtain wall panel are installed on both sides of the rectangular curtain wall frame, so that the outer curtain wall panel, the inner curtain wall panel and the rectangular curtain wall frame form a hollow interior, and heat insulation and heat preservation can be carried out;

[0008] The air inlet component includes an air inlet and a first electric telescopic rod. The air inlet is opened at the bottom of the surface of the outer curtain wall panel. The first electric telescopic rod is hinged to the inner side of the outer curtain wall panel. A rectangular clamping groove is opened on the inner side of the air inlet. The telescopic end of the first electric telescopic rod is hinged to a flow guide plate. A first elastic sheet is fixedly connected between the top of the flow guide plate and the inner side of the outer curtain wall panel. A sealing ring is fixedly connected to the side of the surface of the flow guide plate;

[0009] The air outlet component includes an air outlet and a second electric telescopic rod. The air outlet is opened at the top of the outer curtain wall panel surface. The second electric telescopic rod is hinged at the top of the inner cavity of the rectangular curtain wall frame. A baffle is hinged at the extending end of the second electric telescopic rod. A second elastic sheet is fixedly connected between the top of the baffle and the top of the inner cavity of the rectangular curtain wall frame. A trapezoidal sheet is fixedly connected to the side of the baffle surface. By the elongation of the telescopic end of the first electric telescopic rod, a driving force can be applied to the deflector, and under the elastic connection of the first elastic sheet, the deflector can be rotated outward to adjust the angle, thereby opening the air inlet. At the same time, when the telescopic end of the second electric telescopic rod elongates, a driving force can be applied to the baffle, and under the elastic connection of the second elastic sheet, the baffle can be rotated outward to adjust the angle, thereby opening the air outlet. The outside wind blows into the space formed by the outer curtain wall panel, the inner curtain wall panel and the rectangular curtain wall frame from the air inlet, and under the guidance of two symmetrical trapezoidal sheets, the gas is discharged from the air outlet, so that the gas circulates, and by using the principle of heat transfer, the heat dissipation is accelerated, and the heat is taken out in time.

[0010] Preferably, both the outer curtain wall panel and the inner curtain wall panel are vertically installed, and the outer curtain wall panel and the inner curtain wall panel are symmetrically installed along the rectangular curtain wall frame. By the contraction of the telescopic end of the first electric telescopic rod, a pulling force can be applied to the deflector, driving the deflector to move inward into the air inlet, and the first elastic sheet is elastically compressed. By embedding the deflector into the air inlet, the air inlet can be blocked.

[0011] Preferably, the first electric telescopic rod is obliquely installed, and the first electric telescopic rod and the air inlet are installed at the same height.

[0012] Preferably, the first elastic sheet is arc-shaped, there are two first elastic sheets, and the two first elastic sheets are symmetrically installed along the first electric telescopic rod. The material of the sealing ring is rubber. Since the sealing ring moves with the deflector, and the sealing ring is embedded into the internal rectangular groove, the sealing ring fills the gap between the edge of the deflector surface and the inner wall of the air inlet, playing a sealing role.

[0013] Preferably, the second electric telescopic rod is obliquely installed, and the second electric telescopic rod and the air outlet are installed at the same height.

[0014] The contraction of the telescopic end of the second electric telescopic rod can apply a pulling force to the baffle, causing the baffle to move in the reverse direction, and the second elastic sheet is elastically compressed. Then, by embedding the baffle into the air outlet, the air outlet can be blocked.

[0015] Preferably, there are two trapezoidal pieces, and the two trapezoidal pieces are symmetrically installed along the second electric telescopic rod. The second elastic piece is arc-shaped. There are two second elastic pieces, and the two second elastic pieces are symmetrically installed along the second electric telescopic rod. As the baffle moves towards the inside of the air outlet, it will drive the trapezoidal pieces to move together, so that two symmetrical baffles can contact the inner wall of the air inlet, increasing the contact area and sealing the air inlet.

