Wallboard connecting assembly

By setting vertical steel bars and connecting components between precast wall panels, combined with supporting elements and grouting material, the shortcomings of traditional precast wall panel connection methods in shear resistance and gap sealing are solved, thereby improving the stability and thermal insulation performance of the wall panels.

CN223922444UActive Publication Date: 2026-02-17NANTONG LIANTAKI PREFABRICATED BUILDING TECH CO LTD
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Patent Information

Application Number
CN202423114812.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-16
Publication Date
2026-02-17
Estimated Expiration
2034-12-16

AI Technical Summary

Technical Problem

Traditional precast wall panel connection methods have weak shear resistance in the horizontal direction and are prone to slippage under extreme conditions. Furthermore, the sealing of gaps and water seepage at the connection points have not been effectively resolved, affecting the thermal insulation performance and durability of the wall.

Method used

The first and second reinforcing bars are set vertically, and the reinforcing bars are detachably connected to the wall panel through connecting components. Combined with the design of support elements and steel plates, the stability of the wall panel is enhanced, and grout is filled into the gaps to improve the sealing.

Benefits of technology

It enhances the stability and durability of the wall panel connection, improves shear resistance and thermal insulation performance, and ensures the stability and safety of the wall panel under extreme conditions.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a wallboard connecting assembly. The wallboard connecting assembly comprises a first wallboard and a second wallboard, wherein the first wallboard and the second wallboard are arranged side by side; a gap is formed between the first wallboard and the second wallboard; a connecting assembly is arranged in the gap; the first wallboard comprises a first reinforcing steel bar arranged along a first preset direction; the second wallboard comprises second steel bars arranged in the first preset direction; the connecting assembly comprises a first connecting element arranged in the second preset direction and a second connecting element arranged in the second preset direction. The second preset direction is perpendicular to the first preset direction; first steel bars are arranged on the sides, away from the second connecting elements, of the first connecting elements; second steel bars are arranged on the sides, away from the first connecting elements, of the second connecting elements. The connecting assembly is detachably connected with the first wall plate through the first reinforcing steel bar; the connecting assembly is detachably connected with the second wall plate through the second steel bars. The durability and the stability of the wallboard connecting assembly are improved.
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Description

Technical Field

[0001] This utility model relates to the field of building wall panel technology, and in particular to a wall panel connection component. Background Technology

[0002] In traditional building construction, walls are typically constructed using cast-in-place concrete or brick masonry. However, with the promotion of industrialized construction and green building concepts, prefabricated self-insulating wall panels are gradually becoming the mainstream choice. Prefabricated self-insulating wall panels offer advantages such as fast construction speed, controllable quality, and energy efficiency, but their connection technology remains one of the key issues restricting their widespread application.

[0003] Traditional precast wall panel connections often rely on simple mechanical fasteners. These connections have weak horizontal shear resistance, especially under extreme conditions such as earthquakes, making them prone to slippage and loss of wall integrity. Furthermore, traditional connections often neglect sealing the gaps between panels, leading to reduced thermal insulation and compromised durability. In addition, water seepage at wall joints is a frequent problem, posing safety hazards to the building. Utility Model Content

[0004] To address the technical problems in the background art, this utility model provides a wall panel connecting assembly, which includes a first wall panel and a second wall panel arranged side by side; a gap is provided between the first wall panel and the second wall panel; and a connecting assembly is provided within the gap.

[0005] The first wall panel includes a first reinforcing bar arranged along a first preset direction; the second wall panel includes a second reinforcing bar arranged along the first preset direction; the connecting assembly includes a first connecting element arranged along a second preset direction and a second connecting element arranged along the second preset direction; the second preset direction is perpendicular to the first preset direction; the first reinforcing bar is provided on the side of the first connecting element away from the second connecting element; the second reinforcing bar is provided on the side of the second connecting element away from the first connecting element; the first reinforcing bar is sleeved on the outer surface of the first connecting element; the connecting assembly is detachably connected to the first wall panel through the first reinforcing bar; the second reinforcing bar is sleeved on the outer surface of the second connecting element; the connecting assembly is detachably connected to the second wall panel through the second reinforcing bar.

