Ultrahigh hanging type wavy aluminum grating ceiling system
By designing the base frame, transition layer hangers, and adjustable hanger assemblies, the deformation problem caused by installation errors in irregularly shaped ceilings was solved, achieving stability and improved aesthetics in buildings with different floor heights.
Patent Information
- Application Number
- CN202511858550.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-10
- Publication Date
- 2026-02-06
AI Technical Summary
Irregularly shaped ceilings are prone to deformation due to errors during installation, affecting their aesthetics and stability.
The system employs a dual support structure consisting of a base frame and a transition layer hanger, combined with adjustable hanger assemblies and a wave-shaped keel design, allowing for on-site adjustments to fit the actual dimensions and reduce deformation.
It enables stable installation on buildings of different heights, reduces deformation caused by installation errors, and improves aesthetics and installation accuracy.
Smart Images

Figure CN121473508A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of ceiling technology, specifically relating to an ultra-high suspended wave-shaped aluminum grid ceiling system. Background Technology
[0002] A suspended ceiling refers to the decoration of the top of a house. Simply put, it refers to the decoration of the ceiling and is an important part of interior decoration. Suspended ceilings have the functions of heat insulation, sound insulation, and sound absorption. They also serve as a concealed layer for electrical, ventilation, air conditioning, communication, fire protection, and alarm pipeline equipment. Suspended ceilings are a common part of home decoration. Suspended ceilings are classified differently depending on the material of the decorative panels. The main basis for distinguishing the names of suspended ceilings is the decoration materials. The main types include: light steel keel gypsum board suspended ceilings, gypsum board suspended ceilings, mineral wool board suspended ceilings, plywood suspended ceilings, irregularly shaped long strip aluminum composite panel suspended ceilings, square painted aluminum composite panel suspended ceilings, stained glass suspended ceilings, aluminum honeycomb perforated sound-absorbing panel suspended ceilings, and whole-house duplex suspended ceilings, etc. They occupy a very important position in the overall decoration of a room. Appropriate decoration of the ceiling can not only beautify the interior environment but also create a rich and colorful artistic image of the interior space. When choosing ceiling decoration materials and design schemes, the principles of being economical, sturdy, safe, beautiful, and practical should be followed. Compared with conventional ceilings, irregularly shaped ceilings are more difficult to construct and require higher installation precision. Strict control of precision is needed during both design and installation, otherwise deformation may occur, affecting the ceiling effect. Summary of the Invention
[0003] The purpose of this invention is to provide an ultra-high suspended wave-shaped aluminum grid ceiling system that can be adjusted according to the actual installation dimensions during on-site installation, thereby adapting to the shape of the wave-shaped keel and reducing deformation caused by installation errors, thus solving the problems mentioned in the background art.
[0004] To achieve the above objectives, the present invention provides the following technical solution: an ultra-high suspended wave-shaped aluminum grid ceiling system, including a base frame, wherein mounting beams are symmetrically arranged on the top of the base frame, and the side walls of the mounting beams are fixedly connected with transition layer suspension rods for suspending the mounting beams; Two corresponding crossbeams are provided between the two mounting beams. A corrugated keel is provided below the crossbeams. A telescopic hanger assembly is provided between the crossbeams and the corrugated keel. The corrugated keel is suspended below the crossbeams by the hanger assembly. Decorative panels are provided between the two wavy keels, equidistantly distributed along the length of the wavy keels.
[0005] Furthermore, the base frame includes several equidistant vertical keels, which are fixedly connected to the target wall, and adjacent vertical keels are fixedly connected with horizontal keels that are equidistantly distributed along the height direction of the vertical keels.
[0006] Furthermore, an angle steel is fixedly connected to the top of the transition layer hanger, and the top of the transition layer hanger is fixedly connected to the ceiling via the angle steel.
[0007] Furthermore, the boom assembly includes a base rod, and a telescopic rod is slidably connected inside the base rod. One end of the telescopic rod is provided with a limit component, which limits the position of the telescopic rod by engaging with the base rod.
