Anti-seismic reinforcing connecting assembly for building structure
By designing a flip-connected first and second connecting seats, and equipping the building structure with a seismic reinforcement connection component with supporting wing plates and buffer rods, the problems of poor seismic resistance and difficult angle adjustment in the existing technology are solved, and convenient angle adaptation and effective seismic resistance are achieved.
Patent Information
- Application Number
- CN202422850513.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-22
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2034-11-22
AI Technical Summary
Existing seismic reinforcement connection components for building structures can easily cause the building to bend, deform, or break when connecting right-angled assembly parts, and are difficult to quickly and conveniently adapt to the angles of the assembly parts.
A component is designed, which includes a first connecting seat and a second connecting seat. The components are connected by flipping a connecting axis and are equipped with supporting wing plates, buffer rods and buffer components to achieve angle adjustment and buffer support. The limiting area and the connecting area are used for fixing and limiting.
It realizes convenient adjustment and fixation according to the angle of the assembly parts, enhances the earthquake resistance effect, consumes the vibration energy through buffering and supporting structures, and improves the earthquake resistance of the building structure.
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Figure CN223387026U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of building structures, in particular to an anti-seismic reinforcement connection component of a building structure. Background Art
[0002] Architecture is a general term for buildings and structures. It is an artificial environment created by people to meet the needs of social life using the material and technical means they have mastered and applying certain scientific laws and aesthetic principles. The building structure refers to a system in a house building that is composed of various components, including roof trusses, beams, wall panels and wall columns, which can withstand various effects. The so-called effect refers to various factors that can cause internal forces and deformations in the system, such as loads, earthquakes, temperature changes and foundation settlement. When strengthening the building structure against earthquakes, reinforcement connection devices are required.
[0003] The following problems are prone to occur when using existing seismic reinforcement connection components for building structures. First, the reinforcement connection device is usually a rigid connection when connecting right-angle assembly parts. Although this connection method is reliable, the seismic resistance is poor, and the force is concentrated on the right-angle end of the component. When the building is subjected to large vibrations such as earthquakes and other emergencies, this rigid connection often easily causes the building to bend, deform, or even break, which is very dangerous. Second, it is difficult to adapt and adjust according to the angle of the assembly parts, and reinforcement treatment is often required according to the assembly situation. This is time-consuming and labor-intensive, and it is difficult to quickly and conveniently implement reinforcement construction due to angle problems.
[0004] Therefore, the utility model proposes a seismic reinforcement connection assembly for a building structure. Utility Model Content
[0005] In view of the deficiencies of the prior art, the present invention provides a seismic reinforcement connection assembly for a building structure, which solves the problems raised by the above-mentioned background technology.
[0006] To achieve the above objectives, the present invention is implemented through the following technical solutions: a building structure seismic reinforcement connection assembly, comprising a first connecting seat and a second connecting seat arranged in a matching manner, a connecting shaft being embedded between the first connecting seat and the second connecting seat, a first limiting area and a second limiting area being respectively provided on the inner sides of the first connecting seat and the second connecting seat, and a first connecting area and a second connecting area being respectively provided on the surfaces of the first limiting area and the second limiting area;
[0007] The inner side of the first connecting seat is movably connected to a supporting wing plate, the top of the second connecting seat is fixedly connected to a supporting platform, a limiting groove is provided on the surface of the supporting platform, the first connecting seat and the second connecting seat are movably connected to a buffer rod, and the outer end of the first connecting seat is provided with a buffer assembly;
[0008] The buffer component comprises a guide platform fixedly connected to the first connecting seat, and also comprises a buffer layer in the guide platform, wherein the bottom end of the buffer layer is fixedly connected to a spring.
[0009] As a further technical solution of the present invention, the first connecting seat and the second connecting seat are flipped connected by a connecting shaft, and connecting wings are provided on both longitudinal sides of the inner side of the first connecting seat corresponding to the supporting wings, and the connecting wing and the supporting wing are flipped connected by an axis.
[0010] As a further technical solution of the present invention, the surfaces of the first connecting seat and the second connecting seat corresponding to the buffer rod are provided with connecting supports.
[0011] As a further technical solution of the present invention, the first limiting area and the second limiting area are both rectangular concave, and the first connecting area and the second connecting area are respectively opened in strip shape along the surfaces of the first limiting area and the second limiting area.
[0012] As a further technical solution of the present invention, the support wing plates are arranged to be tilted downward and are distributed longitudinally in two groups. They are movably arranged to fit the surface of the connecting wing plates on the inner side of the first connecting seat, and a threaded connection hole is opened at the bottom end of the support wing plates. At the same time, the corresponding limit grooves of the support wing plates are embedded therein, and the bottom end of the support wing plates is an arc-shaped thickened plate protruding.