[0006] Furthermore, the connecting assembly also includes a support element; the support element is disposed between the first connecting element and the second connecting element; the support element is fixedly connected to the first connecting element; the support element is fixedly connected to the second connecting element.

[0007] Furthermore, the connecting assembly also includes a steel plate; the steel plate is disposed on the side of the support element near the first connecting element; the steel plate is symmetrically distributed along the central axis of the support element.

[0008] Furthermore, a first through hole is provided on the side of the steel plate near the first connecting element; the first connecting element passes through the first through hole; a second through hole is provided on the side of the steel plate near the second connecting element; the second connecting element passes through the second through hole.

[0009] Furthermore, the connecting assembly also includes a first fastening part; the first fastening part is provided with a first hollow portion; the shape of the first hollow portion matches the shape of the first connecting element; the first fastening part and the first connecting element are detachably connected.

[0010] Furthermore, the connecting assembly also includes a second fastening part; the second fastening part is provided with a second hollow portion; the shape of the second hollow portion matches the shape of the second connecting element; the second fastening part and the second connecting element are detachably connected.

[0011] Furthermore, the first wall panel includes at least two first steel reinforcement meshes; the second wall panel includes at least two second steel reinforcement meshes; the first steel bars are disposed on the first steel reinforcement meshes; and the second steel bars are disposed on the second steel reinforcement meshes.

[0012] Furthermore, the first wall panel also includes a third reinforcing bar arranged along the second preset direction; the third reinforcing bar is arranged on the first reinforcing bar mesh; the second wall panel also includes a fourth reinforcing bar arranged along the second preset direction; the fourth reinforcing bar is arranged on the second reinforcing bar mesh.

[0013] Furthermore, the gap includes a first region and a second region; the connecting component is disposed in the first region; and grouting material is disposed in the second region.

[0014] Furthermore, a first cavity is formed between every two adjacent first steel mesh frames; thermal insulation material is disposed in the first cavity; a second cavity is formed between every two adjacent second steel mesh frames; the thermal insulation material is disposed in the second cavity.

[0015] The beneficial effects of this utility model are:

[0016] The wall panel connecting assembly of this utility model includes a first wall panel and a second wall panel arranged side by side; a gap is provided between the first wall panel and the second wall panel; a connecting assembly is provided in the gap; the first wall panel includes a first reinforcing bar arranged along a first preset direction; the second wall panel includes a second reinforcing bar arranged along the first preset direction; the connecting assembly includes a first connecting element and a second connecting element arranged along a second preset direction; the second preset direction is perpendicular to the first preset direction; the first reinforcing bar is provided on the side of the first connecting element away from the second connecting element; the second reinforcing bar is provided on the side of the second connecting element away from the first connecting element; the first reinforcing bar is sleeved on the outer surface of the first connecting element; the connecting assembly is detachably connected to the first wall panel through the first reinforcing bar; the second reinforcing bar is sleeved on the outer surface of the second connecting element; the connecting assembly is detachably connected to the second wall panel through the second reinforcing bar. This invention enhances the stability of the wall panels by setting a first reinforcing bar on the first wall panel and a second reinforcing bar on the second wall panel. By setting a connecting component in the gap between the first and second wall panels, the first reinforcing bar of the first wall panel and the second reinforcing bar of the second wall panel are connected through the connecting component, ultimately connecting the first and second wall panels. This achieves a rapid connection between the first and second wall panels, enhances the stability of the wall panel connecting component, and improves the durability and safety of the wall panel connecting component. Attached Figure Description

[0017] To more clearly illustrate the technical solution of this utility model, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0018] Figure 1 This is a cross-sectional schematic diagram of a wall panel connection assembly provided by this utility model;

[0019] Figure 2 This is a schematic diagram of the structure of the connecting component provided by this utility model;

[0020] Figure 3 The image shown is a top sectional view of a wall panel connection assembly provided by this utility model.

