An aluminum furring mounting leveling assembly for building finishing
By designing an aluminum ceiling panel installation leveling component that integrates snap-fit, measurement, and support functions, the problems of low measurement accuracy and worker fatigue during aluminum ceiling panel installation have been solved, achieving efficient and safe installation results.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- SHANXI CONSTR ENG CO LTD
- Filing Date
- 2026-02-04
- Publication Date
- 2026-04-17
AI Technical Summary
The current installation process for aluminum ceiling panels suffers from low measurement accuracy, inconvenient operation, worker fatigue, and safety hazards, especially when installing large areas.
An aluminum ceiling panel installation and leveling component was designed, integrating a base, a measuring unit, and a support unit. Through a snap-fit mechanism, a measuring mechanism, and a diagonal bracing mechanism, it achieves precise positioning and stable support of the secondary keel, reducing human error and worker fatigue.
It improves installation accuracy and efficiency, reduces cumulative errors, simplifies the operation process, and ensures the flatness and safety of the installation.
Smart Images

Figure CN121630090B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of aluminum ceiling panel installation technology, and in particular to an aluminum ceiling panel installation and leveling component for building decoration. Background Technology
[0002] Aluminum ceiling panels are a type of metal decorative material used for interior ceilings. They are widely used in the decoration of kitchens, bathrooms, balconies, and commercial spaces. The overall installation steps include: marking lines for positioning, installing edge trim strips, installing the main keel, installing the secondary keel, and installing the aluminum ceiling panels. The quality of the installation depends on accurate measurement, standardized keel leveling, and meticulous edge finishing.
[0003] Aluminum ceiling panels typically have a width of 30cm. The distance between adjacent secondary keels must be equal to the width of the aluminum ceiling panel. However, in actual installation, the width of the installation space is often not an integer multiple of the aluminum ceiling panel width. In this case, the distance between the edge trim and the outermost secondary keel is often less than the width of the aluminum ceiling panel. Therefore, during the installation of the main and secondary keels, in order to ensure the flatness and uniformity of the installation, a measuring tape is needed to measure the installation height and distribution spacing. Repeatedly measuring with a measuring tape makes it difficult to guarantee the accuracy of the measurement, which in turn affects the installation precision. Moreover, workers need to operate the measuring tape with one hand and adjust the position of the main and secondary keels with the other. Single-handed operation not only affects the installation efficiency but also poses a safety hazard.
[0004] In addition, when installing the secondary keel, the worker's hands must support the weight of the secondary keel, which can easily cause fatigue and lead to unstable positioning. Moreover, in order to support the secondary keel, the worker can only install it with one hand, which affects the installation efficiency and accuracy.
[0005] When installing aluminum ceiling panels over a large area, a greater number of main and secondary keels are required, and the aforementioned problems become more pronounced. Therefore, to ensure installation quality and safety during the installation process, there is an urgent need for an aluminum ceiling panel installation leveling component that can solve these problems. Summary of the Invention
[0006] In view of this, the purpose of the present invention is to provide an aluminum ceiling panel installation and leveling component for building decoration, so as to solve the technical problems existing in the prior art, comprising: a base, on which a snap-fit mechanism for snapping onto the main keel and a level are provided; a measuring unit, including a first measuring mechanism and a second measuring mechanism; and a supporting unit, including a diagonal bracing mechanism slidably disposed on the base and a reinforcing mechanism that cooperates with the diagonal bracing mechanism to enhance the supporting effect, for supporting the secondary keel during installation.
[0007] The first measuring mechanism is rigidly connected to one end of the snap-fit mechanism to limit the first reference length for verifying the distance between the secondary keel and the frame. The second measuring mechanism is elastically slidably connected to the other end of the snap-fit mechanism to limit the second reference length for verifying the distance between adjacent secondary keels.
[0008] Preferably, the snap-fit mechanism includes overlapping members, the base is a U-shaped structure with the opening facing upwards, the distance between the two vertical sections of the base is greater than the width of the main keel, and multiple overlapping members are provided on each vertical section of the base, which are evenly distributed along their length. The end of the overlapping member corresponding to the same vertical section that is away from the opening of the base is connected to a connecting plate, and the connecting plate is elastically slidably connected to the vertical section of the base by a connecting spring.
[0009] Preferably, the first measuring mechanism includes an extension frame that is horizontally slidably mounted on one end of the base. Both sides of the extension frame are provided with slide rods. One slide rod is fixedly connected to the extension frame and is horizontally slidably connected to the base. The other slide rod is rotatably connected to the extension frame and is threadedly connected to the base.
[0010] Preferably, the second measuring mechanism includes a sliding frame that is vertically and elastically slidably mounted on the other end of the base. A support spring is connected between the sliding frame and the base. An adjusting frame is horizontally slidably connected to the end of the sliding frame away from the base via a connecting plate. Round rods are provided on both sides of the adjusting frame. One round rod is fixedly connected to the adjusting frame and is horizontally slidably connected to the sliding frame. The other round rod is rotatably connected to the adjusting frame and is threadedly connected to the sliding frame.
