House building anti-seismic support convenient to install and installation method

By designing clamping, filling and coupling mechanisms suitable for square pipes and round pipes of different diameters, the construction efficiency problem caused by inconsistent specifications of earthquake-resistant brackets is solved, and efficient installation and stable connection are achieved.

CN120487977APending Publication Date: 2025-08-15CCCC FOURTH HIGHWAY ENG CO LTD +1
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Patent Information

Application Number
CN202510398125.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-01
Publication Date
2025-08-15

AI Technical Summary

Technical Problem

During the construction of a house, the purchased seismic brackets are incorrect in specifications or in quantity, resulting in low construction efficiency and need to be turned back and forth, affecting the overall progress.

Method used

A seismic anti-stabilizing bracket for easy installation is designed, including a clamping mechanism, a filling mechanism and a coupling mechanism. The clamping mechanism adapts to the installation needs of square tubes and round tubes of different diameters through the combination of L-shaped brackets and clamps; the filling mechanism enhances stability through rubber sleeves and epoxy resin; the coupling mechanism adapts to different environments through C-shaped channel steel and adjustable support frame.

Benefits of technology

There is no need to count pipeline specifications one by one, which simplifies the distribution process of seismic brackets, improves installation efficiency, and enhances connection stability and adaptability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a house building anti-seismic support convenient to install and an installation method. The house building anti-seismic support convenient to install comprises a clamping mechanism, the clamping mechanism is clamped outside a pipeline, a filling mechanism is arranged on the clamping mechanism, the top end of the clamping mechanism is connected with a connecting mechanism, and the connecting mechanism is connected with a plurality of C-shaped steel channels; the clamping mechanism comprises two L-shaped supports and two clamping plates, a second hinge frame is arranged at one end of each L-shaped support, a first hinge frame is arranged at the top end of each clamping plate, a hinge shaft is fixedly connected to each first hinge frame, the first hinge frames are correspondingly hinged to the second hinge frames through the hinge shafts, and the second hinge frames are hinged to the second hinge frames through the hinge shafts. The house building anti-seismic support convenient to install and the installation method have the advantages that the installation requirements of square pipes and round pipes with different diameters can be met, statistics of all pipeline specifications and distribution of anti-seismic supports with different specifications is not needed one by one before installation, repeated turnover is avoided, and the installation efficiency is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of earthquake-resistant brackets, and in particular to an easy-to-install earthquake-resistant bracket for building construction and an installation method. Background Art

[0002] In modern society, the safety of buildings is an important issue that we cannot ignore. Earthquakes, as a natural disaster, are unpredictable in their destructive power, but we can use scientific and technological means to minimize their damage to buildings.

[0003] Seismic braces are a type of support structure securely connected to a building's structure, primarily used to protect mechanical and electrical wiring within the building. During an earthquake, they effectively limit displacement, thereby minimizing damage to the building.

[0004] Because seismic braces need to be connected to pipes, and pipes used in building construction are mostly square or round, the selection of seismic braces typically involves measuring the pipe diameters and shapes one by one. This data is then used to select and purchase the braces. However, if the wrong braces are purchased, the purchase will require repeated purchases, directly impacting overall construction efficiency. Summary of the Invention

[0005] The present invention discloses an easy-to-install earthquake-resistant support for building construction and an installation method, aiming to solve the technical problem that if the purchased earthquake-resistant support has incorrect specifications or incorrect quantity and needs to be turned over and over, it directly affects the overall construction efficiency of the building construction.

[0006] In order to achieve the above object, the present invention adopts the following technical solutions:

[0007] A seismic support for building construction that is easy to install, comprising a clamping mechanism, the clamping mechanism being clamped outside a pipe, a filling mechanism being provided on the clamping mechanism, a connecting mechanism being connected to the top end of the clamping mechanism, and a plurality of C-shaped channel steels being connected to the connecting mechanism;

[0008] The two cams have an L-shaped tab and an L-shaped tab at the top, and the two cams have an L-shaped tab at the bottom, and an L-shaped tab has an L-shaped tab at the bottom.

[0009] The clamping mechanism also includes a central bracket, and two L-shaped brackets are symmetrically arranged on both sides of the central bracket. Each of the L-shaped brackets is staggered with multiple through-holes 2 and through-grooves, and the through-grooves on each L-shaped bracket correspond to the through-holes 2 on the other L-shaped bracket. The central bracket is inlaid with multiple screw holes 1, and bolts are engaged in both the through-holes 2 and the screw holes 1.

