Fabricated energy-saving building glass curtain wall
By using hemispherical column glass, translucent film and solar dimming equipment in building glass curtain walls, combined with temperature detection of temperature sensing components, the function of dynamically adjusting the translucentness of glass curtain walls is achieved, solving the shortcomings of light transmission regulation and energy utilization in the existing technology, and improving energy utilization efficiency.
Patent Information
- Application Number
- CN202510560418.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-30
- Publication Date
- 2025-06-20
AI Technical Summary
The existing building glass curtain walls have shortcomings in light transmission regulation and energy utilization, and cannot dynamically adjust the light transmission according to indoor needs, and external sunlight is directly wasted when lighting is not required.
A glass curtain wall with a prefabricated structure, including hemispherical column glass, translucent film and solar dimming equipment, detects the surface temperature of the translucent film through a temperature sensing component, adjusts the light transmittance of the glass body, and converts sunlight into electrical energy when lighting is not required.
The light transmittance of the glass curtain wall is dynamically adjusted according to indoor needs, avoiding the waste of resources when direct sunlight is exposed, and converting external sunlight into electricity, reducing energy consumption.
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Figure CN120175016A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of building curtain walls, in particular to an assembled energy-saving building glass curtain wall. Background Art
[0002] Building curtain walls are used for the exterior enclosure of buildings. They do not have the function of bearing the weight of the building and are generally used as decoration for the exterior walls of buildings.
[0003] Modern buildings mostly use glass curtain walls for aesthetic purposes. However, dust easily adheres to the surface of the glass curtain walls. Every year, a large amount of manpower and material resources are required to clean the surface of the glass curtain walls. High-altitude operations are generally required during the cleaning process, which is very dangerous. Although glass curtain walls can increase the lighting in the building, the lighting intensity can only be adjusted by the intensity of direct sunlight, and the light transmittance cannot be adjusted according to indoor needs. In addition, most of the time, only blackout curtains can be set inside the glass curtain walls to block the sunlight. In this way, the solar energy that shines on the curtain wall when lighting is not needed indoors will be directly wasted. Summary of the invention
[0004] The technical problem of the present invention is to provide an assembled energy-saving building glass curtain wall to provide a light-transmitting glass curtain wall and to collect the solar energy irradiated on the curtain wall according to indoor needs.
[0005] To achieve the above object, the present invention provides the following technical solution: an assembled energy-saving building glass curtain wall, comprising a glass body, wherein inner reinforcement frames are arranged at the upper and lower ends of the glass body, and side reinforcement frames are fixedly arranged on both sides of the glass body and the inner reinforcement frame, and the glass body comprises:
[0006] Hemispherical column glass, wherein two groups of hemispherical column glass are provided and fixedly installed in the upper and lower groups of the inner reinforcement frames respectively, the curved surfaces of the hemispherical column glass are arranged opposite to each other, and the two groups of the hemispherical column glass are surrounded by a light-transmitting film;
[0007] A solar dimming device, which is arranged between the hemispherical column glass and the light-transmitting film, and can adjust the light transmittance of the glass body according to the surface temperature change of the light-transmitting film;
[0008] A temperature sensing component is arranged in the inner reinforcement frame at the upper end, and the temperature sensing component can accurately obtain the surface temperature of the light-transmitting film.
[0009] As a further solution of the present invention, the solar dimming device includes a front-side light-transmitting glass and a rear-side light-transmitting glass. Both the front-side light-transmitting glass and the rear-side light-transmitting glass are fixedly installed between the hemispherical column glasses and are arranged on both sides respectively. An insulating glass is fixedly installed at the middle position of the hemispherical column glasses arranged up and down. A dimming plate is fixedly installed between the insulating glass and the front-side light-transmitting glass. Both the upper and lower ends of the dimming plate are fixedly connected to the hemispherical column glasses and are composed of polarized crystal particles and a polymer. An inner positioning plate is arranged between the insulating glass and the rear-side light-transmitting glass. A winding shaft is rotatably arranged at the upper end of the inner positioning plate. A solar thin film is arranged on the winding shaft. When the solar thin film is unfolded, it is on the side of the inner positioning plate away from the insulating glass. A sliding block is arranged at the lower end of the solar thin film. The sliding block is slidably connected to the inner positioning plate.
