Unit type curtain wall system
By designing a unitized curtain wall system, utilizing the mounting structure of end beams, insulated glass, and intermediate beams, combined with powder-coated aluminum panels and protective material layers, the problems of cumbersome curtain wall installation and insufficient stability are solved, achieving efficient and reliable installation and excellent performance.
Patent Information
- Application Number
- CN202511445897.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-11
- Publication Date
- 2025-11-14
AI Technical Summary
The existing curtain wall installation process is cumbersome, lacks structural stability, and cannot guarantee high efficiency and reliability.
The unitized curtain wall system includes end beams, insulated glass, and intermediate beams. The first mounting base is symmetrically provided on the intermediate beam and the second mounting base is symmetrically provided on the end beam. The two sides of the insulated glass are sealed and connected in the adjacent beam mounting bases. Combined with powder-coated aluminum panels and protective material layers, modular positioning and rapid fixing are achieved.
It simplifies the installation process, improves construction efficiency and stability, enhances the overall structural stability and sealing of the curtain wall, and improves its heat insulation, fire resistance and impact resistance.
Smart Images

Figure CN120946035A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of door and window equipment technology, specifically to a unitized curtain wall system. Background Technology
[0002] Curtain walls, as an important component of modern building envelope systems, combine decorative and functional aspects. Unlike traditional load-bearing walls, this type of exterior wall system typically does not bear the weight of the building. Instead, it is supported by a suspension system suspended from the building structure. Besides providing a pleasing architectural appearance, curtain walls also offer functions such as insulation, soundproofing, heat insulation, and sun shading. They are usually composed of a frame structure made of aluminum alloy or steel and an exterior surface made of materials such as glass, stone, or metal panels. They are a common design element in modern architecture, especially in high-rise buildings and commercial buildings. However, the installation process for curtain walls in related technologies is often quite complex, requiring manual adjustment of angles and positions. The connection structures often use simple plug-in or planar butt joints, resulting in insufficient structural stability and necessitating additional reinforcement components. This further increases construction steps and time, making it difficult to guarantee efficiency and reliability in the installation of large-area curtain walls. Summary of the Invention
[0003] In view of this, this application provides a unitized curtain wall system to solve the aforementioned technical problems.
[0004] This application discloses a unitized curtain wall system, including: a target wall and curtain wall units disposed on the target wall; The curtain wall unit includes end beams, insulated glass, and intermediate beams. The end beams and multiple intermediate beams are arranged along the side of the target wall. The insulated glass is located between adjacent intermediate beams and between adjacent intermediate beams and end beams. The intermediate beams are symmetrically provided with first mounting seats, two of which are arranged facing each other. The end beams are symmetrically provided with second mounting seats, which face the first mounting seats. The two sides of the insulated glass are sealed and connected within the first mounting seats of adjacent intermediate beams, and / or, the two sides of the insulated glass are sealed and connected within the first mounting seats of adjacent intermediate beams and the second mounting seats of the end beams.
[0005] In one possible example, an isolation space is provided between the insulated glass and the target wall, and a powder-coated aluminum panel is provided in the isolation space. The powder-coated aluminum panel has a first bend at both ends parallel to the sidewalls of the end beam and the intermediate beam. The first bend of the powder-coated aluminum panel is fixedly connected to the sidewall of the adjacent intermediate beam, and / or the first bend of the powder-coated aluminum panel is fixedly connected to the sidewalls of the adjacent intermediate beam and the end beam.
[0006] In one possible example, the powder-coated aluminum panel maintains a protective space between the isolation space and the target wall. The protective space is provided with a protective material layer, which includes several sub-material clusters. The sub-material clusters are designed in a teardrop shape, and adjacent sub-material clusters are arranged end-to-end and overlapping each other.
