Adjustable suspended ceiling structure for aluminum veneer
By introducing an adjustable ceiling structure into the aluminum single-panel ceiling structure, and utilizing a control component consisting of a worm gear and a worm wheel, as well as a telescopic component, continuous height adjustment of the aluminum single-panel ceiling is achieved. This solves the problems of large construction errors and inflexible adjustment in existing technologies, and improves construction efficiency and quality.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- LONGDU IND GRP CO LTD
- Filing Date
- 2026-01-27
- Publication Date
- 2026-04-17
AI Technical Summary
The existing aluminum single-panel ceiling structure relies on manual measurement and cutting during installation, which leads to large construction errors, makes it difficult to achieve precise height adjustment, and lacks flexible height adjustment methods, affecting construction efficiency and quality. This problem is particularly prominent in complex environments or large-area ceilings.
The control component, which combines a worm gear and a worm wheel, and the telescopic component, together with the telescopic component, enable an adjustable ceiling structure for aluminum single-panel ceilings. The fixing component further enables the adjustment of the aluminum single-panel ceiling structure.
It enables flexible height adjustment of aluminum single-panel ceiling structures, lowers the construction threshold, improves installation efficiency and overall construction quality, and is suitable for complex or large-area ceiling construction scenarios.
Smart Images

Figure CN121875422A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of aluminum single-panel ceiling structure technology, and specifically to an adjustable ceiling structure for aluminum single panels. Background Technology
[0002] Aluminum single-panel ceilings are widely used in interior and exterior ceiling projects of public buildings, commercial spaces, and high-end residences due to their lightweight, high strength, good corrosion resistance, and excellent decorative effect. Existing aluminum single-panel ceiling structures typically consist of main keels, secondary keels, and connecting brackets, which are connected to the building structure via hangers or fixed brackets for overall installation. In actual construction, the ceiling height often needs to be precisely controlled based on the site structure, pipeline layout, and design requirements. However, existing ceiling structures mostly use fixed-length hangers or brackets, requiring construction personnel to repeatedly measure the site before installation and then cut the brackets or hangers according to the measurement results to meet the design height requirements. This installation method is highly dependent on the experience and skill level of the construction personnel; measurement or cutting errors can easily lead to a decrease in the overall flatness of the ceiling, affecting the final decorative effect.
[0003] Furthermore, existing aluminum single-panel ceiling structures typically have a fixed height after installation, lacking effective height adjustment mechanisms. When design changes, construction errors, or later maintenance require height readjustment, partial disassembly or even complete rework is often necessary, resulting in high construction and time costs. Simultaneously, because the support frame length is pre-cut and fixed before installation, precise adjustments are difficult, making ceiling construction cumbersome and inefficient, hindering the development of standardized and modular construction. These problems are particularly pronounced in complex architectural environments or large-area ceiling construction, highlighting the urgent need for a simple, easy-to-install aluminum single-panel ceiling structure with flexible height adjustment to lower the construction threshold and improve installation efficiency and overall construction quality.
[0004] In view of the above, in order to overcome the above technical problems, the present invention designs an adjustable ceiling structure for aluminum single panels, which solves the above technical problems. Summary of the Invention
[0005] The technical objective of this invention is to provide an adjustable ceiling structure for aluminum panels, which is simple in structure, easy to install, and capable of flexible height adjustment, thereby reducing the construction threshold and improving installation efficiency and overall construction quality.
[0006] To achieve the above-mentioned technical objectives, the present invention provides the following technical solution:
[0007] An adjustable ceiling structure for aluminum panels includes a fixing plate installed on the ceiling wall. The fixing plate is an L-shaped folded plate with fixing holes on its horizontal portion for use with expansion screws fixed to the ceiling wall for installation.
[0008] A control assembly, mounted below the fixed plate, includes a control worm and a control worm wheel.