[0011] Preferably, the connecting member includes a fixed plate and a rotating plate. Two fixed plates are fixedly installed on the side of the connecting plate near the base and are distributed vertically. The rotating plate is rotatably installed between the two fixed plates through a torsion spring shaft. The vertical section of the base is provided with a clearance groove corresponding to the connecting member. The clearance groove is composed of a strip groove and guide grooves that are respectively connected to the upper and lower ends of the strip groove.
[0012] Preferably, there are two inclined bracing mechanisms, which are respectively set at both ends of the base. The inclined bracing mechanism includes a slider that is horizontally slidably installed at the bottom of the base. The slider has a U-shaped structure. The lower end of the horizontal section of the slider is symmetrically hinged to two connecting rods through a torsion spring rod. An L-shaped support frame is fixedly installed at the end of the connecting rod away from the slider. The vertical section of the slider is provided with a round hole. The vertical section of the base is provided with two sets of horizontally distributed positioning holes. There are two positioning holes in each set. The round hole corresponds to one of the positioning holes and is inserted with a positioning pin.
[0013] Preferably, the inclined support mechanism further includes a driving component for driving the connecting rod to open. The driving component includes a partition block installed at the bottom of the base. The partition block has an isosceles trapezoidal structure. The length of the partition block on the side closer to the slider is less than the length on the side farther from the slider. The vertical section of the support frame has an inclined structure on the side closer to the partition block. The partition block located at one end of the base corresponding to the second measuring mechanism is inserted into the base and positioned by a locking component.
[0014] Preferably, the reinforcing mechanism includes a reinforcing rod that slides horizontally through the partition block, a return spring connecting the end of the reinforcing rod near the slider to the partition block, and an L-shaped bracket fixedly installed at the end of the reinforcing rod away from the slider, with the height of the reinforcing rod corresponding to that of the slider.
[0015] Preferably, a wedge-shaped block is fixedly provided at the upper end of the linkage plate, with the inclined surface of the wedge-shaped block facing the side close to the center of the base. A transverse frame is fixedly provided at the lower end of the linkage plate. The transverse frame consists of two longitudinal rods fixedly connected to the lower end of the linkage plate and a transverse plate fixedly connected between the lower ends of the two longitudinal rods. A lifting block is slidably installed at the lower end of the base. The opposite sides of the lifting block and the transverse plate are both inclined surfaces and fit together.
[0016] Preferably, the locking component includes locking holes on both sides of the base corresponding to the second measuring mechanism. The base has a slot communicating with the locking holes. A strip is vertically and elastically slidably installed in the slot. The lower end of the strip is fixedly connected to a partition block located at the end of the base corresponding to the second measuring mechanism. The strip has an alignment hole corresponding to the locking hole. A locking rod is elastically inserted between the locking hole and the alignment hole. Limiting strips are fixedly connected to both sides of the sliding frame through mounting blocks. The limiting strips have clearance grooves. In the initial state, the end of the locking rod away from the strip abuts against the side wall of the limiting strip.
[0017] As can be seen from the above technical solutions, the aluminum ceiling panel installation and leveling component designed by the present invention has the following beneficial effects: 1. The present invention uses an adjustable first measuring mechanism and a second measuring mechanism to adjust the length in advance according to the installation needs. By using a fixed-length measuring mechanism to replace the measuring tape, human reading errors and cumulative errors are avoided, ensuring the accuracy of the secondary keel spacing and edge distance, and serving as a solid foundation for the flat installation of aluminum ceiling panels.
[0018] 2. This invention solves the problem of workers having to hold the secondary keel by hand for installation by designing a support unit. The weight is shared by the expandable support frame and the L-shaped frame, allowing workers to free their hands for precise positioning and fixation. This not only reduces fatigue but also avoids safety hazards caused by fatigue or single-handed operation.
[0019] 3. This invention achieves automatic opening when pushed upward and automatic locking after positioning by engaging the wedge block with the inclined surface of the main keel in the snap-fit mechanism. Combined with the unlocking mechanism of the pull-down lifting block, it enables quick one-handed assembly and disassembly, which helps to ensure the stability of construction efficiency.
[0020] In summary, this invention integrates three major functions—spacing measurement, level calibration, and secondary keel support—into one unit. Workers no longer need to frequently switch between measuring tape, level, and hand support, achieving "multi-purpose functionality in one machine." This greatly simplifies the operation process, shortens single-point operation time, and specifically solves problems such as low measurement accuracy, inconvenient operation, and worker fatigue during aluminum ceiling panel installation. Attached Figure Description
[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0022] Figure 1 This is a three-dimensional structural diagram of the present invention from a first perspective.
[0023] Figure 2 This is a three-dimensional structural diagram of the present invention from a second perspective.
[0024] Figure 3 yes Figure 2 Enlarged view of point B in the middle.
[0025] Figure 4 This is a top view of the present invention.
[0026] Figure 5 This is a front view of the present invention.
