Building component connection structure

By using extrusion components and snap-fit ​​structures at the joints of the steel-framed lightweight panels, combined with load-bearing components and sealants, the problem of limited connection and fixation between the cover plate and the roof panel was solved. This achieved uniform application of sealant and improved waterproofing, enhancing connection strength and the overall waterproofing performance of the structure.

CN119466162BActive Publication Date: 2026-04-21南方电网能源发展研究院有限责任公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
南方电网能源发展研究院有限责任公司
Filing Date
2024-12-30
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

In large-span steel frame lightweight roof panel splicing structures, the connection and fixing process between the cover plate and the roof panel is limited by the operating space, resulting in uneven application of sealant or the presence of filling gaps, which affects the sealing and waterproofing effect.

Method used

The system employs a snap-fit ​​structure between the extruded component and the first and second connecting units, combined with a load-bearing component, a sealing component, and reinforcing ribs, to achieve sealing and fixing of the connection gaps, thereby enhancing connection strength and waterproofing.

Benefits of technology

It achieves sealing and fixing of joints without being limited by operating space, improving the waterproof effect and connection strength of joints, and enhancing the overall structural integrity of building components.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention relates to the field of building construction technology and discloses a connection structure for building components. A first connecting unit and a second connecting unit have a connection gap. To improve the connection between the first and second connecting units and the waterproofing effect at the connection gap, this invention provides a load-bearing member at one end of the connection gap. The load-bearing member has a first sealing member and a second sealing member at its two ends, respectively, and a pressing member at its upper part. The two ends of the pressing member are respectively engaged with the first and second connecting units. When engaged, the first and second sealing members are pressed against the first and second connecting units, respectively, achieving sealing and fixing of the connection gap without spatial limitations. The other end of the connection gap is sealed with the first connecting member. A second connecting member is provided on one side of the second connecting unit, connecting to the first connecting member. The connection between the two enhances the connection between the first and second connecting units and improves the leakage situation at the connection gap.
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Description

Technical Field

[0001] This invention relates to the field of building construction technology, and in particular to a connection structure for building components. Background Technology

[0002] Steel-framed lightweight panels are a new type of lightweight, energy-saving, and environmentally friendly building envelope component, suitable for various buildings such as industrial plants, commercial buildings, and residential buildings. Steel-framed lightweight panels are mainly composed of a light steel frame and a lightweight core material, possessing both good load-bearing capacity and seismic performance, while also meeting the requirements of modern architecture for lightweight, energy-saving, and environmental protection. In use, steel-framed lightweight panels are typically laid on top of a steel frame and then joined together. However, gaps are prone to appear at the joints. To achieve waterproofing at the joints, sealant is usually filled at the joints of adjacent steel-framed lightweight panels.

[0003] However, simply filling the joint with sealant has limited effect on the connection between two adjacent steel-framed lightweight roof panels. To enhance the connection strength between adjacent steel-framed lightweight roof panels, a new technology proposes a large-span steel-framed lightweight roof panel splicing structure. This structure involves installing interlocking concave-convex structural members on the connection side of adjacent roof panels. The top and bottom surfaces of the concave-convex structural members are respectively equipped with a connecting cover plate and a connecting base plate. After the connection is completed, a first sealant is injected into the gap, and then the cover plate is fixed to the roof panel. A second sealant is then filled between the cover plate and the roof panel to ensure the waterproof effect at the roof panel splicing joint.

[0004] However, during the installation of the aforementioned large-span steel frame lightweight roof panel joint structure, the connection and fixation between the cover plate and the adjacent roof panel is achieved through self-connecting bolts. After the cover plate and the roof panel are fixed, the connection gap between them is small. Therefore, the process of filling the second sealant is limited by the filling space, which easily leads to uneven application or filling gaps, thereby affecting the sealing and waterproofing effect of the adjacent roof panels. Summary of the Invention

[0005] Based on the above problems, the purpose of this invention is to provide a building component connection structure in which the sealing and fixing process of the connection gap is achieved by the clamping of the extrusion member with the first connection unit and the second connection unit respectively, which is not limited by the operating space, and the sealing connection and waterproofing effect between the first connection unit and the second connection unit are improved.

