Energy-saving facade curtain wall structure

By using a structure of aluminum veneer sandwiching hollow tempered glass in the building curtain wall, combined with hot-dip galvanized steel keels and aluminum alloy decorative strips, stable installation and electrical connection of photovoltaic panels are achieved, solving the problem of insufficient photovoltaic panel benefits and maximizing the utilization of photovoltaic energy.

CN115142599BActive Publication Date: 2025-09-16ZHONGYIFENG CONSTR GRP
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Patent Information

Application Number
CN202210940173.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-08-05
Publication Date
2025-09-16
Estimated Expiration
2042-08-05

AI Technical Summary

Technical Problem

In existing technologies, the planning and positioning of each building are different, resulting in the inability to maximize the benefits of photovoltaic panels and the inability to adapt to buildings that are not facing due north.

Method used

The hollow tempered glass is sandwiched by aluminum veneer, combined with hot-dip galvanized steel keel, thermal insulation blanket, thermal insulation rock wool filling and aluminum alloy decorative strips. The hollow tempered glass is supported by aluminum alloy beams. The stable installation and electrical connection of the photovoltaic panels are achieved through mounting frames, guide rails and contacts, ensuring the maximum utilization of the photovoltaic panels at different angles.

Benefits of technology

It achieves stable installation and electrical connection of photovoltaic panels at different angles, improves the recovery efficiency of photovoltaic energy, and ensures the maximization of photovoltaic benefits.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of building facade curtain walls, and discloses an energy-saving facade curtain wall structure, comprising aluminum veneers, wherein the aluminum veneers are used to clamp hollow tempered glass, the interior of the aluminum veneer is provided with a hot-dip galvanized steel keel, the hot-dip galvanized steel keel is fixed to the interior of the aluminum veneer with bolts, an insulation blanket is provided between the hot-dip galvanized steel keel and the aluminum veneer, the insulation blanket is fixed to the inner wall of the aluminum veneer, the inner side of the aluminum veneer is also provided with thermal insulation rock wool filling, the thermal insulation rock wool filling is fixed to the interior of the aluminum veneer, and the outer side of the aluminum veneer is provided with a mounting head. The energy-saving facade curtain wall structure provided by the present invention can be used for the facade curtain wall structure of a building, and compared with ordinary curtain wall structures, the curtain wall structure provided by the present invention has the advantages of being able to facilitate the recycling of photovoltaic energy in the curtain wall and being able to maximize photovoltaic benefits.
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Description

Technical Field

[0001] The present invention relates to the technical field of building facade curtain walls, and in particular to an energy-saving facade curtain wall structure. Background Art

[0002] At present, the most common type of building curtain wall is the exterior wall decoration in the construction field. Relying on the new wave of the current photovoltaic industry, the exterior glass curtain wall is changed to photovoltaic energy collection, which not only reduces the problem of urban light pollution, but also contributes to low-carbon energy conservation.

[0003] Modern buildings are divided into several usage scenarios according to different urban planning. The exterior decoration of building curtain walls is generally high-rise and super high-rise office buildings. The shape of the facade also varies with the current aesthetic. Photovoltaic panels are also unique in the decoration of building facades due to their own mirrors and artistic colors.

[0004] Each building has its own planning and positioning, and will not all face due north. Therefore, when studying photovoltaic curtain walls, some facade adjustments also need to be incorporated. Summary of the Invention

[0005] (1) Technical problems solved

[0006] In response to the shortcomings of the existing technology, the present invention provides an energy-saving facade curtain wall structure, which has the advantages of facilitating the recovery of photovoltaic energy on the curtain wall and maximizing photovoltaic benefits. It is used to solve the problem in the existing technology that each building has its own planning and positioning, and will not be a stereotyped north-facing building, resulting in the inability to maximize photovoltaic benefits.