[0021] Figure 4 The middle part is a top view schematic diagram of a wall panel connection assembly provided by this utility model;

[0022] Figure 5 This is a schematic diagram of a wall panel connection assembly provided by this utility model;

[0023] The corresponding reference numerals in the figure are as follows: 1-first wall panel, 2-second wall panel, 3-gap, 4-connecting component, 5-first reinforcing bar, 6-second reinforcing bar, 7-first connecting element, 8-second connecting element, 9-supporting element, 10-steel plate, 11-first fastening part, 12-second fastening part, 13-first reinforcing bar mesh, 14-second reinforcing bar mesh, 15-third reinforcing bar, 16-fourth reinforcing bar, 17-grouting material, 18-insulation material. Detailed Implementation

[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0025] In the description of this utility model, it should be understood that the terms "center," "longitudinal," "transverse," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," "counterclockwise," "axial," "radial," and "circumferential," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings and are only for the convenience of describing this utility model and simplifying the description. They 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. Since the embodiments disclosed in this utility model can be arranged in different directions, these terms indicating direction are only for illustration and should not be regarded as limitations. For example, "upper" and "lower" are not necessarily limited to directions opposite to or consistent with the direction of gravity. In addition, features defined with "first" and "second" may explicitly or implicitly include one or more of such features.

[0026] like Figure 1-5 As shown, this utility model provides a wall panel connecting assembly, which includes a first wall panel 1 and a second wall panel 2 arranged side by side; a gap 3 is provided between the first wall panel 1 and the second wall panel 2; and a connecting component 4 is provided in the gap 3.

[0027] The first wall panel 1 includes a first reinforcing bar 5 arranged along a first preset direction; the second wall panel 2 includes a second reinforcing bar 6 arranged along the first preset direction; the connecting assembly 4 includes a first connecting element 7 and a second connecting element 8 arranged along a second preset direction; the second preset direction is perpendicular to the first preset direction; the first reinforcing bar 5 is arranged on the side of the first connecting element 7 away from the second connecting element 8; the second reinforcing bar 6 is arranged on the side of the second connecting element 8 away from the first connecting element 7; the first reinforcing bar 5 is sleeved on the outer surface of the first connecting element 7; the connecting assembly 4 is detachably connected to the first wall panel 1 through the first reinforcing bar 5; the second reinforcing bar 6 is sleeved on the outer surface of the second connecting element 8; the connecting assembly 4 is detachably connected to the second wall panel 2 through the second reinforcing bar 6.

[0028] In some embodiments, both the first wall panel 1 and the second wall panel 2 can be prefabricated self-insulating wall panels; the gap 3 can be a joint within a spacing of 50mm-150mm between the first wall panel 1 and the second wall panel 2, for example, it can be a joint with a spacing greater than or equal to 70mm; the first preset direction can be horizontal; both the first reinforcing bar 5 and the second reinforcing bar 6 can be horizontal bars; the second preset direction can be vertical; the connecting component 4 can be a component including a pin anchor ring, a nut, and a steel plate 10; the first connecting element 7 can be a pin anchor rod disposed near the side of the first reinforcing bar 5; the second connecting element 8 can be a pin anchor rod disposed near the side of the second reinforcing bar 6; one end of the first reinforcing bar 5 passes through the first connecting element 7 and wraps around the first connecting element 7 to form a closed loop, and the first reinforcing bar 5 ultimately exists in the form of being sleeved on the outer surface of the first connecting element 7 in the horizontal direction; one end of the second reinforcing bar 6 passes through the second connecting element 8 and wraps around the second connecting element 8 to form a closed loop, and the second reinforcing bar 6 ultimately exists in the form of being sleeved on the outer surface of the second connecting element 8 in the horizontal direction. The components include multiple first reinforcing bars 5, second reinforcing bars 6, and connecting components 4. Only one is described here as an example. In reality, multiple first reinforcing bars 5 are arranged at equal intervals on the first wall panel 1, and multiple second reinforcing bars 6 are arranged at equal intervals on the second wall panel 2. A connecting component 4 is provided between each adjacent first reinforcing bar 5 and second reinforcing bar 6. Each adjacent first reinforcing bar 5 and second reinforcing bar 6 is connected through the connecting component 4, ultimately achieving the connection between the first wall panel 1 and the second wall panel 2. This significantly enhances the overall structural performance of the wall panel connecting components, ensures a tight fit between the wall panels, reduces overall structural failure caused by the movement or deformation of a single wall panel, simplifies the construction process, ensures the stability of the wall panels under heavy loads, and improves the safety of the wall panel connecting components.