[0008] Furthermore, a groove is provided on one side of the base rod, and the telescopic rod is slidably connected inside the groove. Wave-shaped protrusions are provided on both sides of the groove.
[0009] Furthermore, the bottom end of the telescopic rod is fixedly connected to an end cap, and the top of the telescopic rod is provided with a through hole.
[0010] Furthermore, the limiting component includes a slider slidably connected inside the slide groove. A convex plate is fixedly connected to one side of the slider. A sliding piece is slidably connected inside the convex plate. A spring is fixedly connected to one end of the sliding piece. One end of the spring is fixedly connected to one end of the inner wall of the convex plate. An elastic plate is symmetrically arranged at one end of the convex plate. A locking head that cooperates with the wavy protrusion is provided at one end of the elastic plate. A limiting post is fixedly connected to one end of the sliding piece. A connecting post that cooperates with the through hole is fixedly connected to one side of the convex plate.
[0011] Furthermore, a screw is fixedly connected to both the top end and the bottom end of the base rod, and a nut is threaded onto the screw.
[0012] Furthermore, one of the screws has a nut-fixed connection on its sidewall to a lifting member for suspending the corrugated keel, the lifting member being "G"-shaped.
[0013] Furthermore, the decorative panel includes an aluminum alloy plate, and the top of the aluminum alloy plate is symmetrically provided with clamping plate groups. Each clamping plate group includes two corresponding clamping plates. The middle of the clamping plate is provided with a mounting hole, and the clamping plate is fixedly connected to the corrugated keel by bolts.
[0014] Compared with the prior art, the beneficial effects of this invention are as follows: This ceiling system adopts a dual support structure of base frame and transition layer hangers, which has strong stability. The transition layer hangers can be designed according to the actual floor height to adapt to buildings with different floor heights. This ceiling achieves precise arc control of the wave-shaped keel design, and the visual rhythm of the wave-shaped keel and the light and shadow effect of the open grille have extremely high aesthetic value. Adjustable hangers are used to suspend the wave-shaped keel, which can be adjusted according to the actual installation size during on-site installation to adapt to the shape of the wave-shaped keel and reduce deformation caused by installation errors. Attached Figure Description
[0015] Figure 1 This is a three-dimensional structural diagram of the present invention; Figure 2 This is a front view of the present invention; Figure 3 This is a three-dimensional structural diagram of the suspension rod of the present invention; Figure 4 This is an exploded view of the boom of the present invention; Figure 5 For the present invention Figure 4 A magnified structural diagram of part A in the middle; Figure 6 This is a three-dimensional structural diagram of the decorative panel of the present invention.
[0016] The attached diagram lists the components represented by each number as follows: 1. Base frame; 11. Vertical keel; 12. Horizontal keel; 2. Mounting beam; 3. Transfer layer hanger; 31. Angle steel; 4. Horizontal beam; 5. Corrugated keel; 6. Hanger assembly; 61. Base rod; 611. Slide groove; 612. Corrugated protrusion; 62. Telescopic rod; 621. End; 622. Through hole; 63. Limiting assembly; 631. Slider; 632. Protruding plate; 633. Sliding piece; 634. Elastic plate; 635. Clip; 636. Limiting column head; 637. Spring; 638. Connecting column; 64. Screw; 65. Nut; 66. Hanger; 7. Decorative panel; 71. Aluminum alloy plate; 72. Clamping plate; 73. Mounting hole. Detailed Implementation
[0017] To make the objectives and advantages of this invention clearer, the invention will be specifically described below with reference to embodiments. It should be understood that the following text is merely used to describe one or more specific embodiments of the invention and does not strictly limit the scope of protection specifically claimed by the invention.
