Mixed type energy-saving curtain wall system

By designing a hybrid energy-saving curtain wall system and adopting a glass panel structure with multiple combinations, the problem of poor versatility of the existing curtain wall system is solved, and a curtain wall system with high energy-saving effect and high safety is achieved.

CN223202559UActive Publication Date: 2025-08-08HYUNDAI FACADE SYST TECH SUZHOU LTD
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Patent Information

Application Number
CN202422193036.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-06
Publication Date
2025-08-08
Estimated Expiration
2034-09-06

AI Technical Summary

Technical Problem

The existing curtain wall system cannot meet users' arbitrary combination of bright frame and hidden frame structures, resulting in poor versatility.

Method used

A hybrid energy-saving curtain wall system is designed, adopting column light frame structure, column light frame structure, beam light frame structure and beam hidden frame structure, and implementing any combination of glass panels through various combinations, including four matching forms: vertical and horizontal, vertical and horizontal, vertical and horizontal, vertical and horizontal.

Benefits of technology

It realizes the high energy-saving effect and high safety of the curtain wall system, and has strong versatility and can be combined according to user needs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a mixed type energy-saving curtain wall system which comprises a plurality of glass wallboards, a stand column exposed frame structure or a stand column hidden frame structure is arranged between the transversely adjacent glass wallboards, and a cross beam exposed frame structure or a cross beam hidden frame structure is arranged between the longitudinally adjacent glass wallboards. The stand column exposed frame structure and the cross beam exposed frame structure are the same in structure, the stand column hidden frame structure and the cross beam hidden frame structure are the same in structure, the stand column exposed frame structure comprises a first stand column, a heat insulation assembly, a first pressing plate and a positioning component, and the two ends of the heat insulation assembly are connected with the middle end of the first stand column and the first pressing plate in a clamped mode respectively; two first clamping hooks connected with the heat insulation assembly are arranged on the first pressing plate, the first pressing plate is connected with the transversely adjacent glass panel through an adhesive tape, and the positioning part is used for positioning the first pressing plate and the heat insulation assembly. The mixed type energy-saving curtain wall system is good in energy-saving effect, high in safety coefficient, capable of being combined at will according to requirements and high in universality.
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Description

Technical Field

[0001] The utility model relates to the technical field of building curtain walls, in particular to a hybrid energy-saving curtain wall system. Background Art

[0002] Curtain walls, also known as "drapery walls" or "suspended walls," are lightweight structures commonly used in modern large and high-rise buildings. They not only protect the building's interior from the external environment but also enhance its aesthetics and energy efficiency. Existing curtain walls consist of a system of panels (such as glass, aluminum, stone, and ceramic panels) and a supporting structure (such as aluminum beams and columns, steel structures, and glass ribs). These panels have a certain degree of displacement relative to the main structure or are capable of deformation themselves.

[0003] The glass curtain wall structures in the prior art include exposed frame structure, concealed frame structure and semi-concealed frame structure, which cannot meet the user's demand for any combination of exposed frame and concealed frame, resulting in poor versatility. Utility Model Content

[0004] The technical problem to be solved by the utility model is to provide a hybrid energy-saving curtain wall system, which has good energy-saving effect, high safety factor, can be arbitrarily combined according to needs, and has strong universal performance.

[0005] The technical solution adopted by the utility model to solve its technical problems is: a hybrid energy-saving curtain wall system, including a plurality of glass wall panels, a column visible frame structure or a column hidden frame structure is arranged between the transversely adjacent glass panels, and a beam visible frame structure or a beam hidden frame structure is arranged between the longitudinally adjacent glass panels, the column visible frame structure and the beam visible frame structure have the same structure, and the column hidden frame structure and the beam hidden frame structure have the same structure.

[0006] The column exposed frame structure includes a first column, an insulation component, a first pressure plate and a positioning component. The first column is connected to the laterally adjacent glass panel by a rubber strip. The two ends of the insulation component are respectively clamped with the middle end of the first column and the first pressure plate. The first pressure plate is provided with two first hooks connected to the insulation component. The first pressure plate is connected to the laterally adjacent glass panel by a rubber strip. The positioning component is used to position the first pressure plate and the insulation component.