[0013] As a further technical solution of the present invention, the buffer rod consists of a middle rod barrel and a rod body at both ends. A spring is embedded between the rod body and the rod barrel. The two ends of the buffer rod are movably connected to the connecting supports on the surface of the first connecting seat and the second connecting seat.
[0014] As a further technical solution of the present invention, the support platform is arranged in a rectangular shape as a whole, and two groups of limit grooves are opened along the longitudinal sides of the support platform surface. They are opened horizontally, and one end of the limit groove is opened through, and strip-shaped threaded holes are opened in the same position on the support platform and the limit groove surface.
[0015] As a further technical solution of the present invention, the guide platform is fixedly connected to the upper and lower outer ends of the first connecting seat, and two groups are provided in total, distributed on both longitudinal sides of the first connecting seat.
[0016] As a further technical solution of the present invention, the guide platform is set as a cylindrical platform, and the buffer layer is set as a rubber cylindrical layer movably embedded in the guide platform. There are two groups of corresponding guide platforms, and the inner ends of the buffer layers are tooth-shaped. The springs are vertically connected between each group of buffer layers.
[0017] The utility model provides a seismic reinforcement connection assembly for building structures, which has the following beneficial effects compared with the prior art:
[0018] 1. The present invention provides a building structure seismic reinforcement connection component, which is convenient for adjustment and adaptation according to the angle of the external assembly part by flipping the first connection seat and the second connection seat, and convenient for connection and position limiting of the external assembly part by the first connection area and the second connection area, and convenient for connection and fixation of the external assembly part by the first connection area and the second connection area.
[0019] 2. The present invention provides a building structure seismic reinforcement connection component, which achieves the effect of supporting and reinforcing between the first connection seat and the second connection seat through a movably arranged support wing plate, and achieves the effect of forming a buffer support between the first connection seat and the second connection seat through a buffer rod.
[0020] 3. This design is a building structure seismic reinforcement connection component, which achieves the effect of connecting the support wing plate through the support platform and the limiting groove on its surface, achieves the effect of limiting the buffer layer through the guide platform, and achieves the effect of fitting the surface of the external assembly through the buffer layer to achieve the effect of buffering external forces. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 This is a structural schematic diagram of a seismic reinforcement connection assembly for a building structure;
[0022] Figure 2 A schematic diagram of a buffer component connection for a seismic reinforcement connection component of a building structure;
[0023] Figure 3 The present invention is a schematic diagram of the overall device use of a seismic reinforcement connection component for a building structure.
[0024] In the figure: 1. First connecting seat; 2. Second connecting seat; 3. First limiting area; 4. Second limiting area; 5. Connecting shaft; 6. First connecting area; 7. Second connecting area; 8. Support wing plate; 9. Support platform; 10. Limiting groove; 11. Buffer rod; 12. Buffer assembly; 13. Guide platform; 14. Buffer layer; 15. Spring. DETAILED DESCRIPTION
[0025] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.
[0026] See also Figure 1-3 , the utility model provides a technical solution for earthquake-resistant reinforcement connection components of building structures:
[0027] It includes a first connecting seat 1 and a second connecting seat 2 that are matched with each other, a connecting shaft 5 is embedded between the first connecting seat 1 and the second connecting seat 2, a first limiting area 3 and a second limiting area 4 are respectively provided on the inner sides of the first connecting seat 1 and the second connecting seat 2, and a first connecting area 6 and a second connecting area 7 are respectively opened on the surfaces of the first limiting area 3 and the second limiting area 4;
[0028] The inner side of the first connecting seat 1 is movably connected with a supporting wing plate 8, the top of the second connecting seat 2 is fixedly connected with a supporting platform 9, a limiting groove 10 is provided on the surface of the supporting platform 9, the first connecting seat 1 and the second connecting seat 2 are movably connected with a buffer rod 11, and the outer end of the first connecting seat 1 is provided with a buffer assembly 12, the buffer assembly 12 includes a guide platform 13 fixedly connected to the first connecting seat 1, and also includes a buffer layer 14 in the guide platform 13, and the bottom end of the buffer layer 14 is fixedly connected to a spring 15.
