Fabricated ALC wallboard connecting device with embedded anti-seismic nodes

Through the embedded seismic node structure and adjustment mechanism, the problems of ALC wall panel connection device breaking and inconvenient installation during vibration are solved, and the seismic performance and safe and convenient assembly process are achieved.

CN120486677APending Publication Date: 2025-08-15CHINA MCC5 GROUP CORP LTD
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Patent Information

Application Number
CN202510648289.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-20
Publication Date
2025-08-15

AI Technical Summary

Technical Problem

The existing ALC wall panel connection devices lack earthquake resistance and are prone to break during vibration, and are inconvenient and unsafe to adjust the fulcrum position on site to adapt to complex structures.

Method used

The embedded seismic node structure is adopted, including embedded shock absorbing components, adjustment mechanisms and pre-locking mechanisms. The embedded plate supports the seismic mechanisms, and the elastic support and adjustment of the wall panels are achieved through the elastic support and adjustment mechanisms, and debug and install them in combination with the wall panel structure.

Benefits of technology

It improves the seismic resistance of the ALC wall panel connection device, ensures continuous cracking during vibration, safe and convenient operation, and meets complex assembly needs.

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Abstract

The invention discloses a fabricated ALC wallboard connecting device with embedded anti-seismic nodes, and relates to the technical field of ALC wallboard assembly. Comprising four pre-embedded damping assemblies, an adjusting mechanism arranged on the four pre-embedded damping assemblies, at least two pre-locking mechanisms arranged on the adjusting mechanism and used for preliminarily locking an ALC wallboard to be installed, and supporting assemblies arranged on the pre-embedded damping assemblies and used for locking the ALC wallboard to be installed. According to the anti-seismic joint structure, the pre-buried anti-seismic joint structure is formed through the arranged pre-buried damping assemblies, and after the ALC wallboards are fixed, the situation that a connecting device is broken and damaged due to vibration is avoided; the adjusting mechanism is used as a hanging pre-fixing structure of the wallboard, and the pre-locking mechanism is matched in the wallboard mounting process for auxiliary hanging and fixing, so that the safety in the assembling process is improved; the pre-locking mechanism is supported through the arranged adjusting mechanism, the pre-locking mechanism providing a supporting point can be driven to be close to or away from each other, and debugging and installation can be conveniently conducted by combining a wallboard structure on site.
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Description

Technical Field

[0001] The present invention relates to the technical field of ALC wall panel assembly, and more particularly to the technical field of an assembled ALC wall panel connection device with embedded seismic nodes. Background Art

[0002] ALC wall panels are autoclaved aerated concrete wall panels, which are a new type of lightweight and porous building material. They are widely used in building interior partitions, exterior wall enclosures and other parts. ALC wall panels have the advantages of low dry density range, moderate strength, good thermal performance and good durability. Due to their superior comprehensive performance, they are gradually replacing traditional brickwork and gypsum boards. They are particularly suitable for prefabricated buildings and green building projects. During the installation of ALC wall panels, a connecting device is required to fix the wall panel structure. The existing ALC wall panel connecting device can basically meet daily use needs, but the device has poor functionality and does not have earthquake resistance. After installation, the wall panels are prone to deflection or straightness under the influence of vibration. The connection causes the connection device to break and be damaged, affecting the overall practicality; at the same time, the connection device does not have a pre-fixed structure. During the installation of the wall panel, it is necessary to use a hoisting structure to hang the wall panel in a specified position before it can be fixed. The operation is inconvenient and affects the safety of the assembly process; and the existing connection device needs to be connected with the fixed structure set on the wall panel to complete the overall fixation. The production processes of the wall panel and the connection device are relatively independent. It is difficult to adjust the fulcrum position on the device according to the wall panel structure on site, and it is difficult to meet the complex assembly requirements on site; therefore, it is necessary to design an assembled ALC wall panel connection device with pre-buried seismic nodes. Summary of the Invention

[0003] The purpose of the present invention is to solve the above technical problems and provide an assembled ALC wall panel connection device with embedded seismic nodes.