[0016] Preferably, a ventilation mechanism is installed at the bottom of the inner curtain wall board. The ventilation mechanism includes a ventilation pump body and a blowing hopper. The ventilation pump body is installed at the bottom of the outer side of the inner curtain wall board, and the blowing hopper is installed at the bottom of the inner side of the inner curtain wall board. A communication is established between the air inlet end at the bottom of the blowing hopper and the air outlet end of the ventilation pump body. A dust filter screen is fixedly installed at the side of the ventilation pump body. A rectangular cover plate is hinged at the top of the blowing hopper. A sector-shaped elastic film is fixedly connected between the side of the bottom of the rectangular cover plate and the inner wall of the blowing hopper. Using the suction of the ventilation pump body, indoor air is sucked out, and the rectangular cover plate is blown from the top of the blowing hopper, causing the rectangular cover plate to rotate clockwise, and the sector-shaped elastic film is stretched. The gas discharged from the top of the blowing hopper enters the inside of the rectangular curtain frame, so that air convection can be realized and heat exchange can be carried out.

[0017] Preferably, the blowing hopper is arc-shaped, and the diameter of the blowing hopper gradually decreases from bottom to top. There are two sector-shaped elastic films, and the two sector-shaped elastic films are symmetrically installed along the central axis of the rectangular cover plate. When the ventilation pump body stops working, the blowing force of the gas on the rectangular cover plate disappears, and under the elastic tension of the sector-shaped elastic film, the rectangular cover plate rotates counterclockwise to reset, so as to cover the top of the blowing hopper and reduce the entry of dust and sundries into the inside of the blowing hopper.

[0018] Preferably, an energy storage mechanism is installed between the outer curtain wall panel and the inner curtain wall panel. The energy storage mechanism includes an energy storage device and a connecting rotating shaft. The energy storage device is installed at the top of the outer side of the inner curtain wall panel. The connecting rotating shaft is rotatably installed between the outer curtain wall panel and the inner curtain wall panel. One end of the connecting rotating shaft away from the outer curtain wall panel penetrates through the inner curtain wall panel and extends into the interior of the energy storage device. An impeller blade is fixedly connected to the middle of the outer circumferential surface of the connecting rotating shaft. Support connecting rods are fixedly connected to the inner side surfaces of both the outer curtain wall panel and the inner curtain wall panel. One end of the support connecting rod away from the inner curtain wall panel is fixedly connected with a guide vane. The outer circumferential surface of the connecting rotating shaft is rotatably installed at the center of the guide vane. As the air flow enters the interior of the rectangular curtain wall frame from the air inlet, the air flow will blow onto the impeller blade and the guide vane. Under the rotational connection of the connecting rotating shaft, after the impeller blade is blown by the air flow, it rotates. At the same time, the air flows on both sides are guided by the guide vane, so that the air flows on both sides blow towards the surface of the impeller blade again, increasing the blowing force on the impeller blade, which can make the connecting rotating shaft rotate rapidly. Then, the generator inside the energy storage device can be driven to operate and generate electricity through the connecting rotating shaft, and the electric energy is stored. The blowing force of the gas flow is fully utilized to connect the structures together.

[0019] Preferably, the connecting rotating shaft and the energy storage device are installed at the same height. The impeller blades are evenly distributed in the middle of the outer circumferential surface of the connecting rotating shaft. The support connecting rods are evenly distributed on the surface of the guide vane. When there is no wind blowing outside, by installing the blowing hopper below the impeller blade, the gas discharged from the blowing hopper can apply a blowing force to the impeller blade, which can ensure that the impeller blade drives the connecting rotating shaft to operate.

[0020] The present invention provides a wind diversion curtain wall for high-rise buildings, having the following beneficial effects:

[0021] First, for this wind diversion curtain wall for high-rise buildings, the overall curtain wall mechanism is installed and fixed through the support frame, and the outer curtain wall panel and the inner curtain wall panel are installed on both sides of the rectangular curtain wall frame, so that the outer curtain wall panel, the inner curtain wall panel and the rectangular curtain wall frame form a hollow interior, which can be used for heat insulation and preservation.

[0022] Second, for this wind diversion curtain wall for high-rise buildings, the telescopic end of the first electric telescopic rod is used to push the diversion plate, so that the diversion plate rotates outward to adjust the angle, thereby opening the air inlet. At the same time, the telescopic end of the second electric telescopic rod pushes the baffle plate, so that the baffle plate rotates outward to adjust the angle, thereby opening the air outlet. The outside wind blows into the space formed by the outer curtain wall panel, the inner curtain wall panel and the rectangular curtain wall frame from the air inlet, and under the guiding of two symmetric trapezoidal pieces, the gas is discharged from the air outlet, so that the gas circulates, and the heat dissipation is accelerated by using the heat transfer principle, and the heat is taken out in time.