[0018] like Figure 1 As shown, an ultra-high suspended wave-shaped aluminum grid ceiling system includes a base frame 1. Installation beams 2 are symmetrically arranged on the top of the base frame 1. Transition layer hangers 3 for suspending the installation beams 2 are fixedly connected to the side walls of the installation beams 2. Two corresponding crossbeams 4 are arranged between the two installation beams 2. Wave-shaped keels 5 are arranged below the crossbeams 4. A telescopic hanger assembly 6 is arranged between the crossbeams 4 and the wave-shaped keels 5. The wave-shaped keels 5 are suspended below the crossbeams 4 by the hanger assembly 6. Decorative panels 7 are equidistantly distributed along the length of the wave-shaped keels 5 between the two wave-shaped keels 5.
[0019] Based on the above structure, this ceiling system supports the installation beam 2 through the base frame 1 and the transition layer hanger 3, achieving support for a floor height of 10 meters or more. It has high stability over large spans, and the decorative panel 7 is installed in a wave shape, with strong dynamic aesthetic expression of curvature and rhythm, resulting in a stronger decorative effect.
[0020] like Figure 1 and 2 As shown, the base frame 1 includes several equidistant vertical keels 11, which are fixedly connected to the target wall. Horizontal keels 12, which are equidistantly distributed along the height direction of the vertical keels 11, are fixedly connected between two adjacent vertical keels 11. An angle steel 31 is fixedly connected to the top of the transfer layer hanger 3, and the top of the transfer layer hanger 3 is fixedly connected to the ceiling via the angle steel 31.
[0021] According to the above structure, during installation, expansion bolts are used to fix the vertical keel 11 to the target wall, and then expansion bolts are used to fix the angle steel 31 to the ceiling. Then, bolts are used to connect the bottom end of the transfer layer hanger 3 to the installation beam 2, thereby suspending the installation beam 2 and improving the stability of the installation beam 2. The length of the transfer layer hanger 3 can be designed according to the building's floor height to meet the needs of buildings with different floor heights.
[0022] like Figure 3-5 As shown, the boom assembly 6 includes a base rod 61, with a telescopic rod 62 slidably connected inside the base rod 61. One end of the telescopic rod 62 is provided with a limiting component 63, which limits the position of the telescopic rod 62 by engaging with the base rod 61. A groove 611 is provided on one side of the base rod 61, and the telescopic rod 62 is slidably connected inside the groove 611. Both sides of the groove 611 are provided with corrugated protrusions 612. An end head 621 is fixedly connected to the bottom end of the telescopic rod 62, and a through hole 622 is provided at the top of the telescopic rod 62.
[0023] Based on the above structure, since the wave-shaped keel 5 is wave-shaped, the distance between its hoisting point and the bottom of the crossbeam 4 is not the same. Therefore, an adjustable length hanger assembly 6 is used to hoist the wave-shaped keel 5, which is convenient for installation. During installation, the position of the telescopic rod 62 is adjusted up and down, thereby adjusting the overall length of the hanger assembly 6 to adapt to the hoisting point of the wave-shaped keel 5.
[0024] like Figure 3-5 As shown, the limiting component 63 includes a slider 631 slidably connected inside the slide groove 611. A protruding plate 632 is fixedly connected to one side of the slider 631. A sliding piece 633 is slidably connected inside the protruding plate 632. A spring 637 is fixedly connected to one end of the sliding piece 633. One end of the spring 637 is fixedly connected to one end of the inner wall of the protruding plate 632. An elastic plate 634 is symmetrically arranged at one end of the protruding plate 632. A locking head 635 that cooperates with the wave protrusion 612 is arranged at one end of the elastic plate 634. A limiting post head 636 is fixedly connected to one end of the sliding piece 633. A connecting post 638 that cooperates with the through hole 622 is fixedly connected to one side of the protruding plate 632.
[0025] According to the above structure, when adjusting the length of the boom assembly 6, the slider 633 is pushed inward. At this time, the limiting column 636 retracts to the root of the elastic plate 634. Then, the limiting assembly 63 slides up and down, thereby driving the telescopic rod 62 to slide as a whole, thereby adjusting the overall length of the boom assembly 6. After the position of the telescopic rod 62 is adjusted, the slider 633 is released. Under the elastic force of the spring 637, the slider 633 and the limiting column 636 are released. The limiting column 636 springs to between the two clips 635, thereby restricting the clips 635 from retracting inward. This allows the clips 635 to be locked in the corresponding wave protrusion 612. At this time, the position of the telescopic rod 62 is restricted, thus fixing the overall length of the boom assembly 6.