[0004] In order to achieve the above-mentioned purpose, the present invention specifically adopts the following technical solutions:

[0005] The present invention provides an assembled ALC wall panel connection device with pre-embedded seismic nodes, comprising four pre-embedded shock-absorbing components, an adjustment mechanism arranged on the four pre-embedded shock-absorbing components, at least two pre-locking mechanisms arranged on the adjustment mechanism for preliminarily locking the ALC wall panels to be installed, and a support component arranged on each pre-embedded shock-absorbing component for locking the ALC wall panels to be installed.

[0006] Specifically, this solution uses pre-embedded shock-absorbing components to form a pre-embedded seismic node structure. After the ALC wall panels are fixed, the connection devices are prevented from being damaged by vibration, thereby improving the overall practicality. The adjustment mechanism is used as a pre-fixed structure for the suspension of the wall panels. During the installation of the wall panels, the pre-locking mechanism is used to assist in the suspension and fixation. While the operation is convenient, the safety of the assembly process is improved. The adjustment mechanism is used to support the pre-locking mechanism, which can drive the pre-locking mechanism that provides the fulcrum to move closer or further away, making it convenient to debug and install on site in combination with the wall panel structure, meeting the complex assembly requirements on site.

[0007] In one embodiment, each embedded shock-absorbing assembly includes an embedded plate, an anti-seismic mechanism mounted on the embedded plate, a support sleeve mounted on the anti-seismic mechanism, a support column connected to the support sleeve, and a support plate mounted on the support column;

[0008] The adjusting mechanism is mounted on a supporting column at the rear end of the supporting plate.

[0009] Specifically, after the pre-fixing is completed, the four corners of the ALC wall panel are fixed to the support column through the nut locking structure to complete the assembly process of the entire wall panel. The entire ALC wall panel is then covered with multiple elastically supported ALC wall panels as shown in the attached figure to cover the original wall structure. The gaps between the ALC wall panels can be filled with elastic materials to make multiple groups of wall panels form a unified whole.

[0010] In one embodiment, the anti-seismic mechanism includes a connecting plate, a buffer frame, a first spring, a second spring, a limiting column, a side slide groove, a side support, an elastic ring and a support frame;

[0011] The buffer frame is a U-shaped frame, and side slide grooves are symmetrically opened on the two side plates of the U-shaped frame. The support frame is arranged in the U-shaped frame, and side pillars passing through the corresponding side slide grooves are respectively provided at both ends of the support frame. An elastic ring is sleeved on each side pillar, and each elastic ring is slidably connected to the corresponding side slide groove;

[0012] One end of the support frame is connected to the limit column, and the bottom plate of the U-shaped frame is provided with a limit hole for allowing the limit column to pass through. The second spring is sleeved on the limit column between the inner side of the bottom plate of the U-shaped frame and the support frame; the first spring is sleeved on the limit column outside the bottom plate of the U-shaped frame;

[0013] The connecting plate is arranged on one side of the buffer frame, the connecting plate is fixed on the embedded plate, and the supporting sleeve is arranged on the supporting frame away from the side of the connecting plate.

[0014] Working principle: The embedded plate is used to support the seismic mechanism. The embedded plate fixes the connecting plate and the buffer frame to the installation wall through embedded bolts. At the same time, the first spring and the second spring on the buffer frame provide elastic support for the support frame. At the same time, the side pillars on both sides of the support frame are slidably connected in the side slide groove under the sleeve of the elastic ring to provide auxiliary support, which together constitute a pre-embedded seismic node structure. After the ALC wall panel is fixed, the vibration of the entire structure will be buffered by the first spring, the second spring and the elastic ring, avoiding breakage and damage of the connecting device, thereby improving the overall practicality.

[0015] In one embodiment, the two side struts are symmetrically welded to the support frame.

[0016] In one embodiment, the adjustment mechanism includes a mounting plate, a first support, a second support, a double-start screw, an adjustment ring, an adjustment bracket, and a top slide;

[0017] The top slide is horizontally arranged on the top of the mounting plate. There are two second supports, which are fixed on the lower surface of the mounting plate at the same height. Both ends of the stud screw are rotatably connected to the corresponding second supports through bearings. The adjusting ring is fixedly sleeved on the stud screw. The adjusting frame is vertically arranged. The lower end of the adjusting frame is sleeved on the stud screw. The upper end of the adjusting frame is slidably engaged in the top slide.