[0027] Figure 6 This is a bottom view of the present invention.
[0028] Figure 7 It is a three-dimensional structural diagram of the locking mechanism and the sliding frame.
[0029] Figure 8 This is a side sectional view of the base and locking components.
[0030] Figure 9 This is a top sectional view of the base and the locking mechanism.
[0031] Figure 10 This is a side sectional view of the base and sliding frame.
[0032] Figure 11 yes Figure 1 Enlarged view of point A in the middle.
[0033] Figure 12 It is a three-dimensional structural diagram of the main keel and the secondary keel.
[0034] Reference numerals: 11. Base; 12. Snap-fit mechanism; 121. Connecting piece; 122. Linking plate; 123. Fixing plate; 124. Rotating plate; 111. Alignment groove; 125. Wedge block; 126. Horizontal movement frame; 127. Lifting block; 13. Level; 2. Measuring unit; 21. First measuring mechanism; 22. Second measuring mechanism; 211. Extension frame; 212. Slide rod; 220. Support spring; 221. Sliding frame; 222. Adjusting frame; 223. Round rod; 3. Support unit; 31. Diagonal brace mechanism; 32. Reinforcing mechanism; 311. Sliding block; 312. Connecting rod; 313. Support frame; 314. Positioning pin; 315. Divider block; 316. Insert strip; 317. Locking rod; 318. Limiting strip; 321. Reinforcing rod; 322. L-shaped frame; 4. Main keel; 5. Secondary keel; 6. Notch. Detailed Implementation
[0035] To enable those skilled in the art to better understand the present invention, the invention will be further described in detail below with reference to the accompanying drawings and specific embodiments. Obviously, the described embodiments are merely some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0036] See Figure 1 and Figure 2 A leveling component for installing aluminum ceiling panels for building decoration includes a base 11, a measuring unit 2 and a supporting unit 3. The base 11 is provided with a snap-fit mechanism 12 for snapping onto the main keel 4. The base 11 is also provided with a level 13, specifically, the level 13 is an existing bubble tube level.
[0037] See Figure 1 The measuring unit 2 includes a first measuring mechanism 21 and a second measuring mechanism 22 located at both ends of the base 11. The first measuring mechanism 21 is rigidly connected to the snap-fit mechanism 12 and is used to verify the distance between the secondary keel 5 and the frame. The second measuring mechanism 22 is slidably connected to the snap-fit mechanism 12 and is used to verify the distance between adjacent secondary keels 5.
[0038] See Figure 1 , Figure 2 and Figure 4 The snap-fit mechanism 12 includes a snap-fit member 121. The base 11 is a U-shaped structure with the opening facing upward. Multiple snap-fit members 121 are evenly distributed along the length of the vertical section of the base 11. The end of the snap-fit member 121 corresponding to the same vertical section that is away from the opening of the base 11 is connected to a connecting plate 122. The connecting plate 122 and the vertical section of the base 11 are elastically slidably connected by a connecting spring.
[0039] When the snap-fit mechanism 12 needs to be snapped onto the main keel 4, the connecting plate 122 is manually moved away from the base 11, so that the distance between the overlapping pieces 121 on the two vertical sections is greater than the width of the main keel 4. Then, the base 11 can be snapped onto the outside of the main keel 4 from bottom to top. After that, the connecting plate 122 is moved closer to the base 11, so that the lower end of the overlapping piece 121 contacts the upper end of the main keel 4, thus completing the installation of the snap-fit mechanism 12. This allows the level of the main keel 4 to be stably tested by the level instrument 13.
[0040] See Figure 4 and Figure 9 To further improve the ease of operation, the following improvements are made to the overlapping member 121: The overlapping member 121 includes a fixed plate 123 and a rotating plate 124. The connecting plate 122 is fixedly installed on the side near the base 11 and the two fixed plates 123 are distributed vertically. The rotating plate 124 is rotatably installed between the two fixed plates 123 through a torsion spring shaft.
[0041] See Figure 1 , Figure 9 and Figure 11 The vertical section of the base 11 is provided with a clearance groove 111 corresponding to the overlapping member 121. Specifically, the clearance groove 111 is composed of a strip groove and guide grooves that are connected to the upper and lower ends of the strip groove. The strip groove is used to avoid the rotating plate 124 when it rotates, and the guide groove is used to guide and limit the fixed plate 123.
[0042] In the initial state, under the elastic force of the torsion spring shaft, the rotating plate 124 is distributed perpendicularly to the vertical section of the base 11, and the rotating plate 124 overlaps the upper end of the main keel 4. The rotating plate 124 in the multiple overlapping parts 121 jointly support the entire installation and leveling assembly, ensuring stability during operation.
[0043] The main keel 4 is fixedly installed on the ceiling using mounting hardware. Specifically, the hanger is fixed to the ceiling using expansion bolts. An adjustable nut and hanger are fitted onto the lower end of the hanger. The main keel is then passed through the hanger and initially fixed with the nut. The height of the main keel is adjusted by adjusting the nut at the lower end of the hanger to ensure its levelness.