[0029] like Figure 1 As shown, the first connecting seat 1 and the second connecting seat 2 are flipped and connected by a connecting shaft 5, and connecting wings are provided on both longitudinal sides of the inner side of the first connecting seat 1 corresponding to the support wing 8, and the connecting wing and the support wing 8 are flipped and connected by an axis body, and the buffer rod 11 corresponding to the surface of the first connecting seat 1 and the second connecting seat 2 is provided with a connecting support, the first limiting area 3 and the second limiting area 4 are both rectangular concave settings, and the first connecting area 6 and the second connecting area 7 are respectively opened in strips along the surface of the first limiting area 3 and the second limiting area 4. By flipping the connected first connecting seat 1 and the second connecting seat 2, the effect of facilitating adjustment and adaptation according to the angle of the external assembly is achieved, the effect of facilitating connection and limitation of the external assembly is achieved through the first connecting area 6 and the second connecting area 7, and the effect of connecting and fixing the external assembly is achieved through the first connecting area 6 and the second connecting area 7.
[0030] When connecting and fixing with the external assembly, first make the basic connection of the external assembly, adjust the angle of the two sets of connecting seats according to the angle of the assembly, and then embed the vertical member and the horizontal member between the first limiting area 3 and the second limiting area 4 respectively, and embed the external screws into the two sets of connection areas to realize the connection and fixation of the assembly and the two sets of connecting seats respectively.
[0031] like Figure 1-2As shown, the support wing plate 8 is set to be tilted downward and is longitudinally distributed in two groups. It is movably set to fit the surface of the connecting wing plate inside the first connecting seat 1, and a threaded connection hole is opened at the bottom end of the support wing plate 8. At the same time, the corresponding limit groove 10 of the support wing plate 8 is embedded in it. The bottom end of the support wing plate 8 is an arc-shaped thickened plate protruding. The buffer rod 11 consists of a middle rod tube and a rod body at both ends. A spring is embedded between the rod body and the rod tube. The two ends of the buffer rod 11 are movably connected to the connecting supports on the surfaces of the first connecting seat 1 and the second connecting seat 2. Through the movably arranged support wing plate 8, the effect of supporting and reinforcing the first connecting seat 1 and the second connecting seat 2 is achieved, and the effect of forming a buffer support between the first connecting seat 1 and the second connecting seat 2 is achieved through the buffer rod 11.
[0032] After the angle between the first connecting seat 1 and the second connecting seat 2 is adjusted according to the external mounting assembly, the support wing plate 8 is embedded in the corresponding limit groove 10, and the bottom end of the support wing plate 8 and the limit groove 10 are connected and fixed by external screws, and the buffer rod 11 that movably connects the two groups of connecting seats is adaptively adjusted as the angle of the two groups of connecting seats is adjusted. When the assembly is subjected to external force, the two groups of connecting seats are forced to drive the buffer rod 11 to shrink and extend as a whole, thereby performing work, thereby consuming the shocks received by the two groups of connecting seats and achieving an anti-seismic effect. The setting of the support wing plate 8 supports and reinforces the connection between the two groups of connecting seats, which can effectively enhance the force-bearing capacity of the external assembly and achieve a reinforcement effect.
[0033] The support platform 9 is arranged in a rectangular shape as a whole, and two groups of limiting grooves 10 are opened along the longitudinal sides of the surface of the support platform 9. They are opened horizontally, and one end of the limiting groove 10 is opened through. Strip-shaped threaded holes are opened at the same position on the surface of the support platform 9 and the limiting groove 10. The effect of connecting the support wing plate 8 is achieved through the support platform 9 and the limiting groove 10 on its surface.
[0034] When the supporting wing plate 8 is fixed, the supporting wing plate 8 is embedded in the limiting groove 10 and is slidably adjusted along the limiting groove 10 according to the angles of the two groups of connecting seats.
[0035] like Figure 2 As shown, the guide platform 13 is fixedly connected to the upper and lower outer ends of the first connecting seat 1, and two groups are provided in total, distributed on both longitudinal sides of the first connecting seat 1. The guide platform 13 is set as a cylindrical platform, and the buffer layer 14 is set as a rubber cylindrical layer that is movably embedded in the guide platform 13. There are two groups of corresponding guide platforms 13, and the inner ends of the buffer layers 14 are tooth-shaped. The spring 15 is vertically connected between each group of buffer layers 14. The guide platform 13 is used to limit the buffer layer 14, and the buffer layer 14 is used to fit the surface of the external assembly to achieve the effect of buffering external forces.
[0036] After the first connecting seat 1 and the external vertical member are installed, the inner side of the tooth-shaped buffer layer 14 fits into the surface of the external vertical member. When the first connecting seat 1 is subjected to external force, the buffer layer 14 is forced to drive the spring 15 to perform work, thereby buffering the vertical external force applied to the first connecting seat 1 and achieving an anti-seismic effect.