[0007] In one possible example, the submaterial cluster includes an integrally formed tip and a bulk, the outer surface of the tip being provided with a silicate-based penetrating coating, and the outer surface of the bulk being provided with a gradient structure layer, the gradient structure layer comprising the silicate-based penetrating coating, an inorganic fire-retardant mortar, and a ceramic coating stacked sequentially.
[0008] In one possible example, the ceramicized coating is sprayed onto the inorganic fire-retardant mortar and then subjected to a heat treatment at 120–250°C, and the components of the ceramicized coating include at least silane-modified sol, alumina micropowder, silicate ceramic additives, toughening cellulose, leveling agent, and water solvent.
[0009] In one possible example, an encapsulation unit is also included, which is located at the end of the target wall and connected to the curtain wall unit. The encapsulation unit includes a support base, a first fluorocarbon-coated aluminum panel, and a second fluorocarbon-coated aluminum panel. The support base is connected to the end of the target wall. The two ends of the first fluorocarbon-coated aluminum panel are respectively sealed to the support base and the insulating glass, and one end of the second fluorocarbon-coated aluminum panel is sealed to the support base, while the other end is connected to the side of the target wall away from the curtain wall unit.
[0010] In one possible example, one end of the support base is provided with a mounting groove, which respectively accommodates the ends of the first fluorocarbon-coated aluminum panel and the second fluorocarbon-coated aluminum panel. The ends of the first fluorocarbon-coated aluminum panel and the second fluorocarbon-coated aluminum panel are filled with a first sealant in the mounting groove. The end of the first fluorocarbon-coated aluminum panel away from the mounting groove is provided with a second bend parallel to the insulating glass, and a second sealant is filled between the second bend and the insulating glass.
[0011] In one possible example, the first mounting base includes a first support plate and a first sealing plate. The first support plate is integrally connected to the intermediate crossbeam. At least one first L-shaped body is provided on the face-to-face side of the first support plate and the first sealing plate. The first L-shaped bodies on the first support plate and the first L-shaped bodies on the first sealing plate are arranged in opposite directions and fit together. The second mounting base includes a second support plate and a second sealing plate. The second support plate is integrally connected to the end-sealing crossbeam. At least one second L-shaped body is provided on the face-to-face side of the second support plate and the second sealing plate. The second L-shaped bodies on the second support plate and the second L-shaped bodies on the second sealing plate are arranged in opposite directions and fit together.
[0012] In one possible example, one end of the first sealing plate has a third bend parallel to the insulating glass, the third bend forming a first sealing groove with the outer wall of the intermediate crossbeam, the side of the insulating glass being located within the first sealing groove, and a third sealing compound filling the space between the third bend and the insulating glass; one end of the second sealing plate has a fourth bend parallel to the insulating glass, the fourth bend forming a second sealing groove with the outer wall of the end-sealing crossbeam, the side of the insulating glass being located within the second sealing groove, and a fourth sealing compound filling the space between the fourth bend and the insulating glass.
[0013] In one possible example, the insulating glass has a receiving space filled with a stacked first radiation-resistant layer, a second radiation-resistant layer, and an absorption-protective layer, wherein the first radiation-resistant layer and / or the second radiation-resistant layer comprises at least one of CeSnO2 or SbSnO2, and the absorption-protective layer comprises SiNC.
