Hyperboloid-shaped cable bell curtain wall system

CN224605826UActive Publication Date: 2026-08-07SUZHOU KELIDA BUILDING & DECORATION CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SUZHOU KELIDA BUILDING & DECORATION CO LTD
Filing Date
2025-06-27
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

[0004]有鉴于此,本实用新型提供了一种双曲面造型拉索风铃幕墙系统,以解决拉索与风铃组件之间通过连接组件固定连接无法满足长时间风荷载受力变形要求的问题

Benefits of technology

[0038] The extended edges of the honeycomb panel are bonded to the profile frame located at the snap-fit ​​interface. This bonding method, combined with the snap-fit ​​interface, further enhances the connection strength and sealing between the honeycomb panel and the profile frame. The adhesive fills the tiny gaps between them, making the connection tighter and preventing rainwater leakage and air infiltration, thus improving the waterproof, thermal insulation, and sound insulation performance of the curtain wall system. Simultaneously, the bonding method also disperses stress at the connection points, reducing the risk of connection failure due to localized stress concentration, extending the service life of the wind chime components, and ensuring the performance stability and reliability of the entire curtain wall system during long-term use.

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Abstract

The utility model relates to the technical field of curtain wall design, concretely relates to a double-curved surface modeling inhaul cable wind bell curtain wall system. Include: wind bell subassembly, connect in two inhaul cables, with inhaul cable one to one correspondence, wind bell subassembly passes through connecting subassembly with inhaul cable connects, wherein, at least one connecting subassembly passes through spherical hinge structure with wind bell subassembly connects. The application is connected with two inhaul cables through wind bell subassembly, and at least one connecting subassembly is connected with wind bell subassembly using spherical hinge structure, can effectively cope with wind load and other external force effect, and the spherical hinge structure makes the connecting part have higher flexibility and adaptability, so that the wind bell subassembly and inhaul cable can relatively rotate and position offset, and can avoid the deformation or fracture of connecting part due to long-time wind load.
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Description

Technical Field

[0001] This utility model relates to the field of curtain wall design technology, specifically to a hyperboloid-shaped cable-stayed wind chime curtain wall system. Background Technology

[0002] Currently, architecture is pursuing higher aesthetic standards, and hyperbolic curtain walls are a newly emerging form of curtain wall in recent years. With their rich and complex shapes, they express the beauty of modern architecture.

[0003] In current hyperboloid curtain wall structures, the wind chime components are connected by two cables. Typically, the cables and wind chime components are fixed together using connecting components. However, with this method, the connecting components may deform or even break the connection between the cables and wind chime components under prolonged wind loads. Utility Model Content

[0004] In view of this, the present invention provides a hyperboloid-shaped cable wind chime curtain wall system to solve the problem that the fixed connection between the cable and the wind chime components through the connecting components cannot meet the requirements of long-term wind load deformation.

[0005] This utility model provides a hyperboloid-shaped cable-stayed wind chime curtain wall system, including:

[0006] The wind chime assembly is connected to two cables;

[0007] Each connecting component corresponds to one of the cables, and the wind chime assembly is connected to the cables via the connecting components.

[0008] At least one connecting component is connected to the wind chime assembly via a ball joint structure.

[0009] This application connects a wind chime assembly to two cables, and at least one connecting component is connected to the wind chime assembly using a ball joint structure. This effectively copes with external forces such as wind loads. The ball joint structure provides high flexibility and adaptability to the connection, allowing relative rotation and positional offset between the wind chime assembly and the cables. This prevents deformation or breakage of the connecting components due to prolonged wind loads, significantly improving the reliability and safety of the curtain wall system. Simultaneously, this structure can accommodate the varying cable requirements of hyperboloid shapes at different locations, facilitating the creation of complex hyperboloid designs and satisfying architectural aesthetics and modern architectural pursuits for visual appeal. This allows the curtain wall system to maintain structural stability while exhibiting rich and unique visual effects.

[0010] In one alternative implementation, the connection component includes:

[0011] The connecting clamp is detachably mounted on the cable;

[0012] A connecting post is connected between the connecting clamp and the wind chime assembly.