[0006] To achieve the above objectives, the following technical solution is provided:

[0007] This invention provides a building component connection structure, comprising:

[0008] A first connecting unit and a second connecting unit are connected together with a connecting gap. The first connecting unit is provided with a first connecting member, which is sealed at one end of the connecting gap. The second connecting unit is provided with a second connecting member, which is connected to the first connecting member.

[0009] The reinforcing component includes a load-bearing member, a first pouring layer, and a reinforcing rib. The load-bearing member is disposed at the other end of the connection gap and is connected to the first connecting unit and the second connecting unit respectively. The first pouring layer is disposed within the pouring space enclosed by the load-bearing member, the first connecting unit, the second connecting unit, and the second connecting member. The reinforcing rib is disposed within the connection gap, with one end of the reinforcing rib abutting against the load-bearing member and the other end of the reinforcing rib abutting against the second connecting member.

[0010] The first seal and the second seal are both connected to the carrier.

[0011] The extrusion member is connected to the carrier member and is respectively engaged with the first connecting unit and the second connecting unit to press the first sealing member against the first connecting unit and the second sealing member against the second connecting unit.

[0012] Specifically, the building component connection structure also includes a first mounting bracket disposed in the first connection unit and a second mounting bracket disposed in the second connection unit. The first mounting bracket is provided with a first limiting protrusion, and the second mounting bracket is provided with a second limiting protrusion. The first limiting protrusion is provided with a first inclined surface, and the second limiting protrusion is provided with a second inclined surface. The two ends of the extrusion are respectively pressed against the first inclined surface and the second inclined surface.

[0013] Optionally, the first limiting protrusion has a first slot, and the second limiting protrusion has a second slot, so that both ends of the extruder can be respectively inserted into the first slot and the second slot.

[0014] Specifically, the building component connection structure also includes a second pouring layer, which is disposed within the filling space formed by the first connecting unit, the second connecting unit, the first mounting bracket, and the second mounting bracket. The second pouring layer can cover the extruded component, the load-bearing component, the first sealing component, and the second sealing component.

[0015] Optionally, the first connecting unit is provided with a first reinforcing member, the second connecting unit is provided with a second reinforcing member, and the reinforcing rib is provided with a first guide protrusion and a second guide protrusion. The first guide protrusion presses against the first reinforcing member, and the second guide protrusion presses against the second reinforcing member, so as to drive the second connecting member to clamp the first connecting member.

[0016] Specifically, the first reinforcing member includes a first connecting part and a first guiding part connected to each other. The first connecting part is connected to the first connecting unit, and the first guiding part is provided with a first inclined surface. A first guiding protrusion presses against the first inclined surface. The second reinforcing member includes a second connecting part and a second guiding part connected to each other. The second connecting part is connected to the second connecting unit, and the second guiding part is provided with a second inclined surface. A second guiding protrusion presses against the second inclined surface to apply forces in opposite directions to the first connecting member and the second connecting member.

[0017] Optionally, the building component connection structure also includes a waterproof adhesive layer, which is disposed at the connection between the first connector and the second connector.

[0018] Preferably, both the first connector and the second connector are L-shaped and interlock with each other.

[0019] Specifically, the first connecting unit includes a support frame, a mesh structure layer, and a third casting layer. The mesh structure layer is disposed above the support frame, and the third casting layer is filled inside the support frame and can cover the mesh structure layer.

[0020] Optionally, the first seal is bonded to the first connecting unit, and the second seal is bonded to the second connecting unit. The first seal and the second seal have the same structure. Of the first seal and the carrier, one is provided with a connecting protrusion, and the other is provided with an insertion groove that mates with the connecting protrusion.

