Low-carbon photovoltaic glass curtain wall for energy-saving building
Through the combined structure of the cross frame, connecting plate and photovoltaic frame, the complex installation and inconvenient maintenance of photovoltaic glass curtain walls are solved, and the convenient installation and low-carbon energy-saving effect of photovoltaic glass curtain walls are achieved.
Patent Information
- Application Number
- CN202422533445.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-21
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-10-21
AI Technical Summary
The existing photovoltaic glass curtain walls are complex to install, have low maintenance efficiency, and are inconvenient to load and unload, which cannot effectively achieve the low-carbon goal of energy-saving buildings.
The combined structure of a cross frame, connecting plate and photovoltaic frame is adopted, and the installation is fixed and installed through bolts and screws to achieve convenient installation and disassembly of photovoltaic glass, and combines the heat absorption function of photovoltaic glass to convert solar energy into electrical energy.
It realizes the convenient installation and maintenance of photovoltaic glass curtain walls, achieves the effect of energy-saving and low-carbon, and improves the installation efficiency and convenience of maintenance.
Smart Images

Figure CN223135436U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of building curtain walls, in particular to a low-carbon photovoltaic glass curtain wall for energy-saving buildings. Background Technique
[0002] Light pollution is serious in cities, and light can also be used as energy. Existing energy-saving buildings use photovoltaic glass to replace traditional glass as curtain walls. However, the existing photovoltaic glass is complex to install, has low maintenance efficiency, and is complex to load and unload. Therefore, a low-carbon photovoltaic glass curtain wall for energy-saving buildings is needed to replace the existing photovoltaic glass curtain wall for green buildings. Content of the Utility Model
[0003] The purpose of the utility model is to provide a low-carbon photovoltaic glass curtain wall for energy-saving buildings to solve the problems put forward in the above background technique.
[0004] To achieve the above purpose, the utility model provides the following technical solution: A low-carbon photovoltaic glass curtain wall for energy-saving buildings, including a plurality of cross frames. Each of the cross frames is provided with four first card slots distributed in a circumferential array. Each of the first card slots is provided with a first through hole, and the cross frame is provided with four second card slots distributed in a circumferential array. Each of the second card slots is provided with a second through hole. A connecting plate can be clamped into the two second card slots between two adjacent cross frames. The connecting plate is provided with two second slot holes that can be coaxially aligned with the second through holes. Thus, by driving a second long bolt through the second slot holes and the second through holes into the wall, the connecting plate and the cross frame can be fixedly installed on the wall surface;
[0005] Each of the connecting plates is provided with two third card slots. Each of the third card slots is provided with a plurality of equally spaced first threaded holes. A photovoltaic frame can be inserted into the third card slots of the connecting plate and the first card slots of the cross frame. The photovoltaic frame is provided with four third slot holes that are coaxially aligned with the first through holes. By passing a second bolt through the third slot holes and screwing it into the first through holes, the photovoltaic frame can be fixedly connected to the cross frame. The photovoltaic frame is provided with a plurality of fourth slot holes that are coaxially aligned with the first threaded holes. By passing a first bolt through the fourth slot holes and screwing it into the first threaded holes, the photovoltaic frame and the connecting plate can be fixedly connected. The photovoltaic frame is fixedly connected with a photovoltaic glass. The photovoltaic glass can absorb heat and convert solar energy into electric energy. Thus, the photovoltaic frame can be firmly fixedly connected to the cross frame and the connecting plate, and the maintenance and disassembly are convenient.
[0006] Preferably, each of the cross frames is provided with a first slot hole. A first long screw can be inserted into each of the first slot holes. The first long screw is driven into the wall to firmly install the cross frame on the wall surface;
[0007] Preferably, the size of the connecting plate can be customized to adapt to the photovoltaic glass with different lengths and widths. By adjusting the distance between the connecting plates, the photovoltaic glass with different lengths and widths can be installed.