[0018] The pre-locking mechanism is snap-connected to the adjustment frame.

[0019] In one embodiment, elastic gaskets are evenly arranged on one side of the support plate close to the mounting plate, and the mounting plate is tightly pressed against the elastic gaskets.

[0020] In one embodiment, the pre-locking mechanism includes a square block, a connecting slot arranged on the side of the square block close to the mounting plate, a back circular slot arranged on the side of the square block away from the mounting plate, and a locking frame, the back circular slot and the connecting slot are connected to each other, and the diameter of the back circular slot is larger than the diameter of the connecting slot.

[0021] In one embodiment, the square block is symmetrically provided with mounting holes located on both sides of the communicating slot, the axes of the mounting holes are parallel to the axes of the communicating slot, and the mounting holes are connected to the circular slot on the back. A locking spring is provided in each mounting hole, one end of the locking spring is fixed with a locking bead, and the other end of the locking spring is fixed in the mounting hole, the locking bead is located at one end of the circular slot on the back, and when the locking spring is in a natural state, the locking bead is located or partially located in the circular slot on the back.

[0022] The locking frame is symmetrically provided with two locking grooves which respectively match with corresponding mounting holes at one end away from the ALC wall panel fixing end, and each locking bead matches with the corresponding locking groove.

[0023] In one embodiment, one end of the locking frame passes through the back circular groove and the communicating notch and is fixed to the ALC wall panel.

[0024] In one embodiment, the axis of the back circular groove coincides with the axis of the communicating notch.

[0025] The first support and the second support are used to support the double-headed screw, and the double-headed screw is rotated by the adjusting ring. The square block providing the fulcrum can be driven closer or farther away through the threaded connection between the double-headed screw and the adjusting frame, which is convenient for debugging and installation in combination with the wall panel structure on site, meeting the complex assembly requirements on site; the square blocks between the adjusting frames are used as the hanging pre-fixing structure of the wall panel, and during the installation of the wall panel, the locking frame is inserted from the connecting groove and the four corners of the wall panel are sleeved on the supporting column to achieve preliminary fixation. At this time, one end of the locking frame is rotated and connected to the back circular groove, and then the locking frame is rotated to move the locking groove to the position of the locking bead. At this time, the locking bead will be pressed in the locking groove under the action of the locking spring, so as to realize the rotation fixation of the locking frame. At the same time, the locking frame will not fall off from the square block under the limiting action of the back circular groove, which is convenient to operate and improves the safety of the assembly process.

[0026] The beneficial effects of the present invention are as follows:

[0027] 1. The present invention utilizes the embedded shock-absorbing components to form an embedded seismic node structure. After the ALC wall panel is fixed, the connection device is prevented from being damaged by vibration, thereby improving the overall practicality. The adjustment mechanism is used as a hanging pre-fixing structure for the wall panel. During the installation of the wall panel, the pre-locking mechanism is used to assist in the hanging and fixing. While the operation is convenient, the safety of the assembly process is improved. The adjustment mechanism is used to support the pre-locking mechanism, which can drive the pre-locking mechanism providing the fulcrum to move closer or further away, making it convenient to debug and install on site in combination with the wall panel structure, thus meeting the complex assembly requirements on site.

[0028] 2. The present invention utilizes embedded plates to support the seismic resistance mechanism. The embedded plates fix the connecting plates and the buffer frame to the mounting wall surface through embedded bolts. At the same time, the first and second springs on the buffer frame provide elastic support for the support frame. At the same time, the side pillars on both sides of the support frame are slidably connected in the side sliding grooves under the sleeve of the elastic ring to provide auxiliary support, together forming a pre-embedded seismic resistance node structure.

[0029] 3. After the ALC wall panel is fixed, the vibration of the entire structure will be buffered by the first spring, the second spring and the elastic ring, avoiding breakage and damage of the connecting device, thereby improving the overall practicality.