[0021] The beneficial effects of this invention are as follows:

[0022] This invention proposes a connection structure for building components. When connecting building components, a connection gap typically exists between the first and second connecting units. This invention provides a load-bearing member at one end of the connection gap, with a first sealing member and a second sealing member at each end of the load-bearing member, and a pressing member on the upper part of the load-bearing member. The two ends of the pressing member are respectively engaged with the first and second connecting units. When engaged, the pressing member presses the first sealing member against the first connecting unit and the second sealing member against the second connecting unit, achieving sealing and fixing of the connection gap without being limited by the sealing space, thus improving the connection between the first and second connecting units. The joint provides waterproofing at the gap; the other end of the joint is sealed with a first connector, and a second connector connected to the first connector is provided on one side of the second connecting unit. After the two are connected, the connection between the first connecting unit and the second connecting unit is enhanced, and the leakage at the joint is improved; a first pouring layer is filled in the pouring space formed by the bearing member, the first connecting unit, the second connecting unit, and the second connector. The first pouring layer can completely fill the joint between the first connecting unit and the second connecting unit; the reinforcing component also includes reinforcing ribs, which are set in the joint to enhance the structural strength of the connection at the joint of the building components. Attached Figure Description

[0023] To more clearly illustrate the technical solutions in the embodiments of the present invention, the accompanying drawings used in the description of the embodiments of the present invention will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on the content of the embodiments of the present invention and these drawings without creative effort.

[0024] Figure 1 This is a structural schematic diagram of the building component connection structure provided in a specific embodiment of the present invention;

[0025] Figure 2 yes Figure 1 Enlarged view of section A;

[0026] Figure 3 This is an exploded view of the building component connection structure provided in a specific embodiment of the present invention;

[0027] Figure 4 yes Figure 3 Enlarged view of section B;

[0028] Figure 5 yes Figure 3 Enlarged view of section C;

[0029] Figure 6 This is a schematic diagram of the structure of the first connecting unit provided in a specific embodiment of the present invention.

[0030] In the picture:

[0031] 1. First connecting unit; 11. First connector; 12. First mounting bracket; 13. Support bracket; 14. Mesh structure layer; 15. Third casting layer; 2. Second connecting unit; 21. Second connector; 22. Second mounting bracket; 23. Second limiting protrusion; 231. Second inclined surface; 232. Second slot; 24. Second reinforcing component; 241. Second connecting part; 242. Second limiting part; 243. Second guide part; 3. Reinforcing component; 31. Bearing component; 32. First casting layer; 33. Reinforcing rib; 331. First guide protrusion; 4. First sealing component; 5. Second sealing component; 6. Extrusion component; 7. Second casting layer; 8. Waterproof adhesive layer. Detailed Implementation

[0032] To make the technical problems solved by the present invention, the technical solutions adopted, and the technical effects achieved clearer, the technical solutions of the embodiments of the present invention will be further described in detail below with reference to the accompanying drawings. Obviously, the described embodiments are only 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.

[0033] In the description of this invention, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, are only for the convenience of describing the invention and simplifying the description, and 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 of the invention. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0034] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to fixed connections or detachable connections; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; and internal connections between two components. Those skilled in the art can understand the specific meaning of these terms in this invention based on the specific circumstances.

[0035] Traditional buildings mostly use reinforced concrete slabs for construction. However, to comply with the current advocacy and promotion of green building and energy conservation and emission reduction, most existing building components are prefabricated using lightweight materials. Multiple prefabricated components are then connected according to the construction requirements of different building structures. This not only meets energy conservation and environmental protection requirements but also improves construction efficiency. Building components can be steel-framed lightweight panels, which not only meet the requirements for load-bearing strength and seismic performance but also reduce the building's self-weight. However, when different steel-framed lightweight panels are connected, due to limitations in processing precision or damage at the edges during transportation, gaps can easily appear at the joints between adjacent panels, affecting the overall sealing and waterproofing of the building structure.