[0007] In one embodiment, the column hidden frame structure of the hybrid energy-saving curtain wall system includes a second column, two sub-frames, a second pressure plate and a locking component. One end of the two sub-frames is respectively connected to the second column, and the other ends of the two sub-frames are respectively connected to the inner sides of the laterally adjacent glass panels through structural adhesive. The second pressure plate is provided with two pressure blocks that are pressed on the second column. The locking component passes through the second pressure plate and is connected to the second column, so that the second pressure plate is respectively pressed on the two sub-frames and the second column.

[0008] In one embodiment, the locking components of the hybrid energy-saving curtain wall system are a second screw and a second nut. The second nut is installed in the second column, and the threaded end of the second screw passes through the second pressure plate and the second column in sequence and is threadedly connected to the second nut.

[0009] In one embodiment, the thermal insulation component of the hybrid energy-saving curtain wall system includes a thermal insulation member and two oppositely arranged thermal insulation strips, one end of the two thermal insulation strips are respectively clamped with the columns, and the other ends of the two thermal insulation strips are respectively clamped with one end of the thermal insulation member, and the other end of the thermal insulation member is provided with two first card slots that are clamped with the two first hooks of the pressure plate.

[0010] In one embodiment, the positioning component of the hybrid energy-saving curtain wall system is a first screw, the threaded end of the first screw passes through the first pressure plate and the thermal insulation member in sequence, and the first screw positions the first pressure plate and the thermal insulation member.

[0011] In one embodiment, the column exposed frame structure and the beam exposed frame structure or the beam hidden frame structure of the hybrid energy-saving curtain wall system are connected through a first spring pin and a first connecting plate, the first connecting plate is provided with an inclined second hook and a plurality of positioning screws, the first column is provided with a second slot and a pressure groove, one end of the first connecting plate is pressed tightly on the pressure groove of the first column, the second hook of the first connecting plate is engaged with the second slot of the first column, and the threaded end of the positioning screw passes through the first connecting plate and the column and positions the first connecting plate and the column.

[0012] In one embodiment, the column hidden frame structure of the hybrid energy-saving curtain wall system is connected to the beam visible frame structure or the beam hidden frame structure through a second spring pin and a second connecting plate, the middle part of the second connecting plate is provided with an inclined third hook and a plurality of locking screws, the second column is provided with a third slot engaged with the third hook, one end of the second connecting plate is connected to the second column by a locking screw, and the other end of the second connecting plate is connected to the connecting part of the beam visible frame structure or the beam hidden frame structure by a locking screw.

[0013] The beneficial effects of this application are:

[0014] This application provides a hybrid energy-saving curtain wall system. The system's multi-layer glass panels can be arranged in four configurations: vertically visible and horizontally visible, vertically visible and horizontally concealed, vertically concealed and horizontally visible, and vertically concealed and horizontally concealed. This hybrid energy-saving curtain wall system can be combined arbitrarily based on user needs, offering strong versatility, excellent energy savings, and a high safety factor.

[0015] The first pressure plate and the insulation assembly of the exposed frame structure of the curtain wall system are connected by two first hooks, so that the first pressure plate applies connecting pressure to the insulation assembly, and the positioning component positions the first pressure plate and the insulation assembly. This structural design not only improves energy efficiency but also increases safety.

[0016] The column exposed frame structure and the beam exposed frame structure or the beam hidden frame structure of the curtain wall system are connected by a first connecting plate, which not only improves the bending strength but also improves the safety factor.

[0017] The column hidden frame structure and the beam exposed frame structure or the beam hidden frame structure of the curtain wall system are connected by a second connecting plate, which not only improves the bending strength but also improves the safety factor. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 A schematic diagram of a column exposed frame structure of a hybrid energy-saving curtain wall system according to an embodiment of the present application;

[0019] Figure 2 A schematic diagram of a column hidden frame structure of a hybrid energy-saving curtain wall system according to an embodiment of the present application;

[0020] Figure 3 A schematic diagram of a beam exposed frame structure of a hybrid energy-saving curtain wall system according to an embodiment of the present application;