[0007] (2) Technical solution

[0008] The present invention provides the following technical solution: an energy-saving facade curtain wall structure, comprising aluminum veneers, wherein the aluminum veneers are used to clamp hollow tempered glass, the interior of the aluminum veneer is provided with a hot-dip galvanized steel keel, the hot-dip galvanized steel keel is fixed to the interior of the aluminum veneer by bolts, an insulation blanket is provided between the hot-dip galvanized steel keel and the aluminum veneer, the insulation blanket is fixed to the inner wall of the aluminum veneer, the inner side of the aluminum veneer is also provided with thermal insulation rock wool filling, the thermal insulation rock wool filling is fixed to the interior of the aluminum veneer, the outer side of the aluminum veneer is provided with a mounting head, the mounting head is fixed to the inner side of the aluminum veneer by bolts, the outer side of the mounting head is provided with an aluminum alloy decorative strip, the aluminum alloy decorative strip is clamped to the interior of the mounting head, and the inner side of the hollow tempered glass is provided with a photovoltaic panel.

[0009] The energy-saving facade curtain wall structure provided by the present invention can be used for the facade curtain wall structure of a building. Compared with ordinary curtain wall structures, the curtain wall structure provided by the present invention has the advantages of being able to facilitate the recovery of photovoltaic energy on the curtain wall and maximizing photovoltaic benefits. It is used to solve the problem in the existing technology that each building has its own planning and positioning, and will not be a stereotyped north-facing building, resulting in the inability to maximize photovoltaic benefits.

[0010] In a possible embodiment, the outer side of the aluminum veneer has an aluminum alloy beam, the aluminum alloy beam is fixed to the outer surface of the aluminum veneer, the hollow tempered glass is in contact with the aluminum alloy beam, and the photovoltaic panel is located in the hollow position of the hollow tempered glass.

[0011] In a possible implementation, the thermal insulation blanket contacts the hot-dip galvanized steel keel, a filling belt is provided inside the hollow position of the hollow tempered glass, the filling belt is fixed to the inner side of the hollow tempered glass, and the hollow tempered glass squeezes the filling belt.

[0012] In a possible embodiment, a filling strip is provided on the inner side of the filling strip, the filling strip is clamped inside the filling strip, and a guide rail is provided on one side of the filling strip, the guide rail being fixed to the outer surface of the filling strip.

[0013] In a possible implementation, a mounting bracket is provided on one side of the guide rail, the mounting bracket is slidably mounted on the outside of the guide rail, and the photovoltaic panel is fixed inside the mounting bracket.

[0014] In a possible embodiment, the outside of the photovoltaic panel has a plug, the plug is fixed to the outer surface of the photovoltaic panel, the inside of the insulating glass has a pressure plate, the pressure plate is clamped to the inside of the insulating glass, one side of the pressure plate has a compression spring, the compression spring is used to support the pressure plate, and contacts are set inside the insulating glass.

[0015] In a possible embodiment, the contact is fixed at the bottom mounting position of the insulating glass, and the plug can contact the contact, and after the plug contacts the contact, the contact can be electrically connected to the photovoltaic panel, and the photovoltaic panel can contact the pressure plate.

[0016] In a possible implementation, one end of the compression spring is fixed to the surface of the filling belt, and the other end of the compression spring is fixed to the outer surface of the pressure plate. The compression spring is used to support the pressure plate, and the plug can pass through the pressure plate.

[0017] In a possible embodiment, a limiting block is provided on the outer side of the pressing plate, the limiting block is fixed to the outer surface of the filling strip, the pressing plate can contact the limiting block, and the limiting block can limit the pressing plate.

[0018] (3) Beneficial effects

[0019] Compared with the prior art, the present invention provides an energy-saving facade curtain wall structure with the following beneficial effects:

[0020] 1. The present invention provides aluminum panels and hollow tempered glass that can tilt and fix the angle of the curtain wall during use, so that different angles can be formed during use. This makes it easier for the photovoltaic panels to be at an angle that can maximize photovoltaic conversion during use, and further maximizes the utilization of the photovoltaic panels.

[0021] 2. The present invention provides a mounting frame and a guide rail that can be used to install and connect the photovoltaic panels during use, which can facilitate the installation and fixing of the photovoltaic panels during the installation of the curtain wall, thereby ensuring the stability of the photovoltaic panels during use, and further ensuring a stable use effect and avoiding displacement of the photovoltaic panels.

[0022] 3. The present invention provides contacts and plugs that facilitate electrical connection between photovoltaic panels, so that the photovoltaic panels can be electrically connected after installation, thereby reducing the time required for electrical connection during the installation process, and further reducing the complex process of curtain wall installation, further shortening the construction period of the curtain wall.