[0013] The connection assembly consists of detachable connection clamps and connecting columns, improving the convenience of installation and maintenance. During actual construction, the detachable connection clamps allow for more flexible installation between the cables and connecting columns, facilitating adjustments to the installation position and angle according to site conditions and improving construction efficiency. When maintenance or component replacement of the curtain wall system is required, the connection clamps can be quickly disassembled, easily removing the connecting columns and their connected wind chime components, reducing maintenance costs and time. Furthermore, the detachable structure facilitates pre-processing and assembly in the factory, improving the processing precision and quality of components and ensuring the performance and appearance quality of the entire curtain wall system.

[0014] In one alternative implementation, the connecting post includes:

[0015] One end of the column is connected to the connecting clamp.

[0016] A connecting plate is connected to the other end of the column, and the connecting plate is connected to the wind chime assembly.

[0017] The connecting column consists of a column body and a connecting plate. One end of the column body is connected to a connecting clamp, and the other end is connected to the connecting plate, which in turn connects to the wind chime assembly. This not only simplifies the construction of the connecting assembly but also helps to distribute and transfer the load on the wind chime assembly. The column body can evenly transfer the weight of the wind chime assembly and wind load to the connecting clamp, and then distribute it to the cables, avoiding excessive local stress and improving the load-bearing performance of the entire curtain wall system. The connecting plate also provides a more stable connection foundation for the wind chime assembly, ensuring the safety and stability of the wind chime assembly during use. It also facilitates the connection and fixation of the wind chime assembly to other components to a certain extent, enhancing the overall integrity and coordination of the system.

[0018] In one alternative embodiment, the ball joint structure includes:

[0019] The first groove structure is connected to the column;

[0020] The second groove structure is connected to the connecting plate;

[0021] The connecting rod has spherical heads at both ends. The two spherical heads are respectively located in the first groove structure and the second groove structure, forming a spherical pair.

[0022] The ball joint structure comprises a first groove structure, a second groove structure, and a connecting rod. The spherical heads at both ends of the connecting rod are located within the two groove structures, forming a spherical pair. The ball joint structure allows for multi-directional rotation between the connecting column and the connecting plate. For example, it can rotate around the connecting rod as an axis, or rotate around the centers of the two spherical heads, effectively adapting to the gradual errors and unequal spacing requirements of the hyperboloid cables. In complex hyperboloid designs, the direction and angle of the cables constantly change. The ball joint structure can automatically adjust to these changes, ensuring that the connection between the wind chime assembly and the cables is always in optimal condition, avoiding stress concentration or separation due to cable position deviations. Simultaneously, the flexibility of the ball joint structure reduces the impact of structural deformation caused by temperature changes, wind loads, and other factors on the connection points, extending the service life of the curtain wall system and reducing maintenance frequency and costs.

[0023] In one alternative implementation, the wind chime assembly includes:

[0024] Medium profile, connected to the connecting plate;

[0025] A profile frame, wherein the middle profile is located inside the profile frame and is connected to the profile frame;

[0026] A honeycomb panel is filled between the middle profile and the profile frame, and is connected to the profile frame and the middle profile respectively.

[0027] The wind chime assembly consists of a central profile, a frame, and honeycomb panels. The central profile is located inside and connected to the frame, while the honeycomb panels fill the space between them and are connected to them respectively. This structure offers excellent mechanical properties and stability. The honeycomb panels, with their unique honeycomb structure, possess high strength and stiffness, reducing weight and the burden on cables and other connecting components while ensuring the overall strength of the wind chime assembly. The frame provides a robust framework for the wind chime assembly, while the central profile further enhances the internal structural strength, enabling the wind chime assembly to better resist external forces such as wind loads, ensuring safety and stability during use. Furthermore, the honeycomb panels also possess certain thermal and sound insulation properties, contributing to improved overall building performance and comfort.

[0028] In one alternative embodiment, the profile frame is enclosed by profile rods, and two adjacent profile rods are connected by a frame profile.

[0029] The profile frame is formed by profile rods, with adjacent profile rods connected by frame-jointing profiles. This structure facilitates customization and processing according to the specific dimensions and shape of the hyperboloid shape, improving the adaptability and flexibility of the profile frame. The use of frame-jointing profiles ensures the tightness and firmness of the connection between adjacent profile rods, making the profile frame a whole and enhancing its load-bearing capacity and resistance to deformation. During construction, this flexible frame-jointing design also helps improve installation efficiency, reduce on-site processing workload, ensure the quality and dimensional accuracy of the profile frame, and thus improve the installation quality and appearance of the entire wind chime curtain wall system.