[0010] By providing a clamping mechanism, the installation method can be selected according to the shape of the pipe. If the pipe is a square pipe, the splint is bent at the hinge of the L-shaped agent and the splint so that it is flush with the bottom of the L-shaped bracket, which can facilitate the connection between the bracket and the square pipe. If the pipe is a round pipe, the splint is made vertical, and the clamping diameter between the two splints is adjusted by changing the depth of the bolt inserted into the screw hole, which can adapt to the external installation of round pipes of different diameters. Therefore, the setting of the clamping mechanism can meet the installation requirements of square pipes and round pipes of different diameters, and there is no need to count all pipe specifications and the distribution of seismic brackets of different specifications one by one before installation, which avoids back and forth turnover and facilitates improving installation efficiency.

[0011] In a preferred embodiment, the filling mechanism includes a rubber sleeve, and the outer portion of the rubber sleeve is simultaneously attached to the inner wall of the L-shaped bracket and the splint, and the inner wall of each rubber sleeve is tightly connected to a plurality of injection tubes, and the inner wall of the top end of each injection tube is movably plugged with a plug;

[0012] Each of the splints is respectively provided with a square perforation, and a felt cloth is movably inserted into the square perforation, the inner wall of the bottom end of the felt cloth is attached to the bottom end of the pipe, and the two ends of the felt cloth are respectively attached to the outer wall of the inner curved bracket;

[0013] The L-shaped bracket is penetrated by a plurality of through-holes four, each of the injection tubes passes through the through-hole four and is fixedly connected to the inner wall of the through-hole four, and each of the inner-bend brackets is penetrated by a screw hole two, a bolt is engaged in the screw hole two, and the bolt passes through the felt cloth at the same time.

[0014] By providing a filling mechanism, in the filling mechanism, after the two splints clamp the outer wall of the pipe, epoxy resin can be filled into the rubber sleeve through the injection tube. After the epoxy resin solidifies, the hinge position of the L-shaped bracket and the splint can be completely filled to increase the contact area with the outer wall of the pipe. By increasing the contact area, the force is evenly distributed, thereby optimizing the clamping stability. Under the action of the felt cloth, the stability of the splint clamping can be reinforced, and the pipe section can be provided with heat preservation and buffering effects to avoid the connection position of the pipe from being broken by environmental influences, further ensuring the connection stability. The setting of the rubber sleeve can be cut and used as a gasket when connected to the square pipe, while providing buffering and shock absorption and optimizing the stability of the bolt connection.

[0015] In a preferred embodiment, the coupling mechanism includes a circular support plate three, and a central support rod is fixedly connected to the center position of the top end of the circular support plate three, a plurality of through holes six are equidistantly arranged on the circular support plate three, a groove is provided on the outer wall of the bottom end of the central support rod, a central branch pipe is movably sleeved on the groove, and the outer wall of the bottom end of the central branch pipe is fixedly connected to the circular support plate two;

[0016] The circular support plate 2 is movably fitted to the top of the circular support plate 3, and two through-holes 5 are symmetrically provided on the circular support plate 2. A plurality of limit plates and blocks are fixedly connected to the outer wall of the central branch pipe at equal intervals, and the plurality of limit plates and blocks are staggered in an upper and lower manner.

[0017] A circular support plate 1 is movably sleeved on the outside of the central branch pipe, and the circular support plate 1 is movably fitted on the top of the circular support plate 2. A plurality of arc-shaped through grooves are evenly spaced through the circular support plate 1, and a plurality of fan-shaped support frames are movably fitted on the top of the circular support plate 1. Two through holes 7 are symmetrically provided on the circular support plate 1.

[0018] Each of the fan-shaped support frames is respectively provided with a square through-groove, and a plurality of limit plugs are correspondingly and movably inserted into the square through-groove; a slider is respectively fixedly connected to the outer wall of the bottom end of each fan-shaped support frame, and each slider is correspondingly and movably connected to a plurality of arc-shaped through-grooves;

[0019] The top end of each of the fan-shaped support frames is fixedly connected to a special-shaped support shaft through the second connecting plate, and an arc-shaped sleeve is movably sleeved on the outside of each special-shaped support shaft. A special-shaped hole is provided through each of the arc-shaped sleeves. The outer wall of each arc-shaped sleeve is connected to the C-shaped channel steel through a seismic adjustable hinge, and the top end of the C-shaped channel steel is connected to the connecting plate 1 through a seismic adjustable hinge.