[0044] The secondary keel is vertically suspended below the main keel by a hanger. Specifically, one end of the special hanger is inserted into the main keel, and then the secondary keel is inserted into the slot at the bottom of the hanger.
[0045] When it is necessary to check the levelness of different positions of the main keel 4 or to install the secondary keel 5 at the next position, the worker can directly move the base 11 on the main keel 4. When the rotating plate 124 comes into contact with the hanger of the main keel 4, the rotating plate 124 will rotate in the opposite direction of movement to avoid the hanger. When the base 11 moves to the point where the rotating plate 124 is misaligned with the hanger, the rotating plate 124 will reset under the elastic force of the torsion spring shaft and resume its supporting function. There is no need to remove the snap-fit mechanism 12 from the main keel 4 and then reinstall it at the next position, which improves the convenience of the overall operation and facilitates the efficient installation. It should be noted that the distance between the two vertical sections of the base 11 is greater than the width of the hanger of the main keel 4 to avoid the hanger on the main keel 4 during movement. In addition, the total width of the vertical section of the base 11 and the outer part of the vertical section is less than the distance between the hanger rod and the hanger of the main keel 4 to avoid interference during movement.
[0046] Since there are multiple overlapping pieces 121 that are independent of each other, when the rotating plate 124 that is in contact with the mounting piece rotates, the rotating plate 124 of multiple overlapping pieces 121 still overlaps the upper end face of the main keel 4, thereby ensuring the overall stability of the snap-fit mechanism 12 when it moves.
[0047] See Figure 1 , Figure 2 and Figure 5 The first measuring mechanism 21 includes an extension frame 211 that is horizontally slidably mounted on one end of the base 11. The extension frame 211 is U-shaped and has slide rods 212 on both sides. One slide rod 212 is fixedly connected to the extension frame 211 and is horizontally slidably connected to the base 11. The other slide rod 212 is rotatably connected to the extension frame 211 and is threadedly connected to the base 11.
[0048] Before installation, determine the spacing between the secondary keel 5 and the frame installed on the wall, based on the actual width of the aluminum ceiling panel and the size of the work space. That is, the first reference length, and based on this, the distance between the extension frame 211 and the base 11 is adjusted by rotating one side slide bar 212, so that the total length of the base 11 and the extension frame 211 protruding from the base 11 is equal to the first reference length. equal.
[0049] See Figure 1 , Figure 2 , Figure 4 , Figure 5 and Figure 10The second measuring mechanism 22 includes a sliding frame 221 that is vertically and elastically slidably installed at the other end of the base 11. A support spring 220 is connected between the sliding frame 221 and the base 11. An adjusting frame 222 is horizontally slidably connected to the end of the sliding frame 221 away from the base 11 via a connecting plate. Both the sliding frame 221 and the adjusting frame 222 are U-shaped. The distance between the vertical sections of the extension frame 211, the sliding frame 221 and the adjusting frame 222 is greater than the distance between the vertical sections of the base 11. Both sides of the adjusting frame 222 are provided with round rods 223. One side of the round rod 223 is fixedly connected to the adjusting frame 222 and is horizontally slidably connected to the sliding frame 221. The other side of the round rod 223 is rotatably connected to the adjusting frame 222 and is threadedly connected to the sliding frame 221.
[0050] Before starting work, determine the spacing between adjacent secondary keels 5 based on the actual width of the aluminum ceiling panels and the size of the work space. That is, the second reference length, and based on this, the distance between the sliding frame 221 and the adjusting frame 222 is adjusted by rotating one side of the round rod 223, so that the total length of the base 11, the extension frame 211 protruding from the base 11 and the second measuring mechanism 22 is equal to the second reference length. equal.
[0051] See Figure 1 and Figure 2 The supporting unit 3 includes a diagonal bracing mechanism 31 slidably mounted on the snap-fit mechanism 12 and a reinforcing mechanism 32 that works in conjunction with the diagonal bracing mechanism 31 to enhance the supporting effect.
[0052] See Figure 1 , Figure 2 and Figure 6 The number of the diagonal bracing mechanisms 31 is two, with each diagonal bracing mechanism 31 respectively located at both ends of the base 11. Each diagonal bracing mechanism 31 includes a slider 311 horizontally slidably mounted on the bottom of the base 11. The slider 311 has a U-shaped structure. Two connecting rods 312 are symmetrically hinged at the lower end of the horizontal section of the slider 311 via a torsion spring rod (not shown in the figure). An L-shaped support frame 313 is fixedly mounted at the end of the connecting rod 312 away from the slider 311. The vertical section of the slider 311 has round holes, and the vertical section of the base 11 has two sets of horizontally distributed positioning holes, with each set containing a certain number of positioning holes. The quantity is two, and the two positioning holes correspond to the initial position and working position of the slider 311, respectively. The round hole corresponds to one of the positioning holes and is connected to a positioning pin 314. When the positioning pin 314 is connected between the round hole and the positioning hole corresponding to the initial position, the connecting rod 312 is in a retracted state and is completely located under the base 11, thereby reducing the overall space occupied by the invention and facilitating storage and movement. When the positioning pin 314 is connected between the round hole and the positioning hole corresponding to the working position, the connecting rod 312 is located outside the base 11, so that the support frame 313 can support the secondary keel 5.