[0023] III. For the wind diversion curtain wall used in high-rise buildings, by contracting the extended end of the first electric telescopic rod, a pulling force can be applied to the diversion plate, driving the diversion plate to move inward into the air inlet, and the first elastic sheet is elastically compressed. By embedding the diversion plate into the air inlet, the air inlet can be blocked.

[0024] IV. For the wind diversion curtain wall used in high-rise buildings, since the sealing ring moves together with the diversion plate, and the sealing ring is embedded into the internal rectangular card slot, the sealing ring fills the gap between the edge of the surface of the diversion plate and the inner wall of the air inlet, playing a sealing role.

[0025] V. For the wind diversion curtain wall used in high-rise buildings, by contracting the telescopic end of the second electric telescopic rod, a pulling force can be applied to the baffle, causing the baffle to move in the reverse direction, and the second elastic sheet is elastically compressed. Then, by embedding the baffle into the air outlet, the air outlet can be blocked.

[0026] VI. For the wind diversion curtain wall used in high-rise buildings, as the baffle moves inward into the air outlet, it will drive the trapezoidal piece to move together. Then, by using two symmetrical baffles to contact the inner wall of the air inlet, the contact area is increased, and the air inlet can be sealed.

[0027] VII. For the wind diversion curtain wall used in high-rise buildings, using the suction force of the air exchange pump body, the indoor air is sucked out, and the rectangular cover plate is blown from the top of the blowing hopper, causing the rectangular cover plate to rotate clockwise, and the fan-shaped elastic membrane is stretched. The gas discharged from the top of the blowing hopper enters the internal of the rectangular curtain wall frame, and air convection can be achieved for heat exchange.

[0028] VIII. For the wind diversion curtain wall used in high-rise buildings, when the blowing force of the gas on the rectangular cover plate disappears, and under the elastic pulling force of the fan-shaped elastic membrane, the rectangular cover plate rotates counterclockwise to reset, and the top of the blowing hopper can be covered, reducing the entry of dust and sundries into the internal of the blowing hopper.

[0029] IX. For the wind diversion curtain wall used in high-rise buildings, as the air flow enters the internal of the rectangular curtain wall frame from the air inlet, the air flow blows onto the impeller blades and the air guide blades. Under the rotational connection of the connecting rotating shaft, after the impeller blades are blown by the air flow, they rotate. At the same time, the air flows on both sides are guided by the air guide blades, causing the air flows on both sides to blow onto the surface of the impeller blades again, increasing the blowing force on the impeller blades. Then, the connecting rotating shaft can rotate rapidly, and the generator inside the energy storage device can be driven to operate and generate electricity through the connecting rotating shaft, and the electric energy is stored.

[0030] X. For the wind diversion curtain wall used in high-rise buildings, when there is no wind blowing outside, by installing the blowing hopper below the impeller blades, the gas discharged from the blowing hopper can apply a blowing force to the impeller blades, ensuring that the impeller blades drive the connecting rotating shaft to operate. BRIEF DESCRIPTION OF THE DRAWINGS

[0031] Figure 1 FIG. 1 is a schematic structural diagram of the overall wind diversion curtain wall for high-rise buildings according to the present invention;

[0032] Figure 2 FIG. 2 is a schematic structural diagram of the back of the wind diversion curtain wall for high-rise buildings according to the present invention;

[0033] Figure 3 FIG. 3 is a schematic internal structural diagram of the cross-section of the wind diversion curtain wall for high-rise buildings according to the present invention;

[0034] Figure 4 FIG. 4 is a schematic structural diagram of the connection structure between the curtain wall mechanism and the support frame according to the present invention;

[0035] Figure 5 FIG. 5 is a schematic structural diagram of the overall air inlet assembly and air outlet assembly according to the present invention;

[0036] Figure 6 FIG. 6 is a schematic structural diagram of the connection structure between the air exchange mechanism and the inner curtain wall panel according to the present invention;

[0037] Figure 7 FIG. 7 is a schematic structural diagram of the overall air exchange mechanism according to the present invention;

[0038] Figure 8 FIG. 8 is a schematic structural diagram of the connection structure between the energy storage mechanism and the inner curtain wall panel according to the present invention;

[0039] Figure 9 FIG. 9 is a schematic structural diagram of the overall energy storage mechanism according to the present invention.