[0020] A method for installing an earthquake-resistant support for building construction that is easy to install includes the following specific steps:

[0021] S1: Select the installation method: If it is a square tube, bend the splint at the hinge to make it flush with the bottom of the L-shaped bracket, cut the rubber sleeve to use it as a gasket, and drive bolts into the outer wall of the square tube through holes 4 and 1. If it is a round tube, make the splint vertical, install the L-shaped limit plate, and adjust the clamping diameter by changing the depth of the bolt into the screw hole.

[0022] S2: Filling with epoxy resin: Filling epoxy resin from the injection pipe to change the shape of the rubber sleeve and waiting for the epoxy resin to solidify;

[0023] S3: Fix the felt cloth: pass the felt cloth through the square perforations, tighten the felt cloth and fix the position of the felt cloth with bolts;

[0024] S4: Adjust the position of the C-channel steel: according to the position of the pipeline, rotate the circular support plate 1 to open the fan-shaped support frame, and install or remove the corresponding arc-shaped sleeve and C-channel steel;

[0025] S5: Fix the position of the C-shaped channel steel: After determining the appropriate support position, select the sixth perforation at the corresponding position and connect it with the fifth and seventh perforations using bolts;

[0026] S6: Fix the ceiling: Fix the top of the center support rod and the connecting plate to the ceiling.

[0027] By providing a connecting mechanism, in the connecting mechanism, the circular support plate 1 can be rotated to move multiple fan-shaped support frames outward, and the arc-shaped sleeve can be separated from the special-shaped support shaft by translation from the gap. Similarly, it is also convenient for the installation of the arc-shaped sleeve and the C-shaped channel steel. After the arc-shaped sleeve is installed, the circular support plate 1 is rotated to make one end of the arc-shaped sleeve fit with the connecting plate 2, and the other end fit with the stop block to fix the position of the arc-shaped sleeve. By setting multiple six through-holes, small angle adjustments of multiple C-shaped channel steel support directions can be completed by selecting two of the six through-holes and connecting them with bolts to adapt to different installation environments.

[0028] From the above, it can be seen that a seismic support for building construction that is easy to install includes a clamping mechanism, which is clamped outside the pipe, and a filling mechanism is provided on the clamping mechanism, the top of the clamping mechanism is connected to a connecting mechanism, and a plurality of C-shaped channel steels are connected to the connecting mechanism; the clamping mechanism includes two L-shaped brackets and two clamping plates, one end of each of the L-shaped brackets is provided with an articulated frame 2, the top of each of the clamping plates is respectively provided with an articulated frame 1, each of the articulated frames 1 is fixedly connected to a hinge shaft, and the articulated frame 1 is correspondingly hinged to the articulated frame 2 through the articulated shaft, and a plurality of clamping grooves are fixedly connected to the outer wall of one side of each of the articulated frames 2, and each clamping groove has an interference fit. The clamp has an L-shaped limiting plate, the top inner wall of the L-shaped limiting plate is movably fitted to one side of the L-shaped bracket, and the other inner wall of the L-shaped limiting plate is movably fitted to the outside of the clamp, the bottom end of each clamp is fixedly connected to an inward bending bracket, and each clamp is respectively provided with a plurality of through-holes 1; the clamping mechanism also includes a central bracket, and two L-shaped brackets are symmetrically arranged on both sides of the central bracket, each of the L-shaped brackets is staggered with a plurality of through-holes 2 and through-grooves, and the through-grooves on each L-shaped bracket correspond to the through-holes 2 on the other L-shaped bracket, the central bracket is inlaid with a plurality of screw holes 1, and bolts are engaged in the through-holes 2 and the screw holes 1 at the same time. The easy-to-install earthquake-resistant bracket and installation method for building construction provided by the present invention can meet the installation requirements of square tubes and round tubes of different diameters. Before installation, there is no need to count all pipe specifications and the distribution of earthquake-resistant brackets of different specifications one by one, which avoids back and forth turnover and improves the technical effect of installation efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0029] Figure 1 This is a schematic diagram of the overall structure of an easy-to-install earthquake-resistant support for building construction proposed by the present invention.

[0030] Figure 2 This is a schematic diagram of the disassembly of a clamping mechanism of an earthquake-resistant support for building construction that is easy to install, as proposed by the present invention.

[0031] Figure 3 This is a schematic diagram of the disassembled connection structure of the filling mechanism and the clamping mechanism of an easy-to-install earthquake-resistant support for building construction proposed by the present invention.