[0036] like Figures 1-6As shown, the present invention provides a building component connection structure, including a first connecting unit 1, a second connecting unit 2, a reinforcing component 3, a first sealing element 4, a second sealing element 5, and an extrusion element 6. The first connecting unit 1 and the second connecting unit 2 form a connection gap. To improve the connection strength and sealing / waterproofing effect, a first connecting element 11 is provided on the first connecting unit 1, sealing one end of the connection gap. A second connecting element 21 is provided on the second connecting unit 2, and the second connecting element 21 is connected to the first connecting element 11 to enhance the connection strength between the first connecting unit 1 and the second connecting unit 2 and fill part of the connection gap. The first connecting element 11 and the second connecting element 21 can be welded to the first connecting unit 1 and the second connecting unit 2 respectively.

[0037] In one embodiment, one of the first connector 11 and the second connector 21 can be configured as a protruding structure, and the other as a groove structure that can engage with the protruding structure, to achieve accurate docking. In other embodiments, to reduce the number of directional adjustments required for the first connecting unit 1 and the second connecting unit 2, both the first connector 11 and the second connecting unit 21 can be configured as L-shaped, allowing them to interlock and engage with each other. After engagement, the first connector 11 and the second connecting unit 21 can constrain each other from different directions, improving the stability of the connection between the first connecting unit 1 and the second connecting unit 2. Furthermore, to reduce collisions during the connection process, the first connecting unit 1 and the second connecting unit 2 can be pre-assembled on the ground to ensure precise connection before hoisting the connected first connecting unit 1 and the second connecting unit 2 to the installation location.

[0038] A waterproof adhesive layer 8 can be provided at the connection between the first connector 11 and the second connector 21. With the help of the waterproof adhesive layer 8, the connection strength between the first connector 11 and the second connector 21 is enhanced, and water cannot leak into the connection gap from here, thus improving the waterproof effect at the connection gap. The waterproof adhesive layer 8 can be made of materials that combine waterproof effect and adhesive performance, such as epoxy resin adhesive or polyurethane adhesive, and no further restrictions are imposed here.

[0039] Specifically, the reinforcing component 3 includes a load-bearing member 31, a first pouring layer 32, and a reinforcing rib 33. To completely fill the connection gap between the first connecting unit 1 and the second connecting unit 2, after the first connecting unit 1 and the second connecting unit 2 are hoisted to their respective positions, a load-bearing member 31 is placed at the other end of the connection gap. The load-bearing member 31 is connected to both the first connecting unit 1 and the second connecting unit 2. To improve the structural integrity of the first connecting unit 1 and the second connecting unit 2, a first pouring layer 32 is provided within the pouring space formed by the load-bearing member 31, the first connecting unit 1, the second connecting unit 2, and the second connecting member 21 to completely fill the connection gap. The reinforcing rib 33 is placed within the connection gap, with one end abutting against the load-bearing member 31 and the other end abutting against the second connecting member 21. The presence of the reinforcing rib 33 enhances the structural strength of the connection gap in the building component connection structure. To enhance the load-bearing capacity of the reinforcing rib 33, it can be configured as a bent structure. In addition, to ensure uniform pouring of the first pouring layer 32, multiple flow holes can be provided on both sides of the reinforcing rib 33. The first pouring layer 32 can be filled with a highly dense material such as fine aggregate concrete.