[0040] In the figures: 1, support frame; 2, curtain wall mechanism; 3, air exchange mechanism; 4, energy storage mechanism; 21, outer curtain wall panel; 22, inner curtain wall panel; 23, rectangular curtain frame; 24, air inlet assembly; 25, air outlet assembly; 241, air inlet; 242, first electric telescopic rod; 243, rectangular card slot; 244, deflector; 245, first elastic sheet; 246, sealing ring; 251, air outlet; 252, second electric telescopic rod; 253, baffle; 254, second elastic sheet; 255, trapezoidal sheet; 31, air exchange pump body; 32, blowing hopper; 33, dust filter screen; 34, rectangular cover plate; 35, fan-shaped elastic membrane; 41, energy storage device; 42, connecting rotating shaft; 43, impeller blades; 44, support connecting rod; 45, guide vane. DETAILED DESCRIPTION OF THE INVENTION

[0041] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0042] The first embodiment is as Figures 1 to 5 shown. The present invention provides a technical solution:

[0043] A wind diversion curtain wall for high-rise buildings, comprising:

[0044] A support frame 1 and a curtain wall mechanism 2 installed inside the support frame 1;

[0045] The curtain wall mechanism 2 includes an outer curtain wall panel 21 and an inner curtain wall panel 22. The surface edge of the outer curtain wall panel 21 is fixedly connected to the inner wall of the support frame 1. A rectangular curtain wall frame 23 is fixedly installed between the outer curtain wall panel 21 and the inner curtain wall panel 22. An air inlet assembly 24 and an air outlet assembly 25 are sequentially installed on the surface of the outer curtain wall panel 21. The curtain wall mechanism 2 is integrally installed and fixed by the support frame 1, and the outer curtain wall panel 21 and the inner curtain wall panel 22 are installed on both sides of the rectangular curtain wall frame 23, so that the outer curtain wall panel 21, the inner curtain wall panel 22 and the rectangular curtain wall frame 23 form a hollow interior for heat insulation and heat preservation;

[0046] Both the outer curtain wall panel 21 and the inner curtain wall panel 22 are vertically installed, and the outer curtain wall panel 21 and the inner curtain wall panel 22 are symmetrically installed along the rectangular curtain wall frame 23.

[0047] The air inlet assembly 24 includes an air inlet 241 and a first electric telescopic rod 242. The air inlet 241 is opened at the bottom of the surface of the outer curtain wall panel 21. The first electric telescopic rod 242 is hinged to the inner side surface of the outer curtain wall panel 21. A rectangular card slot 243 is opened on the inner side surface of the air inlet 241. The telescopic end of the first electric telescopic rod 242 is hinged to a deflector 244. A first elastic sheet 245 is fixedly connected between the top of the deflector 244 and the inner side surface of the outer curtain wall panel 21. A sealing ring 246 is fixedly connected to the side of the surface of the deflector 244;

[0048] By the contraction of the extended end of the first electric telescopic rod 242, a pulling force can be applied to the deflector 244 to drive the deflector 244 to move into the air inlet 241, and the first elastic sheet 245 is elastically compressed. By embedding the deflector 244 into the air inlet 241, the air inlet 241 can be blocked.

[0049] The first electric telescopic rod 242 is obliquely installed, and the first electric telescopic rod 242 and the air inlet 241 are installed at the same height.

[0050] The first elastic sheet 245 is arc-shaped. There are two first elastic sheets 245, and the two first elastic sheets 245 are symmetrically installed along the first electric telescopic rod 242. The material of the sealing ring 246 is rubber. The sealing ring 246 moves along with the flow guide plate 244. The sealing ring 246 is embedded into the interior of the rectangular card slot 243, so that the sealing ring 246 fills the gap between the edge of the surface of the flow guide plate 244 and the inner wall of the air inlet 241.