[0021] Figure 4 A schematic diagram of a beam hidden frame structure of a hybrid energy-saving curtain wall system according to an embodiment of the present application;

[0022] Figure 5 A schematic diagram of a column exposed frame structure, a first spring pin, and a first connecting plate of a hybrid energy-saving curtain wall system according to an embodiment of the present application;

[0023] Figure 6 A schematic diagram of a column hidden frame structure, a second spring pin, and a second connecting plate of a hybrid energy-saving curtain wall system according to an embodiment of the present application;

[0024] Figure 7 A schematic diagram of a vertically exposed and horizontally exposed energy-saving hybrid curtain wall system according to an embodiment of the present application;

[0025] Figure 8 Schematic diagram of a vertically visible and horizontally invisible energy-saving hybrid curtain wall system according to an embodiment of the present application;

[0026] Figure 9 A schematic diagram of a vertically concealed and horizontally visible energy-saving hybrid curtain wall system according to an embodiment of the present application;

[0027] Figure 10 Schematic diagram of a vertically and horizontally concealed energy-saving hybrid curtain wall system according to an embodiment of the present application;

[0028] in:

[0029] 1. Glass panel; 2. Column visible frame structure; 21. First column; 22. Thermal insulation assembly; 23. First pressure plate; 24. Positioning component; 211. Second slot; 212. Pressure slot; 221. Thermal insulation component; 222. Thermal insulation strip; 231. First hook; 3. Column hidden frame structure; 31. Second column; 32. Sub-frame; 33. Second pressure plate; 34. Locking component; 35. Structural adhesive; 311. Third slot; 331. Pressure block; 341. Second screw; 342. Second nut; 4. Crossbeam visible frame structure; 5. Crossbeam hidden frame structure; 6. First spring pin; 7. First connecting plate; 71. Second hook; 72. Positioning screw; 8. Second spring pin; 9. Second connecting plate; 91. Third hook; 92. Locking screw. DETAILED DESCRIPTION

[0030] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the specific embodiments of the present invention are described in detail below with reference to the accompanying drawings.

[0031] like Figures 1-4 As shown, an embodiment of the present application provides a hybrid energy-saving curtain wall system, comprising a plurality of glass wall panels, wherein a column visible frame structure 2 or a column hidden frame structure 3 is arranged between the laterally adjacent glass panels 1, and a beam visible frame structure 4 or a beam hidden frame structure 5 is arranged between the longitudinally adjacent glass panels 1, wherein the column visible frame structure 2 has the same structure as the beam visible frame structure 4, and the column hidden frame structure 3 has the same structure as the beam hidden frame structure 5.

[0032] like Figure 1 As shown, the column frame structure 2 includes a first column 21, an insulation component 22, a first pressure plate 23 and a positioning component 24. The first column 21 is connected to the laterally adjacent glass panel 1 by a rubber strip, and the two ends of the insulation component 22 are respectively clamped with the middle end of the first column 21 and the first pressure plate 23. The first pressure plate 23 is provided with two first hooks 231 connected to the insulation component 22. The first pressure plate 23 is connected to the laterally adjacent glass panel 1 by a rubber strip. The positioning component 24 is used to position the first pressure plate 23 and the insulation component 22.

[0033] Specifically, the two ends of the first column 21 are connected to the inner side of the laterally adjacent glass panel 1 via adhesive strips. One end of the two insulation strips 222 of the insulation assembly 22 is respectively engaged with the two grooves of the first column 21. The other ends of the two insulation strips 222 of the insulation assembly 22 are respectively engaged with the two grooves at one end of the insulation member 221. The two hooks of the first pressure plate 23 are engaged with the two slots of the insulation member 221. The two ends of the first pressure plate 23 are respectively connected to the outside of the laterally adjacent glass panel 1 via adhesive strips. The positioning component 24 passes through the first pressure plate 23 and the insulation member 221 to position the first pressure plate 23 and the insulation member 221. Specifically, the column exposed frame structure 2 has the same structure as the beam exposed frame structure 4, and the column hidden frame structure 3 has the same structure as the beam hidden frame structure 5.