[0040] To improve the sealing effect of the connection gap on the side where the carrier 31 is located, a first sealing element 4 and a second sealing element 5 are respectively provided on both sides of the carrier 31, and the first sealing element 4 and the second sealing element 5 are connected to both sides of the carrier 31. In one embodiment, the first sealing element 4 and the second sealing element 5 have the same structure. The first sealing element 4 is bonded to the first connecting unit 1, and the second sealing element 5 is bonded to the second connecting unit 2. The first sealing element 4 and the second sealing element 5 can be rubber sealing strips or sealing components made of thermoplastic elastomers, etc. To facilitate the installation and positioning of the carrier 31, a connecting protrusion can be provided on one of the first sealing element 4 and the carrier 31, and an insertion groove that mates with the connecting protrusion can be provided on the other. When installing the carrier 31, simply aligning the connecting protrusion with the insertion groove is sufficient to connect and fix the two sides of the carrier 31 to the first sealing element 4 and the second sealing element 5. The operation is simple and easy to implement.

[0041] A pressing member 6 is connected above the support member 31. When the pressing member 6 is pushed, its two ends can respectively engage with the first connecting unit 1 and the second connecting unit 2, so as to press the first sealing member 4 against the first connecting unit 1 and the second sealing member 5 against the second connecting unit 2, thereby achieving a complete seal of the connection gap. In one embodiment, to fix the two ends of the pressing member 6, such as... Figure 2 and Figure 3As shown, a first mounting bracket 12 is provided above the first connecting unit 1, and the first mounting bracket 12 is provided with a first limiting protrusion and a first inclined surface; a second mounting bracket 22 is provided above the second connecting unit 2, and the second mounting bracket 22 is provided with a second limiting protrusion 23 and a second inclined surface 231. When installing the extrusion member 6, the extrusion member 6 can be placed above the bearing member 31, and then the extrusion member 6 can be pushed until both ends of the extrusion member 6 press against the first inclined surface and the second inclined surface 231 respectively. The first inclined surface and the second inclined surface 231 can generate a pre-tightening effect on the extrusion member 6, realizing the installation and fixation of the extrusion member 6. It can also make the first sealing member 4 and the second sealing member 5 press against the first connecting unit 1 and the second connecting unit 2 respectively under the action of the extrusion member 6. The first mounting bracket 12 and the second mounting bracket 22 can be connected and fixed to the first connecting unit 1 and the second connecting unit 2 respectively by seamless welding.

[0042] In one embodiment, such as Figure 4 As shown, in order to enhance the fixing effect of the first limiting protrusion and the second limiting protrusion 23 on the extrusion 6, a first slot is provided on the first limiting protrusion, and correspondingly, a second slot 232 is provided on the second limiting protrusion 23. During installation, the extrusion 6 can be continuously pushed until both ends of the extrusion 6 are respectively inserted into the first slot and the second slot 232, thereby improving the structural stability of the extrusion 6 after installation. It can also ensure that the first sealing member 4 continuously presses against the first connecting unit 1, and the second sealing member 5 continuously presses against the second connecting unit 2.

[0043] The carrier 31 can be machined into a symmetrical structure with both sides inclined at an angle to the horizontal plane. The connection points on both sides with the first connecting unit 1 and the second connecting unit 2 are far from the connection gap. Even if it rains during installation, rainwater will flow to other locations through the inclined structure on both sides instead of the connection gap, improving the waterproofing effect at the connection gap and ensuring that the installation process of the carrier 31 is not limited by the weather. Furthermore, machining the carrier 31 into a structure with inclined angles on both sides allows operators to easily observe the sealing condition between the carrier 31 and the first sealing element 4 and the second sealing element 5, facilitating timely adjustments and improving the installation efficiency of the carrier 31. The middle position of the carrier 31 can be designed as a horizontal plate structure, facilitating the placement of the extrusion element 6 and timely adjustment of the positions of the two ends of the extrusion element 6 relative to the first and second slots 232.

[0044] The building component connection structure may also include a second pouring layer 7. The second pouring layer 7 is disposed within the filling space formed by the first connecting unit 1, the second connecting unit 2, the first mounting bracket 12, and the second mounting bracket 22. The second pouring layer 7 can cover the extruded component 6, the load-bearing component 31, the first sealing component 4, and the second sealing component 5. The second pouring layer 7 enhances the structural integrity and load-bearing capacity of the first connecting unit 1 and the second connecting unit 2, and increases the connection strength between the components. Simultaneously, as... Figure 3 As shown, the first mounting bracket 12 and the second mounting bracket 22 are positioned higher than the upper edge of the connection gap. The second pouring layer 7 can also prevent rainwater from accumulating here, improve the overall waterproof effect of the building component connection structure, and effectively extend the service life of the building component connection structure.