[0026] like Figure 4 and 5 As shown, the top end of the base rod 61 and the bottom end of the end 621 are both fixedly connected to screw rods 64. Nuts 65 are threaded onto the screw rods 64. A lifting member 66 for hoisting the wave-shaped keel 5 is fixedly connected to the side wall of one of the screw rods 64 through the nut 65. The lifting member 66 is in the shape of a "G".
[0027] According to the above structure, during installation, the wavy keel 5 is passed through the hanger 66, and then the bolts on the hanger 66 are tightened to fix the wavy keel 5 to the hanger 66, thereby realizing the hoisting of the wavy keel 5.
[0028] like Figure 6 As shown, the decorative panel 7 includes an aluminum alloy plate 71. The top of the aluminum alloy plate 71 is symmetrically provided with clamping plate groups. Each clamping plate group includes two corresponding clamping plates 72. The middle of the clamping plate 72 is provided with a mounting hole 73. The clamping plate 72 is fixedly connected to the corrugated keel 5 by bolts.
[0029] According to the above structure, after the wavy keel 5 is installed, two clamps 72 are placed on both sides of the wavy keel 5. Then, bolts are used to pass through the two mounting holes 73 and the corresponding wavy keel 5. Tightening the bolts will fix the decorative panel 7 to the wavy keel 5.
[0030] The working principle of this invention is as follows: During installation, expansion bolts are used to fix the vertical keel 11 to the target wall, and then expansion bolts are used to fix the angle steel 31 to the ceiling. Then, bolts are used to connect the bottom end of the transition layer hanger 3 to the installation beam 2, thereby suspending the installation beam 2 and improving its stability. The length of the transition layer hanger 3 can be designed according to the building's floor height to meet the needs of buildings with different floor heights. Since the corrugated keel 5 is corrugated, the distance between its suspension point and the bottom end of the crossbeam 4 is not uniform. Therefore, an adjustable length hanger assembly 6 is used to suspend the corrugated keel 5 for easy installation. During installation, the position of the telescopic rod 62 is adjusted up and down, thereby adjusting the overall length of the hanger assembly 6 to adapt to the suspension point of the corrugated keel 5. When adjusting the length of the hanger assembly 6, the sliding plate 633 is pushed inward. At this time, the limiting column head 636 retracts to the root of the elastic plate 634, and then the limiting assembly 63 slides up and down to drive the extension. The telescopic rod 62 slides as a whole, thereby adjusting the overall length of the suspension rod assembly 6. After the position of the telescopic rod 62 is adjusted, the sliding plate 633 is released. Under the elastic force of the spring 637, the sliding plate 633 and the limiting column head 636 are released. The limiting column head 636 springs between the two clips 635, thereby restricting the clips 635 from retracting inward, so that the clips 635 can be locked in the corresponding wave protrusion 612. At this time, the position of the telescopic rod 62 is restricted, thus fixing the overall length of the suspension rod assembly 6. During installation, the wave-shaped keel 5 passes through the suspension member 66, and then the bolts on the suspension member 66 are tightened to fix the wave-shaped keel 5 to the suspension member 66, thereby realizing the hoisting of the wave-shaped keel 5. After the wave-shaped keel 5 is installed, the two clamps 72 are placed on both sides of the wave-shaped keel 5, and then bolts are used to pass through the two mounting holes 73 and the corresponding wave-shaped keel 5. Tightening the bolts will fix the decorative panel 7 to the wave-shaped keel 5.
[0031] The above description is merely a preferred embodiment of the present invention. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principles of the present invention, and these improvements and modifications should also be considered within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described or explained in this invention are implemented according to conventional methods in the art unless otherwise specified or limited.