[0034] The combination of the hybrid energy-saving curtain wall is as follows:

[0035] like Figure 7 As shown, Example 1: Installation method of vertical and horizontal exposed energy-saving hybrid curtain wall system, a column exposed frame structure 2 is installed between the laterally adjacent glass panels 1, and a beam exposed frame structure 4 is installed between the vertically adjacent glass panels 1, and the intersection of the column exposed frame structure 2 and the beam exposed frame structure 4 is connected by a first spring pin 6 and a first connecting plate 7.

[0036] like Figure 8 As shown, Example 2: Installation method of vertical visible and horizontal invisible energy-saving hybrid curtain wall system, a column visible frame structure 2 is installed between the laterally adjacent glass panels 1, and a horizontal beam hidden frame structure 5 is installed between the vertically adjacent glass panels 1, and the intersection of the column visible frame structure 2 and the horizontal beam hidden frame structure 5 is connected by a first spring pin 6 and a first connecting plate 7.

[0037] like Figure 9 As shown, Example 3: Installation method of vertically hidden and horizontally visible energy-saving hybrid curtain wall system, a column hidden frame structure 3 is installed between the laterally adjacent glass panels 1, and a horizontal beam visible frame structure 4 is installed between the vertically adjacent glass panels 1, and the intersection of the column hidden frame structure 3 and the horizontal beam visible frame structure 4 is connected by a second spring pin 8 and a second connecting plate 9.

[0038] like Figure 10 As shown, Example 4: Installation method of vertically hidden and horizontally hidden energy-saving hybrid curtain wall system, a column hidden frame structure 3 is installed between the laterally adjacent glass panels 1, and a beam hidden frame structure 5 is installed between the vertically adjacent glass panels 1, and the intersection of the column hidden frame structure 3 and the beam hidden frame structure 5 is connected by a second spring pin 8 and a second connecting plate 9.

[0039] In the above structure, the two first hooks 231 of the first pressing plate 23 engage the insulation assembly 22, allowing the first pressing plate 23 to apply connecting pressure to the insulation assembly 22, while the positioning member 24 positions the first pressing plate 23 and the insulation assembly 22. This structural design not only improves energy efficiency but also increases safety. This hybrid energy-saving curtain wall system can be freely combined according to user needs, offering strong versatility, excellent energy efficiency, and a high safety factor.

[0040] like Figure 2 As shown, in one embodiment, the column hidden frame structure 3 of the hybrid energy-saving curtain wall system includes a second column 31, two sub-frames 32, a second pressure plate 33 and a locking component 34, one end of the two sub-frames 32 is respectively connected to the second column 31, and the other ends of the two sub-frames 32 are respectively connected to the inner sides of the laterally adjacent glass panels 1 through structural adhesive 35, and the second pressure plate 33 is provided with two pressure blocks 331 pressed on the second column 31, and the locking component 34 passes through the second pressure plate 33 and is connected to the second column 31, so that the second pressure plate 33 is respectively pressed on the two sub-frames 32 and the second column 31.

[0041] Specifically, the two ends of the second column 31 are connected to the inner sides of the laterally adjacent glass panels 1 via adhesive strips. One end of each of the two sub-frames 32 is connected to the inner sides of the laterally adjacent glass panels 1 via two structural adhesives 35 to form a single unit. The other ends of the two sub-frames 32 are connected to the second column 31 via adhesive strips. The second screw 341 of the locking component 34 passes through the second pressure plate 33 and is threadedly connected to a nut in the second column 31, clamping the two sub-frames 32 between the second pressure plate 33 and the column. This column-concealed frame structure 3 not only improves energy efficiency but also enhances structural stability and safety.

[0042] like Figure 2 As shown in one embodiment, the locking component 34 of the hybrid energy-saving curtain wall system comprises a second screw 341 and a second nut 342. The second nut 342 is mounted within the second column 31. The threaded end of the second screw 341 passes through the second pressure plate 33 and the second column 31 in sequence and is threadedly connected to the second nut 342. This arrangement facilitates tightening the two sub-frames 32 between the second pressure plate 33 and the column, improving the stability and safety of the structure.