[0030] In one alternative embodiment, the connecting clamp includes:

[0031] A first clamp and a second clamp, the second clamp being connected to a connecting post, the first clamp and the second clamp being detachably connected, and the connection of the first clamp and the second clamp forming a channel for fixing the cable.

[0032] The connecting clamp consists of a first clamp and a second clamp, which are detachably connected and form a channel for the cable to pass through when connected. This split design makes the installation and adjustment of the connecting clamp more convenient and quick. During installation, the first and second clamps can be initially fixed to the cable and connecting post respectively, and then fine-tuned according to the actual position and angle of the cable to ensure a tight fit between the connecting clamp and the cable, improving the reliability and stability of the connection. In addition, the detachable connection method facilitates pre-processing and assembly in the factory, improving the quality and precision of the components, and also facilitates rapid installation and disassembly on the construction site, which helps to improve construction efficiency and reduce construction difficulty.

[0033] In one alternative embodiment, a gasket is provided between the connecting plate and the intermediate profile, and the connecting plate and the intermediate profile are connected by a bolt assembly.

[0034] Gaskets are placed between the connecting plate and the medium profile, and the connection is achieved through bolt assemblies. The gaskets effectively protect the connection points, preventing wear and deformation caused by direct bolt contact, thus extending the service life of the connected components. Simultaneously, the gaskets also provide a degree of sealing, preventing rainwater, dust, and other impurities from entering the connection points, improving the reliability and durability of the connection. The use of bolt assemblies makes the connection between the connecting plate and the medium profile more robust, facilitates installation and disassembly, and allows for easy maintenance and replacement of the wind chime assembly. It also ensures that the connection points have sufficient strength and rigidity to withstand external forces such as wind loads, ensuring the safe and stable operation of the curtain wall system.

[0035] In one alternative embodiment, the profile frame has an inwardly facing card interface, and the side of the honeycomb panel extends into the card interface.

[0036] The profile frame has an inward-facing snap-fit ​​interface, with the edges of the honeycomb panel extending into this interface. This snap-fit ​​design ensures a tighter and more stable connection between the honeycomb panel and the profile frame, avoiding problems such as weak connections, delamination, or loose components that may occur with traditional adhesive or mechanical connections. The snap-fit ​​interface effectively restricts the displacement of the honeycomb panel within the profile frame, improving the overall integrity and deformation resistance of the wind chime assembly. It ensures that the honeycomb panel and the profile frame will not slide or detach under external forces such as wind loads, thus guaranteeing the safety and stability of the curtain wall system. Furthermore, this snap-fit ​​method also improves the assembly efficiency of the wind chime assembly, simplifies the construction process, and reduces construction difficulty and costs.

[0037] In one alternative embodiment, the extended edge of the honeycomb panel is bonded to a profile frame located at the card interface.

[0038] The extended edges of the honeycomb panel are bonded to the profile frame located at the snap-fit ​​interface. This bonding method, combined with the snap-fit ​​interface, further enhances the connection strength and sealing between the honeycomb panel and the profile frame. The adhesive fills the tiny gaps between them, making the connection tighter and preventing rainwater leakage and air infiltration, thus improving the waterproof, thermal insulation, and sound insulation performance of the curtain wall system. Simultaneously, the bonding method also disperses stress at the connection points, reducing the risk of connection failure due to localized stress concentration, extending the service life of the wind chime components, and ensuring the performance stability and reliability of the entire curtain wall system during long-term use. Attached Figure Description

[0039] To more clearly illustrate the specific embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.

[0040] Figure 1 This is a schematic diagram of the structure of an embodiment of the present utility model;

[0041] Figure 2 This is a schematic diagram showing the relative positions of the profile, profile frame, and honeycomb panel in an embodiment of this utility model;

[0042] Figure 3 This is a schematic diagram showing the position of the column in an embodiment of the present invention;

[0043] Figure 4 This is a schematic diagram of the connection between the profile rod and the frame profile in an embodiment of this utility model;

[0044] Figure 5This is a schematic diagram showing the relative positions of the card interface and the honeycomb board in an embodiment of this utility model.