[0053] Continue reading Figure 1 , Figure 2 and Figure 6 The inclined support mechanism 31 further includes a driving component for driving the connecting rod 312 to open. The driving component includes a partition block 315 installed at the bottom of the base 11. The partition block 315 has an isosceles trapezoidal structure. The length of the partition block 315 on the side closer to the slider 311 is less than the length on the side farther from the slider 311. The vertical section of the support frame 313 has an inclined structure on the side closer to the partition block 315. The partition block 315 located at one end of the base 11 corresponding to the first measuring mechanism 21 is fixedly connected to the base 11. The partition block 315 located at one end of the base 11 corresponding to the second measuring mechanism 22 is inserted into the base 11 and positioned by a locking component.
[0054] See Figure 1 , Figure 2 and Figure 5 The reinforcing mechanism 32 includes a reinforcing rod 321 that slides horizontally through the partition block 315. A return spring is connected between the end of the reinforcing rod 321 near the slider 311 and the partition block 315. An L-shaped frame 322 is fixedly installed at the end of the reinforcing rod 321 away from the slider 311. The height of the reinforcing rod 321 corresponds to that of the slider 311.
[0055] When the secondary keel 5 needs to be supported, the slider 311 on the corresponding side is manually slid. The slider 311 pushes out the support frame 313 through the connecting rod 312. During this process, the connecting rod 312 abuts against the partition block 315, causing the two connecting rods 312 to rotate in opposite directions. The two support frames 313 are arranged in an inclined symmetrical manner to provide symmetrical support for the secondary keel 5. At the same time, the slider 311 abuts against the end of the reinforcing rod 321 and generates a thrust on the reinforcing rod 321, causing the reinforcing rod 321 to drive the L-shaped frame 322 to extend. The L-shaped frame 322 shares the weight of the secondary keel 5, reduces the burden on the support frame 313, and enhances the support effect.
[0056] After one secondary keel 5 is installed, the worker moves the invention to the next installation position along the main keel 4, and then repeats the installation action of the secondary keel 5. When all the secondary keels 5 are installed, the slider 311 can be manually reset. After the slider 311 is reset, the thrust on the reinforcing rod 321 disappears. Under the elastic force of the reset spring, the reinforcing rod 321 drives the L-shaped frame 322 to reset.
[0057] It should be noted that, in order to improve the accuracy of the position after the present invention is moved, and thus ensure the precise installation of the secondary keel 5, the worker can mark the position of the end of the main keel 4 corresponding to the end of the present invention. When installing the next secondary keel 5, the starting end of the present invention can be moved to the position corresponding to the mark.
[0058] After the secondary keel 5 is initially installed on the main keel 4, if it is necessary to verify the spacing between adjacent secondary keels 5, the present invention can be placed between the two secondary keels 5 from bottom to top, and the end of the extension frame 211 away from the base 11 should abut against the side wall of one of the secondary keels 5. If at this time the end of the adjustment frame 222 away from the base 11 can just abut against the side wall of the other secondary keel 5, it indicates that the spacing between the two secondary keels 5 meets the requirements. If the end of the adjustment frame 222 away from the base 11 still has a distance from the side wall of the secondary keel 5, or the distance between the secondary keels 5 is less than the total length of the extension frame 211, the base 11, the sliding frame 221 and the adjustment frame 222, then the position of the secondary keel 5 needs to be adjusted.
[0059] When verifying the distance between the side secondary keel 5 and the frame, the present invention is placed between the secondary keel 5 and the frame from bottom to top, and the end of the extension frame 211 away from the base 11 is made to abut against the side wall of the frame. If the end of the base 11 away from the extension frame 211 can just abut against the side wall of the secondary keel 5, it indicates that the distance between the secondary keel 5 and the frame meets the requirements. If the end of the base 11 away from the extension frame 211 is still far from the side wall of the secondary keel 5, or if the distance between the secondary keel 5 and the frame is less than the total length of the extension frame 211 and the base 11, the position of the secondary keel 5 needs to be adjusted.
[0060] Compared to existing tape measure methods, the above measurement method can lock the length of the measuring piece in advance, eliminating the need for repeated tape measure adjustments, simplifying the measurement process, improving measurement efficiency, and completely avoiding cumulative errors caused by multiple operations, thus improving measurement accuracy.
[0061] It should be noted that, due to Less than When measuring the distance between the secondary keel 5 and the frame, the upper end of the sliding frame 221 is blocked by the secondary keel 5 and cannot move upward with the base 11. The sliding frame 221 moves downward relative to the base 11, and the support spring 220 between the sliding frame 221 and the base 11 is compressed. When the base 11 and the first measuring mechanism 21 move out from between the secondary keel 5, the obstruction at the upper end of the sliding frame 221 is released, and the support spring 220 drives the sliding frame 221 to move upward and reset, thereby preventing the sliding frame 221 from interfering with the measurement of the distance between the secondary keel 5 and the frame, and ensuring the efficient and continuous operation of the measurement.