[0030] 4. The square blocks between the adjustment frames are used as the pre-fixed structure for hanging the wall panels. During the installation of the wall panels, the locking frame is inserted into the connecting groove and the four corners of the wall panels are sleeved on the support column to achieve preliminary fixation. At this time, one end of the locking frame is rotated and connected to the circular groove on the back. Then, by rotating the locking frame, the locking groove is moved to the position of the locking bead. At this time, the locking bead will be pressed into the locking groove under the action of the locking spring to achieve rotational fixation of the locking frame. At the same time, the locking frame will not fall off from the square block under the limiting action of the circular groove on the back. It is convenient to operate and improves the safety of the assembly process.

[0031] 5. The double-headed screw is supported by the first and second supports. The double-headed screw is rotated by the adjusting ring. The square block providing the fulcrum can be driven closer or further away through the threaded connection between the double-headed screw and the adjusting frame, which facilitates debugging and installation on site in combination with the wall panel structure, meeting the complex assembly requirements on site. BRIEF DESCRIPTION OF THE DRAWINGS

[0032] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following is a brief introduction to the drawings required for use in the embodiments. It should be understood that the following drawings only illustrate certain embodiments of the present invention and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without paying any creative work.

[0033] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0034] Figure 2 It is an exploded view of the local structure of the present invention;

[0035] Figure 3 for Figure 2 A partial enlarged view of area A in the middle;

[0036] Figure 4 for Figure 2 A partial enlarged view of the middle B area;

[0037] Figure 5 for Figure 2 A partial enlarged view of the middle C area;

[0038] Figure 6 It is a schematic diagram of the local structure of the present invention;

[0039] Figure 7 This is a schematic diagram of the assembly of the embedded plate and the seismic resistance mechanism on the wall structure in the present invention;

[0040] Figure 8 This is a schematic diagram of the structure of the present invention after the adjustment mechanism is installed on the embedded plate foundation;

[0041] Figure 9 This is a schematic diagram of the structure after the ALC wall panel is installed in the present invention;

[0042] Figure numerals: 1. embedded plate; 2. anti-seismic mechanism; 3. support sleeve; 4. support column; 5. adjustment mechanism; 6. pre-locking mechanism; 7. support plate; 21. connecting plate; 22. buffer frame; 23. first spring; 24. second spring; 25. limit column; 26. side slide groove; 27. side support column; 28. elastic ring; 29. support frame; 51. mounting plate; 52. first support; 53. second support; 54. double-headed screw; 55. adjustment ring; 56. adjustment frame; 57. top slide groove; 61. square block; 62. connecting notch; 63. back circular groove; 64. locking spring; 65. locking bead; 66. locking groove; 67. locking frame. DETAILED DESCRIPTION

[0043] To make the technical problems, technical solutions, and technical effects of the present invention more clear, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, not all embodiments. Generally, the components of the embodiments of the present invention described and shown in the drawings herein can be arranged and designed in various different configurations.

[0044] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the invention as claimed, but rather merely represents selected embodiments of the present invention. All other embodiments derived by persons of ordinary skill in the art based on the embodiments of the present invention without creative effort are intended to fall within the scope of protection of the present invention.

[0045] It should be noted that similar reference numerals and letters represent similar items in the following drawings. Therefore, once an item is defined in one drawing, it does not need to be further defined or explained in subsequent drawings. In addition, the terms "first," "second," etc. are used only to distinguish the descriptions and are not to be understood as indicating or implying relative importance.

[0046] In the description of the embodiments of the present invention, it should be noted that the terms "inside", "outside", "upper", etc. indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, or are the orientations or positional relationships in which the inventive product is usually placed when in use. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, they cannot be understood as limitations on the present invention.

[0047] Example 1

[0048] like Figures 1 to 9As shown, this embodiment provides an assembled ALC wall panel connection device with pre-embedded seismic nodes, including four pre-embedded shock-absorbing components, an adjustment mechanism 5 arranged on the four pre-embedded shock-absorbing components, at least two pre-locking mechanisms 6 arranged on the adjustment mechanism for preliminarily locking the ALC wall panels to be installed, and a support component arranged on each pre-embedded shock-absorbing component for locking the ALC wall panels to be installed.