[0008] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0009] By providing a cross frame, a connecting plate and a photovoltaic frame, the cross frame can be equidistantly installed on the wall surface, and the overall frame is built by fixedly installing with the connecting plate. Then, the photovoltaic frame is clamped into the first card slot of the cross frame and the third card slot of the connecting plate, and the photovoltaic frame is fixedly installed by the second bolt and the first bolt, so that the photovoltaic glass can be conveniently built, and the disassembly for maintenance is convenient. At the same time, the low-carbon purpose of an energy-saving building is achieved through photovoltaic heat absorption. BRIEF DESCRIPTION OF THE DRAWINGS
[0010] Figure 1 is a three-dimensional schematic diagram of the present utility model;
[0011] Figure 2 is a three-dimensional schematic diagram of the cross frame of the present utility model;
[0012] Figure 3 is a three-dimensional schematic diagram of the connecting plate of the present utility model;
[0013] Figure 4 is a three-dimensional schematic diagram of the photovoltaic frame of the present utility model;
[0014] Figure 5 is a three-dimensional schematic diagram of the connection between the cross frame and the photovoltaic frame of the present utility model;
[0015] Figure 6 is a three-dimensional schematic diagram of the connection between the photovoltaic frame and the connecting plate of the present utility model.
[0016] In the figure: 100, cross frame; 101, first card slot; 102, first through hole; 103, second card slot; 104, second through hole; 105, first long screw; 106, connecting plate; 107, third card slot; 108, first threaded hole; 109, second long bolt; 110, photovoltaic frame; 111, first bolt; 112, photovoltaic glass; 113, first slot hole; 114, second slot hole; 115, third slot hole; 116, fourth slot hole; 117, second bolt. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0017] 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.
[0018] Embodiment 1:
[0019] Please refer to Figure 1-6 , the present invention provides a technical solution: a low-carbon photovoltaic glass curtain wall for energy-saving buildings, including a plurality of cross frames 100. Each of the cross frames 100 is provided with four first card slots 101 distributed in a circumferential array. Each of the first card slots 101 is provided with a first through hole 102. And the cross frame 100 is provided with four second card slots 103 distributed in a circumferential array. Each of the second card slots 103 is provided with a second through hole 104. Two of the second card slots 103 between two adjacent cross frames 100 can be engaged with a connecting plate 106. The connecting plate 106 is provided with two second slot holes 114 that can be coaxially aligned with the second through holes 104. Thus, by driving the second long bolt 109 into the wall through the second slot holes 114 and the second through holes 104, the connecting plate 106 and the cross frame 100 can be fixedly installed on the wall surface;
[0020] Embodiment 2:
[0021] Please refer to Figure 1-6 , for the convenience of disassembly during maintenance and the loading and unloading of photovoltaic glass, a photovoltaic frame 110 is provided;
[0022] The connecting plate 106 is provided with two third card slots 107, and each of the third card slots 107 is provided with a plurality of equally spaced first threaded holes 108. The third card slot 107 of the connecting plate 106 and the first card slot 101 of the cross frame 100 can be inserted into the photovoltaic frame 110. The photovoltaic frame 110 is provided with four third slot holes 115 coaxially aligned with the first through holes 102. By passing the second bolt 117 through the third slot holes 115 and then screwing it into the first through holes 102, the photovoltaic frame 110 can be fixedly connected to the cross frame 100. The photovoltaic frame 110 is provided with a plurality of fourth slot holes 116 coaxially aligned with the first threaded holes 108. By passing the first bolt 111 through the fourth slot holes 116 and then screwing it into the first threaded holes 108, the photovoltaic frame 110 and the connecting plate 106 can be fixedly connected. The photovoltaic frame 110 is fixedly connected with a photovoltaic glass 112, and the photovoltaic glass 112 can absorb heat and convert solar energy into electric energy, so that the photovoltaic frame 110 can be firmly fixedly connected to the cross frame 100 and the connecting plate 106, and the maintenance and disassembly are convenient.