[0009] A telescopic assembly, which is installed in a telescopic groove;
[0010] A fixed frame is installed below the telescopic assembly, and the fixed frame is configured in a cross shape;
[0011] A connecting component, which is installed between two adjacent fixed frames;
[0012] A reinforcing component, which is installed inside the fixed frame and fixed to the wall surface;
[0013] The control worm drives the control worm wheel to rotate in both directions. The telescopic component is driven by the control worm wheel to move up and down, so that the fixed frame moves to a suitable height. It is then installed on the adjacent fixed frame through the connecting component, and the reinforcement component is fixed to the wall to form multiple adjustable rectangular installation structures.
[0014] Preferably, the control component further includes a housing, which is an outer protective shell of the control component. The axis of the control worm and the axis of the control worm wheel are arranged perpendicularly. A cross groove is formed on the end face of the control worm. A bearing is provided on the outside of the control worm. The inner ring of the bearing is fixed to the control worm, and the outer ring of the bearing is fixed inside the housing.
[0015] Preferably, the housing has an internal mounting cavity, the control worm and the control worm wheel are mounted in the mounting cavity, and the inner side of the telescopic groove has a mating through groove, which communicates with the mounting cavity.
[0016] Preferably, a limiting groove is formed on the inner side of the expansion groove, and the cross-sectional shape of the limiting groove is set to trapezoidal.
[0017] Preferably, the telescopic assembly includes a telescopic rod, mating teeth, a limiting block, a baffle, and a mounting rod;
[0018] The telescopic rod is installed in the telescopic groove, the mating teeth are arranged on the side of the telescopic rod, the mating teeth are engaged with the control worm gear, the limiting blocks are installed on both sides of the telescopic rod, the baffle is installed on the top of the telescopic rod, and the mounting rod is arranged on the bottom of the telescopic rod.
[0019] Preferably, the fixed frame has an internal movable groove, a snap-fit groove is provided on the upper part of the movable groove, and a first snap-fit strip is provided on the lower part of the fixed frame, with a first fixed snap-fit groove linearly arranged on the first snap-fit strip.
[0020] Preferably, the fixed frame has a movable cavity inside near the outer end, movable holes are provided on both sides of the movable cavity, a locking rod is provided in the movable hole, a locking ring is installed on the surface of the locking rod, a support spring is provided on the side of the locking ring, and the other end of the support spring is engaged in the movable cavity.
[0021] Preferably, the connecting assembly includes a central block, a connecting rod, a first connecting block, and a first fixing hole;
[0022] The center block is located in the middle of the connecting assembly, and a second snap-fit strip is provided below the center block. The second snap-fit strip is provided with a second fixing slot. The connecting rod is located on both sides of the center block, and the first connecting snap-fit block is installed on the top of the connecting rod. The first fixing slot is opened on the first connecting snap-fit block.
[0023] Preferably, the reinforcement component includes a reinforcement rod, a second connecting block, a second fixing hole, a reinforcement plate, and a reinforcement hole;
[0024] The reinforcing rod is installed inside the fixed frame, the second connecting block is installed on the top of the reinforcing rod, the second fixing hole is opened on the second connecting block, the reinforcing plate is vertically arranged on the side of the reinforcing rod, and the reinforcing hole is opened on the reinforcing plate.
[0025] Preferably, it also includes an aluminum panel body, the aluminum panel body including a frame part, a snap-fit part and a mating snap block; the frame part is the outer part of the aluminum panel body, the frame part is configured as a rectangular structure, the snap-fit part is the lower part of the frame part, and the mating snap block is installed around the periphery of the snap-fit part.
[0026] The beneficial effects of this invention are as follows:
[0027] 1. This invention utilizes a control assembly consisting of a control worm gear and a control worm wheel located below the fixed plate. This assembly, in conjunction with a telescopic component, enables the vertical movement of the fixed frame. The self-locking nature of the worm gear and worm wheel ensures stability, allowing for continuous and precise height adjustment of the ceiling structure before and after installation. This eliminates the need for repeated manual measurements and cutting of the supports, effectively lowering the technical barrier for construction workers, reducing installation deviations caused by measurement or cutting errors, and significantly improving the overall flatness and construction accuracy of the ceiling. It is suitable for aluminum single-panel ceiling projects with high elevation requirements.