[0045] The building component connection structure proposed in this invention has at least three layers of waterproof barriers: a first connector 11 and a second connector 21 located at the bottom of the connection joint and interconnected; a first cast-in-place layer 32 that completely fills the connection joint; and a second cast-in-place layer 7 located at the top of the connection joint to cover the load-bearing member 31 and the extrusion member 6. This design effectively improves the waterproofing effect at the connection joint between the first connecting unit 1 and the second connecting unit 2, thereby effectively preventing rainwater from seeping into the building interior. Simultaneously, the connection joint is equipped with bent reinforcing ribs 33, further enhancing the connection strength and load-bearing capacity of the first connecting unit 1 and the second connecting unit 2.

[0046] like Figures 3-5 As shown, a first reinforcing member can be provided on the first connecting unit 1, and correspondingly, a second reinforcing member 24 can be provided on the second connecting unit 2. A first guide protrusion 331 and a second guide protrusion are provided on the reinforcing rib 33. Pressing down on the reinforcing rib 33 can cause the first guide protrusion 331 to press against the first reinforcing member, and the second guide protrusion to press against the second reinforcing member 24. When the two press against each other, they can drive the second connecting member 21 to clamp the first connecting member 11, thereby strengthening the connection between the first connecting unit 1 and the second connecting unit 2. The first reinforcing member and the second reinforcing member 24 can be provided at different height positions.

[0047] In one embodiment, the first reinforcing member includes a first connecting portion and a first guiding portion connected together. The first connecting portion is connected to the first connecting unit 1, and the first guiding portion is provided with a first inclined surface. The downward pressing reinforcing rib 33 enables the first guiding protrusion 331 to press against the first inclined surface. Correspondingly, the second reinforcing member 24 includes a second connecting portion 241 and a second guiding portion 243 connected together. The second connecting portion 241 is connected to the second connecting unit 2, and the second guiding portion 243 is provided with a second inclined surface. The downward pressing reinforcing rib 33 enables the second guiding protrusion to press against the second inclined surface. That is, the first guiding protrusion 331 presses against the first inclined surface of the first connecting member 11, and the second guiding protrusion presses against the second inclined surface of the second connecting member 21. When both press against each other simultaneously, they can apply opposite forces to the first connecting member 11 and the second connecting member 21, thereby making the first connecting member 11 and the second connecting member 21 interlocked. The first connecting portion and the second connecting portion 241 can be fixedly connected to the first connecting unit 1 and the second connecting unit 2 by welding, respectively.

[0048] The reinforcing rib 33 may be provided with a first notch and a second notch. The first guide portion can be inserted into the first notch, and the second guide portion 243 can be inserted into the second notch. To improve the insertion process, the first guide portion and the second guide portion 243 may both be provided in the shape of a frustum, and the ends of the frustum can enter the first notch and the second notch provided on the reinforcing rib 33. To limit the first guide portion and the second guide portion 243, a first limiting portion and a second limiting portion 242 can be provided on both sides of the first connecting portion and the second connecting portion 241, respectively. Before the reinforcing rib 33 is pressed down, the first limiting portion and the second limiting portion 242 abut against the opposite sides of the reinforcing rib 33, which can facilitate the positioning of the reinforcing rib 33 during installation, so that the first guide protrusion 331 and the second guide protrusion can accurately act on the first limiting portion and the second limiting portion 242, respectively. It can also prevent the first guide portion and the second guide portion 243 from being stuck in the first notch and the second notch, which would prevent the first guide protrusion 331 and the second guide protrusion provided on the reinforcing rib 33 from playing a pressing role.