[0049] Each embedded shock-absorbing assembly includes an embedded plate 1, an anti-seismic mechanism 2 installed on the embedded plate 1, a support sleeve 3 installed on the anti-seismic mechanism 2, a support column 4 connected to the support sleeve 3, and a support plate 7 sleeved on the support column 4;

[0050] The adjustment mechanism 5 is mounted on the support column 4 located at the rear end of the support plate 7 .

[0051] Specifically, after the pre-fixing is completed, the four corners of the ALC wall panel are fixed to the support column 4 through the nut locking structure to complete the assembly process of the entire wall panel. Figure 9 As shown, the original wall structure is covered by multiple elastically supported ALC wall panels, and the gaps between the ALC wall panels can be filled with elastic materials so that the multiple sets of wall panels form a unified whole.

[0052] Example 2

[0053] This embodiment is a further optimization based on the embodiment 1, specifically:

[0054] The anti-seismic mechanism 2 includes a connecting plate 21, a buffer frame 22, a first spring 23, a second spring 24, a limiting column 25, a side slide groove 26, a side support 27, an elastic ring 28 and a support frame 29;

[0055] The buffer frame 22 is a U-shaped frame, and side slide grooves 26 are symmetrically opened on the two side plates of the U-shaped frame. The support frame 29 is arranged in the U-shaped frame. The two ends of the support frame 29 are respectively provided with side pillars 27 passing through the corresponding side slide grooves 26. An elastic ring 28 is sleeved on each side pillar 27, and each elastic ring 28 is slidably connected to the corresponding side slide groove 26.

[0056] One end of the support frame 29 is connected to the limiting column 25. The bottom plate of the U-shaped frame is provided with a limiting hole for allowing the limiting column 25 to pass through. The second spring 24 is sleeved on the limiting column 25 between the inner side of the bottom plate of the U-shaped frame and the support frame 29; the first spring 23 is sleeved on the limiting column 25 on the outer side of the bottom plate of the U-shaped frame.

[0057] The connecting plate 21 is arranged on one side of the buffer frame 22 , the connecting plate 21 is fixed on the embedded plate 1 , and the supporting sleeve 3 is arranged on the supporting frame 29 away from the side of the connecting plate 21 .

[0058] The two side supports 27 are symmetrically welded to the support frame 29 .

[0059] Working principle: Specific installation as attached Figure 7 As shown, the embedded plate 1 is used to support the seismic mechanism 2. The embedded plate 1 fixes the connecting plate 21 and the buffer frame 22 to the installation wall through embedded bolts. At the same time, the first spring 23 and the second spring 24 on the buffer frame 22 provide elastic support for the support frame 29. At the same time, the side pillars 27 on both sides of the support frame 29 are slidably connected in the side slide groove 26 under the sleeve of the elastic ring 28 to provide auxiliary support, which together constitute a pre-embedded seismic node structure. After the ALC wall panel is fixed, the entire structure will be buffered by the first spring 23, the second spring 24 and the elastic ring 28 when it is subjected to vibration, so as to avoid breakage and damage of the connecting device and improve the overall practicality.

[0060] Example 3

[0061] This embodiment is a further optimization based on the second embodiment, specifically:

[0062] The adjustment mechanism 5 includes a mounting plate 51, a first support 52, a second support 53, a double-headed screw 54, an adjustment ring 55, an adjustment frame 56 and a top slide 57;

[0063] The top chute 57 is horizontally arranged on the top of the mounting plate 51. There are two second supports 53, which are fixed to the lower surface of the mounting plate 51 at the same height. The two ends of the double-headed screw 54 are rotatably connected to the corresponding second supports 53 through bearings. The adjustment ring 55 is fixedly sleeved on the double-headed screw 54. The adjustment frame 56 is vertically arranged. The lower end of the adjustment frame 56 is sleeved on the double-headed screw 54. The upper end of the adjustment frame 56 slides and engages in the top chute 57.

[0064] The pre-locking mechanism 6 is clamped on the adjustment frame 56 .

[0065] Elastic gaskets are evenly arranged on one side of the support plate 7 close to the mounting plate 51 , and the mounting plate 51 is tightly pressed against the elastic gaskets.