[0014] In summary, compared with the prior art, this application discloses a unitized curtain wall system, including: a target wall and curtain wall units disposed on the target wall. The curtain wall unit includes end beams, insulated glass, and intermediate beams. The end beams and multiple intermediate beams are arranged along the side of the target wall. The insulated glass is located between adjacent intermediate beams and between adjacent intermediate beams and end beams. First mounting seats are symmetrically provided on the intermediate beams, and two first mounting seats are arranged facing each other. Second mounting seats are symmetrically provided on the end beams, and the second mounting seats face the first mounting seats. The two sides of the insulated glass are sealed and connected in the first mounting seats of adjacent intermediate beams, and / or the two sides of the insulated glass are sealed and connected in the first mounting seats of adjacent intermediate beams and the second mounting seats of end beams. That is, through the above arrangement, the efficiency and reliability of the curtain wall installation process are guaranteed. Attached Figure Description
[0015] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0016] Figure 1 This is a side structural diagram of the unitized curtain wall system of this application; Figure 2 yes Figure 1 Enlarged view of point A; Figure 3 yes Figure 1 Enlarged view of point B; Figure 4 This is a structural schematic diagram of the middle crossbeam of this application; Figure 5 This is a structural schematic diagram of the end-cap beam of this application; Figure 6 This is a structural schematic diagram of the sub-material group in this application; Figure 7 This is a schematic diagram of the gradient structure layer of this application; Figure 8 This is a schematic diagram of the structure within the accommodating space of the insulated glass of this application. Detailed Implementation
[0017] Exemplary embodiments will now be described in detail, examples of which are illustrated in the accompanying drawings. When the following description relates to the drawings, unless otherwise indicated, the same numbers in different drawings denote the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with this application. Rather, they are merely examples of apparatuses and methods consistent with some aspects of this application as detailed in the claims.
[0018] It should be noted that, in this document, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes that element. Furthermore, components, features, and elements with the same names in different embodiments of this application may have the same meaning or different meanings, the specific meaning of which must be determined by its interpretation in that specific embodiment or further in conjunction with the context of that specific embodiment.
[0019] It should be understood that the specific embodiments described herein are merely illustrative of this application and are not intended to limit this application.
[0020] In the following description, the use of suffixes such as "module," "part," or "unit" to denote elements is solely for the purpose of illustrative purposes and has no specific meaning in itself. Therefore, "module," "part," or "unit" may be used interchangeably.
[0021] In the description of this application, it should be noted that the terms "upper," "lower," "left," "right," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation on this application. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0022] The technical solutions shown in this application will be described in detail below through specific embodiments. It should be noted that the order of description of the following embodiments is not intended to limit the priority of the embodiments.
[0023] Please refer to Figures 1 to 3 The unitized curtain wall system of this application includes at least a target wall 100 and curtain wall units 200 disposed on the target wall 100.
[0024] In the specific implementation process, the curtain wall unit 200 includes a sealing beam 1, an insulated glass 3, and an intermediate beam 2. Specifically, the sealing beam 1 and multiple intermediate beams 2 are arranged along the side of the target wall 100 to form the basic frame structure of the curtain wall unit 200. The insulated glass 3 is located between adjacent intermediate beams 2 and between adjacent intermediate beams 2 and sealing beams 1, thus constituting the transparent enclosed part of the curtain wall unit 200. Among them, the intermediate beams 2 are symmetrically provided with first mounting seats 4, and the two first mounting seats 4 are arranged facing each other. The sealing beams 1 are symmetrically provided with second mounting seats 5, and the second mounting seats 5 face the first mounting seats 4. The two sides of the insulated glass 3 are sealed and connected in the first mounting seats 4 of the adjacent intermediate beams 2, and / or the two sides of the insulated glass 3 are sealed and connected in the first mounting seats 4 of the adjacent intermediate beams 2 and the second mounting seats 5 of the sealing beams 1.
[0025] In this embodiment, the two sides of the insulating glass 3 can be sealed and connected to the first mounting seat 4 of the adjacent intermediate crossbeam 2 to achieve stable fixation. Alternatively, the two sides of the insulating glass 3 can be sealed and connected to the first mounting seat 4 of the adjacent intermediate crossbeam 2 and the second mounting seat 5 of the end-sealing crossbeam 1 respectively to meet the installation requirements at different boundary positions. That is, by setting the first mounting seats 4 facing each other on the intermediate crossbeam 2 and the corresponding second mounting seats 5 on the end-sealing crossbeam 1, the insulating glass 3 can be directly sealed and connected to the mounting seats of the adjacent crossbeams, thereby realizing modular positioning and rapid fixation inside the curtain wall unit 200 without the need for additional complex accessories and multiple adjustments, significantly simplifying the installation process, improving construction efficiency and stability, and ensuring the sealing performance of the insulating glass 3 and the stability of the overall structure.