[0029] In other embodiments, the first wall panel 1, the second wall panel 2, the first preset direction, the first reinforcing bar 5, the second reinforcing bar 6, the second preset direction, the connecting component 4, the first connecting element 7, and the second connecting element 8 can all be configured according to actual conditions.

[0030] In this utility model, the connecting component 4 further includes a support element 9; the support element 9 is disposed between the first connecting element 7 and the second connecting element 8; the support element 9 is fixedly connected to the first connecting element 7; and the support element 9 is fixedly connected to the second connecting element 8.

[0031] In some embodiments, such as Figure 2 As shown, the support element 9 can be a component at the bottom of a U-shaped pin anchor ring. The support element 9, the first connecting element 7, and the second connecting element 8 combine to form a pin anchor ring, used to connect two adjacent wall panels. The pin anchor ring can be pre-embedded in the first wall panel 1 and the second wall panel 2, thereby achieving connection with the first reinforcing bar 5 and the second reinforcing bar 6. By setting the support element, the first connecting element, and the second connecting element, the connection between the wall panels is ensured to be more stable, effectively transferring and distributing loads, reducing local stress concentration, improving the structural strength and stability of the wall panel connection assembly, and extending the service life of the wall panel connection assembly.

[0032] In other embodiments, the shape of the support element 9 can be set according to the actual situation.

[0033] In this utility model, the connecting component 4 further includes a steel plate 10; the steel plate 10 is disposed on the side of the supporting element 9 near the first connecting element 7; the steel plate 10 is symmetrically distributed along the central axis of the supporting element 9.

[0034] In some embodiments, such as Figure 2-3 As shown, the steel plate 10 can be a steel plate with a thickness of 4mm, a width of 35mm, and a length of 60mm. The steel plate 10 is placed on the first reinforcing bar 5 sleeved on the outer surface of the first connecting element 7 and the second reinforcing bar 6 sleeved on the outer surface of the second connecting element 8, and the steel plate 10 is symmetrically distributed along the central axis of the supporting element 9. By setting the steel plate, the wall panel will not easily separate when subjected to lateral force, which enhances the overall shear resistance of the wall panel connection assembly and improves the stability of the wall panel connection assembly.

[0035] In other embodiments, the dimensions of the steel plate 10 can be set according to actual conditions.

[0036] The steel plate 10 has a first through hole on the side near the first connecting element 7; the first connecting element 7 passes through the first through hole; the steel plate 10 has a second through hole on the side near the second connecting element 8; the second connecting element 8 passes through the second through hole.

[0037] In some embodiments, such as Figure 2-3 As shown, the steel plate 10 has through holes on both sides near the first connecting element 7 and near the second connecting element 8. The first connecting element 7 passes through the first through hole on the steel plate 10, and the second connecting element 8 passes through the second through hole on the steel plate 10. In actual installation, the steel plate 10, the first reinforcing bar 5, and the second reinforcing bar 6 are all arranged horizontally, while the first connecting element 7, the second connecting element 8, and the supporting element 9 are all arranged vertically. Therefore, the steel plate reinforces the first and second reinforcing bars and ensures that the steel plate fits tightly with the first connecting element, the second connecting element, and the supporting element, significantly enhancing the connection strength between the wall panels. This allows the wall panels to distribute stress evenly when subjected to external forces, reducing local stress concentration and improving the stability of the wall panel connection assembly.

[0038] In other embodiments, the location of the through holes on the steel plate 10 can be set according to the actual situation.

[0039] In this utility model, the connecting component 4 further includes a first fastening part 11; the first fastening part 11 is provided with a first hollow portion; the shape of the first hollow portion matches the shape of the first connecting element 7; the first fastening part 11 and the first connecting element 7 are detachably connected.