[0010] As a further solution of the present invention, a rotating motor is arranged inside the side reinforcing frame. The output end of the rotating motor is fixedly connected to the winding shaft. A power storage component is arranged inside the side reinforcing frame. Electrodes are arranged at both ends of the dimming plate. Both the electrodes and the solar thin film are electrically connected to the power storage component.
[0011] As a further solution of the present invention, the temperature sensing component includes a threaded rod and a temperature sensing member. There are two groups of threaded rods, and they are both rotatably connected inside the upper inner reinforcing frame, and both ends of the threaded rods extend into the side reinforcing frame. Connecting blocks are threadedly connected to the threaded rods. A curved head is fixedly installed at the lower end of the connecting block. A suction member is fixedly installed at the upper end of the curved head. Side scraping plates are fixedly installed on both sides of the lower end of the curved head. The lower ends of the side scraping plates are in contact with the surface of the light-transmitting thin film. Multiple through holes are formed on the lower surface of the curved head. The temperature sensing member is fixedly installed on the lower surface of the curved head. The lower end of the temperature sensing member is above the light-transmitting thin film. The suction member is a negative pressure suction machine.
[0012] As a further solution of the present invention, the side reinforcing frame includes an inner connecting plate and an outer support frame. The inner connecting plate is fixedly connected to the outer support frame through multiple mounting columns. A limiting groove is arranged between the inner connecting plate and the outer support frame. Both ends of the light-transmitting thin film enter the side reinforcing frame through the limiting groove. An extension section is fixedly installed at one end of the light-transmitting thin film inside the side reinforcing frame. Driving wheels are rotatably installed at the upper and lower ends of the outer support frame. The extension section is rotatably sleeved outside the driving wheels. A side transmission member is arranged between the driving wheels. An upper transmission member is arranged between the threaded rods.
[0013] As a further solution of the present invention, two sides of one end of the inner reinforcement frame close to the glass body are fixedly provided with abutting blocks, the edges of the abutting blocks abut against the surface of the light-transmitting film, guiding members are fixedly installed on both sides of the lower end of the inner reinforcement frame, water seepage holes are formed in the upper surfaces of the guiding members, and the lower end of the inner reinforcement frame is hollow to form a water accumulation tank.
[0014] As a further solution of the present invention, mounting holes are provided at both the upper and lower ends of the side reinforcement frame. A connecting pipe is wound around the outside of one of the mounting holes at the upper end. One end of the connecting pipe is led into the upper inner reinforcement frame and fixedly connected to the suction member. The other end of the connecting pipe is fixedly connected to a transition member. The transition member is fixedly installed in the side reinforcement frame. A lead-out pipe is fixedly installed at the lower end of the transition member. The lower end of the lead-out pipe sequentially passes through the side walls of the side reinforcement frame and the inner reinforcement frame and extends into the water accumulation tank.
[0015] As a further solution of the present invention, a driven bevel gear is fixedly installed on the lower end of the driving wheel. Adjusting rods are rotatably installed at the lower ends of the side reinforcement frames. Both ends of the adjusting rods are respectively arranged inside and outside the side reinforcement frames. A main bevel gear is fixedly installed at one end of the adjusting rod inside the side reinforcement frame. The main bevel gear meshes with the driven bevel gear. Both the inner reinforcement frame and the side reinforcement frame are alloy metal frames.
[0016] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0017] 1. In the present invention, the glass body is fixedly installed with the building main body through the inner reinforcement frame and the side reinforcement frame. After installation, the light-transmitting film is sleeved outside the hemispherical column glass. The light-transmitting film can rotate between the outside of the two groups of hemispherical column glasses. By rotating the light-transmitting film, the light-transmitting template on the outdoor side of the glass body can be rotated to the indoor side of the glass body, which is convenient for cleaning the glass body indoors and thus avoids high-altitude operations.