[0023] It should be understood that the foregoing general description and the following detailed description are exemplary only and are not restrictive of the invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 This is a schematic diagram of the overall structure of an energy-saving facade curtain wall structure provided by the present invention;

[0025] Figure 2 This is an enlarged view of point A of an energy-saving facade curtain wall structure provided by the present invention;

[0026] Figure 3 This is an enlarged view of point B of an energy-saving facade curtain wall structure provided by the present invention;

[0027] Figure 4 A bottom view of a photovoltaic panel installation structure of an energy-saving facade curtain wall structure provided by the present invention;

[0028] Figure 5This is a schematic diagram of the guide rail connection structure of an energy-saving facade curtain wall structure provided by the present invention.

[0029] Among them: 1 aluminum veneer, 2 insulation blanket, 3 aluminum alloy decorative strip, 4 aluminum alloy beam, 5 thermal insulation rock wool filling layer, 6 hot-dip galvanized steel keel, 7 hollow tempered glass, 8 filling belt, 9 filling strip, 11 mounting head, 13 photovoltaic panel, 14 guide rail, 15 mounting frame, 16 limit block, 17 compression spring, 18 pressure plate, 19 contact, 20 plug. DETAILED DESCRIPTION

[0030] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0031] Examples of embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to be used to explain the present invention, and should not be construed as limiting the present invention.

[0032] like Figure 1-5 As shown, the present invention provides an energy-saving facade curtain wall structure, including an aluminum veneer 1, wherein the aluminum veneer 1 is used to clamp hollow tempered glass 7, the interior of the aluminum veneer 1 is provided with a hot-dip galvanized steel keel 6, the hot-dip galvanized steel keel 6 is fixed to the interior of the aluminum veneer 1 by bolts, an insulation blanket 2 is provided between the hot-dip galvanized steel keel 6 and the aluminum veneer 1, the insulation blanket 2 is fixed to the inner wall of the aluminum veneer 1, the inner side of the aluminum veneer 1 is also provided with thermal insulation rock wool filling, the thermal insulation rock wool filling is fixed to the interior of the aluminum veneer 1, the outer side of the aluminum veneer 1 is provided with a mounting head 11, the mounting head 11 is fixed to the inner side of the aluminum veneer 1 by bolts, the outer side of the mounting head 11 is provided with an aluminum alloy decorative strip 3, the aluminum alloy decorative strip 3 is clamped to the interior of the mounting head 11, and the inner side of the hollow tempered glass 7 is provided with a photovoltaic panel 13.

[0033] The energy-saving facade curtain wall structure provided by the present invention can be used for the facade curtain wall structure of a building. Compared with ordinary curtain wall structures, the curtain wall structure provided by the present invention has the advantages of being able to facilitate the recovery of photovoltaic energy on the curtain wall and maximizing photovoltaic benefits. It is used to solve the problem in the existing technology that each building has its own planning and positioning, and will not be a stereotyped north-facing building, resulting in the inability to maximize photovoltaic benefits.

[0034] In one possible embodiment, the outer side of the aluminum veneer 1 has an aluminum alloy beam 4, the aluminum alloy beam 4 is fixed to the outer surface of the aluminum veneer 1, the hollow tempered glass 7 is in contact with the aluminum alloy beam 4, and the photovoltaic panel 13 is located in the hollow position of the hollow tempered glass 7.

[0035] In the present invention, the aluminum alloy crossbeam 4 can stably support the position of the hollow tempered glass 7, thereby ensuring the stability of the hollow tempered glass 7 during use.

[0036] In a possible embodiment, the insulation blanket 2 is in contact with the hot-dip galvanized steel keel 6 , and a filling belt 8 is provided inside the hollow position of the hollow tempered glass 7 . The filling belt 8 is fixed to the inner side of the hollow tempered glass 7 , and the hollow tempered glass 7 squeezes the filling belt 8 .

[0037] In the present invention, the filling strip 8 can stably support the position of the hollow tempered glass 7, thereby ensuring stability during use.