[0062] To further improve the convenience of measurement, scale lines (not shown in the figure) can be set on the base 11, extension frame 211, sliding frame 221, adjustment frame 222 and connecting plate.
[0063] In addition, such as Figure 12As shown, the width of the secondary keel 5 hanger is greater than the width of the secondary keel 5. To ensure that the side wall of the secondary keel 5 can abut against the end of the corresponding extension frame 211 or adjustment frame 222 during installation, both the extension frame 211 and the adjustment frame 222 are provided with notches 6 to allow the hanger of the secondary keel 5 to pass (e.g., Figure 7 and Figure 9 (As shown).
[0064] The horizontal lengths of the L-shaped frame 322 and the support frame 313 are both greater than the width of the secondary keel 5, thus they can adapt to changes in the overall length of the invention within a certain range. Furthermore, the reinforcing rod 321 and the connecting rod 312 are all detachably connected to the corresponding L-shaped frame 322, support frame 313, partition block 315, and slider 311, and the reinforcing rod 321 and connecting rod 312 of appropriate length can be selected and installed according to actual needs.
[0065] See Figure 7 and Figure 8 The locking component includes locking holes on both sides of the base 11 corresponding to the second measuring mechanism 22. The base 11 has a slot communicating with the locking holes. A strip 316 is vertically and elastically slidably installed in the slot. The strip 316 is connected to the slot by a vertical spring. The lower end of the strip 316 is fixedly connected to a partition block 315 located at one end of the base 11 corresponding to the second measuring mechanism 22. The strip 316 has an alignment hole corresponding to the locking hole. A locking rod 317 is elastically inserted between the locking hole and the alignment hole. A mounting spring is connected between the locking rod 317 and the locking hole. Limiting strips 318 are fixedly connected to both sides of the sliding frame 221 by mounting blocks. The limiting strips 318 have clearance grooves. In the initial state, the end of the locking rod 317 away from the strip 316 abuts against the side wall of the limiting strip 318 at the non-clearance groove.
[0066] In the initial state, the vertical spring is in the extended state, and the insert 316 drives the corresponding partition block 315 to the upper limit position. In this state, the lower end of the sliding frame 221 and the upper end of the L-shaped frame 322 are separated by a certain distance, and the locking hole and the alignment hole correspond one by one. The locking rod 317 is inserted between the locking hole and the alignment hole, and the spring is in the extended state, thereby improving the stability of the position of the partition block 315, so that the L-shaped frame 322 corresponding to the partition block 315 can effectively support the secondary keel 5.
[0067] When the second measuring mechanism 22 moves down to avoid the position, the limiting strip 318 and the locking rod 317 move relative to each other. When the clearance groove on the limiting strip 318 moves to the position corresponding to the locking rod 317, the pressure applied by the limiting strip 318 to the locking rod 317 disappears. Under the elastic force of the corresponding mounting spring, the locking rod 317 moves away from the insert 316. When the locking rod 317 is completely pulled out from the alignment hole, the vertical limitation of the insert 316 is released. When the sliding frame 221 moves down to contact the L-shaped frame 322, the sliding frame 221 can push the L-shaped frame 322 down to avoid the position. There is no need to manually adjust the position of the L-shaped frame 322 separately, which further saves operation time and improves operation efficiency.
[0068] When the second measuring mechanism 22 resets upwards, under the elastic force of the vertical spring, the insert 316 moves the separator 315, reinforcing rod 321, and L-shaped bracket 322 upwards and resets until the upper end of the insert 316 abuts against the upper end of the insertion groove. After the second measuring mechanism 22 resets to its initial position under the elastic force of the support spring 220, the locking hole and the alignment hole align again. The side wall of the limiting strip 318 at the non-along groove applies a pushing force to the end of the locking rod 317 to move the insert. The locking rod 317 re-inserts into the alignment hole to vertically limit the insert 316. A chamfer is provided on the side of the lower end of the along groove near the locking rod 317 to push the locking rod 317 back into the alignment hole.
[0069] See Figure 1 , Figure 2 and Figure 3 To further improve the snap-fit efficiency, the present invention makes the following improvements: a wedge block 125 is symmetrically fixedly arranged on the upper end of the connecting plate 122 along its length direction, with the inclined surface of the wedge block 125 facing the side close to the center of the base 11; a transverse frame 126 is fixedly arranged on the lower end of the connecting plate 122, which consists of two longitudinal rods fixedly connected to the lower end of the connecting plate 122 and a transverse plate fixedly connected between the lower ends of the two longitudinal rods; a lifting block 127 is slidably installed on the lower end of the base 11 through a guide rod, with the opposite sides of the lifting block 127 and the transverse plate being inclined and in close contact with each other.