[0049] like Figure 6As shown, the first connecting unit 1 may include a support frame 13, a mesh structure layer 14, and a third pouring layer 15. The mesh structure layer 14 is disposed above the support frame 13 and can be connected and fixed to the support frame 13 by spot welding. The mesh structure layer 14 can be made of hot-rolled ribbed steel bars (HRB bars), for example, steel bars with a yield strength of 400 MPa and a diameter of 8 mm can be used. The third pouring layer 15 is filled and disposed within the support frame 13. The third pouring layer 15 can be filled with concrete material with a strength grade of at least C30. The third pouring layer 15 can cover the mesh structure layer 14 and improve the structural integrity of the support frame 13 and the mesh structure layer 14, while the presence of the mesh structure layer 14 can improve the filling uniformity of the third pouring layer 15. Furthermore, to enhance the structural strength of the first connecting unit 1, at least two supporting ribs can be added within the support frame 13. These supporting ribs can be made of C-shaped steel, such as Q345 grade steel with a yield strength of 345 MPa. The supporting ribs and the support frame 13 can be fixed together by binding and constraint. The structure and components of the second connecting unit 2 are the same as those of the first connecting unit 1.

[0050] In one specific embodiment, the installation of the building component connection structure can be achieved using the following steps: First, the first connecting unit 1 and the second connecting unit 2 are assembled and poured. Then, a waterproof adhesive layer 8 is applied at the connection point between the first connecting member 11 and the second connecting member 21. Next, the first connecting member 11 and the second connecting member 21 are connected, completing the initial connection of the first connecting unit 1 and the second connecting unit 2. Then, a crane is used to hoist the initially connected first connecting unit 1 and the second connecting unit 2 to the installation position. An electric welding machine is used to weld and fix them to the installation position. Then, a reinforcing rib 33 is inserted into the connection gap between the first connecting unit 1 and the second connecting unit 2. A bearing member 31 is placed at the other end of the connection gap. Finally, a first pouring layer 32 is filled and applied to the bearing member 31, the second connecting member 21, the first connecting unit 1, and the second connecting unit 2. In the pouring space between the two connecting units 2, the reinforcing rib 33 is moved until the first guide protrusion 331 presses against the first inclined surface and the second guide protrusion presses against the second inclined surface, so that the first connecting member 11 and the second connecting member 21 are completely locked together to prevent rainwater from seeping through here. Then, the extrusion member 6 above the bearing member 31 is pushed until its two ends are respectively locked into the first slot and the second slot 232. The second pouring layer 7 is set in the filling space formed by the first connecting unit 1, the second connecting unit 2, the first mounting bracket 12 and the second mounting bracket 22, and the overall installation of the building component connection structure is completed. The above setting can improve the structural integrity of the first connecting unit 1 and the second connecting unit 2, and also improve the waterproof effect and stress strength at the connection gap between the first connecting unit 1 and the second connecting unit 2.

[0051] Note that the above description is merely a preferred embodiment of the present invention and the technical principles employed. Those skilled in the art will understand that the present invention is not limited to the specific embodiments described herein, and various obvious changes, readjustments, and substitutions can be made without departing from the scope of protection of the present invention. Therefore, although the present invention has been described in detail through the above embodiments, the present invention is not limited to the above embodiments, and may include many other equivalent embodiments without departing from the concept of the present invention, the scope of which is determined by the scope of the appended claims.