[0026] In one example, an isolation space 6 is provided between the insulated glass 3 and the target wall 100. A powder-coated aluminum panel 7 is provided in the isolation space 6. The powder-coated aluminum panel 7 has a first bend 71 at both ends, which is parallel to the side walls of the end beam 1 and the intermediate beam 2. The first bend 71 of the powder-coated aluminum panel 7 is fixedly connected to the side wall of the adjacent intermediate beam 2, and / or, the first bend 71 of the powder-coated aluminum panel 7 is fixedly connected to the side walls of the adjacent intermediate beam 2 and the end beam 1. That is, the powder-coated aluminum panel 7 can improve the overall structural stability of the curtain wall system while ensuring the decorative effect. Furthermore, its design in conjunction with the isolation space 6 further enhances the thermal insulation and aesthetics of the curtain wall unit.
[0027] The fixing method of the first bent part 71 may include welding or bolting.
[0028] Continue to refer to Figure 6 and Figure 7 The powder-coated aluminum single panel 7 maintains a protective space 8 between itself and the target wall 100 within the isolation space 6. The protective space 8 contains a protective material layer 9, which enhances the fire resistance and protection performance of the curtain wall system. The protective material layer 9 includes several sub-material clusters 91, which are designed in a teardrop shape to achieve close fit and uniform distribution within the space. Adjacent sub-material clusters 91 are arranged end-to-end and overlapping, thus forming a continuous and stable protective layer structure within the protective space 8. This overlapping arrangement of teardrop-shaped sub-material clusters 91 avoids the accumulation gaps present in traditional filling materials, improves the overall density and barrier effect of the protective material layer 9, and significantly enhances the performance of the curtain wall system in terms of heat insulation, fire resistance, and impact resistance.
[0029] Furthermore, the submaterial group 91 includes an integrally formed tip 91a and an enlarged body 91b. The outer surface of the tip 91a is provided with a silicate-based penetrating coating 101, which can enhance the fire resistance and density of the tip 91a and prevent flames or high-temperature gases from penetrating directly. The outer surface of the expanded body 91b is provided with a gradient structure layer 10, which includes a silicate-based penetrating coating 101, an inorganic fire-retardant mortar 102, and a ceramicized coating 103 stacked sequentially. Specifically, the outer surface of the expanded body 91b has an innermost silicate-based penetrating coating 101, a middle inorganic fire-retardant mortar 102, and an outermost ceramicized coating 103. Through the design of the gradient structure layer 10, the expanded body 91b can provide progressive protection when subjected to high temperatures: the silicate-based penetrating coating 101... The transparent coating 101 is used to initially block heat and improve the overall bonding strength of the material; the inorganic fireproof mortar 102 plays a role in flame retardancy and expansion protection at high temperatures; the ceramic coating 103 is transformed into a dense ceramic layer under heat treatment or fire conditions, thereby forming a solid heat insulation barrier. The submaterial cluster 91 not only has the advantage of teardrop-shaped structure in terms of shape, but also further improves the comprehensive performance of the curtain wall system in terms of fire resistance, heat resistance and safety protection through the functional zoning of the tip 91a and the expanded body 91b and the multi-layer surface protection design.
[0030] Preferably, after the ceramic coating 103 is sprayed onto the inorganic fireproof mortar 102, it undergoes heat treatment at 120–250°C, and the components of the ceramic coating 103 include at least silane-modified sol, alumina micro powder, silicate ceramic additives, toughening cellulose, leveling agent and water solvent.