[0051] The air outlet assembly 25 includes an air outlet 251 and a second electric telescopic rod 252. The air outlet 251 is opened at the top of the outer curtain wall panel 21. The second electric telescopic rod 252 is hinged at the top of the inner cavity of the rectangular curtain wall frame 23. A baffle 253 is hinged to the extended end of the second electric telescopic rod 252. A second elastic sheet 254 is fixedly connected between the top of the baffle 253 and the top of the inner cavity of the rectangular curtain wall frame 23. A trapezoidal sheet 255 is fixedly connected to the side of the surface of the baffle 253. When the staff turns on the first electric telescopic rod 242 and the second electric telescopic rod 252, with the elongation of the telescopic end of the first electric telescopic rod 242, a driving force can be applied to the flow guide plate 244, and under the elastic connection of the first elastic sheet 245, the flow guide plate 244 rotates outward to adjust the angle, so as to open the air inlet 241. At the same time, with the elongation of the telescopic end of the second electric telescopic rod 252, a driving force can be applied to the baffle 253, and under the elastic connection of the second elastic sheet 254, the baffle 253 rotates outward to adjust the angle, so as to open the air outlet 251. The outside wind blows into the space formed by the outer curtain wall panel 21, the inner curtain wall panel 22 and the rectangular curtain wall frame 23 from the air inlet 241, and under the guidance of the two symmetrical trapezoidal sheets 255, the gas is discharged from the air outlet 251, and the heat is taken out in time.

[0052] The second electric telescopic rod 252 is installed obliquely, and the second electric telescopic rod 252 and the air outlet 251 are installed at the same height.

[0053] When the telescopic end of the second electric telescopic rod 252 contracts, a pulling force can be applied to the baffle 253, so that the baffle 253 moves in the reverse direction, and the second elastic sheet 254 is elastically compressed. Then, the baffle 253 can be embedded into the interior of the air outlet 251, and the air outlet 251 can be blocked.

[0054] There are two trapezoidal sheets 255, and the two trapezoidal sheets 255 are symmetrically installed along the second electric telescopic rod 252. The second elastic sheet 254 is arc-shaped. There are two second elastic sheets 254, and the two second elastic sheets 254 are symmetrically installed along the second electric telescopic rod 252. As the baffle 253 moves into the interior of the air outlet 251, it will drive the trapezoidal sheet 255 to move together. Then, the two symmetrical baffles 253 can be used to contact the inner wall of the air inlet 241, increasing the contact area, and the air inlet 241 can be sealed.

[0055] Second Embodiment. On the basis of the first embodiment, please refer to Figures 1 to 7 as shown in

[0056] At the bottom of the surface of the inner curtain wall panel 22, a ventilation mechanism 3 is installed. The ventilation mechanism 3 includes a ventilation pump body 31 and a blowing hopper 32. The ventilation pump body 31 is installed at the bottom of the outer side surface of the inner curtain wall panel 22, and the blowing hopper 32 is installed at the bottom of the inner side surface of the inner curtain wall panel 22. The air inlet end at the bottom of the blowing hopper 32 is communicated with the air outlet end of the ventilation pump body 31. A dust-proof filter screen 33 is fixedly installed at the side of the surface of the ventilation pump body 31. A rectangular cover plate 34 is hinged at the top of the blowing hopper 32. A sector-shaped elastic membrane 35 is fixedly connected between the side of the bottom of the rectangular cover plate 34 and the inner wall of the blowing hopper 32. The staff turns on the ventilation pump body 31 to work. Using the suction force of the ventilation pump body 31, the indoor air is sucked out, and the rectangular cover plate 34 is blown from the top of the blowing hopper 32, so that the rectangular cover plate 34 rotates clockwise, and the sector-shaped elastic membrane 35 is stretched. The gas discharged from the top of the blowing hopper 32 enters the inside of the rectangular curtain frame 23 and opens the air outlet 251 to conduct air convection.

[0057] The blowing hopper 32 is arc-shaped, and the diameter of the blowing hopper 32 gradually decreases from bottom to top. There are two sector-shaped elastic membranes 35, and the two sector-shaped elastic membranes 35 are symmetrically installed along the central axis of the rectangular cover plate 34.

[0058] When the ventilation pump body 31 stops working, the blowing force of the gas on the rectangular cover plate 34 disappears, and under the elastic tension of the sector-shaped elastic membrane 35, the rectangular cover plate 34 rotates counterclockwise to reset, so as to cover the top of the blowing hopper 32 and reduce the entry of dust and sundries into the inside of the blowing hopper 32.