[0043] like Figure 1As shown, in one embodiment, the heat insulation assembly 22 of the hybrid energy-saving curtain wall system includes a heat insulating member 221 and two opposing heat insulating strips 222. One end of each heat insulating strip 222 is respectively engaged with a column, and the other end of each heat insulating strip 222 is respectively engaged with one end of the heat insulating member 221. The other end of the heat insulating member 221 is provided with two first latching grooves that engage with two first latching hooks 231 of the pressure plate. This arrangement enhances the energy-saving and heat-insulating effects between adjacent glass panels 1.

[0044] like Figure 1 As shown, in one embodiment, the positioning component 24 of the hybrid energy-saving curtain wall system is a first screw, the threaded end of which passes through the first pressing plate 23 and the thermal insulation member 221 in sequence, and the first screw positions the first pressing plate 23 and the thermal insulation member 221. This arrangement facilitates the positioning of the first pressing plate 23 and the thermal insulation member 221 and improves the positioning effect.

[0045] like Figure 5 As shown, in one embodiment, the column exposed frame structure 2 of the hybrid energy-saving curtain wall system is connected to the beam exposed frame structure 4 or the beam hidden frame structure 5 through a first spring pin 6 and a first connecting plate 7, the first connecting plate 7 is provided with an inclined second hook 71 and a plurality of positioning screws 72, the first column 21 is provided with a second slot 211 and a pressure groove 212, one end of the first connecting plate 7 is pressed tightly on the pressure groove 212 of the first column 21, the second hook 71 of the first connecting plate 7 is engaged with the second slot 211 of the first column 21, and the threaded end of the positioning screw 72 passes through the first connecting plate 7 and the column and positions the first connecting plate 7 and the column.

[0046] Specifically, the first spring pin 6 and the first connecting plate 7 are used to connect the column visible frame structure 2 and the beam visible frame structure 4, or to connect the column visible frame structure 2 and the beam hidden frame structure 5. One end of the first connecting plate 7 is pressed against the pressing groove 212 of the first column 21, and the other end of the first connecting plate 7 is connected to the beam visible frame structure 4 or the beam hidden frame structure 5. The second hook 71 obliquely arranged on the first connecting plate 7 is engaged with the first column 21, and the positioning screw 72 is used to position the first connecting plate 7 and the first column 21. Another positioning screw 72 positions the connection part of the first connecting plate 7 and the beam visible frame structure 4 or the beam hidden frame structure 5.

[0047] The provision of the first connecting plate 7 not only enhances the connection strength and bending strength, but also saves the use cost.

[0048] like Figure 6As shown, in one embodiment, the column hidden frame structure 3 of the hybrid energy-saving curtain wall system is connected to the beam exposed frame structure 4 or the beam hidden frame structure 5 through a second spring pin 8 and a second connecting plate 9, and the middle part of the second connecting plate 9 is provided with an inclined third hook 91 and a plurality of locking screws 92, and the second column 31 is provided with a third slot 311 engaged with the third hook 91, one end of the second connecting plate 9 is connected to the second column 31 by a locking screw 92, and the other end of the second connecting plate 9 is connected to the connecting part of the beam exposed frame structure 4 or the beam hidden frame structure 5 by a locking screw 92.

[0049] Specifically, the second spring pin 8 and the second connecting plate 9 are used to connect the column hidden frame structure 3 and the beam exposed frame structure 4, or to connect the column hidden frame structure 3 and the beam hidden frame structure 5. One end of the second connecting plate 9 is connected to the second column 31 via a locking screw 92, and the other end of the second connecting plate 9 is connected to the connecting portion of the beam exposed frame structure 4 or the beam hidden frame structure 5 via a locking screw 92. The inclined third hook 91 of the second connecting plate 9 is engaged with the third slot 311 of the second column 31.

[0050] The provision of the second connecting plate 9 not only enhances the connection strength and bending strength, but also saves the use cost.

[0051] The above-described embodiments merely represent several implementations of the present invention. While the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the utility model patent. It should be noted that a person skilled in the art would be able to make various modifications and improvements without departing from the concept of the present invention, and these modifications and improvements fall within the scope of protection of the present invention. Therefore, the scope of protection of the present utility model patent shall be determined by the appended claims.