[0031] In the specific process, after the ceramic coating 103 is sprayed, a heat treatment step is required. The heat treatment temperature is controlled between 120°C and 250°C to ensure that the various components in the ceramic coating 103 fully react and solidify, thereby forming a dense ceramic protective layer. In addition, the components of the ceramic coating 103 have a composite function, including at least: silane-modified sol, alumina micro powder, silicate ceramic additives, toughening cellulose, leveling agent, and water solvent. Among them, the silane-modified sol is used to enhance the bonding between the ceramic coating 103 and the surrounding environment. The adhesion between inorganic fire-retardant mortars 102, the alumina micro powder and silicate ceramic additives form a stable ceramic skeleton at high temperature, enhancing fire resistance, the toughening cellulose can improve the crack resistance of the ceramic coating 103 during thermal expansion and contraction, and the leveling agent is used to improve the uniformity and smoothness of the coating surface. Through the above process and component design, the ceramic coating 103 can be rapidly transformed into a dense ceramic layer under fire or high temperature conditions, effectively blocking the conduction of heat and flame, and further improving the overall fire resistance and stability of the protective material layer 9.
[0032] In one example, the composition of the ceramic coating 103, by weight percentage, is as follows: silane-modified sol: 20–30%, alumina micropowder: 25–35%, silicate ceramic additives: 10–20%, toughening cellulose: 3–8%, leveling agent: 1–3%, and water solvent: 15–25%.
[0033] Preferably, the ceramic coating 103 comprises: 20–30% silane-modified sol, 25–35% alumina micropowder, 10–20% silicate ceramic additives, 3–8% toughening cellulose, 1–3% leveling agent, and 15–25% water solvent.
[0034] Continue to refer to Figures 1 to 5 The unitized curtain wall system also includes a sealing unit 300, which is located at the end of the target wall 100 and connected to the curtain wall unit 200, and is used to seal and encapsulate the connection between the end of the curtain wall unit 200 and the target wall 100.
[0035] In the specific implementation process, the encapsulation unit 300 includes a support base 11, a first fluorocarbon-coated aluminum single panel 12, and a second fluorocarbon-coated aluminum single panel 13. The support base 11 is connected to the end of the target wall 100 as a load-bearing base for the installation of the aluminum single panel. The two ends of the first fluorocarbon-coated aluminum single panel 12 are respectively sealed to the support base 11 and the insulating glass 3, thereby achieving effective protection and sealing of the edge of the insulating glass 3. One end of the second fluorocarbon-coated aluminum single panel 13 is sealed to the support base 11, and the other end is connected to the side of the target wall 100 away from the curtain wall unit 200, thus forming an end encapsulation structure.
[0036] Furthermore, one end of the support base 11 is provided with an installation groove 111 for positioning and fixing the first fluorocarbon coated aluminum panel 12 and the second fluorocarbon coated aluminum panel 13. Specifically, the installation groove 111 respectively accommodates the ends of the first fluorocarbon coated aluminum panel 12 and the second fluorocarbon coated aluminum panel 13, and the ends of the first fluorocarbon coated aluminum panel 12 and the second fluorocarbon coated aluminum panel 13 are filled with a first sealing adhesive 201 in the installation groove 111, thereby effectively fixing the ends of the aluminum panels during installation and forming a reliable sealing effect.
[0037] The first fluorocarbon coated aluminum single panel 12 is provided with a second bend 121 parallel to the insulating glass 3 at one end away from the mounting groove 111. In order to further improve the sealing performance, a second sealing adhesive 202 is filled between the second bend 121 and the insulating glass 3, so that the connection between the first fluorocarbon coated aluminum single panel 12 and the insulating glass 3 can obtain good sealing and stability.
[0038] In one example, the first mounting base 4 includes a first support plate 41 and a first sealing plate 42. Specifically, the first support plate 41 and the intermediate crossbeam 2 adopt an integral connection structure to ensure the stability and overall strength of the installation. The first support plate 41 and the first sealing plate 42 are respectively provided with at least one first L-shaped body 43 on their facing sides, and the first L-shaped body 43 on the first support plate 41 and the first L-shaped body 43 on the first sealing plate 42 are arranged in opposite directions. Thus, the two can fit together during installation, that is, the first L-shaped body 43 on the first support plate 41 and the first L-shaped body 43 on the first sealing plate 42 are arranged in opposite directions and fit together, thereby achieving stable support and reliable sealing of the insulating glass 3.