[0040] In some embodiments, such as Figure 2 As shown, the first fastening part 11 can be a nut with a nominal diameter of 8 mm. The size of the first hollow part on the first fastening part 11 matches the size of the first connecting element 7. The first fastening part 11 cooperates with the first connecting element 7. The first fastening part 11 is tightened along the second preset direction with the first connecting element 7 as the center, fixing the steel plate 10, the first reinforcing bar 5, the first connecting element 7 and the supporting element 9 together. This ensures the stability and sealing of the connection between the first wall panel and the connecting assembly, improves the stability of the first wall panel, simplifies the construction process and reduces the construction cost.

[0041] In other embodiments, the dimensions of the first fastening part 11 can be set according to the actual situation.

[0042] In this utility model, the connecting component 4 further includes a second fastening part 12; the second fastening part 12 is provided with a second hollow portion; the shape of the second hollow portion matches the shape of the second connecting element 8; the second fastening part 12 and the second connecting element 8 are detachably connected.

[0043] In some embodiments, such as Figure 2 As shown, the second fastening part 12 can be a nut with a nominal diameter of 8 mm. The size of the second hollow part on the second fastening part 12 matches the size of the second connecting element 8. The second fastening part 12 cooperates with the second connecting element 8. The second fastening part 12 is tightened along the second preset direction with the second connecting element 8 as the center, which fixes the steel plate 10, the second reinforcing bar 6, the second connecting element 8 and the supporting element 9, thereby improving the stability of the second wall panel and realizing a stable connection between the connecting assembly and the second wall panel.

[0044] In other embodiments, the dimensions of the second fastening part 12 can be set according to the actual situation.

[0045] In this utility model, the first wall panel 1 includes at least two first steel reinforcement mesh frames 13; the second wall panel 2 includes at least two second steel reinforcement mesh frames 14; the first steel reinforcement 5 is disposed on the first steel reinforcement mesh frame 13; and the second steel reinforcement 6 is disposed on the second steel reinforcement mesh frame 14.

[0046] In some embodiments, such as Figure 3-5 As shown, the first preset direction can be horizontal; both the first reinforcing bar 5 and the second reinforcing bar 6 can be horizontal bars arranged in the horizontal direction; the first wall panel 1 can include two first reinforcing bar frames 13, one located inside the first wall panel 1 and the other located outside the first wall panel 1. The first reinforcing bar 5 can be connected to the first reinforcing bar frame 13 by welding or binding. The second wall panel 2 can include two second reinforcing bar frames 14, one located inside the second wall panel 2 and the other located outside the second wall panel 2. The second reinforcing bar 6 can be connected to the second reinforcing bar frame 14 by welding or binding. By setting horizontal bars on the wall panel, the rigidity of the wall panel in the horizontal direction is enhanced, preventing the wall panel from undergoing excessive deformation under horizontal loads; at the same time, through close connection with the wall panel, the horizontal bars can effectively transfer and distribute horizontal loads, improving the overall stability of the wall panel.

[0047] In other embodiments, the number of first steel mesh frames 13 and the number of second steel mesh frames 14 can be set according to actual conditions.

[0048] The first wall panel 1 further includes a third reinforcing bar 15 arranged along the second preset direction; the third reinforcing bar 15 is arranged on the first reinforcing bar mesh 13; the second wall panel 2 further includes a fourth reinforcing bar 16 arranged along the second preset direction; the fourth reinforcing bar 16 is arranged on the second reinforcing bar mesh 14.

[0049] In some embodiments, such as Figure 3-5 As shown, the second preset direction can be vertical; both the third reinforcing bar 15 and the fourth reinforcing bar 16 can be vertical reinforcing bars; each reinforcing bar grid can be formed by the intersection of vertical and horizontal reinforcing bars, creating a grid-like structure. The longitudinal strength of the wall panel is enhanced by setting vertical reinforcing bars on the reinforcing bar grid; and the vertical reinforcing bars can be connected by welding or binding to ensure the stability of the reinforcing bar grid. Setting vertical reinforcing bars can enhance the rigidity of the wall panel in the vertical direction, preventing excessive deformation of the wall panel under vertical loads. Through close connection with the wall panel, the vertical reinforcing bars can effectively transfer and distribute vertical loads, improving the overall stability of the wall panel.

[0050] In other embodiments, the third reinforcing bar 15 and the fourth reinforcing bar 16 can be set according to the actual situation.