[0059] Third Embodiment. On the basis of the first and second embodiments, please refer to Figures 1 to 9 as shown in

[0060] An energy storage mechanism 4 is installed between the outer curtain wall panel 21 and the inner curtain wall panel 22. The energy storage mechanism 4 includes an energy storage device 41 and a connecting rotating shaft 42. The energy storage device 41 is installed at the top of the outer side of the inner curtain wall panel 22. The connecting rotating shaft 42 is rotatably installed between the outer curtain wall panel 21 and the inner curtain wall panel 22. One end of the connecting rotating shaft 42 away from the outer curtain wall panel 21 penetrates through the inner curtain wall panel 22 and extends into the interior of the energy storage device 41. A vane 43 is fixedly connected to the middle of the outer circumferential surface of the connecting rotating shaft 42. Support connecting rods 44 are fixedly connected to both the inner side surface of the outer curtain wall panel 21 and the inner side surface of the inner curtain wall panel 22. One end of the support connecting rod 44 away from the inner curtain wall panel 22 is fixedly connected to a guide vane 45. The outer circumferential surface of the connecting rotating shaft 42 is rotatably installed at the center of the guide vane 45. As the air flow enters the interior of the rectangular curtain wall frame 23 from the air inlet 241, the air flow will blow onto the vane 43 and the guide vane 45. Under the rotational connection of the connecting rotating shaft 42, after the vane 43 is subjected to the blowing force of the air flow, it rotates. At the same time, the air flows on both sides are guided by the guide vane 45, so that the air flows on both sides blow onto the surface of the vane 43 again, increasing the blowing force on the vane 43. Then the connecting rotating shaft 42 can rotate rapidly, and the generator inside the energy storage device 41 can be driven by the connecting rotating shaft 42 to operate and generate electricity, and the electric energy is stored.

[0061] The connecting rotating shaft 42 and the energy storage device 41 are installed at the same height. The vanes 43 are evenly distributed in the middle of the outer circumferential surface of the connecting rotating shaft 42. The support connecting rods 44 are evenly distributed on the surface of the guide vane 45. When there is no wind blowing outside, the blowing hopper 32 is installed below the vane 43, so that the gas discharged from the blowing hopper 32 can apply a blowing force to the vane 43, ensuring that the vane 43 drives the connecting rotating shaft 42 to operate.

[0062] During use, first, the entire curtain wall mechanism 2 is fixed through the support frame 1, and the outer curtain wall panel 21 and the inner curtain wall panel 22 are installed on both sides of the rectangular curtain wall frame 23, so that the outer curtain wall panel 21, the inner curtain wall panel 22 and the rectangular curtain wall frame 23 form a hollow interior for heat insulation and preservation.

[0063] At this time, the staff activates the first electric telescopic rod 242 and the second electric telescopic rod 252. By the elongation of the telescopic end of the first electric telescopic rod 242, a driving force can be applied to the deflector 244, and under the elastic connection of the first elastic sheet 245, the deflector 244 rotates outward to adjust the angle, thereby opening the air inlet 241. At the same time, the telescopic end of the second electric telescopic rod 252 elongates, applying a driving force to the baffle 253, and under the elastic connection of the second elastic sheet 254, the baffle 253 rotates outward to adjust the angle, thereby opening the air outlet 251. The outside wind blows into the space formed by the outer curtain wall panel 21, the inner curtain wall panel 22, and the rectangular curtain wall frame 23 from the air inlet 241, and under the guidance of two symmetric trapezoidal pieces 255, the gas is discharged from the air outlet 251, taking out the heat in time;

[0064] And the staff activates the air exchange pump body 31 to work. Using the suction force of the air exchange pump body 31, the indoor air is sucked out, and the rectangular cover plate 34 is blown from the top of the blowing hopper 32, causing the rectangular cover plate 34 to rotate clockwise, and the fan-shaped elastic membrane 35 is stretched. The gas discharged from the top of the blowing hopper 32 enters the interior of the rectangular curtain wall frame 23, and the air outlet 251 is opened for air convection;