[0028] 2. This invention, by setting the fixed frame as a cross-shaped structure and combining it with connecting components to form multiple adjustable rectangular installation structures, gives the ceiling system excellent modularity and scalability. It allows for flexible adjustment of the installation area size according to the site space dimensions, adapting to the installation needs of different specifications of aluminum panels. Simultaneously, the cooperation of connecting components and snap-fit structures enables rapid assembly and disassembly, improving construction efficiency and reducing on-site adjustments and rework, making it particularly suitable for ceiling construction scenarios with large areas or complex structures.
[0029] 3. This invention, by incorporating reinforcing components within a fixed frame and reliably fixing the reinforcing plate to the wall or ceiling, effectively enhances the overall load-bearing capacity and deformation resistance of the ceiling structure, preventing subsidence and swaying due to gravity or external forces during long-term use. Simultaneously, the limiting structure and locking mechanism of the telescopic components ensure stable maintenance of the adjusted position, balancing adjustability and structural stability, thus improving the safety and long-term reliability of the ceiling structure. Attached Figure Description
[0030] To more clearly illustrate the specific embodiments of the present invention 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 the present invention. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0031] The above and other aspects of the invention will now be described by way of example only, with reference to the accompanying drawings, in which:
[0032] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0033] Figure 2 This is a schematic diagram of the fixed frame structure of the present invention;
[0034] Figure 3 This is a schematic diagram of the control component structure of the present invention;
[0035] Figure 4 This is a cross-sectional view of the control component of the present invention;
[0036] Figure 5 This is a schematic diagram of the telescopic component structure of the present invention;
[0037] Figure 6 This is a cross-sectional view of the fixed frame of the present invention;
[0038] Figure 7 This is a schematic diagram of the connection component structure of the present invention;
[0039] Figure 8This is a schematic diagram of the reinforcement component structure of the present invention;
[0040] Figure 9 This is a schematic diagram of the structure of the aluminum single-panel body of the present invention.
[0041] In the diagram: 1. Fixing plate; 11. Fixing hole; 2. Control assembly; 21. Control worm gear; 211. Cross groove; 22. Control worm wheel; 23. Telescopic groove; 231. Mating through groove; 232. Limiting groove; 24. Housing; 241. Mounting cavity; 25. Bearing; 3. Telescopic assembly; 31. Telescopic rod; 32. Mating tooth; 33. Limiting block; 34. Baffle; 35. Mounting rod; 4. Fixing frame; 41. Movable groove; 42. Snap-fit groove; 43. First snap-fit strip; 44. First fixing slot; 45. 46. Movable cavity; 47. Movable hole; 48. Locking rod; 49. Locking ring; 50. Support spring; 51. Connecting assembly; 51. Center block; 511. Second snap-fit strip; 512. Second fixing slot; 52. Connecting rod; 53. First connecting block; 54. First fixing hole; 6. Reinforcing assembly; 61. Reinforcing rod; 62. Second connecting block; 63. Second fixing hole; 64. Reinforcing plate; 65. Reinforcing hole; 7. Aluminum single panel body; 71. Frame part; 72. Snap-fit part; 73. Matching block. Detailed Implementation
[0042] To better understand the above technical solutions, the following will provide a detailed explanation of the technical solutions in conjunction with the accompanying drawings and specific implementation methods.
[0043] Example 1:
[0044] like Figure 1-7 As shown, this invention provides an adjustable ceiling structure for aluminum panels, which can be widely used in interior decoration ceiling projects, especially suitable for places with high requirements for ceiling height accuracy, complex construction environments, or those requiring subsequent maintenance and adjustment. This adjustable ceiling structure is installed on the top of the building's wall or ceiling, and the adjustable mechanism allows for continuous adjustment of the overall height of the aluminum panels, thus avoiding the construction errors and technical hurdles associated with traditional ceiling structures that rely on manual measurement and cutting of supports.