Claims
1. A super-high suspended wave-shaped aluminum grid ceiling system, comprising a base frame (1), characterized in that: The top of the base frame (1) is symmetrically provided with mounting beams (2), and the side walls of the mounting beams (2) are fixedly connected with transfer layer suspension rods (3) for suspending the mounting beams (2). Two corresponding crossbeams (4) are provided between the two mounting beams (2). A wave-shaped keel (5) is provided below the crossbeams (4). A telescopic hanger assembly (6) is provided between the crossbeams (4) and the wave-shaped keel (5). The wave-shaped keel (5) is suspended below the crossbeams (4) by the hanger assembly (6). Decorative panels (7) are provided between the two wavy keels (5) and are equidistantly distributed along the length of the wavy keel (5).
2. The ultra-high suspended wave-shaped aluminum grid ceiling system according to claim 1, characterized in that: The base frame (1) includes several vertical keels (11) that are equidistantly distributed. The vertical keels (11) are fixedly connected to the target wall. Horizontal keels (12) that are equidistantly distributed along the height direction of the vertical keels (11) are fixedly connected between two adjacent vertical keels (11).
3. The ultra-high suspended wave-shaped aluminum grid ceiling system according to claim 2, characterized in that: An angle steel (31) is fixedly connected to the top of the transition layer hanger (3), and the top of the transition layer hanger (3) is fixedly connected to the ceiling by the angle steel (31).
4. The ultra-high suspended wave-shaped aluminum grid ceiling system according to claim 3, characterized in that: The boom assembly (6) includes a base rod (61), and a telescopic rod (62) is slidably connected inside the base rod (61). A limit component (63) is provided at one end of the telescopic rod (62), and the limit component (63) limits the position of the telescopic rod (62) by engaging with the base rod (61).
5. The ultra-high suspended wave-shaped aluminum grid ceiling system according to claim 4, characterized in that: A groove (611) is provided on one side of the base rod (61), and the telescopic rod (62) is slidably connected inside the groove (611). Wave protrusions (612) are provided on both sides of the groove (611).
6. The ultra-high suspended wave-shaped aluminum grid ceiling system according to claim 5, characterized in that: The bottom end of the telescopic rod (62) is fixedly connected to an end head (621), and the top of the telescopic rod (62) is provided with a through hole (622).
7. The ultra-high suspended wave-shaped aluminum grid ceiling system according to claim 6, characterized in that: The limiting component (63) includes a slider (631) slidably connected inside the slide groove (611). A protruding plate (632) is fixedly connected to one side of the slider (631). A sliding piece (633) is slidably connected inside the protruding plate (632). A spring (637) is fixedly connected to one end of the sliding piece (633). One end of the spring (637) is fixedly connected to one end of the inner wall of the protruding plate (632). An elastic plate (634) is symmetrically arranged at one end of the protruding plate (632). A locking head (635) that cooperates with a wave protrusion (612) is arranged at one end of the elastic plate (634). A limiting post head (636) is fixedly connected to one end of the sliding piece (633). A connecting post (638) that cooperates with a through hole (622) is fixedly connected to one side of the protruding plate (632).
8. The ultra-high suspended wave-shaped aluminum grid ceiling system according to claim 7, characterized in that: The top end of the base rod (61) and the bottom end of the end (621) are both fixedly connected to a screw (64), and a nut (65) is threaded onto the screw (64).
9. A super-high suspended wave-shaped aluminum grid ceiling system according to claim 8, characterized in that: One of the screws (64) has a nut (65) fixedly connected to a lifting member (66) for hoisting the corrugated keel (5), the lifting member (66) being "G" shaped.
10. A super-high suspended wave-shaped aluminum grid ceiling system according to claim 9, characterized in that: The decorative panel (7) includes an aluminum alloy plate (71). The top of the aluminum alloy plate (71) is symmetrically provided with a clamping plate group. Each clamping plate group includes two corresponding clamping plates (72). The middle part of the clamping plate (72) is provided with an installation hole (73). The clamping plate (72) is fixedly connected to the corrugated keel (5) by bolts.