[0032] Figure 4 This is a schematic diagram of the disassembled limiting structure of the clamping mechanism of the earthquake-resistant support for building construction that is easy to install proposed by the present invention.

[0033] Figure 5 This is a schematic diagram of the top structure of an easy-to-install earthquake-resistant support for building construction proposed by the present invention.

[0034] Figure 6 This is a schematic diagram of the disassembly of the connection mechanism of the earthquake-resistant support for building construction that is easy to install proposed by the present invention.

[0035] Figure 7 This is a schematic diagram of the bottom structure of a fan-shaped support frame of an earthquake-resistant support for building construction that is easy to install, as proposed by the present invention.

[0036] Figure 8 The present invention provides a flowchart of an installation method for an earthquake-resistant support for building construction that is easy to install.

[0037] In the figure: 1. Clamping mechanism; 2. Filling mechanism; 3. Center support rod; 4. C-shaped channel steel; 5. Connecting plate 1; 6. Anti-seismic adjustable hinge; 7. Connecting mechanism; 8. Groove; 101. Screw hole 1; 102. Center bracket; 103. L-shaped bracket; 104. Through hole 1; 105. Clamping plate; 106. Inward bending bracket; 107. Articulated frame 1; 108. Through groove; 109. Through hole 2; 110. Articulated frame 2; 111. Articulated shaft; 112. Clamping groove; 113. L-shaped limit plate; 201. Rubber sleeve; 202. Felt cloth; 20 3. Screw hole two; 204. Square through hole; 205. Plug; 206. Injection tube; 207. Through hole four; 701. Circular support plate one; 702. Circular support plate two; 703. Circular support plate three; 704. Arc-shaped sleeve; 705. Special-shaped hole; 706. Special-shaped support shaft; 707. Connecting plate two; 708. Square through slot; 709. Fan-shaped support frame; 710. Arc through slot; 711. Block; 712. Center branch; 713. Through hole five; 714. Through hole six; 715. Through hole seven; 716. Slider; 717. Limiting plate. DETAILED DESCRIPTION

[0038] The technical solutions in the embodiments of the present invention will be clearly and completely described below 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.

[0039] The present invention discloses an easy-to-install earthquake-resistant support for buildings and an installation method, which are mainly used in scenarios where earthquake-resistant support installation is required.

[0040] Reference Figures 1-4 A building seismic support that is easy to install includes a clamping mechanism 1, the clamping mechanism 1 is clamped outside the pipe, and a filling mechanism 2 is provided on the clamping mechanism 1, the top of the clamping mechanism 1 is connected to a connecting mechanism 7, and the connecting mechanism 7 is connected to a plurality of C-shaped channel steels 4;

[0041] The clamping mechanism 1 includes two L-shaped brackets 103 and two splints 105, one end of each L-shaped bracket 103 is provided with a hinged frame 2 110, the top of each splint 105 is respectively provided with a hinged frame 107, each hinged frame 107 is fixedly connected to a hinge shaft 111, and the hinged frame 107 is correspondingly hinged to the hinged frame 2 110 through the hinge shaft 111, and one side outer wall of each hinged frame 2 110 is fixedly connected to a plurality of clamping grooves 112, and each clamping groove 112 is respectively interference clamped with an L-shaped limiting plate 113, the top inner wall of the L-shaped limiting plate 113 is movably fitted to one side of the L-shaped bracket 103, and the other side inner wall of the L-shaped limiting plate 113 is movably fitted to the outer side of the splint 105, the bottom end of each splint 105 is respectively fixedly connected to an inward bending bracket 106, and each splint 105 is respectively penetrated by a plurality of through-holes 104;