[0066] Example 4

[0067] This embodiment is a further optimization based on the embodiment 3, specifically:

[0068] The pre-locking mechanism 6 includes a square block 61, a connecting slot 62 arranged on the side of the square block 61 close to the mounting plate 51, a back circular slot 63 arranged on the side of the square block 61 away from the mounting plate 51, and a locking frame 67. The back circular slot 63 is connected to the connecting slot 62, and the diameter of the back circular slot 63 is larger than the diameter of the connecting slot 62.

[0069] The square block 61 is symmetrically provided with mounting holes on both sides of the communicating slot 62. The axis of each mounting hole is parallel to the axis of the communicating slot 62, and each mounting hole is connected to the back circular slot 63. A locking spring 64 is provided in each mounting hole. A locking bead 65 is fixed to one end of the locking spring 64, and the other end of the locking spring 64 is fixed in the mounting hole. The locking bead 65 is located at one end of the back circular slot 63. When the locking spring 64 is in the natural state, the locking bead 65 is located or partially located in the back circular slot 63.

[0070] The locking frame 67 is symmetrically provided with two locking grooves 66 that respectively match the corresponding mounting holes at one end away from the ALC wall panel fixing end, and each locking bead 65 matches the corresponding locking groove 66 .

[0071] One end of the locking frame 67 passes through the back circular groove 63 and the communicating notch 62 and is fixed to the ALC wallboard.

[0072] The axis of the back circular groove 63 coincides with the axis of the communicating notch 62 .

[0073] Specifically, as attached Figure 8 As shown, the adjustment mechanism 5 is installed on the anti-seismic mechanism 2, and the first support 52 and the second support 53 are used to support the double-headed screw 54. The double-headed screw 54 is rotated by the adjusting ring 55, and the square block 61 providing the fulcrum can be driven closer or farther away through the threaded connection between the double-headed screw 54 and the adjustment frame 56, which is convenient for debugging and installation in combination with the wall panel structure on site, meeting the complex assembly requirements on site; the square block 61 between the adjustment frame 56 is used as a hanging pre-fixed structure for the wall panel, and the locking frame 67 is connected to the wall panel during the installation process. The notch 62 is inserted into the wall panel so that the four corners of the wall panel are inserted into the support column 4 to achieve preliminary fixation. At this time, one end of the locking frame 67 is rotatably connected to the back circular groove 63. Then, by rotating the locking frame 67, the locking groove 66 is moved to the position of the locking bead 65. At this time, the locking bead 65 will be pressed into the locking groove 66 under the action of the locking spring 64, thereby achieving rotational fixation of the locking frame 67. At the same time, the locking frame 67 will not fall off from the square block 61 under the limiting action of the back circular groove 63, which makes the operation convenient and improves the safety of the assembly process.

Claims

1. An assembled ALC wall panel connection device with embedded seismic nodes, characterized by: The invention comprises four pre-embedded shock-absorbing components, an adjusting mechanism (5) arranged on the four pre-embedded shock-absorbing components, at least two pre-locking mechanisms (6) arranged on the adjusting mechanism for preliminarily locking the ALC wall panel to be installed, and a supporting component arranged on each of the pre-embedded shock-absorbing components for locking the ALC wall panel to be installed.

2. The assembled ALC wall panel connection device with embedded seismic nodes according to claim 1, characterized in that: Each of the embedded shock-absorbing components comprises an embedded plate (1), an anti-seismic mechanism (2) mounted on the embedded plate (1), a support sleeve (3) mounted on the anti-seismic mechanism (2), a support column (4) connected to the support sleeve (3), and a support plate (7) sleeved on the support column (4); The adjustment mechanism (5) is mounted on the support column (4) located at the rear end of the support plate (7).