[0070] When it is necessary to attach the present invention to the main keel 4, hold the base 11 below the main keel 4 and make the inclined surfaces of the wedge-shaped blocks 125 on both sides abut against the lower end of the corresponding side wall of the main keel 4. Then push the base 11 upward. When pushing, the inclined surfaces of the wedge-shaped blocks 125 are squeezed by the side wall of the main keel 4, which drives the connecting plate 122 to move away from the main keel 4. The connecting plate 122 drives the overlapping parts 121 to move synchronously, so that the distance between the two overlapping parts 121 is greater than the width of the main keel 4. Then continue to push the base 11 upward until the base 11 is fully extended. When the horizontal section 1 contacts the lower end face of the main keel 4, the overlapping piece 121 moves up with the base 11 to the upper end face of the main keel 4. The wedge block 125 does not contact the main keel 4. Under the elastic force of the connecting spring, the connecting plate 122 drives the overlapping piece 121 to move closer to the main keel 4, so that the distance between the two overlapping pieces 121 is less than the width of the main keel 4. At this time, the base 11 can be released. Under the action of gravity, the base 11 moves down, and the rotating plate 124 in the overlapping piece 121 overlaps the upper end of the main keel 4, completing the snap-fit action.
[0071] When it is necessary to remove the present invention from the main keel 4, simply pull the lifting block 127 downward manually. During the downward movement of the lifting block 127, the inclined surface of the lifting block 127 that is in contact with the horizontal plate applies a pushing force to the horizontal plate in the direction away from the main keel 4. The horizontal plate drives the connecting plate 122 away from the main keel 4 through the longitudinal rod, thereby causing the connecting plate 122 to drive the overlapping piece 121 away from the main keel 4. Then continue to pull the lifting block 127 down, and the base 11 can be directly removed from the main keel 4.
[0072] The above method further simplifies the snap-fit process, allowing workers to quickly complete the assembly and disassembly of the invention with one hand, thereby ensuring overall work efficiency.
[0073] Based on this, the following installation method can also be adopted: The worker snaps the present invention into the starting position of the installation (i.e., one end abuts against the side wall of the frame), and uses the present invention snapped into the main keel as the installation positioning base for the secondary keel 5 (so that the secondary keel 5 abuts against the end of the present invention and is supported by the diagonal bracing mechanism 31). Since the length of the present invention can be locked in advance according to the installation needs, the installation position of the secondary keel 5 can be accurately positioned to ensure that the installation spacing of the secondary keel 5 meets the design requirements. After the installation is completed at this position, the present invention is removed from the main keel 4 and then quickly snapped into the next installation position. There is no need to verify the installation spacing after the initial installation of the secondary keel 5, which simplifies the operation process.
[0074] In the description of this invention, it should be understood that the orientation or positional relationship indicated by directional terms such as "front, back, up, down, left, right", "horizontal, vertical, horizontal" and "top, bottom" is generally based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing this invention and simplifying the description. Unless otherwise stated, these directional terms do not indicate or imply that the device or element referred to must have a specific orientation or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation on the scope of protection of this invention; the directional terms "inner" and "outer" refer to the inner and outer contours relative to the outline of each component itself.
[0075] In the description of this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can mean that the first and second features are in direct contact, or that the first and second features are in indirect contact through an intermediate medium. Furthermore, "above," "over," and "on top" of the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.
[0076] In the description of this invention, it should also be noted that, unless otherwise explicitly specified and limited, the terms "set," "connected," "installed," and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal communication between two components. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0077] The above provides a detailed description of an aluminum ceiling panel installation and leveling component for building decoration provided by the present invention. For those skilled in the art, based on the ideas of the embodiments of the present invention, there will be changes in the specific implementation methods and application scope. Therefore, the content of this specification should not be construed as a limitation of the present invention.
Claims
1. A leveling and mounting component for aluminum ceiling panels used in building decoration, characterized in that, include: The base is equipped with a snap-fit mechanism and a level for mounting onto the main keel; The measuring unit includes a first measuring mechanism and a second measuring mechanism; The first measuring mechanism is rigidly connected to one end of the snap-fit mechanism to limit the first reference length in order to verify the distance between the secondary keel and the frame. The second measuring mechanism is elastically slidably connected to the other end of the snap-fit mechanism to limit the second reference length in order to verify the spacing between adjacent secondary keels; When the second measuring mechanism verifies the distance between the secondary keel and the frame, it elastically retracts relative to the base to avoid the secondary keel, and automatically resets after the verification is completed. The support unit includes a diagonal bracing mechanism slidably mounted on the base and a reinforcing mechanism that works in conjunction with the diagonal bracing mechanism to enhance the support effect, used to support the secondary keel during installation; The first reference length is the sum of the lengths of the base and the extended portion of the first measuring mechanism, and the second reference length is the sum of the first reference length and the length of the second measuring mechanism; both the first reference length and the second reference length are adjustable. The second measuring mechanism includes a sliding frame that is vertically and elastically slidably mounted on the other end of the base. A support spring is connected between the sliding frame and the base. An adjustment frame is horizontally slidably connected to the end of the sliding frame away from the base via a connecting plate. Round rods are provided on both sides of the adjustment frame. One round rod is fixedly connected to the adjustment frame and is horizontally slidably connected to the sliding frame. The other round rod is rotatably connected to the adjustment frame and is threadedly connected to the sliding frame.