[0045] In this embodiment, the adjustable ceiling structure for aluminum panels includes a fixed plate 1, a control component 2, a telescopic component 3, a fixed frame 4, a connecting component 5, and a reinforcing component 6. These components cooperate to form a stable and height-adjustable installation system. The fixed plate 1 is installed on the wall or building ceiling, serving as the load-bearing foundation for the overall ceiling structure. The fixed plate 1 adopts an L-shaped folded plate structure, with one side being horizontal and the other vertical. The horizontal side has at least one fixing hole 11 evenly distributed or provided according to load requirements. If multiple fixed plates 1 are used, even distribution is necessary to ensure uniform load distribution and stability. The fixing holes 11 are used to mate with expansion screws pre-installed on the wall or ceiling. Before installing the fixed plate 1, the workers need to measure the area of the wall and ceiling to determine the number of fixed plates 1, mark and drill holes on the wall, and then fix the expansion screws into the holes. The fixed plate 1 is then passed through the fixing holes 11 via the expansion screws and tightened with nuts, thus firmly connecting the fixed plate 1 to the wall and ceiling, ensuring stable fixation of the fixed plate 1 to the building structure, thereby providing reliable load-bearing support for the adjustment mechanism and ceiling structure below.
[0046] The control component 2 is installed below the fixed plate 1 and is used to realize the height adjustment function of the ceiling structure. The control component 2 includes a control worm 21 and a control worm wheel 22, which are meshed with each other and their axes are perpendicular to each other. Through the transmission relationship between the worm and the worm wheel, a large transmission ratio can be achieved, so that when the control worm 21 is driven, the control worm wheel 22 will produce stable and controllable forward or reverse rotation. In order to improve the stability and service life of the control component 2, an outer shell 24 is also provided on the outside of the control component 2. The outer shell 24 serves as an outer protective shell for the control component 2, which can protect the internal control worm 21 and control worm wheel 22 from dust, moisture, and accidental contact. Moreover, due to the self-locking nature of the worm wheel and worm, it can be ensured that during daily use, the telescopic component 3 is locked onto the control worm wheel 22, and a self-locking is formed between the control worm wheel 22 and the control worm 21, which can form a stable unidirectional adjustment control structure. No additional self-locking structure is required, reducing equipment costs and the difficulty of later maintenance.
[0047] A cross groove 211 is provided on one end face of the control worm gear 21. This cross groove 211 can be matched with a conventional screwdriver, Allen wrench, or special adjustment tool, allowing construction personnel to still rotate the control worm gear 21 with simple tools after the ceiling installation is completed, thereby adjusting the ceiling height. A bearing 25 is sleeved on the outer side of the control worm gear 21. The inner ring of the bearing 25 is fixedly connected to the control worm gear 21, and the outer ring of the bearing 25 is fixed to the inner wall of the outer casing 24. Through the structure of the bearing 25, the frictional resistance of the control worm gear 21 during rotation can be effectively reduced, making the adjustment process smoother, reducing wear caused by long-term use, and improving adjustment accuracy and structural reliability.
[0048] The housing 24 has an internal mounting cavity 241, in which the control worm 21 and control worm wheel 22 are installed. The mounting cavity 241 not only provides a stable mounting space for the worm and worm wheel, but also facilitates their protection. One side of the mounting cavity 241 is connected to the telescopic groove 23, which is set in the fixed plate 1 or a structure connected to the fixed plate 1. The inner side of the telescopic groove 23 has a mating through groove 231, which is connected to the mounting cavity 241, so that the control worm wheel 22 can engage with the mating teeth 32 in the telescopic assembly 3 through the mating through groove 231, thereby converting the rotational motion into the linear lifting motion of the telescopic assembly 3.