[0039] Synchronously, the second mounting base 5 includes a second bearing plate 51 and a second sealing plate 52. The second bearing plate 51 is integrally connected with the end-sealing beam 1 and is used to support and fix the other end of the insulating glass 3. The second bearing plate 51 and the second sealing plate 52 are also provided with at least one second L-shaped body 53 on their opposite sides. The second L-shaped body 53 of the second bearing plate 51 and the second L-shaped body 53 of the second sealing plate 52 are arranged in opposite directions and fit into each other, thereby providing a reliable limiting and fastening effect when the insulating glass 3 is installed.
[0040] Preferably, one end of the first sealing plate 42 is bent inward to form a third bend 421. The third bend 421 is parallel to the insulating glass 3. The third bend 421 cooperates with the outer wall of the intermediate crossbeam 2 to form a first sealing groove 31. The side of the insulating glass 3 is embedded in the first sealing groove 31 to achieve positioning and initial sealing between the insulating glass 3 and the intermediate crossbeam 2. Furthermore, a third sealing colloid 203 is filled between the third bend 421 and the side of the insulating glass 3 to enhance the sealing effect and prevent air or water vapor from penetrating into the interlayer of the insulating glass 3, thereby ensuring the heat insulation and thermal insulation performance of the insulating glass 3.
[0041] In another embodiment, one end of the second sealing plate 52 is bent inward to form a fourth bend 521. The fourth bend 521 is parallel to the insulating glass 3. The fourth bend 521 cooperates with the outer wall of the end-sealing beam 1 to form a second sealing groove 32. The side of the insulating glass 3 is inserted into and positioned in the second sealing groove 32. To further improve the sealing performance, a fourth sealing adhesive 204 is also filled between the fourth bend 521 and the side of the insulating glass 3 to ensure a reliable sealing connection between the insulating glass 3 and the end-sealing beam 1.
[0042] Through the above structural design, the two sides of the insulating glass 3 can be fixed in the first sealing groove 31 and the second sealing groove 32 respectively, and are sealed and reinforced by the third sealing adhesive 203 and the fourth sealing adhesive 204 respectively, thereby achieving a stable connection between the glass and the beam. The overall structure is reliably sealed and easy to operate, significantly improving the installation efficiency and service life of the curtain wall.
[0043] In one example, continue combining Figure 8 The insulating glass 3 has a receiving space 30, which is filled with a first radiation-resistant layer 31, a second radiation-resistant layer 32 and an absorption and protection layer 33. The first radiation-resistant layer 31 and / or the second radiation-resistant layer 32 include at least one of CeSnO2 or SbSnO2, and the absorption and protection layer 33 includes SiNC.
[0044] The first radiation-resistant layer 31 and / or the second radiation-resistant layer 32, which include at least one of CeSnO2 or SbSnO2, have a high refractive index for mid-infrared light based on the material properties of CeSnO2 or SbSnO2. This ensures that the insulating glass 3 has a high refractive index and low transmittance for mid-infrared light in the ambient light. The absorption and protective layer 33, which includes at least one of SiNC or SiC, can block near-infrared light. Thus, the accommodating space 30 exhibits different infrared blocking effects, thereby ensuring that the curtain wall between the indoor and outdoor areas forms a thermal barrier, which can block the diffusion of heat between the indoor and outdoor areas. This gives the curtain wall system excellent thermal insulation performance.