[0042] The clamping mechanism 1 also includes a central bracket 102, and two L-shaped brackets 103 are symmetrically arranged on both sides of the central bracket 102. Each L-shaped bracket 103 is staggered with a plurality of through-holes 109 and through-grooves 108, and the through-grooves 108 on each L-shaped bracket 103 correspond to the through-holes 109 on the other L-shaped bracket 103. The central bracket 102 is inlaid with a plurality of screw holes 101, and bolts are engaged in the through-holes 109 and the screw holes 101 at the same time. The installation method can be selected according to the shape of the pipeline. If the pipeline is a square tube, the splint 105 is bent at the hinge of the L-shaped agent 103 and the splint 105 so that it is flush with the bottom of the L-shaped bracket 103 and the top is also flush, and then the bolts can be driven into the outer wall of the square tube from the through-holes 207 and the through-holes 104. The bolts can be used to connect the bracket to the square tube. If the pipe is a round tube, the clamping plate 105 is made vertical and the L-shaped limit plate 113 is installed, wherein the clamping groove 112 provides interference clamping for the L-shaped limit plate 113, and one side of the L-shaped limit plate 113 is fitted to the outer wall of the clamping plate 105, which can provide a limit for the position of the clamping plate 105 to ensure that it remains vertical during the clamping process. The clamping diameter between the two clamping plates 105 is adjusted by changing the depth of the bolt inserted into the screw hole 101 to adapt to the external installation of round tubes of different diameters. Therefore, the setting of the clamping mechanism 1 can meet the installation requirements of square tubes and round tubes of different diameters. Before installation, there is no need to count all pipeline specifications and the distribution of seismic brackets of different specifications one by one, which avoids back and forth turnover and facilitates improving installation efficiency.

[0043] Reference Figure 2 and Figure 3 In a preferred embodiment, the filling mechanism 2 includes a rubber sleeve 201, and the outer portion of the rubber sleeve 201 is simultaneously attached to the inner wall of the L-shaped bracket 103 and the splint 105. The inner wall of each rubber sleeve 201 is tightly connected with a plurality of injection tubes 206, and the inner wall of the top end of each injection tube 206 is movably plugged with a plug 205.

[0044] Reference Figure 2 and Figure 3 In a preferred embodiment, each splint 105 is respectively penetrated by a square perforation 204, and a felt cloth 202 is movably inserted into the square perforation 204, the inner wall of the bottom end of the felt cloth 202 is attached to the bottom end of the pipe, and the two ends of the felt cloth 202 are respectively attached to the outer wall of the inner bend bracket 106.

[0045] Reference Figure 2 and Figure 3In a preferred embodiment, a plurality of through-holes 207 are provided on the L-shaped bracket 103, and each injection tube 206 passes through the through-hole 207 and is fixedly connected to the inner wall of the through-hole 207. A screw hole 203 is provided on each inner-bend bracket 106, and a bolt is engaged in the screw hole 203, and the bolt passes through the felt cloth 202 at the same time. In the filling mechanism 2, after the two clamps 105 clamp the outer wall of the pipe, epoxy resin can be filled into the rubber sleeve 201 through the injection tube 206 to change the shape of the rubber sleeve 201 and fit the outer wall of the pipe. After the epoxy resin solidifies, the hinge position of the L-shaped bracket 103 and the clamp 105 can be completely filled. The felt cloth 202 is filled to increase the contact area with the outer wall of the pipe, and the force is evenly distributed by increasing the contact area, thereby optimizing the clamping stability. Under the action of the felt cloth 202, the stability of the clamping of the splint 105 can be reinforced by tightening the felt cloth 202 and fixing it to the bottom of the inner bend bracket 106. The felt cloth 202 fits the bottom end of the pipe and can cooperate with the rubber sleeve 201 to wrap around the outer wall of the pipe, thereby providing insulation and buffering for the pipe section, avoiding the connection position of the pipe from being broken by the environment, and further ensuring the connection stability. The setting of the rubber sleeve 201 can be cut and used as a gasket when connected to the square pipe, while providing buffering and shock absorption and optimizing the stability of the bolt connection.

[0046] Reference Figure 5-Figure 7 In a preferred embodiment, the connecting mechanism 7 includes a circular support plate 3 703, and the center position of the top of the circular support plate 3 703 is fixedly connected to the center support rod 3, and a plurality of through-holes 714 are equidistantly arranged on the circular support plate 3 703. The outer wall of the bottom end of the center support rod 3 is provided with a groove 8, and the center branch pipe 712 is movably connected to the groove 8, and the outer wall of the bottom end of the center branch pipe 712 is fixedly connected to the circular support plate 2 702.

[0047] Reference Figure 5-Figure 7 In a preferred embodiment, the circular support plate 2 702 is movably fitted to the top of the circular support plate 3 703, and two through-holes 5 713 are symmetrically provided on the circular support plate 2 702. A plurality of limit plates 717 and blocks 711 are fixedly connected to the outer wall of the central branch pipe 712 at equal intervals, and the plurality of limit plates 717 and the plurality of blocks 711 are staggered up and down.