[0065] And when the air exchange pump body 31 stops working, the blowing force of the gas on the rectangular cover plate 34 disappears, and under the elastic pulling force of the fan-shaped elastic membrane 35, the rectangular cover plate 34 rotates counterclockwise to reset, thus covering the top of the blowing hopper 32 to reduce the entry of dust and debris into the interior of the blowing hopper 32;

[0066] Moreover, as the air flow enters the interior of the rectangular curtain wall frame 23 from the air inlet 241, the air flow blows onto the impeller blades 43 and the guide vanes 45. Under the rotational connection of the connecting rotating shaft 42, the impeller blades 43 rotate after being blown by the air flow. At the same time, the air flows on both sides are guided by the guide vanes 45, causing the air flows on both sides to blow onto the surface of the impeller blades 43 again, increasing the blowing force on the impeller blades 43, so that the connecting rotating shaft 42 can rotate rapidly, and the generator inside the energy storage device 41 can be driven to operate and generate electricity through the connecting rotating shaft 42, and the electric energy is stored.

[0067] When there is no outside wind blowing, by installing the blowing hopper 32 below the impeller blades 43, the gas discharged from the blowing hopper 32 can apply a blowing force to the impeller blades 43, ensuring that the impeller blades 43 drive the connecting rotating shaft 42 to operate;

[0068] By using the contraction of the extending end of the first electric telescopic rod 242, a pulling force can be applied to the flow guide plate 244, driving the flow guide plate 244 to move inward into the air inlet 241, and the first elastic sheet 245 is elastically compressed. By embedding the flow guide plate 244 into the air inlet 241, the air inlet 241 can be blocked;

[0069] Meanwhile, by using the fact that the sealing ring 246 moves together with the flow guide plate 244, and embedding the sealing ring 246 into the rectangular clamping groove 243, the sealing ring 246 can fill the gap between the edge of the surface of the flow guide plate 244 and the inner wall of the air inlet 241;

[0070] Moreover, by using the contraction of the telescopic end of the second electric telescopic rod 252, a pulling force can be applied to the baffle 253, causing the baffle 253 to move in the reverse direction, and the second elastic sheet 254 is elastically compressed. By embedding the baffle 253 into the air outlet 251, the air outlet 251 can be blocked.

[0071] As the baffle 253 moves inward into the air outlet 251, it will drive the trapezoidal piece 255 to move together. By using the contact of the two symmetrical baffles 253 with the inner wall of the air inlet 241, the contact area can be increased, and thus the air inlet 241 can be sealed.

[0072] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device. Without further limitation, an element defined by the statement "including a..." does not exclude the existence of additional identical elements in the process, method, article or device including the said element.

[0073] Although the embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A wind diversion curtain wall for high-rise buildings, characterized in that, Comprising: A support frame (1), and a curtain wall mechanism (2) installed inside the support frame (1); The curtain wall mechanism (2) includes an outer curtain wall panel (21) and an inner curtain wall panel (22). The surface edge of the outer curtain wall panel (21) is fixedly connected to the inner wall of the support frame (1). A rectangular curtain wall frame (23) is fixedly installed between the outer curtain wall panel (21) and the inner curtain wall panel (22). An air inlet assembly (24) and an air outlet assembly (25) are sequentially installed on the surface of the outer curtain wall panel (21); The air inlet assembly (24) includes an air inlet (241) and a first electric telescopic rod (242). The air inlet (241) is opened at the bottom of the surface of the outer curtain wall panel (21). The first electric telescopic rod (242) is hinged to the inner side of the outer curtain wall panel (21). A rectangular card slot (243) is opened on the inner side of the air inlet (241). A guide plate (244) is hinged to the telescopic end of the first electric telescopic rod (242). A first elastic sheet (245) is fixedly connected between the top of the guide plate (244) and the inner side of the outer curtain wall panel (21). A sealing ring (246) is fixedly connected to the side of the surface of the guide plate (244); The air outlet assembly (25) includes an air outlet (251) and a second electric telescopic rod (252). The air outlet (251) is opened at the top of the surface of the outer curtain wall panel (21). The second electric telescopic rod (252) is hinged to the top of the inner cavity of the rectangular curtain wall frame (23). A baffle (253) is hinged to the extended end of the second electric telescopic rod (252). A second elastic sheet (254) is fixedly connected between the top of the baffle (253) and the top of the inner cavity of the rectangular curtain wall frame (23). A trapezoidal sheet (255) is fixedly connected to the side of the surface of the baffle (253).