[0023] Embodiment 3:
[0024] Please refer to Figure 1-6 , in order to install the cross frame 100 more firmly, a first slot hole 113 is provided;
[0025] Each cross frame 100 is provided with a first slot hole 113, and a first long screw 105 can be inserted into the first slot hole 113. The first long screw 105 is driven into the wall to firmly install the cross frame 100 on the wall surface;
[0026] The size of the connecting plate 106 can be customized to adapt to the photovoltaic glass 112 with different lengths and widths, and the distance between the connecting plates 106 can be adjusted accordingly to install the photovoltaic glass 112 with different lengths and widths.
[0027] Working principle:
[0028] First, after passing the first long screw 105 through the first slot hole 113, each cross frame 100 is fixedly arranged on the wall surface at equal intervals, and the two ends of the connecting plate 106 are inserted into the second card slots 103 between every two cross frames 100. The second long bolt 109 is inserted into the second slot hole 114, then passes through the second through hole 104 and is driven into the wall surface to build the frame of the curtain wall and further improve the firmness of the frame;
[0029] Then, the photovoltaic frame 110 is snapped into the first card slot 101 of the adjacent cross frame 100 and the third card slot 107 of the connecting plate 106. After the second bolt 117 is inserted into the third slot hole 115 and then screwed into the first through hole 102, at the same time, the first bolt 111 is inserted into the fourth slot hole 116 and then screwed into the first threaded hole 108 to fixedly connect the photovoltaic frame 110, the connecting plate 106 and the cross frame 100. Thus, the heat of the sun is absorbed by the photovoltaic glass 112, and electricity is generated at the same time, playing the role of energy conservation and low carbon, and being convenient for maintenance and disassembly.
[0030] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A low-carbon photovoltaic glass curtain wall for energy-saving buildings, comprising a plurality of cross frames (100), characterized in that: Each of the cross frames (100) is provided with four first card slots (101) distributed in a circumferential array. Each of the first card slots (101) is provided with a first through hole (102). The cross frame (100) is provided with four second card slots (103) distributed in a circumferential array. Each of the second card slots (103) is provided with a second through hole (104). Two of the second card slots (103) between two adjacent cross frames (100) can be engaged with a connecting plate (106). The connecting plate (106) is provided with two second slots (114) that can be coaxially aligned with the second through holes (104). The connecting plate (106) is provided with two third card slots (107). Each of the third card slots (107) is provided with a plurality of equally spaced first threaded holes (108). The third card slots (107) of the connecting plate (106) and the first card slots (101) of the cross frame (100) can be engaged with a photovoltaic frame (110). The photovoltaic frame (110) is provided with four third slots (115) that are coaxially aligned with the first through holes (102). By passing a second bolt (117) through the third slots (115) and then screwing it into the first through holes (102), the photovoltaic frame (110) can be fixedly connected to the cross frame (100). The photovoltaic frame (110) is provided with a plurality of fourth slots (116) that are coaxially aligned with the first threaded holes (108). By passing a first bolt (111) through the fourth slots (116) and then screwing it into the first threaded holes (108), the photovoltaic frame (110) and the connecting plate (106) can be fixedly connected. The photovoltaic frame (110) is fixedly connected with a photovoltaic glass (112), and the photovoltaic glass (112) can absorb heat and convert solar energy into electric energy.
2. The low-carbon photovoltaic glass curtain wall for energy-saving buildings according to claim 1, characterized in that: Each of the cross frames (100) is provided with a first slot (113). A first long screw (105) can be inserted into each of the first slots (113). The first long screw (105) is driven into the wall to firmly mount the cross frame (100) on the wall surface.
3. The low-carbon photovoltaic glass curtain wall for energy-saving buildings according to claim 2, wherein: The size of the connecting plate (106) can be customized to adapt to the photovoltaic glass (112) of different lengths and widths. By adjusting the distance between the connecting plates (106), the photovoltaic glass (112) of different lengths and widths can be installed.