[0051] In this utility model, the gap 3 includes a first region and a second region; the connecting component 4 is provided in the first region; and the grouting material 17 is provided in the second region.

[0052] In some embodiments, such as Figure 3-4 As shown, the gap 3 between the first wall panel 1 and the second wall panel 2 includes a first region and a second region. The first region includes multiple connecting components 4, each of which is used to connect each of its adjacent first reinforcing bars 5 and second reinforcing bars 6, thereby achieving the connection between the first wall panel 1 and the second wall panel 2. Since the second region also exists in the gap 3, it is evident that connecting the first wall panel 1 and the second wall panel 2 solely through the connecting components 4 is unreliable. Therefore, grout is injected into the second region to fill the joint between the first and second wall panels, forming an integral connection structure. This significantly enhances the structural strength of the wall panel connection assembly and improves its seismic performance and sealing.

[0053] In this utility model, a first cavity is formed between every two adjacent first steel mesh frames 13; thermal insulation material 18 is provided in the first cavity; a second cavity is formed between every two adjacent second steel mesh frames 14; thermal insulation material 18 is provided in the second cavity.

[0054] In some embodiments, such as Figure 3-4As shown, a cavity is formed between every two steel mesh frames, and each cavity is filled with insulation material 18 to form a self-insulating structure. The insulation material effectively blocks heat transfer, significantly improves the insulation performance of the wall, helps reduce energy loss, improves the building's energy efficiency, and ensures the safety and reliability of the wall panel connection components.

[0055] The working principle of the wall panel connection assembly of this utility model is as follows:

[0056] Connecting components 4 are pre-embedded in the first wall panel 1 and the second wall panel 2 to ensure accurate positioning; the first reinforcing bar 5 is sleeved on the outer surface of the first connecting element 7, and the second reinforcing bar 6 is sleeved on the outer surface of the second connecting element 8; the steel plate 10 is placed on the side of the supporting element 9 away from the first connecting element 7, so that the first connecting element 7 passes through the first through hole on the steel plate 10, and the second connecting element 8 passes through the second through hole on the steel plate 10; the first fastening part 11 is tightened along the second preset direction to tightly press the first connecting element 7, the steel plate 10, the first reinforcing bar 5, and the supporting element 9 together; the second fastening part 12 is tightened along the second preset direction to tightly press the second connecting element 8, the steel plate 10, the second reinforcing bar 6, and the supporting element 9 together; grouting material 17 is injected into the second area of ​​the gap 3 to achieve a tight connection between the first wall panel 1 and the second wall panel 2.

[0057] The beneficial effects of this utility model are:

[0058] The wall panel connecting assembly of this utility model includes a first wall panel and a second wall panel arranged side by side; a gap is provided between the first wall panel and the second wall panel; a connecting assembly is provided in the gap; the first wall panel includes a first reinforcing bar arranged along a first preset direction; the second wall panel includes a second reinforcing bar arranged along the first preset direction; the connecting assembly includes a first connecting element and a second connecting element arranged along a second preset direction; the second preset direction is perpendicular to the first preset direction; the first reinforcing bar is provided on the side of the first connecting element away from the second connecting element; the second reinforcing bar is provided on the side of the second connecting element away from the first connecting element; the first reinforcing bar is sleeved on the outer surface of the first connecting element; the connecting assembly is detachably connected to the first wall panel through the first reinforcing bar; the second reinforcing bar is sleeved on the outer surface of the second connecting element; the connecting assembly is detachably connected to the second wall panel through the second reinforcing bar. By setting the first and third reinforcing bars on the first steel mesh of the first wall panel, and the second and fourth reinforcing bars on the second steel mesh of the second wall panel, the structural strength and stability of the wall panel connection assembly are enhanced, the seismic performance of the wall panel connection assembly is improved, and the stability of the wall panel connection assembly under horizontal and vertical loads is ensured. By setting the connection assembly in the gap between the first and second wall panels, the pin-anchor connection between the first and second reinforcing bars is realized, ultimately enabling the first and second wall panels to be quickly connected, ensuring precise positioning and tight connection between the wall panels. By setting grout in the remaining area of ​​the gap, the sealing performance of the wall panel connection assembly is enhanced.