[0045] Explanation of reference numerals in the attached figures:

[0046] 1. Cable; 2. First connecting post; 3. Second connecting post; 4. Column; 5. Connecting plate; 6. First groove structure; 7. Second groove structure; 8. Connecting rod; 9. Spherical head; 10. Medium profile; 11. Profile frame; 12. Honeycomb panel; 13. Profile rod; 14. Framed profile; 15. First clamp; 16. Second clamp; 17. Gasket; 18. Clip interface. Detailed Implementation

[0047] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.

[0048] The following is combined with Figures 1 to 5 The following describes embodiments of the present invention.

[0049] According to embodiments of the present invention, such as Figures 1 to 2 As shown, a hyperboloid-shaped cable-stayed wind chime curtain wall system is provided, comprising:

[0050] The wind chime assembly is connected to two cables 1;

[0051] A connecting component corresponds one-to-one with the cable 1, and the wind chime component is connected to the cable 1 through the connecting component; there can be two connecting components.

[0052] At least one connecting component is connected to the wind chime assembly via a ball joint structure.

[0053] This application connects a wind chime assembly to two cables 1, and at least one connecting component is connected to the wind chime assembly using a ball joint structure. This effectively copes with external forces such as wind loads. The ball joint structure provides high flexibility and adaptability to the connection, allowing the wind chime assembly and cables 1 to rotate relative to each other and shift positions. This prevents deformation or breakage of the connecting components due to prolonged wind loads, significantly improving the reliability and safety of the curtain wall system. Simultaneously, this structure can accommodate the varying cable 1 positions required for hyperboloid shapes, facilitating the creation of complex hyperboloid designs and satisfying the aesthetic demands of modern architecture. This allows the curtain wall system to maintain structural stability while exhibiting rich and unique visual effects.

[0054] In one alternative implementation, the connection component includes:

[0055] A connecting clamp is detachably mounted on the cable 1; the connecting clamp may be a stainless steel connecting clamp.

[0056] A connecting post connects the connecting clamp and the wind chime assembly. The connecting posts for the two connecting assemblies can be a first connecting post 2 and a second connecting post 3, and the ball joint structure can be disposed on the second connecting post 3. The connecting post can be a stainless steel connecting post.

[0057] The connecting assembly consists of detachable connecting clamps and connecting columns, improving the convenience of installation and maintenance. During actual construction, the detachable connecting clamps allow for more flexible installation between the cable 1 and the connecting column, facilitating adjustments to the installation position and angle according to site conditions and improving construction efficiency. When maintenance or component replacement of the curtain wall system is required, the connecting clamps can be quickly disassembled, easily removing the connecting column and its connected wind chime assembly, reducing maintenance costs and time. Furthermore, the detachable structure facilitates pre-processing and assembly in the factory, improving the processing precision and quality of components and ensuring the performance and appearance quality of the entire curtain wall system.

[0058] In one alternative implementation, such as Figure 1 and Figure 3 As shown, the connecting post includes:

[0059] One end of column 4 is connected to the connecting clamp;

[0060] The connecting plate 5 is connected to the other end of the column 4, and the connecting plate 5 is connected to the wind chime assembly.

[0061] The connecting column consists of a column body 4 and a connecting plate 5. One end of the column body 4 is connected to the connecting clamp, and the other end is connected to the connecting plate 5, which in turn connects to the wind chime assembly. This not only simplifies the construction of the connecting assembly but also helps to distribute and transfer the load on the wind chime assembly. The column body 4 can evenly transfer the weight of the wind chime assembly and wind load to the connecting clamp, and then distribute it to the cable 1, avoiding excessive local stress and improving the load-bearing performance of the entire curtain wall system. The connecting plate 5 also provides a more stable connection foundation for the wind chime assembly, ensuring the safety and stability of the wind chime assembly during use. At the same time, it also facilitates the connection and fixation of the wind chime assembly with other components to a certain extent, enhancing the integrity and coordination of the system.