[0045] In summary, this application discloses a unitized curtain wall system, including at least a target wall 100 and curtain wall units 200 disposed on the target wall 100. Each curtain wall unit 200 includes end beams 1, insulated glass 3, and intermediate beams 2. The end beams 1 and multiple intermediate beams 2 are arranged along the sides of the target wall 100, forming the basic frame structure of the curtain wall unit 200. The insulated glass 3 is located between adjacent intermediate beams 2 and between adjacent intermediate beams 2 and end beams 1, thus constituting the transparent enclosed portion of the curtain wall unit 200. The intermediate beams 2 are symmetrically provided with first mounting seats 4, and two first mounting seats 4 are arranged facing each other. The end-sealing crossbeam 1 is symmetrically provided with second mounting seats 5, which face the first mounting seat 4. The two sides of the insulating glass 3 are sealed and connected in the first mounting seat 4 of the adjacent intermediate crossbeam 2, and / or, the two sides of the insulating glass 3 are sealed and connected in the first mounting seat 4 of the adjacent intermediate crossbeam 2 and the second mounting seat 5 of the end-sealing crossbeam 1. The two sides of the insulating glass 3 can be sealed and connected in the first mounting seat 4 of the adjacent intermediate crossbeam 2 to achieve stable fixation, or the two sides of the insulating glass 3 can be sealed and connected in the first mounting seat 4 of the adjacent intermediate crossbeam 2 and the second mounting seat 5 of the end-sealing crossbeam 1 respectively to meet the installation requirements at different boundary positions.
[0046] By setting first mounting seats 4 facing each other on the middle horizontal beam 2 and second mounting seats 5 correspondingly set on the end horizontal beam 1, the insulating glass 3 can be directly and sealed to the mounting seats of the adjacent horizontal beams, thereby realizing modular positioning and rapid fixing inside the curtain wall unit 200. In terms of simplifying the installation process, the insulating glass 3 can be directly fixed to the horizontal beam mounting seats without additional complex accessories or multiple manual adjustments. In terms of improving construction efficiency, the modular design facilitates rapid assembly and significantly reduces on-site construction time. In terms of enhancing structural stability, the facing mounting seats form a solid support, the position of the insulating glass 3 is reliably fixed, and the sealed connection between the insulating glass 3 and the mounting seats ensures the airtightness and waterproof performance of the overall curtain wall system, thereby ensuring high efficiency and reliability in the curtain wall installation process.
[0047] The present application has been described in detail above. Specific examples have been used to illustrate the principles and implementation methods of the present application. The description of the above embodiments is only for the purpose of helping to understand the core ideas of the present application. At the same time, for those skilled in the art, there will be changes in the specific implementation methods and application scope based on the ideas of the present application. Therefore, the content of this specification should not be construed as a limitation of the present application.
Claims
1. A unitized curtain wall system, characterized in that, include: The target wall and the curtain wall unit installed on the target wall; The curtain wall unit includes end beams, insulated glass, and intermediate beams. The end beams and multiple intermediate beams are arranged along the side of the target wall. The insulated glass is located between adjacent intermediate beams and between adjacent intermediate beams and end beams. The intermediate beams are symmetrically provided with first mounting seats, two of which are arranged facing each other. The end beams are symmetrically provided with second mounting seats, which face the first mounting seats. The two sides of the insulated glass are sealed and connected within the first mounting seats of adjacent intermediate beams, and / or, the two sides of the insulated glass are sealed and connected within the first mounting seats of adjacent intermediate beams and the second mounting seats of the end beams.
2. The unitized curtain wall system as described in claim 1, characterized in that, An isolation space is provided between the insulated glass and the target wall. A powder-coated aluminum panel is provided in the isolation space. The powder-coated aluminum panel has a first bend at both ends, which is parallel to the sidewalls of the end beam and the intermediate beam. The first bend of the powder-coated aluminum panel is fixedly connected to the sidewall of the adjacent intermediate beam, and / or the first bend of the powder-coated aluminum panel is fixedly connected to the sidewalls of the adjacent intermediate beam and the end beam.