[0018] 2. When the outer light-transmitting film rotates to the upper inner reinforcement frame in the present invention, the temperature sensing component can directly detect the surface temperature of the outer light-transmitting film. By measuring the temperature change caused by light irradiation through the temperature sensing component to analyze the external light intensity, the solar dimming device can adjust the light transmittance of the glass body. The smaller the indoor daylighting demand during the day, the poorer the light transmittance of the glass body, so as to avoid direct sunlight indoors. And at this time, the external sunlight can be converted into electric energy to reduce resource waste. When the indoor daylighting demand is greater during the day, the better the light transmittance of the glass body, so that the outdoor sunlight can be input into the room as much as possible. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] To more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.
[0020] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0021] Figure 2 Of the present invention Figure 1 Schematic diagram of the enlarged structure at A in the present invention;
[0022] Figure 3 It is a structural sectional view of the glass body in the present invention;
[0023] Figure 4 Of the present invention Figure 3 Partial schematic diagram of the structure at B in the present invention;
[0024] Figure 5 Of the present invention Figure 3 Partial schematic diagram of the structure at C in the present invention;
[0025] Figure 6 It is a structural sectional view of the present invention Figure 1 ;
[0026] Figure 7 Of the present invention Figure 6 Partial schematic diagram of the structure at D in the present invention;
[0027] Figure 8 It is a structural sectional view of the side reinforcement frame in the present invention;
[0028] Figure 9 Of the present invention Figure 8 Partial schematic diagram of the structure at E in the present invention;
[0029] Figure 10 Of the present invention Figure 8 Partial schematic diagram of the structure at F in the present invention;
[0030] Figure 11 It is a structural sectional view of the present invention Figure 2 ;
[0031] Figure 12 Of the present invention Figure 11 Partial schematic diagram of the structure at G in the present invention.
[0032] The reference numerals are as follows:
[0033] 1. Glass body; 101. Translucent film; 102. Front translucent glass; 103. Rear translucent glass; 104. Dimming board; 105. Insulating glass; 106. Inner positioning board; 107. Hemispherical glass; 108. Solar film; 109. Reel; 110. Sliding block; 2. Inner reinforcement frame; 201. Resistance block; 3. Side reinforcement frame; 301. Mounting hole; 302. Mounting column; 303. 3. Inner connecting plate; 304. Outer supporting frame; 4. Guide member; 5. Water seepage hole; 6. Adjusting rod; 7. Side transmission member; 8. Driving wheel; 9. Extension section; 10. Connecting pipe; 11. Upper transmission member; 12. Connecting block; 13. Threaded rod; 14. Curved head; 15. Suction member; 16. Side scraper; 17. Temperature sensing member; 18. Transition member; 19. Slave bevel gear; 20. Main bevel gear; 21. Export pipe. DETAILED DESCRIPTION
[0034] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0035] See also Figures 1 - 12 The present invention provides a technical solution: an assembled energy-saving building glass curtain wall, comprising a glass body 1, inner reinforcement frames 2 are arranged at the upper and lower ends of the glass body 1, and side reinforcement frames 3 are fixedly arranged on both sides of the glass body 1 and the inner reinforcement frame 2, and the glass body 1 comprises:
[0036] Hemispherical column glass 107, two groups of hemispherical column glass 107 are provided and fixedly installed in the upper and lower groups of inner reinforcement frames 2 respectively, the curved surfaces of the hemispherical column glass 107 are arranged opposite to each other, and the two groups of hemispherical column glass 107 are surrounded by a transparent film 101;
[0037] A solar dimming device, which is disposed between the hemispherical column glass 107 and the light-transmitting film 101. The solar dimming device can adjust the light transmittance of the glass body 1 according to the surface temperature change of the light-transmitting film 101;
[0038] A temperature sensing component is disposed in the upper inner reinforcement frame 2 , and the temperature sensing component can accurately obtain the surface temperature of the light-transmitting film 101 .