3. The assembled ALC wall panel connection device with embedded seismic nodes according to claim 2, characterized in that: The anti-seismic mechanism (2) comprises a connecting plate (21), a buffer frame (22), a first spring (23), a second spring (24), a limiting column (25), a side sliding groove (26), a side support (27), an elastic ring (28) and a support frame (29); The buffer frame (22) is a U-shaped frame, and side sliding grooves (26) are symmetrically opened on the two side plates of the U-shaped frame. The support frame (29) is arranged in the U-shaped frame, and side pillars (27) passing through the corresponding side sliding grooves (26) are respectively provided at both ends of the support frame (29). An elastic ring (28) is sleeved on each side pillar (27), and each elastic ring (28) is slidably connected in the corresponding side sliding groove (26); One end of the support frame (29) is connected to the limiting column (25); a limiting hole is provided on the bottom plate of the U-shaped frame to allow the limiting column (25) to pass through; the second spring (24) is sleeved on the limiting column (25) between the inner side of the bottom plate of the U-shaped frame and the support frame (29); the first spring (23) is sleeved on the limiting column (25) on the outer side of the bottom plate of the U-shaped frame; The connecting plate (21) is arranged on one side of the buffer frame (22), the connecting plate (21) is fixed on the embedded plate (1), and the supporting sleeve (3) is arranged on the supporting frame (29) away from the side of the connecting plate (21).

4. The assembled ALC wall panel connection device with embedded seismic nodes according to claim 3, characterized in that: The two side pillars (27) are symmetrically welded to the support frame (29).

5. The assembled ALC wall panel connection device with embedded seismic nodes according to claim 3, characterized in that: The adjustment mechanism (5) comprises a mounting plate (51), a first support (52), a second support (53), a double-headed screw (54), an adjustment ring (55), an adjustment frame (56) and a top slide (57); The top chute (57) is horizontally arranged on the top of the mounting plate (51), the number of the second supports (53) is two, and the two are fixed at the same height on the lower surface of the mounting plate (51), the two ends of the double-headed screw (54) are rotatably connected to the corresponding second supports (53) through bearings, the adjusting ring (55) is fixedly sleeved on the double-headed screw (54), the adjusting frame (56) is vertically arranged, the lower end of the adjusting frame (56) is sleeved on the double-headed screw (54), and the upper end of the adjusting frame (56) is slidably engaged in the top chute (57); The pre-locking mechanism (6) is clamped on the adjustment frame (56).

6. The assembled ALC wall panel connection device with embedded seismic nodes according to claim 5, characterized in that: Elastic gaskets are evenly arranged on one side of the support plate (7) close to the mounting plate (51), and the mounting plate (51) is tightly pressed against the elastic gaskets.

7. The assembled ALC wall panel connection device with embedded seismic nodes according to claim 5, characterized in that: The pre-locking mechanism (6) comprises a square block (61), a communicating notch (62) provided on the square block (61) on a side close to the mounting plate (51), a back circular groove (63) provided on the square block (61) on a side away from the mounting plate (51), and a locking frame (67); the back circular groove (63) and the communicating notch (62) are communicated with each other, and the diameter of the back circular groove (63) is larger than the diameter of the communicating notch (62).

8. The assembled ALC wall panel connection device with embedded seismic nodes according to claim 7, characterized in that: The square block (61) is symmetrically provided with mounting holes located on both sides of the communicating slot (62), the axis of each mounting hole is parallel to the axis of the communicating slot (62), and each mounting hole is connected to the back circular slot (63), and a locking spring (64) is provided in each mounting hole, one end of the locking spring (64) is fixed with a locking bead (65), and the other end of the locking spring (64) is fixed in the mounting hole, the locking bead (65) is located at one end of the back circular slot (63), and when the locking spring (64) is in a natural state, the locking bead (65) is located or partially located in the back circular slot (63); The locking frame (67) is symmetrically provided with two locking grooves (66) respectively matched with the corresponding mounting holes at one end away from the ALC wall panel fixing end, and each locking bead (65) is matched with the corresponding locking groove (66).

9. The assembled ALC wall panel connection device with embedded seismic nodes according to claim 8, characterized in that: One end of the locking frame (67) passes through the back circular groove (63) and the communicating notch (62) to be fixed to the ALC wallboard.

10. The assembled ALC wall panel connection device with embedded seismic nodes according to claim 7, characterized in that: The axis of the back circular groove (63) coincides with the axis of the communicating notch (62).