[0049] The inner side of the telescopic groove 23 is also provided with a limiting groove 232, the cross-sectional shape of which is a trapezoidal structure. Through the cooperation of the trapezoidal limiting groove 232 and the upper limit block 33 of the telescopic component 3, the movement direction of the telescopic component 3 during the lifting process can be restricted, preventing it from rotating, deviating, or dislodging from the telescopic groove 23, thereby ensuring the stability and safety of the overall adjustment process. It should be noted that the telescopic component 3 can be removed from the top of the telescopic groove 23. This design facilitates carrying and further improves the replaceability and maintenance convenience of this embodiment. Operators can quickly assemble it on-site, thereby improving work efficiency.
[0050] The telescopic assembly 3 is installed in the telescopic groove 23, serving as the actuator for height adjustment and directly linked to the control assembly 2. The telescopic assembly 3 includes a telescopic rod 31, mating teeth 32, a limiting block 33, a baffle 34, and a mounting rod 35. The telescopic rod 31 is vertically oriented and can slide up and down within the telescopic groove 23. Its side is provided with mating teeth 32 that match the control worm gear 22, which mesh with the control worm gear 22. When the control worm gear 22 rotates forward or backward under the drive of the control worm 21, the control worm gear 22 pushes the telescopic rod 31 vertically upward or downward via the mating teeth 32, thereby achieving height adjustment.
[0051] Limiting blocks 33 are installed on both sides of the telescopic rod 31. The limiting blocks 33 cooperate with the limiting grooves 232 on the inner side of the telescopic groove 23. By sliding the limiting blocks 33 in the limiting grooves 232, the movement path of the telescopic rod 31 is constrained, preventing it from swaying left and right or tilting during adjustment. A baffle 34 is installed at the upper end of the telescopic rod 31. The baffle 34 is used to limit the upward movement of the telescopic rod 31, preventing the telescopic rod 31 from moving too high and disengaging from the telescopic groove 23. The mounting rod 35 is set at the lower end of the telescopic rod 31 and is used to connect with the fixed frame 4 below, thereby transmitting the lifting and lowering movement of the telescopic assembly 3 to the fixed frame 4.
[0052] The fixed frame 4 is installed below the telescopic component 3 and connected to it via a mounting rod 35. The mounting rod 35 has threads on its surface, and the fixed frame 4 has a corresponding threaded hole in its center, allowing for quick installation of the fixed frame 4 below the mounting rod 35. In this embodiment, the fixed frame 4 is designed as a cross-shaped structure, which provides multi-directional support in the horizontal plane, facilitating the formation of multiple interconnected rectangular installation areas to accommodate the installation needs of aluminum panels of different sizes and layouts. The fixed frame 4 has an internal movable groove 41, a snap-fit groove 42 above the movable groove 41, and a first snap-fit strip 43 below the fixed frame 4. Multiple first fixing slots 44 are linearly arrayed on the first snap-fit strip 43. Through the combination of the snap-fit groove 42, the first snap-fit strip 43, and the first fixing slots 44, the fixed frame 4 can be quickly and reliably assembled with the aluminum panel body 7.
[0053] The fixed frame 4 has a movable cavity 45 located at its outer end. The movable cavity 45 is perpendicular to the fixed frame 4. Movable holes 46 are located on both sides of the movable cavity 45. The movable holes 46 extend through one side of the fixed frame 4 and have a groove-like structure on the other side. A locking rod 47 is slidably mounted in each movable hole 46. A locking ring 48 is mounted on the surface of the locking rod 47. The locking ring 48 moves within the movable cavity 45, thus restricting the range of motion of the locking rod 47. A support spring 49 is located on one side of the locking ring 48, and the other end of the support spring 49 is engaged within the movable cavity 45. The support spring 49 provides elastic force, causing the locking rod 47 to engage in the movable hole 46 in another part of the fixed frame 4. Through the elastic support of the locking ring 48 by the support spring 49, the locking rod 47 remains in a preset locking position when no external force is applied, thereby locking the connecting assembly 5 or the aluminum panel body 7. When disassembly or adjustment is required, the construction personnel can pull the locking ring 48 outward with external force to make the locking rod 47 displace against the spring force, thereby releasing the lock. At this time, the first connecting block 53 in the connecting assembly 5 can move freely in the locking groove 42, which is convenient and safe.