[0039] During operation, the glass body 1 of the present invention is fixedly installed on the building main body through the inner reinforcing frame 2 and the side reinforcing frame 3. After installation, the light-transmitting film 101 is sleeved on the outer side of the hemispherical column glass 107. The light-transmitting film 101 can rotate between the outer sides of the two groups of hemispherical column glasses 107. By rotating the light-transmitting film 101, the light-transmitting template on the outdoor side of the glass body 1 can be rotated to the indoor side of the glass body 1, which is convenient for cleaning the glass body 1 indoors and thus avoids high-altitude operations. When the outer light-transmitting film 101 of the present invention rotates to the upper inner reinforcing frame 2, the temperature sensing component can directly detect the surface temperature of the outer light-transmitting film 101. By measuring the temperature change caused by light irradiation through the temperature sensing component, the external light intensity can be analyzed. The solar dimming device can adjust the light transmittance of the glass body 1. The smaller the indoor daylighting demand during the day, the worse the light transmittance of the glass body 1, so as to avoid direct sunlight indoors. And at this time, the external sunlight can be converted into electric energy to reduce resource waste. When the indoor daylighting demand is greater during the day, the better the light transmittance of the glass body 1, which can make the outdoor sunlight enter the room as much as possible.
[0040] As a further solution of the present invention, the solar dimming device includes a front side light-transmitting glass 102 and a rear side light-transmitting glass 103. The front side light-transmitting glass 102 and the rear side light-transmitting glass 103 are both fixedly installed between the hemispherical column glasses 107 and are arranged on both sides. An insulating glass 105 is fixedly installed at the middle position of the upper and lower hemispherical column glasses 107. A dimming plate 104 is fixedly installed between the insulating glass 105 and the front side light-transmitting glass 102. Both the upper and lower ends of the dimming plate 104 are fixedly connected to the hemispherical column glass 107 and are composed of polarized crystal particles and a polymer. An inner positioning plate 106 is arranged between the insulating glass 105 and the rear side light-transmitting glass 103. A winding shaft 109 is rotatably arranged at the upper end of the inner positioning plate 106. A solar film 108 is arranged on the winding shaft 109. When the solar film 108 is unfolded, it is on the side of the inner positioning plate 106 away from the insulating glass 105. A sliding block 110 is arranged at the lower end of the solar film 108. The sliding block 110 is slidably connected to the inner positioning plate 106.
[0041] During operation, in the present invention, the rear light-transmitting glass 103 is on the outdoor side of the building during installation. When the indoor light-transmission requirement is high, the solar film 108 is wound around the winding shaft 109. External sunlight passes through the rear light-transmitting glass 103, the inner positioning plate 106, the heat-insulating glass 105, the light-adjusting plate 104, and the front light-transmitting glass 102 in sequence and then shines into the room, enabling the room to obtain as much illumination as possible. When it is necessary to weaken the light-transmitting property of the glass body 1, the glass body 1 can be atomized through the light-adjusting plate 104, thereby reducing the light-transmitting property of the glass body 1. When it is necessary to completely block sunlight, while the light-adjusting plate 104 is atomized, the solar film 108 can be unfolded from the winding shaft 109, so that sunlight passes through the rear light-transmitting glass 103 and shines on the solar film 108. The solar energy is collected and utilized through the solar film 108, and the light energy is automatically collected and utilized when lighting is not required indoors, reducing resource waste and making the curtain wall more environmentally friendly.
[0042] As a further solution of the present invention, a rotating motor is arranged in the side reinforcement frame 3. The output end of the rotating motor is fixedly connected to the winding shaft 109. A power storage member is arranged in the side reinforcement frame 3. Electrodes are arranged at both ends of the light-adjusting plate 104, and both the electrodes and the solar film 108 are electrically connected to the power storage member.
[0043] During operation, in the present invention, the electric energy converted by the solar film 108 is stored in the power storage member. The power storage member can provide power support for the rotating motor, the temperature-sensing component, the electrodes, etc. The winding shaft 109 rotates to make the solar film 108 unfold along the surface of the inner positioning plate 106.
[0044] As a further solution of the present invention, the temperature-sensing component includes a threaded rod 13 and a temperature-sensing member 17. There are two groups of threaded rods 13, and both are rotatably connected in the upper inner reinforcement frame 2, and both ends of the threaded rod 13 extend into the side reinforcement frame 3. Connecting blocks 12 are threadedly connected to the threaded rods 13. A curved head 14 is fixedly installed at the lower end of the connecting block 12. A suction member 15 is fixedly installed at the upper end of the curved head 14. Side scraping plates 16 are fixedly installed on both sides of the lower end of the curved head 14. The lower ends of the side scraping plates 16 abut against the surface of the light-transmitting film 101. A plurality of through holes are formed on the lower surface of the curved head 14. The temperature-sensing member 17 is fixedly installed on the lower surface of the curved head 14. The lower end of the temperature-sensing member 17 is above the light-transmitting film 101. The suction member 15 is a negative pressure suction machine.