[0038] In a possible embodiment, the inner side of the filling strip 8 has a filling strip 9 , which is clamped inside the filling strip 8 . One side of the filling strip 9 has a guide rail 14 , which is fixed to the outer surface of the filling strip 9 .

[0039] In the present invention, the filling tape 8 and the filling strip 9 can facilitate supporting the interior of the hollow tempered glass 7, thereby ensuring stability during use, and the filling tape 8 can ensure that the gap in the middle of the hollow tempered glass 7 is maintained within a certain range.

[0040] In a possible implementation, a mounting bracket 15 is provided on one side of the guide rail 14 . The mounting bracket 15 is slidably mounted on the outside of the guide rail 14 , and the photovoltaic panel 13 is fixed inside the mounting bracket 15 .

[0041] In the present invention, the photovoltaic panel 13 can be positioned by using the mounting frame 15 , and the moving distance and position of the mounting frame 15 can be adjusted and limited by using the guide rail 14 .

[0042] In one possible embodiment, the outside of the photovoltaic panel 13 has a plug 20, which is fixed to the outer surface of the photovoltaic panel 13. The inside of the insulating glass has a pressure plate 18, which is snapped into the inside of the insulating glass. One side of the pressure plate 18 has a compression spring 17, which is used to support the pressure plate 18. A contact 19 is set inside the insulating glass.

[0043] In the present invention, the plug 20 is electrically connected to the photovoltaic panel 13 , and the plug 20 can be used to form an electrical connection with the contacts 19 during use, so as to facilitate stable transmission of electricity.

[0044] In one possible embodiment, the contact 19 is fixed at the bottom mounting position of the insulating glass, and the plug 20 can contact the contact 19 , and after the plug 20 contacts the contact 19 , the contact 19 can be electrically connected to the photovoltaic panel 13 , and the photovoltaic panel 13 can contact the pressure plate 18 .

[0045] In the present invention, the plurality of contacts 19 are electrically connected to each other and can be connected to each other during use, so that after the plug 20 is connected to the contacts 19 , the photovoltaic panels 13 can be electrically connected.

[0046] In a possible embodiment, one end of the compression spring 17 is fixed to the surface of the filling belt 8, and the other end of the compression spring 17 is fixed to the outer surface of the pressure plate 18. The compression spring 17 is used to support the pressure plate 18, and the plug 20 can pass through the pressure plate 18.

[0047] In the present invention, the compression spring 17 can stably support the pressure plate 18, thereby ensuring the stable position of the pressure plate 18. When the pressure plate 18 is not restricted by external pressure, the pressure plate 18 can be stably supported, thereby ensuring stability during use. When the mounting frame 15 presses the pressure plate 18 down, the limit block 16 restricts the pressure plate 18, and with the downward pressure of the mounting frame 15, the pressure of the mounting frame 15 can be used to offset the supporting force of the compression spring 17 to ensure the stability of the pressure plate 18.

[0048] In a possible embodiment, a limiting block 16 is provided on the outside of the pressing plate 18 . The limiting block 16 is fixed to the outer surface of the filling strip 9 . The pressing plate 18 can contact the limiting block 16 , and the limiting block 16 can limit the pressing plate 18 .

[0049] In the present invention, the limit block 16 can limit the position of the pressure plate 18 after the pressure plate 18 is pressed down, thereby ensuring stability during use, and the limitation of the limit block 16 can ensure the stability of the mounting bracket 15 after the mounting bracket 15 is installed, thereby ensuring stable contact between the plug 20 and the contact 19.

[0050] Working principle: During installation, the mounting frame 15 for fixing the photovoltaic panel 13 is inserted into the guide rail 14. Under the restriction of the guide rail 14, the mounting frame 15 can be moved to the inside of the hollow tempered glass 7 to squeeze the pressure plate 18 so that the pressure plate 18 can be restricted under the engagement of the limit block 16. The notification plug 20 passes through the pressure plate 18 and contacts the contact 19, thereby electrically connecting the photovoltaic panels 13. During use, the foldable connection can enable the photovoltaic panel 13 to generate photovoltaic power over a larger area.

[0051] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the invention, and the scope of the invention is defined by the appended claims and their equivalents.

[0052] It should be noted that, in the absence of conflict, the embodiments of the present invention and the features in the embodiments may be combined with each other.