2. The aluminum ceiling panel installation and leveling component for building decoration according to claim 1, characterized in that, The snap-fit mechanism includes a snap-fit component. The base is a U-shaped structure with the opening facing upwards. The distance between the two vertical sections of the base is greater than the width of the main keel. Multiple snap-fit components are evenly distributed along the length of each vertical section of the base. The end of the snap-fit component corresponding to the same vertical section that is away from the opening of the base is connected to a connecting plate. The connecting plate and the vertical section of the base are elastically slidably connected by a connecting spring.
3. The aluminum ceiling panel installation and leveling component for building decoration according to claim 1, characterized in that, The first measuring mechanism includes an extension frame that is horizontally slidably mounted on one end of the base. Both sides of the extension frame are provided with slide rods. One slide rod is fixedly connected to the extension frame and is horizontally slidably connected to the base. The other slide rod is rotatably connected to the extension frame and is threadedly connected to the base.
4. The aluminum ceiling panel installation and leveling component for building decoration according to claim 2, characterized in that, The connecting member includes a fixed plate and a rotating plate. Two fixed plates are fixedly installed on the side of the connecting plate near the base and are distributed vertically. A rotating plate is rotatably installed between the two fixed plates through a torsion spring shaft. The vertical section of the base is provided with a clearance groove corresponding to the overlapping parts. The clearance groove is composed of a strip groove and guide grooves that are connected to the upper and lower ends of the strip groove respectively.
5. The aluminum ceiling panel installation and leveling component for building decoration according to claim 1, characterized in that, The number of the diagonal bracing mechanisms is two, and the two diagonal bracing mechanisms are respectively set at both ends of the base. The diagonal bracing mechanism includes a slider that is horizontally slidably installed at the bottom of the base. The slider has a U-shaped structure. The lower end of the horizontal section of the slider is symmetrically hinged to two connecting rods through a torsion spring rod. An L-shaped support frame is fixedly installed at the end of the connecting rod away from the slider. The vertical section of the slider is provided with a round hole. The vertical section of the base is provided with two sets of horizontally distributed positioning holes. There are two positioning holes in each set. The round hole corresponds to one of the positioning holes and is inserted with a positioning pin.
6. The aluminum ceiling panel installation and leveling component for building decoration according to claim 5, characterized in that, The inclined support mechanism also includes a driving component for driving the connecting rod to open. The driving component includes a partition block installed at the bottom of the base. The partition block has an isosceles trapezoidal structure. The length of the partition block on the side closer to the slider is less than the length on the side farther from the slider. The vertical section of the support frame has an inclined structure on the side closer to the partition block. The partition block located at one end of the base corresponding to the second measuring mechanism is inserted into the base and positioned by a locking component.
7. A leveling assembly for installing aluminum ceiling panels in building decoration according to claim 6, characterized in that, The reinforcing mechanism includes a reinforcing rod that slides horizontally through the partition block. A return spring is connected between the end of the reinforcing rod near the slider and the partition block. An L-shaped bracket is fixedly installed at the end of the reinforcing rod away from the slider. The height of the reinforcing rod corresponds to that of the slider.
8. A leveling assembly for installing aluminum ceiling panels in building decoration according to claim 2, characterized in that, A wedge-shaped block is fixedly installed at the upper end of the linkage plate, with the inclined surface of the wedge-shaped block facing the side closest to the center of the base. A transverse frame is fixedly installed at the lower end of the linkage plate. The transverse frame consists of two longitudinal rods fixedly connected to the lower end of the linkage plate and a transverse plate fixedly connected between the lower ends of the two longitudinal rods. A lifting block is slidably installed at the lower end of the base. The opposite sides of the lifting block and the transverse plate are both inclined surfaces and fit together.
9. A leveling assembly for installing aluminum ceiling panels in building decoration according to claim 6, characterized in that, The locking component includes locking holes on both sides of the base corresponding to the second measuring mechanism. The base has a insertion groove communicating with the locking holes. An insertion strip is vertically and elastically slidably installed in the insertion groove. The lower end of the insertion strip is fixedly connected to a partition block located at the base corresponding to the second measuring mechanism. The insert has a corresponding alignment hole, and a locking rod is elastically inserted between the locking hole and the alignment hole. Limiting strips are fixedly connected to both sides of the sliding frame by mounting blocks. The limiting strips have clearance grooves. In the initial state, the end of the locking rod away from the insert abuts against the side wall of the limiting strip.
Citation Information
Patent Citations
House building ceiling
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Thin-wall suspended ceiling decorative plate hoisting device
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