[0045] During operation, the forward and reverse rotation of the threaded rod 13 in the present invention can drive the connecting block 12 to reciprocate in the inner reinforcement frame 2, and the movement of the connecting block 12 drives the suction piece 15 and the curved head 14 to move. The curved head 14 moves above the light-transmitting film 101 above the hemispherical column glass 107, so that the curved head 14 absorbs and cleans the dust on the light-transmitting film 101, thereby avoiding the trouble of manual cleaning of the curtain wall surface and reducing the human and material resource investment when cleaning the curtain wall. The side scraper 16 can limit the dust from flying to the edge, ensuring that the dust can enter the suction piece 15 through the curved head 14, and the temperature sensing piece 17 can detect the surface temperature of the light-transmitting film 101.
[0046] As a further solution of the present invention, the side reinforcement frame 3 includes an inner connecting plate 303 and an outer support frame 304. The inner connecting plate 303 is fixedly connected to the outer support frame 304 through multiple groups of mounting columns 302. There are limiting grooves between the inner connecting plate 303 and the outer support frame 304. Both ends of the light-transmitting film 101 enter the side reinforcement frame 3 through the limiting grooves. An extension section 9 is fixedly installed at one end of the light-transmitting film 101 in the side reinforcement frame 3. Driving wheels 8 are rotatably installed at the upper and lower ends of the outer support frame 304. The extension section 9 is rotatably sleeved on the outside of the driving wheel 8. A side transmission member 7 is arranged between the driving wheels 8, and an upper transmission member 11 is arranged between the threaded rods 13.
[0047] During operation, the rotation of the driving wheel 8 in the present invention can drive the extension section 9 to rotate in a circular manner, thereby driving the light-transmitting film 101 to rotate in a circular manner around the hemispherical column glass 107, so that the light-transmitting film 101 can achieve indoor and outdoor position conversion, which is convenient for residents to clean the outer curtain wall surface. A bidirectional motor is arranged in the side reinforcement frame 3, which can drive the threaded rod 13 to rotate, and the upper transmission member 11 enables the two groups of threaded rods 13 to rotate synchronously.
[0048] As a further solution of the present invention, abutment blocks 201 are fixedly installed on both sides of one end of the inner reinforcement frame 2 close to the glass body 1, and the edges of the abutment blocks 201 abut against the surface of the light-transmitting film 101. Guide members 4 are fixedly installed on both sides of the lower inner reinforcement frame 2, and water seepage holes 5 are provided on the upper surfaces of the guide members 4. A hollow water storage tank is formed inside the lower inner reinforcement frame 2.
[0049] During operation, the guide member 4 of the present invention can collect rainwater and accumulate the collected water in the water trough. When the light-transmitting film 101 rotates to the water trough position, the outer side of the light-transmitting film 101 automatically falls into the water, so that the water automatically washes the surface of the light-transmitting film 101. A drain valve is provided at the lower end of the inner reinforcement frame 2, and the water in the water trough can be discharged by opening the drain valve. In this way, water resources can be automatically recycled, making the curtain wall more environmentally friendly.
[0050] As a further solution of the present invention, mounting holes 301 are provided at both the upper and lower ends of the side reinforcement frame 3. A connecting pipe 10 is wound around the outside of the mounting hole 301 on one side of the upper end. One end of the connecting pipe 10 is led into the upper inner reinforcement frame 2 and fixedly connected to the suction member 15. The other end of the connecting pipe 10 is fixedly connected to a transition member 18. The transition member 18 is fixedly installed in the side reinforcement frame 3. A lead-out pipe 21 is fixedly installed at the lower end of the transition member 18. The lower end of the lead-out pipe 21 sequentially passes through the side walls of the side reinforcement frame 3 and the inner reinforcement frame 2 and extends into the water collecting tank.