[0062] In one alternative implementation, such as Figure 1 As shown, the ball joint structure can be made of stainless steel and includes:

[0063] The first groove structure 6 is connected to the column 4;

[0064] The second groove structure 7 is connected to the connecting plate 5;

[0065] The connecting rod 8 has spherical heads 9 at both ends. The two spherical heads 9 are respectively located in the first groove structure 6 and the second groove structure 7, forming a spherical pair.

[0066] Both the first groove structure 6 and the second groove structure 7 are provided with grooves, and the spherical head 9 forms a spherical pair with the grooves. The first groove structure 6 can be integrally formed with the column 4, and the second groove structure 7 can be integrally formed with the connecting plate 5.

[0067] The ball joint structure includes a first groove structure 6, a second groove structure 7, and a connecting rod 8. The spherical heads 9 at both ends of the connecting rod 8 are located within the two groove structures, forming a spherical pair. The ball joint structure allows for multi-directional rotation between the connecting column and the connecting plate 5. For example, it can rotate around the connecting rod 8 as an axis, or rotate around the two spherical heads 9 respectively, effectively adapting to the gradual errors and unequal spacing requirements of the hyperboloid-shaped cables 1. In complex hyperboloid shapes, the direction and angle of the cables 1 constantly change. The ball joint structure can automatically adjust to these changes, ensuring that the connection between the wind chime assembly and the cables 1 is always in optimal condition, avoiding stress concentration or separation due to cable 1 positional deviation. Simultaneously, the flexibility of the ball joint structure can reduce the impact of structural deformation caused by temperature changes, wind loads, and other factors on the connection points, extending the service life of the curtain wall system and reducing maintenance frequency and costs.

[0068] In one alternative implementation, such as Figures 1 to 3 As shown, the wind chime assembly includes:

[0069] The medium profile 10 is connected to the connecting plate 5; it can be made of aluminum alloy.

[0070] A profile frame 11 is provided, and the middle profile 10 is located inside the profile frame 11 and connected to the profile frame 11; it can be made of aluminum alloy. The middle profile 10 extends to the two opposite edges of the profile frame 11 and can be vertically connected to the two opposite edges of the profile frame 11 via corner brackets.

[0071] A honeycomb panel 12 is filled between the intermediate profile 10 and the profile frame 11, and is connected to both the profile frame 11 and the intermediate profile 10. It can be made of aluminum. The honeycomb panel 12 can be adhesively bonded to the intermediate profile 10.

[0072] The wind chime assembly consists of a central profile 10, a profile frame 11, and a honeycomb panel 12. The central profile 10 is located inside and connected to the profile frame 11, while the honeycomb panel 12 fills the space between them and is connected to them respectively. This structure has good mechanical properties and stability. The honeycomb panel 12, with its unique honeycomb structure, possesses high strength and stiffness, which can reduce its weight and the burden on the cables 1 and other connecting components while ensuring the overall strength of the wind chime assembly. The profile frame 11 provides a robust frame support for the wind chime assembly, while the central profile 10 further enhances the internal structural strength of the assembly, enabling the wind chime assembly to better resist external forces such as wind loads, ensuring safety and stability during use. In addition, the honeycomb panel 12 also has certain heat insulation and sound insulation properties, contributing to improving the overall performance and comfort of the building.

[0073] In one alternative implementation, such as Figure 4 As shown, the profile frame 11 is enclosed by profile rods 13, and the ends of two adjacent profile rods 13 are connected by a frame assembly profile 14. The profile frame 11 is enclosed by four profile rods 13, forming a rectangle. The frame assembly profile 14 can be made of aluminum alloy. The profile rods 13 can be fixedly connected to the frame assembly profile 14 by stainless steel screws.

[0074] The profile frame 11 is formed by profile rods 13, with adjacent profile rods 13 connected by frame-assembly profiles 14. This structure facilitates customization and processing according to the specific dimensions and shape of the hyperboloid shape, improving the adaptability and flexibility of the profile frame 11. The use of frame-assembly profiles 14 ensures the tightness and firmness of the connection between adjacent profile rods 13, making the profile frame 11 a whole, enhancing its load-bearing capacity and resistance to deformation. During construction, this flexible frame-assembly design also helps improve installation efficiency, reduce on-site processing workload, ensure the quality and dimensional accuracy of the profile frame 11, and thus improve the installation quality and appearance of the entire wind chime curtain wall system.