3. The unitized curtain wall system as described in claim 2, characterized in that, The powder-coated aluminum panel maintains a protective space between itself and the target wall within the isolation space. The protective space contains a protective material layer, which comprises several sub-material clusters. These sub-material clusters are designed in a teardrop shape, and adjacent sub-material clusters are arranged end-to-end and overlapping each other.
4. The unitized curtain wall system as described in claim 3, characterized in that, The submaterial group includes an integrally formed tip and a bulk body. The outer surface of the tip is provided with a silicate-based penetrating coating, and the outer surface of the bulk body is provided with a gradient structure layer. The gradient structure layer includes the silicate-based penetrating coating, inorganic fireproof adhesive and ceramic coating stacked in sequence.
5. The unitized curtain wall system as described in claim 4, characterized in that, The ceramicized coating is formed by spraying it onto the inorganic fireproof mortar and then subjected to heat treatment at 120–250°C. The components of the ceramicized coating include at least silane-modified sol, alumina micro powder, silicate ceramic additives, toughening cellulose, leveling agent and water solvent.
6. The unitized curtain wall system as described in claim 1, characterized in that, It also includes an encapsulation unit, which is located at the end of the target wall and connected to the curtain wall unit. The encapsulation unit includes a support base, a first fluorocarbon-coated aluminum panel, and a second fluorocarbon-coated aluminum panel. The support base is connected to the end of the target wall. The two ends of the first fluorocarbon-coated aluminum panel are respectively sealed to the support base and the insulating glass, and one end of the second fluorocarbon-coated aluminum panel is sealed to the support base, while the other end is connected to the side of the target wall away from the curtain wall unit.
7. The unitized curtain wall system as described in claim 6, characterized in that, One end of the support base is provided with an installation groove, which respectively accommodates the ends of the first fluorocarbon coated aluminum single panel and the second fluorocarbon coated aluminum single panel. The ends of the first fluorocarbon coated aluminum single panel and the second fluorocarbon coated aluminum single panel are filled with a first sealing adhesive in the installation groove. The end of the first fluorocarbon coated aluminum single panel away from the installation groove is provided with a second bending portion parallel to the insulating glass. The second bending portion and the insulating glass are filled with a second sealing adhesive.
8. The unitized curtain wall system as described in claim 1, characterized in that, The first mounting base includes a first bearing plate and a first sealing plate. The first bearing plate is integrally connected to the intermediate crossbeam. At least one first L-shaped body is provided on the face-to-face side of the first bearing plate and the first sealing plate. The first L-shaped bodies of the first bearing plate and the first L-shaped bodies of the first sealing plate are arranged in opposite directions and fit together. The second mounting base includes a second bearing plate and a second sealing plate. The second bearing plate is integrally connected to the end-sealing crossbeam. At least one second L-shaped body is provided on the face-to-face side of the second bearing plate and the second sealing plate. The second L-shaped bodies of the second bearing plate and the second L-shaped bodies of the second sealing plate are arranged in opposite directions and fit together.
9. The unitized curtain wall system as described in claim 8, characterized in that, One end of the first sealing plate is provided with a third bend parallel to the insulating glass, the third bend and the outer wall of the intermediate crossbeam form a first sealing groove, the side of the insulating glass is located in the first sealing groove, and a third sealing colloid is filled between the third bend and the insulating glass; one end of the second sealing plate is provided with a fourth bend parallel to the insulating glass, the fourth bend and the outer wall of the end-sealing crossbeam form a second sealing groove, the side of the insulating glass is located in the second sealing groove, and a fourth sealing colloid is filled between the fourth bend and the insulating glass.
10. The unitized curtain wall system according to any one of claims 1 to 9, characterized in that, The insulating glass has a accommodating space, which is filled with a first radiation-resistant layer, a second radiation-resistant layer, and an absorption and protection layer. The first radiation-resistant layer and / or the second radiation-resistant layer include at least one of CeSnO2 or SbSnO2, and the absorption and protection layer includes SiNC.