[0051] During operation, in the present invention, the suction member 15 sucks dust into the connecting pipe 10, then enters the transition member 18 through the connecting pipe 10, and then enters the water collecting tank through the lead-out pipe 21 at the lower end of the transition member 18, so that the cleaned dust can be discharged together with the sewage in the water collecting tank for cleaning. Moreover, the glass body 1 is surrounded by the side reinforcement frame 3 and the inner reinforcement frame 2, which can effectively reduce the problem of fragility during transportation of traditional glass curtain walls. By supporting the glass body 1 by the side reinforcement frame 3 and the inner reinforcement frame 2 on the periphery, the seismic resistance of the glass curtain wall during transportation is increased.
[0052] As a further solution of the present invention, a driven bevel gear 19 is fixedly installed on the lower end drive wheel 8. Adjusting rods 6 are rotatably installed at the lower ends of the side reinforcement frames 3. Both ends of the adjusting rod 6 are respectively arranged inside and outside the side reinforcement frame 3. A main bevel gear 20 is fixedly installed at the end of the adjusting rod 6 inside the side reinforcement frame 3. The main bevel gear 20 meshes with the driven bevel gear 19. Both the inner reinforcement frame 2 and the side reinforcement frame 3 are alloy metal frames.
[0053] During operation, in the present invention, the rotation of the adjusting rod 6 drives the rotation of the main bevel gear 20. The rotation of the main bevel gear 20 drives the rotation of the driven bevel gear 19 meshing with it. The rotation of the driven bevel gear 19 drives the rotation of the lower end drive wheel 8. Through the side transmission member 17, the upper and lower drive wheels 8 rotate synchronously, thereby driving the rotation of the light-transmitting film 101.
Claims
1. An assembled energy-saving building glass curtain wall, comprising a glass body (1), characterized in that: The upper and lower ends of the glass body (1) are provided with inner reinforcement frames (2), and the sides of the glass body (1) and the inner reinforcement frames (2) are fixedly provided with side reinforcement frames (3). The glass body (1) comprises: Hemispherical column glass (107), wherein two groups of the hemispherical column glass (107) are provided and are respectively fixedly installed in the upper and lower groups of the inner reinforcement frames (2), the curved surfaces of the hemispherical column glass (107) are arranged opposite to each other, and a light-transmitting film (101) is sleeved around the outer sides of the two groups of the hemispherical column glass (107); A solar dimming device, the solar dimming device being arranged between the hemispherical column glass (107) and the light-transmitting film (101), and the solar dimming device being capable of adjusting the light transmittance of the glass body (1) according to the change in the surface temperature of the light-transmitting film (101); A temperature sensing component is arranged inside the inner reinforcement frame (2) at the upper end, and the temperature sensing component can accurately obtain the surface temperature of the light-transmitting film (101).
2. The assembled energy-saving building glass curtain wall according to claim 1 is characterized in that: The solar light-adjusting device comprises a front light-transmitting glass (102) and a rear light-transmitting glass (103), wherein the front light-transmitting glass (102) and the rear light-transmitting glass (103) are both fixedly installed between the hemispherical column glasses (107) and are arranged on both sides, and an insulating glass (105) is fixedly installed in the middle of the hemispherical column glasses (107) arranged up and down, and a light-adjusting plate (104) is fixedly installed between the insulating glass (105) and the front light-transmitting glass (102), and the upper and lower ends of the light-adjusting plate (104) are both fixedly connected to the hemispherical column glasses (107) and are connected by polarized crystal. The solar film (108) is composed of body particles and high molecular polymers, an inner positioning plate (106) is arranged between the insulating glass (105) and the rear light-transmitting glass (103), a winding shaft (109) is rotatably arranged at the upper end of the inner positioning plate (106), and a solar film (108) is arranged on the winding shaft (109). When the solar film (108) is unfolded, it is located on the side of the inner positioning plate (106) away from the insulating glass (105), and a sliding block (110) is arranged at the lower end of the solar film (108), and the sliding block (110) is slidably connected to the inner positioning plate (106).