[0075] In one alternative implementation, such as Figure 1 As shown, the connecting clamp includes:

[0076] A first clamp 15 and a second clamp 16 are connected, with the second clamp 16 connected to a connecting post. The first clamp 15 and the second clamp 16 are detachably connected, forming a channel for securing the cable 1 when connected. The first clamp 15 and the second clamp 16 can be detachably connected using stainless steel hexagonal head screws. When the first clamp 15 and the second clamp 16 are connected, the cable 1 can be clamped within the channel.

[0077] The connecting clamps consist of a first clamp 15 and a second clamp 16, which are detachably connected and form a channel for the cable 1 to pass through when connected. This split design makes the installation and adjustment of the connecting clamps more convenient and quick. During installation, the first clamp 15 and the second clamp 16 can be initially fixed to the cable 1 and the connecting post respectively, and then fine-tuned according to the actual position and angle of the cable 1 to ensure a tight fit between the connecting clamps and the cable 1, improving the reliability and stability of the connection. In addition, the detachable connection method facilitates pre-processing and assembly in the factory, improving the quality and precision of the components, and also facilitates quick installation and disassembly on the construction site, which helps to improve construction efficiency and reduce construction difficulty.

[0078] In one optional embodiment, a gasket 17 is provided between the connecting plate 5 and the intermediate profile 10, and the connecting plate 5 and the intermediate profile 10 are connected by a bolt assembly. The gasket 17 can be a corrosion-resistant gasket 17.

[0079] A gasket 17 is installed between the connecting plate 5 and the medium profile 10, and the connection is made by a bolt assembly. The gasket 17 effectively protects the connection area, preventing wear and deformation caused by direct bolt contact, and extending the service life of the connection components. Simultaneously, the gasket 17 also provides a certain degree of sealing, preventing rainwater, dust, and other impurities from entering the connection area, thus improving the reliability and durability of the connection. The use of a bolt assembly makes the connection between the connecting plate 5 and the medium profile 10 more secure, easier to install and disassemble, facilitates the maintenance and replacement of the wind chime assembly, and ensures that the connection area has sufficient strength and rigidity to withstand external forces such as wind loads, ensuring the safe and stable operation of the curtain wall system.

[0080] In one alternative implementation, such as Figure 5 As shown, the profile frame 11 has an inwardly facing card interface 18, and the side of the honeycomb panel 12 extends into the card interface 18.

[0081] The profile frame 11 has an inwardly facing snap-fit ​​interface 18, and the side of the honeycomb panel 12 extends into the snap-fit ​​interface 18. This snap-fit ​​design makes the connection between the honeycomb panel 12 and the profile frame 11 tighter and more stable, avoiding problems such as weak connection, delamination, or loose parts that may occur with traditional adhesive or mechanical connections. The snap-fit ​​interface 18 can effectively limit the displacement of the honeycomb panel 12 within the profile frame 11, improve the integrity and deformation resistance of the wind chime assembly, and ensure that the honeycomb panel 12 and the profile frame 11 will not slide or detach relative to each other under the action of external forces such as wind loads, thereby ensuring the safety and stability of the curtain wall system. In addition, this snap-fit ​​method also helps to improve the assembly efficiency of the wind chime assembly, simplify the construction process, and reduce construction difficulty and cost.

[0082] In one alternative embodiment, the extended edge of the honeycomb panel 12 is bonded to the profile frame 11 located at the card interface 18. Specifically, the inner side of the extended edge of the honeycomb panel 12 and the mating surface facing the profile frame 11 can be bonded together by adhesive.

[0083] The extended edge of the honeycomb panel 12 is bonded to the profile frame 11 located at the snap-fit ​​interface 18. This bonding method, combined with the snap-fit ​​interface 18, further enhances the connection strength and sealing between the honeycomb panel 12 and the profile frame 11. The adhesive fills the tiny gaps between them, making the connection tighter and preventing problems such as rainwater leakage and air infiltration, thus improving the waterproof, thermal insulation, and sound insulation performance of the curtain wall system. Simultaneously, the bonding method also disperses stress at the connection points, reducing the risk of connection failure due to localized stress concentration, extending the service life of the wind chime components, and ensuring the performance stability and reliability of the entire curtain wall system during long-term use.