Claims

1. A building component connection structure, characterized in that, include: A first connecting unit (1) and a second connecting unit (2) are provided, and a connecting gap is formed between the first connecting unit (1) and the second connecting unit (2). The first connecting unit (1) is provided with a first connecting member (11), which is sealed at one end of the connecting gap. The second connecting unit (2) is provided with a second connecting member (21), which is connected to the first connecting member (11). The reinforcement component (3) includes a bearing (31), a first casting layer (32), and a reinforcing rib (33). The bearing (31) is disposed at the other end of the connection gap. The bearing (31) is connected to the first connecting unit (1) and the second connecting unit (2) respectively. The first casting layer (32) is disposed in the casting space formed by the bearing (31), the first connecting unit (1), the second connecting unit (2), and the second connecting member (21). The reinforcing rib (33) is disposed in the connection gap. One end of the reinforcing rib (33) abuts against the bearing (31), and the other end of the reinforcing rib (33) abuts against the second connecting member (21). The first seal (4) and the second seal (5) are both connected to the carrier (31); The extrusion member (6) is connected to the bearing member (31), and the extrusion member (6) is respectively engaged with the first connecting unit (1) and the second connecting unit (2) to press the first sealing member (4) against the first connecting unit (1) and press the second sealing member (5) against the second connecting unit (2); A first mounting bracket (12) is provided on the first connecting unit (1) and a second mounting bracket (22) is provided on the second connecting unit (2). The first mounting bracket (12) is provided with a first limiting protrusion, and the second mounting bracket (22) is provided with a second limiting protrusion (23). The first limiting protrusion is provided with a first inclined surface, and the second limiting protrusion (23) is provided with a second inclined surface (231). The two ends of the extrusion member (6) are respectively pressed against the first inclined surface and the second inclined surface (231). The first limiting protrusion is provided with a first slot, and the second limiting protrusion (23) is provided with a second slot (232). The two ends of the extrusion member (6) can be respectively inserted into the first slot and the second slot (232). The second pouring layer (7) is disposed in the filling space formed by the first connecting unit (1), the second connecting unit (2), the first mounting bracket (12) and the second mounting bracket (22), and the second pouring layer (7) can cover the extrusion member (6), the bearing member (31), the first sealing member (4) and the second sealing member (5).

2. The building component connection structure according to claim 1, characterized in that, The first connecting unit (1) is provided with a first reinforcing member, the second connecting unit (2) is provided with a second reinforcing member (24), and the reinforcing rib (33) is provided with a first guide protrusion (331) and a second guide protrusion. The first guide protrusion (331) presses against the first reinforcing member, and the second guide protrusion presses against the second reinforcing member (24) to drive the second connecting member (21) to clamp the first connecting member (11).

3. The building component connection structure according to claim 2, characterized in that, The first reinforcement member includes a first connecting part and a first guide part connected together. The first connecting part is connected to the first connecting unit (1). The first guide part is provided with a first inclined surface. The first guide protrusion (331) presses against the first inclined surface. The second reinforcement member (24) includes a second connecting part (241) and a second guide part (243) connected together. The second connecting part (241) is connected to the second connecting unit (2). The second guide part (243) is provided with a second inclined surface. The second guide protrusion presses against the second inclined surface to apply opposite forces to the first connector (11) and the second connector (21).

4. The building component connection structure according to claim 1, characterized in that, The building component connection structure also includes a waterproof adhesive layer (8), which is disposed at the connection between the first connector (11) and the second connector (21).

5. The building component connection structure according to claim 1, characterized in that, The first connector (11) and the second connector (21) are both L-shaped and interlocked with each other.

6. The building component connection structure according to claim 1, characterized in that, The first connecting unit (1) includes a support frame (13), a mesh structure layer (14), and a third casting layer (15). The mesh structure layer (14) is disposed above the support frame (13), and the third casting layer (15) is filled in the support frame (13). The third casting layer (15) can cover the mesh structure layer (14).

7. The building component connection structure according to any one of claims 1-6, characterized in that, The first sealing element (4) is bonded to the first connecting unit (1), and the second sealing element (5) is bonded to the second connecting unit (2). The first sealing element (4) and the second sealing element (5) have the same structure. One of the first sealing element (4) and the carrier (31) is provided with a connecting protrusion, and the other is provided with an insertion groove that cooperates with the connecting protrusion.

Citation Information

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