[0054] The connecting component 5 is installed between two adjacent fixed frames 4 to connect multiple fixed frames 4 into a whole structure, thereby forming multiple adjustable rectangular installation structures. The connecting component 5 includes a center block 51, a connecting rod 52, a first connecting block 53, and a first fixing hole 54. The center block 51 is located in the middle of the connecting component 5, and a second locking strip 511 is provided below it. The second locking strip 511 is provided with a second fixing groove 512. The second locking strip 511 is located in the middle of the first locking strips 43 below the two fixed frames 4, providing support for the middle part of the aluminum single panel body 7, ensuring uniform support force and improving stability. The connecting rods 52 are symmetrically arranged on both sides of the center block 51. The first connecting block 53 is installed on the upper end of the connecting rod 52, and the first fixing hole 54 is opened on the first connecting block 53. The first fixing hole 54 is connected to the locking rod 47, which restricts the lateral displacement of the connecting component 5, and realizes a stable connection between the connecting component 5 and the fixed frame 4, thereby ensuring the flatness and stability of the overall ceiling structure.
[0055] The installation process of this structure is as follows: First, the construction personnel measure the dimensions of the ceiling and wall, determine the drilling points, drill holes, and install expansion bolts. The telescopic component 3 is inserted into the telescopic groove 23. Then, the fixing plate 1 is installed on the wall or ceiling through the fixing hole 11 and the expansion bolts. Next, using a screwdriver or specialized tool, the cross groove 211 is rotated to rotate the control worm gear 21, causing the control worm wheel 22 to move the telescopic component 3 up and down. The telescopic component 3 is adjusted to the designed height. At this point, the control worm wheel 22 and the control worm wheel 22 form a self-locking mechanism, and the position of the telescopic component 3 is fixed. The center groove of the fixing frame 4 is aligned with the mounting rod 35, and the two are fixed together by threads. After the fixing frame 4 reaches the appropriate height, the locking lever 47 is pulled open. After installing the connecting component 5 inside the fixing frame 4, the locking lever 47 is released to allow it to pass through the first fixing clip hole 54 to fix the connecting component 5.
[0056] After installing all the fixed plates 1, control components 2, telescopic components 3 and fixed frames 4 through the above steps, extend the connecting components 5 that were previously installed in the fixed frames 4 to connect the adjacent fixed frames 4. For the specific connection method, refer to the connection method of the connecting components 5 installed in the fixed frames 4. During the installation process, the center block 51 needs to be located in the middle of the two adjacent fixed frames 4 to improve the support stability.
[0057] Example 2:
[0058] like Figure 8 As shown, based on the above embodiments, this embodiment provides a reinforcement component 6 suitable for wall-side fixing, which further improves the stability of the structure. It should be noted that if the ceiling height is adjusted, the reinforcement component 6 needs to be unsecured before operation. The reinforcement component 6 is fixed after the control component 2 is adjusted.
[0059] The reinforcing component 6 is installed inside the fixed frame 4, specifically at the end that adheres to the wall. It is fixed to the wall or other load-bearing structure to improve the overall ceiling structure's resistance to deformation and its load-bearing capacity. The reinforcing component 6 includes a reinforcing rod 61, a second connecting block 62, a second fixing hole 63, a reinforcing plate 64, and a reinforcing hole 65. The reinforcing rod 61 is installed inside the fixed frame 4, with the second connecting block 62 mounted above it. The second fixing hole 63 is located on the second connecting block 62 for connection and fixation to the fixed frame 4 or the connecting component 5. The reinforcing plate 64 is vertically positioned on one side of the reinforcing rod 61. The reinforcing plate 64 has a reinforcing hole 65, through which expansion bolts, screws, or other fasteners can be used to directly fix the reinforcing plate 64 to the wall or ceiling, further improving the overall structural stability and preventing the ceiling from sinking or shaking during long-term use.