3. The assembled energy-saving building glass curtain wall according to claim 2 is characterized in that: A rotating motor is arranged in the side reinforcement frame (3), and the output end of the rotating motor is fixedly connected to the winding shaft (109). An electric power storage device is arranged in the side reinforcement frame (3), and electrodes are arranged at both ends of the dimming plate (104), and the electrodes and the solar film (108) are electrically connected to the electric power storage device.
4. The assembled energy-saving building glass curtain wall according to claim 3 is characterized in that: The temperature sensing assembly comprises a threaded rod (13) and a temperature sensing element (17); the threaded rod (13) is provided with two groups and both are rotatably connected to the inner reinforcement frame (2) at the upper end, and both ends of the threaded rod (13) extend into the side reinforcement frame (3); the threaded rod (13) is threadedly connected to a connecting block (12); a curved head (14) is fixedly installed at the lower end of the connecting block (12); and a suction element (17) is fixedly installed at the upper end of the curved head (14). 15), side scrapers (16) are fixedly installed on both sides of the lower end of the curved head (14), the lower ends of the side scrapers (16) are in contact with the surface of the light-transmitting film (101), the lower surface of the curved head (14) is provided with a plurality of through holes, the temperature sensing element (17) is fixedly installed on the lower surface of the curved head (14), the lower end of the temperature sensing element (17) is located above the light-transmitting film (101), and the suction element (15) is a negative pressure suction machine.
5. The assembled energy-saving building glass curtain wall according to claim 4 is characterized in that: The side reinforcement frame (3) comprises an inner connecting plate (303) and an outer supporting frame (304); the inner connecting plate (303) is fixedly connected to the outer supporting frame (304) via a plurality of mounting columns (302); a limiting groove is formed between the inner connecting plate (303) and the outer supporting frame (304); both ends of the light-transmitting film (101) enter the side reinforcement frame (3) through the limiting groove; an extension section (9) is fixedly installed at one end of the light-transmitting film (101) in the side reinforcement frame (3); driving wheels (8) are rotatably installed at the upper and lower ends of the outer supporting frame (304); the extension section (9) is rotatably sleeved on the outer side of the driving wheel (8); a side transmission member (7) is provided between the driving wheels (8); and an upper transmission member (11) is provided between the threaded rods (13).
6. The assembled energy-saving building glass curtain wall according to claim 5 is characterized by: The inner reinforcement frame (2) is fixedly provided with abutment blocks (201) on both sides of one end close to the glass body (1), and the edges of the abutment blocks (201) abut against the surface of the light-transmitting film (101). Guide members (4) are fixedly provided on both sides of the inner reinforcement frame (2) at the lower end, and water seepage holes (5) are provided on the upper surfaces of the guide members (4). A hollow water storage tank is provided inside the inner reinforcement frame (2) at the lower end.
7. The assembled energy-saving building glass curtain wall according to claim 6 is characterized by: The upper and lower ends of the side reinforcement frame (3) are both provided with mounting holes (301); a connecting pipe (10) is wound around the mounting hole (301) on one side of the upper end; one end of the connecting pipe (10) is introduced into the upper inner reinforcement frame (2) and fixedly connected to the suction piece (15); the other end of the connecting pipe (10) is fixedly connected to a transition piece (18); the transition piece (18) is fixedly installed in the side reinforcement frame (3); a guide pipe (21) is fixedly installed at the lower end of the transition piece (18); the lower end of the guide pipe (21) passes through the side walls of the side reinforcement frame (3) and the inner reinforcement frame (2) in sequence and extends into the water trough.
8. The assembled energy-saving building glass curtain wall according to claim 7 is characterized in that: A slave bevel gear (19) is fixedly mounted on the driving wheel (8) at the lower end, an adjusting rod (6) is rotatably mounted on the lower end of each of the side reinforcement frames (3), two ends of the adjusting rod (6) are respectively arranged on the inner and outer sides of the side reinforcement frame (3), a main bevel gear (20) is fixedly mounted on one end of the adjusting rod (6) located inside the side reinforcement frame (3), and the main bevel gear (20) is meshed with the slave bevel gear (19), and both the inner reinforcement frame (2) and the side reinforcement frame (3) are alloy metal frames.
Citation Information
Cited By
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