[0059] The above description is the preferred embodiment of this utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the principle of this utility model, and these improvements and modifications are also considered to be within the protection scope of this utility model.

Claims

1. A wallboard connection assembly, characterized by The wallboard connecting assembly comprises a first wallboard (1) and a second wallboard (2) arranged side by side; a gap (3) is arranged between the first wallboard (1) and the second wallboard (2); and a connecting assembly (4) is arranged in the gap (3). The first wallboard (1) comprises a first reinforcing bar (5) arranged along a first preset direction; the second wallboard (2) comprises a second reinforcing bar (6) arranged along the first preset direction; the connecting assembly (4) comprises a first connecting element (7) arranged along a second preset direction and a second connecting element (8) arranged along the second preset direction; the second preset direction is perpendicular to the first preset direction; the first connecting element (7) is provided with the first reinforcing bar (5) on the side away from the second connecting element (8); the second connecting element (8) is provided with the second reinforcing bar (6) on the side away from the first connecting element (7); the first reinforcing bar (5) is sleeved on the outer surface of the first connecting element (7); the connecting assembly (4) is detachably connected with the first wallboard (1) through the first reinforcing bar (5); the second reinforcing bar (6) is sleeved on the outer surface of the second connecting element (8); and the connecting assembly (4) is detachably connected with the second wallboard (2) through the second reinforcing bar (6).

2. The wall panel connection assembly of claim 1, wherein, The connecting assembly (4) further comprises a supporting element (9); the supporting element (9) is arranged between the first connecting element (7) and the second connecting element (8); the supporting element (9) is fixedly connected with the first connecting element (7); and the supporting element (9) is fixedly connected with the second connecting element (8).

3. The wallboard connection assembly of claim 2, wherein, The connecting assembly (4) further comprises a steel plate (10); the steel plate (10) is arranged on the side of the supporting element (9) close to the first connecting element (7); and the steel plate (10) is symmetrically distributed along the central axis of the supporting element (9).

4. The wallboard connection assembly of claim 3, wherein, The steel plate (10) is provided with a first through hole on the side close to the first connecting element (7); the first connecting element (7) penetrates through the first through hole; the steel plate (10) is provided with a second through hole on the side close to the second connecting element (8); and the second connecting element (8) penetrates through the second through hole.

5. The wallboard connection assembly of claim 2, wherein, The connecting assembly (4) further comprises a first fastening part (11); the first fastening part (11) is provided with a first hollow portion; the shape of the first hollow portion matches the shape of the first connecting element (7); and the first fastening part (11) is detachably connected with the first connecting element (7).

6. The wallboard connection assembly of claim 2, wherein, The connecting assembly (4) further comprises a second fastening part (12); the second fastening part (12) is provided with a second hollow portion; the shape of the second hollow portion matches the shape of the second connecting element (8); and the second fastening part (12) is detachably connected with the second connecting element (8).

7. The wallboard connection assembly of claim 1, wherein, The first wallboard (1) comprises at least two first steel mesh frames (13); the second wallboard (2) comprises at least two second steel mesh frames (14); the first steel bars (5) are arranged on the first steel mesh frames (13); and the second steel bars (6) are arranged on the second steel mesh frames (14).

8. The wallboard connection assembly of claim 7, wherein, The first wallboard (1) further comprises third steel bars (15) arranged along the second preset direction; the third steel bars (15) are arranged on the first steel mesh frames (13); the second wallboard (2) further comprises fourth steel bars (16) arranged along the second preset direction; and the fourth steel bars (16) are arranged on the second steel mesh frames (14).

9. The wallboard connection assembly of claim 1, wherein, The gap (3) comprises a first area and a second area; the connecting assembly (4) is arranged in the first area; and grouting material (17) is arranged in the second area.

10. The wallboard connection assembly of claim 7, wherein, First cavities are formed between every two adjacent first steel mesh frames (13); the first cavities are filled with thermal insulation material (18); second cavities are formed between every two adjacent second steel mesh frames (14); and the second cavities are filled with the thermal insulation material (18).