[0060] Installation process of reinforcement component 6: Install reinforcement component 6 in the fixed frame 4 close to the wall. The installation method is the same as that of connecting component 5 in the fixed frame 4 in Implementation 1. Extend reinforcement component 6 so that reinforcement plate 64 fits against the wall. Pass expansion screws that are pre-fixed to the wall through reinforcement holes 65 and fix reinforcement plate 64 to the wall with nuts. Reinforcement component 6 reinforces and fixes the internal structure of fixed frame 4 to the wall, thereby forming multiple rectangular installation areas with adjustable size and stable structure.
[0061] Example 3: Based on the above examples, this example provides a matching aluminum single-panel body 7;
[0062] like Figure 9 As shown, the aluminum panel body 7 is used to form the final ceiling decorative surface. The aluminum panel body 7 includes a frame part 71, a snap-fit part 72, and a mating snap block 73. The frame part 71 is the outer part of the aluminum panel body 7, and is designed as a rectangular structure with a hollow interior to ensure the overall rigidity and lightweight structure of the aluminum panel. The snap-fit part 72 is located below the frame part 71 and is used for snap-fit installation with the fixed frame 4 or the connecting component 5. The mating snap block 73 is installed around the periphery of the snap-fit part 72. By cooperating with the first fixing slot 44 and the second fixing slot 512 on the fixed frame 4 and the connecting component 5, the aluminum panel body 7 can be quickly installed and disassembled, facilitating later maintenance and replacement.
[0063] The installation process of aluminum panel body 7: The construction worker holds the aluminum panel body 7 and tilts it through the fixed frame 4 and connecting component 5. Then, the worker places it flat and straight on top of the fixed frame 4 and places the aluminum panel body 7 in the rectangular enclosure structure formed by the fixed frame 4 and connecting rod 52. The panel body 7 is then engaged with the locking block 73 in the first fixing slot 44 and the second fixing slot 512. Under the action of gravity, the panel body 7 is engaged and the installation is completed.
[0064] The technical features disclosed above are not limited to combinations of the disclosed features with other features. Those skilled in the art can also make other combinations of the technical features according to the purpose of this disclosure, in order to achieve the objectives of this disclosure. The description herein is provided to enable those skilled in the art to implement or use the contents of this disclosure. Various modifications to the contents of this disclosure will be readily apparent to those skilled in the art, and the general principles defined herein can be applied to other variations without departing from the scope of this disclosure.
Claims
1. An adjustable ceiling structure for an aluminum veneer, characterized by, Includes a fixing plate (1) installed on the top of the wall, the fixing plate (1) being an L-shaped folded plate with fixing holes (11) on its horizontal portion. The control component (2) is installed below the fixed plate (1) and includes a control worm (21) and a control worm wheel (22). Telescopic assembly (3), which is installed in telescopic groove (23); A fixed frame (4) is installed below the telescopic assembly (3), and the fixed frame (4) is configured in a cross shape; A connecting component (5) is installed between two adjacent fixed frames (4); A reinforcing component (6) is installed inside the fixed frame (4) and fixed to the wall surface; The control worm (21) drives the control worm wheel (22) to rotate in both directions. The telescopic component (3) is driven by the control worm wheel (22) to move up and down, so that the fixed frame (4) moves to a suitable height. The connecting component (5) is installed on the adjacent fixed frame (4), and the reinforcing component (6) is fixed to the wall to form multiple adjustable rectangular installation structures.