[0053] The above description clearly and completely describes the technical solutions of the present invention in conjunction with the accompanying drawings. Obviously, the embodiments described are only some of the embodiments of the present invention, not all of them. The following description of at least one exemplary embodiment is merely illustrative and in no way limits the present invention, its application, or use. All other embodiments obtained by persons of ordinary skill in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.

Claims

1. An energy-saving facade curtain wall structure, comprising aluminum veneers (1), wherein the aluminum veneers (1) are used to clamp hollow tempered glass (7), characterized in that: The interior of the aluminum veneer (1) is provided with a hot-dip galvanized steel keel (6), which is fixed to the interior of the aluminum veneer (1) by means of bolts. A heat insulation blanket (2) is provided between the hot-dip galvanized steel keel (6) and the aluminum veneer (1), which is fixed to the inner wall of the aluminum veneer (1). The inner side of the aluminum veneer (1) is also provided with a heat-insulating rock wool filling, which is fixed to the interior of the aluminum veneer (1). The outer side of the aluminum veneer (1) is provided with a mounting head (11), which is fixed to the inner side of the aluminum veneer (1) by means of bolts. The outer side of the mounting head (11) is provided with an aluminum alloy decorative strip (3), which is clamped to the interior of the mounting head (11). The inner side of the hollow tempered glass (7) is provided with a photovoltaic panel (13). The outer side of the aluminum single plate (1) is provided with an aluminum alloy crossbeam (4), the aluminum alloy crossbeam (4) is fixed to the outer surface of the aluminum single plate (1), the hollow tempered glass (7) is in contact with the aluminum alloy crossbeam (4), and the photovoltaic panel (13) is located in the hollow position of the hollow tempered glass (7); The thermal insulation blanket (2) is in contact with the hot-dip galvanized steel keel (6), a filling belt (8) is provided inside the hollow position of the hollow tempered glass (7), the filling belt (8) is fixed to the inner side of the hollow tempered glass (7), and the hollow tempered glass (7) squeezes the filling belt (8); The inner side of the filling strip (8) is provided with a filling strip (9), the filling strip (9) is clamped inside the filling strip (8), and one side of the filling strip (9) is provided with a guide rail (14), the guide rail (14) is fixed to the outer surface of the filling strip (9); One side of the guide rail (14) is provided with a mounting frame (15), the mounting frame (15) is slidably mounted on the outside of the guide rail (14), and the photovoltaic panel (13) is fixed inside the mounting frame (15); The photovoltaic panel (13) has a plug (20) on its outer side, and the plug (20) is fixed to the outer surface of the photovoltaic panel (13). The hollow tempered glass has a pressure plate (18) inside, and the pressure plate (18) is clamped inside the hollow tempered glass. One side of the pressure plate (18) has a compression spring (17), and the compression spring (17) is used to support the pressure plate (18). A contact (19) is provided inside the hollow tempered glass.

2. The energy-saving facade curtain wall structure according to claim 1, characterized in that: The contact (19) is fixed to the bottom mounting position of the hollow tempered glass, and the plug (20) can contact the contact (19), and after the plug (20) contacts the contact (19), the contact (19) can be electrically connected to the photovoltaic panel (13), and the photovoltaic panel (13) can contact the pressure plate (18).

3. The energy-saving facade curtain wall structure according to claim 1, characterized in that: One end of the compression spring (17) is fixed to the surface of the filling belt (8), and the other end of the compression spring (17) is fixed to the outer surface of the pressure plate (18). The compression spring (17) is used to support the pressure plate (18), and the plug (20) can pass through the pressure plate (18).

4. The energy-saving facade curtain wall structure according to claim 1, characterized in that: The outer side of the pressing plate (18) is provided with a limiting block (16), the limiting block (16) is fixed to the outer surface of the filling strip (9), the pressing plate (18) can contact the limiting block (16), and the limiting block (16) can limit the pressing plate (18).

Citation Information

Patent Citations

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    CN107487514A

  • Amorphous silicon solar energy curtain wall photovoltaic hollow glass

    CN201059027Y

  • Adjustable connection structure of photovoltaic glass curtain wall and photovoltaic glass

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