[0084] This application uses connecting clamps to fix the system onto stainless steel cables 1, which are spaced at unequal intervals and have a gradually changing overall shape. The hyperboloid-shaped cable wind chime curtain wall system has a simple appearance, meets the requirements for long-term wind load deformation, meets the requirements for the hyperboloid-shaped gradually changing cables 1, and is easy to process, install, maintain, and construct.

[0085] The hyperboloid-shaped cable-stayed wind chime curtain wall system of this application has a simple appearance, can meet the stringent requirements of varying gradient errors of the hyperboloid-shaped cable 1, can meet the requirements of long-term wind load deformation, and is easy to process, install, maintain, and construct.

[0086] This application utilizes a ball joint structure for rotation to meet the stringent requirements of varying gradient errors in the hyperboloid-shaped cable 1, achieving standardized connector specifications, enabling mass production, significantly saving construction time, and increasing installation efficiency.

[0087] Although embodiments of the present invention have been described in conjunction with the accompanying drawings, those skilled in the art can make various modifications and variations without departing from the spirit and scope of the present invention, and such modifications and variations all fall within the scope defined by the appended claims.

Claims

1. A hyperboloid-shaped cable-stayed wind chime curtain wall system, characterized in that, include: The wind chime assembly is connected to two cables (1); The connecting components correspond one-to-one with the cable (1), and the wind chime components are connected to the cable (1) through the connecting components; At least one connecting component is connected to the wind chime assembly via a ball joint structure.

2. The hyperboloid-shaped cable-stayed wind chime curtain wall system according to claim 1, characterized in that, The connection component includes: The connecting clamp is detachably mounted on the cable (1); A connecting post is connected between the connecting clamp and the wind chime assembly.

3. The hyperboloid-shaped cable-stayed wind chime curtain wall system according to claim 2, characterized in that, The connecting post includes: One end of the column (4) is connected to the connecting clamp; A connecting plate (5) is connected to the other end of the column (4), and the connecting plate (5) is connected to the wind chime assembly.

4. The hyperboloid-shaped cable-stayed wind chime curtain wall system according to claim 3, characterized in that, The ball joint structure includes: The first groove structure (6) is connected to the column (4); The second groove structure (7) is connected to the connecting plate (5); The connecting rod (8) has spherical heads (9) at both ends. The two spherical heads (9) are respectively located in the first groove structure (6) and the second groove structure (7), forming a spherical pair.

5. The hyperboloid-shaped cable-stayed wind chime curtain wall system according to claim 3, characterized in that, The wind chime assembly includes: Medium profile (10) is connected to the connecting plate (5); Profile frame (11), wherein the middle profile (10) is located inside the profile frame (11) and is connected to the profile frame (11); A honeycomb panel (12) is filled between the middle profile (10) and the profile frame (11), and is connected to the profile frame (11) and the middle profile (10) respectively.

6. The hyperboloid-shaped cable-stayed wind chime curtain wall system according to claim 5, characterized in that, The profile frame (11) is enclosed by profile rods (13), and two adjacent profile rods (13) are connected by frame profiles (14).

7. The hyperboloid-shaped cable-stayed wind chime curtain wall system according to claim 2, characterized in that, The connecting clamp includes: A first clamp (15) and a second clamp (16), the second clamp (16) being connected to a connecting post, the first clamp (15) and the second clamp (16) being detachably connected, and the first clamp (15) and the second clamp (16) forming a channel for fixing the cable (1) when connected.

8. The hyperboloid-shaped cable-stayed wind chime curtain wall system according to claim 5, characterized in that, A gasket (17) is provided between the connecting plate (5) and the medium profile (10), and the connecting plate (5) and the medium profile (10) are connected by a bolt assembly.

9. The hyperboloid-shaped cable-stayed wind chime curtain wall system according to claim 5, characterized in that, The profile frame (11) has an inwardly facing card interface (18), and the side of the honeycomb panel (12) extends into the card interface (18).

10. The hyperboloid-shaped cable-stayed wind chime curtain wall system according to claim 9, characterized in that, The extended side of the honeycomb panel (12) is bonded to the profile frame (11) located at the card interface (18).