2. The adjustable ceiling structure for aluminum veneer panels according to claim 1, characterized in that: The control component (2) also includes a housing (24), which is the outer protective shell of the control component (2). The axis of the control worm (21) and the axis of the control worm wheel (22) are set perpendicularly. A cross groove (211) is provided on the end face of the control worm (21). A bearing (25) is provided on the outside of the control worm (21). The inner ring of the bearing (25) is fixed to the control worm (21), and the outer ring of the bearing (25) is fixed inside the housing (24).
3. The adjustable ceiling structure for aluminum veneer panels according to claim 2, characterized in that: The housing (24) has an installation cavity (241) inside, the control worm (21) and the control worm wheel (22) are installed in the installation cavity (241), and the inner side of the telescopic groove (23) has a mating through groove (231), which is connected to the installation cavity (241).
4. An adjustable ceiling structure for aluminum panels according to claim 3, characterized in that: The inner side of the expansion groove (23) is provided with a limiting groove (232), and the cross-sectional shape of the limiting groove (232) is set as trapezoidal.
5. An adjustable ceiling structure for aluminum panels according to claim 1, characterized in that: The telescopic assembly (3) includes a telescopic rod (31), a mating tooth (32), a limiting block (33), a baffle (34), and a mounting rod (35). The telescopic rod (31) is installed in the telescopic groove (23), the mating tooth (32) is provided on the side of the telescopic rod (31), the mating tooth (32) and the control worm gear (22) are meshed, the limiting block (33) is installed on both sides of the telescopic rod (31), the baffle (34) is installed on the top of the telescopic rod (31), and the mounting rod (35) is provided on the bottom of the telescopic rod (31).
6. The adjustable ceiling structure for aluminum panels according to claim 1, characterized in that: The fixed frame (4) has an internal movable slot (41), and a snap-fit slot (42) is provided on the upper part of the movable slot (41). A first snap-fit strip (43) is provided on the lower part of the fixed frame (4), and a first fixed snap-fit slot (44) is provided on the first snap-fit strip (43) in a linear array.
7. An adjustable ceiling structure for aluminum panels according to claim 6, characterized in that: The fixed frame (4) has an open movable cavity (45) at the outer end. The movable cavity (45) has movable holes (46) on both sides. A locking rod (47) is provided in the movable hole (46). A locking ring (48) is installed on the surface of the locking rod (47). A support spring (49) is provided on the side of the locking ring (48). One end of the support spring (49) is engaged in the movable cavity (45).
8. An adjustable ceiling structure for aluminum panels according to claim 1, characterized in that: The connecting component (5) includes a center block (51), a connecting rod (52), a first connecting block (53), and a first fixing hole (54). The center block (51) is located in the middle of the connecting assembly (5), and a second snap-fit strip (511) is provided below the center block (51). A second fixing slot (512) is provided on the second snap-fit strip (511). The connecting rod (52) is located on both sides of the center block (51), and the first connecting block (53) is installed on the top of the connecting rod (52). The first fixing hole (54) is opened on the first connecting block (53).
9. An adjustable ceiling structure for aluminum panels according to claim 1, characterized in that: The reinforcement component (6) includes a reinforcement rod (61), a second connecting block (62), a second fixing hole (63), a reinforcement plate (64), and a reinforcement hole (65); The reinforcing rod (61) is installed inside the mounting frame, the second connecting block (62) is installed on the top of the reinforcing rod (61), the second fixing hole (63) is opened on the second connecting block (62), the reinforcing plate (64) is vertically arranged on the side of the reinforcing rod (61), and the reinforcing hole (65) is opened on the reinforcing plate (64).
10. An adjustable ceiling structure for aluminum panels according to claim 1, characterized in that: It also includes an aluminum panel body (7), which includes a frame part (71), a snap-fit part (72), and a mating snap-fit block (73); the frame part (71) is the outer part of the aluminum panel body (7), the frame part (71) is set as a rectangular structure, the snap-fit part (72) is the lower part of the frame part (71), and the mating snap-fit block (73) is installed around the periphery of the snap-fit part (72).