[0037] The working principle of the present invention is: when the device is in use, the basic connection of the external assembly parts is realized through two sets of connecting seats, the reinforcement support between the external assembly parts is realized through the supporting wing plates 8, and the force buffering treatment of the external assembly parts is realized through the buffer rods 11 and the buffer components 12, thereby improving the seismic effect of the entire connecting component.
[0038] The above description is merely a preferred embodiment of the present invention. It should be noted that those skilled in the art may make various improvements and modifications without departing from the principles of the present invention, and such improvements and modifications should be considered within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described or explained in this invention shall, unless otherwise specified or limited, be implemented in accordance with conventional means in the art.
Claims
1. A building structure seismic reinforcement connection assembly, characterized by: The invention comprises a first connecting seat (1) and a second connecting seat (2) which are matched with each other, a connecting shaft (5) is embedded between the first connecting seat (1) and the second connecting seat (2), and a first limiting area (3) and a second limiting area (4) are respectively provided on the inner sides of the first connecting seat (1) and the second connecting seat (2), and a first connecting area (6) and a second connecting area (7) are respectively provided on the surfaces of the first limiting area (3) and the second limiting area (4); The inner side of the first connecting seat (1) is movably connected to a supporting wing plate (8), the top of the second connecting seat (2) is fixedly connected to a supporting platform (9), a limiting groove (10) is provided on the surface of the supporting platform (9), the first connecting seat (1) and the second connecting seat (2) are movably connected to a buffer rod (11), and a buffer assembly (12) is provided at the outer end of the first connecting seat (1); The buffer assembly (12) includes a guide platform (13) fixedly connected to the first connecting seat (1), and also includes a buffer layer (14) in the guide platform (13), wherein the bottom end of the buffer layer (14) is fixedly connected to a spring (15).
2. The building structure seismic reinforcement connection assembly according to claim 1, characterized in that: The first connecting seat (1) and the second connecting seat (2) are connected in a flipping manner via a connecting shaft (5), and connecting wing plates are provided on both longitudinal inner sides of the first connecting seat (1) corresponding to the supporting wing plates (8), and the connecting wing plates and the supporting wing plates (8) are connected in a flipping manner via a shaft.
3. The building structure seismic reinforcement connection assembly according to claim 2, characterized in that: The surfaces of the first connecting seat (1) and the second connecting seat (2) corresponding to the buffer rod (11) are provided with connecting supports.
4. The building structure seismic reinforcement connection assembly according to claim 1, characterized in that: The first limiting area (3) and the second limiting area (4) are both arranged in a rectangular concave shape, and the first connecting area (6) and the second connecting area (7) are respectively opened in a strip shape along the surface of the first limiting area (3) and the second limiting area (4).
5. The building structure seismic reinforcement connection assembly according to claim 1, characterized in that: The supporting wing plates (8) are arranged to be tilted downward and are longitudinally distributed in two groups. They are movably arranged to fit the surface of the connecting wing plates inside the first connecting seat (1), and a threaded connection hole is provided at the bottom end of the supporting wing plates (8). At the same time, the corresponding limiting grooves (10) of the supporting wing plates (8) are embedded therein, and the bottom end of the supporting wing plates (8) is arranged to be an arc-shaped thickened plate protruding.
6. The building structure seismic reinforcement connection assembly according to claim 1, characterized in that: The buffer rod (11) is composed of a middle rod barrel and rod bodies at both ends. A spring is embedded between the rod body and the rod barrel. The two ends of the buffer rod (11) are movably connected to the connection supports on the surfaces of the first connection seat (1) and the second connection seat (2).
7. The building structure seismic reinforcement connection assembly according to claim 1, characterized in that: The support platform (9) is arranged in a rectangular shape as a whole, and two groups of limiting grooves (10) are provided along the longitudinal sides of the surface of the support platform (9), which are opened in a transverse direction, and one end of the limiting groove (10) is opened through, and strip-shaped threaded holes are provided on the surfaces of the support platform (9) and the limiting groove (10) at the same position.
8. The building structure seismic reinforcement connection assembly according to claim 1, characterized in that: The guide platforms (13) are fixedly connected to the upper and lower outer ends of the first connecting seat (1), and two groups are provided in pairs, distributed on both longitudinal sides of the first connecting seat (1).
9. The building structure seismic reinforcement connection assembly according to claim 8, characterized in that: The guide platform (13) is configured as a cylindrical platform, and the buffer layer (14) is configured as a rubber cylindrical layer movably embedded in the guide platform (13). Two groups of guide platforms (13) are provided in pairs, and the inner ends of the buffer layers (14) are configured in a toothed shape. The spring (15) is vertically connected between each group of buffer layers (14).