2. The wind guiding curtain wall for high-rise buildings according to claim 1, characterized in that: Both the outer curtain wall panel (21) and the inner curtain wall panel (22) are vertically installed, and the outer curtain wall panel (21) and the inner curtain wall panel (22) are symmetrically installed along the rectangular curtain wall frame (23).

3. The wind diversion curtain wall for high-rise buildings according to claim 1, characterized in that: The first electric telescopic rod (242) is inclinedly installed, and the first electric telescopic rod (242) and the air inlet (241) are installed at the same height.

4. A wind diversion curtain wall for high-rise buildings according to claim 1, characterized in that: The first elastic sheet (245) is arc-shaped. There are two first elastic sheets (245), and the two first elastic sheets (245) are symmetrically installed along the first electric telescopic rod (242). The material of the sealing ring (246) is rubber.

5. A wind diversion curtain wall for high-rise buildings according to claim 1, characterized in that: The second electric telescopic rod (252) is inclinedly installed, and the second electric telescopic rod (252) and the air outlet (251) are installed at the same height.

6. The wind guiding curtain wall for high-rise buildings according to claim 1, characterized in that: There are two trapezoidal sheets (255), and the two trapezoidal sheets (255) are symmetrically installed along the second electric telescopic rod (252). The second elastic sheet (254) is arc-shaped. There are two second elastic sheets (254), and the two second elastic sheets (254) are symmetrically installed along the second electric telescopic rod (252).

7. A wind diversion curtain wall for high-rise buildings according to claim 1, characterized in that: A ventilation mechanism (3) is installed at the bottom of the surface of the inner curtain wall panel (22). The ventilation mechanism (3) includes a ventilation pump body (31) and a blowing hopper (32). The ventilation pump body (31) is installed at the bottom of the outer side of the inner curtain wall panel (22), and the blowing hopper (32) is installed at the bottom of the inner side of the inner curtain wall panel (22). A communication is established between the air inlet end at the bottom of the blowing hopper (32) and the air outlet end of the ventilation pump body (31). A dust-proof filter screen (33) is fixedly installed at the side of the surface of the ventilation pump body (31). A rectangular cover plate (34) is hinged at the top of the blowing hopper (32), and a sector-shaped elastic film (35) is fixedly connected between the side of the bottom of the rectangular cover plate (34) and the inner wall of the blowing hopper (32).

8. The wind guiding curtain wall for high-rise buildings according to claim 7, characterized in that: The blowing hopper (32) is arc-shaped, and the diameter of the blowing hopper (32) gradually decreases from bottom to top. There are two sector-shaped elastic films (35), and the two sector-shaped elastic films (35) are symmetrically installed along the central axis of the rectangular cover plate (34).

9. The wind diversion curtain wall for high-rise buildings according to claim 1, wherein: An energy storage mechanism (4) is installed between the outer curtain wall panel (21) and the inner curtain wall panel (22). The energy storage mechanism (4) includes an energy storage device (41) and a connecting rotating shaft (42). The energy storage device (41) is installed at the top of the outer side of the inner curtain wall panel (22). The connecting rotating shaft (42) is rotatably installed between the outer curtain wall panel (21) and the inner curtain wall panel (22). One end of the connecting rotating shaft (42) far from the outer curtain wall panel (21) penetrates through the inner curtain wall panel (22) and extends into the interior of the energy storage device (41). An impeller blade (43) is fixedly connected to the middle of the outer circumferential surface of the connecting rotating shaft (42). Support connecting rods (44) are fixedly connected to both the inner side of the outer curtain wall panel (21) and the inner side of the inner curtain wall panel (22). One end of the support connecting rod (44) far from the inner curtain wall panel (22) is fixedly connected to a guide vane (45). The outer circumferential surface of the connecting rotating shaft (42) is rotatably installed at the center of the guide vane (45).

10. A wind diversion curtain wall for high-rise buildings according to claim 9, characterized in that: The connecting rotating shaft (42) and the energy storage device (41) are installed at the same height. The impeller blades (43) are evenly distributed in the middle of the outer circumferential surface of the connecting rotating shaft (42). The support connecting rods (44) are evenly distributed on the surface of the guide vane (45).