Claims

1. A hybrid energy-saving curtain wall system, characterized in that: The invention comprises a plurality of glass panels (1), wherein a column visible frame structure (2) or a column hidden frame structure (3) is provided between the glass panels (1) adjacent to each other in the transverse direction, and a beam visible frame structure (4) or a beam hidden frame structure (5) is provided between the glass panels (1) adjacent to each other in the longitudinal direction, wherein the column visible frame structure (2) and the beam visible frame structure (4) have the same structure, and the column hidden frame structure (3) and the beam hidden frame structure (5) have the same structure. The column exposed frame structure (2) comprises a first column (21), a heat insulation component (22), a first pressing plate (23) and a positioning component (24); the first column (21) is connected to a laterally adjacent glass panel (1) via a rubber strip; the two ends of the heat insulation component (22) are respectively engaged with the middle end of the first column (21) and the first pressing plate (23); the first pressing plate (23) is provided with two first hooks (231) connected to the heat insulation component (22); the first pressing plate (23) is connected to a laterally adjacent glass panel (1) via a rubber strip; and the positioning component (24) is used to position the first pressing plate (23) and the heat insulation component (22).

2. The hybrid energy-saving curtain wall system according to claim 1, characterized in that: The column hidden frame structure (3) comprises a second column (31), two sub-frames (32), a second pressing plate (33) and a locking component (34); one end of the two sub-frames (32) is respectively connected to the second column (31); the other ends of the two sub-frames (32) are respectively connected to the inner side of the laterally adjacent glass panels (1) through structural adhesive (35); the second pressing plate (33) is provided with two pressing blocks (331) pressed against the second column (31); the locking component (34) passes through the second pressing plate (33) and is connected to the second column (31), so that the second pressing plate (33) is respectively pressed against the two sub-frames (32) and the second column (31).

3. The hybrid energy-saving curtain wall system according to claim 2, characterized in that: The locking component (34) is a second screw (341) and a second nut (342). The second nut (342) is installed in the second column (31). The threaded end of the second screw (341) passes through the second pressing plate (33) and the second column (31) in sequence and is threadedly connected to the second nut (342).

4. The hybrid energy-saving curtain wall system according to claim 1, characterized in that: The heat insulation assembly (22) comprises a heat insulation member (221) and two heat insulation strips (222) arranged opposite to each other, one end of the two heat insulation strips (222) being respectively engaged with the upright column, the other end of the two heat insulation strips (222) being respectively engaged with one end of the heat insulation member (221), and the other end of the heat insulation member (221) being provided with two first clamping grooves for clamping with two first clamping hooks (231) of the pressure plate.

5. The hybrid energy-saving curtain wall system according to claim 4, characterized in that: The positioning component (24) is a first screw, the threaded end of the first screw passes through the first pressing plate (23) and the heat insulating member (221) in sequence, and the first screw positions the first pressing plate (23) and the heat insulating member (221).

6. The hybrid energy-saving curtain wall system according to claim 1, characterized in that: The column exposed frame structure (2) is connected to the beam exposed frame structure (4) or the beam hidden frame structure (5) through a first spring pin (6) and a first connecting plate (7); the first connecting plate (7) is provided with an inclined second hook (71) and a plurality of positioning screws (72); the first column (21) is provided with a second slot (211) and a pressing slot (212); one end of the first connecting plate (7) is pressed against the pressing slot (212) of the first column (21); the second hook (71) of the first connecting plate (7) is engaged with the second slot (211) of the first column (21); the threaded end of the positioning screw (72) passes through the first connecting plate (7) and the column and positions the first connecting plate (7) and the column.

7. The hybrid energy-saving curtain wall system according to claim 2, characterized in that: The column hidden frame structure (3) is connected to the beam visible frame structure (4) or the beam hidden frame structure (5) through a second spring pin (8) and a second connecting plate (9); a middle portion of the second connecting plate (9) is provided with an inclined third hook (91) and a plurality of locking screws (92); a third clamping groove (311) clamped with the third hook (91) is provided on the second column (31); one end of the second connecting plate (9) is connected to the second column (31) through a locking screw (92); and the other end of the second connecting plate (9) is connected to a connecting portion of the beam visible frame structure (4) or the beam hidden frame structure (5) through a locking screw (92).