[0048] Reference Figure 5-Figure 7 In a preferred embodiment, a circular support plate 701 is movably sleeved on the outside of the central branch pipe 712, and the circular support plate 701 is movably fitted on the top of the circular support plate 2 702. A plurality of arc-shaped through grooves 710 are equidistantly provided on the circular support plate 701, and a plurality of fan-shaped support frames 709 are movably fitted on the top of the circular support plate 701. Two through holes 715 are symmetrically provided on the circular support plate 701.

[0049] Reference Figure 5-Figure 7 In a preferred embodiment, each fan-shaped support frame 709 is respectively provided with a square through-groove 708, and a plurality of limit plugs 717 are correspondingly and movably inserted into the square through-groove 708, and a slider 716 is respectively fixedly connected to the outer wall of the bottom end of each fan-shaped support frame 709, and each slider 716 is correspondingly and movably connected to a plurality of arc-shaped through-grooves 710.

[0050] Reference Figure 5-Figure 7 In a preferred embodiment, the top of each fan-shaped support frame 709 is fixedly connected to a special-shaped support shaft 706 through a connecting plate 2 707, and each special-shaped support shaft 706 is movably sleeved with an arc sleeve 704. Each arc sleeve 704 is penetrated by a special-shaped hole 705. The outer wall of each arc sleeve 704 is connected to the C-shaped channel steel 4 through an anti-seismic adjustable hinge 6, and the top of the C-shaped channel steel 4 is connected to the connecting plate 1 5 through an anti-seismic adjustable hinge 6. In the connecting mechanism 7, the connection position of the arc-shaped through-groove 710 and the slider 716 can be changed by rotating the circular support plate 1 701. Under the limiting action of the limiting plug 717 inserted in the square through-groove 708, multiple fan-shaped support frames 709 can be moved outward to expand the space between two adjacent special-shaped support shafts 706. The spacing between them can be adjusted by translating the arc sleeve 704 from the special-shaped support shaft 706 through the gap. Similarly, it is also convenient for the installation of the arc sleeve 704 and the C-shaped channel steel 4. After the arc sleeve 704 is installed, the circular support plate 1 701 is rotated so that one end of the arc sleeve 704 is fitted with the connecting plate 2 707, and the other end is fitted with the stop block 711 to fix the position of the arc sleeve 704. The positions of the merged multiple arc sleeves 704 can be fixed by connecting them with bolts through the through-hole 715 and the through-hole 5 713. By setting the multiple through-holes 6 714, small angle adjustments of the support directions of multiple C-shaped channel steels 4 can be completed by selecting two of the through-holes 6 714 and connecting them with bolts to adapt to different installation environments.

[0051] Reference Figure 8 A method for installing a building earthquake-resistant support that is easy to install includes the following specific steps:

[0052] S1: Select the installation method: If it is a square tube, bend the clamping plate 105 at the hinge so that it is flush with the bottom of the L-shaped bracket 103, cut the rubber sleeve 201 to use it as a gasket, and drive bolts into the outer wall of the square tube through the fourth hole 207 and the first hole 104. If it is a round tube, make the clamping plate 105 vertical, install the L-shaped limit plate 113, and adjust the clamping diameter by changing the depth of the bolt into the first screw hole 101.

[0053] S2: Filling with epoxy resin: Filling epoxy resin from the injection pipe 206 to change the shape of the rubber sleeve 201 and waiting for the epoxy resin to solidify;

[0054] S3: Fixing the felt cloth: passing the felt cloth 202 through the square hole 204, tightening the felt cloth 202 and fixing the position of the felt cloth 202 by means of bolts;

[0055] S4: Adjust the position of the C-shaped channel steel: According to the position of the pipeline, rotate the circular support plate 701 to open the fan-shaped support frame 709, and install or remove the corresponding arc-shaped sleeve 704 and the C-shaped channel steel 4;

[0056] S5: Fix the C-shaped channel steel position: After determining the appropriate support position, select the sixth through-hole 714 at the corresponding position and connect the sixth through-hole 714 to the fifth through-hole 713 and the seventh through-hole 715 with bolts;

[0057] S6: Fix the ceiling: fix the top of the central support rod 3, the connecting plate 5 and the ceiling.

[0058] Working principle: The installation method can be selected according to the shape of the pipe. If the pipe is a square pipe, the splint 105 is bent at the hinge of the L-shaped agent 103 and the splint 105 so that it is flush with the bottom of the L-shaped bracket 103 and the top is also flush. Bolts can be driven into the outer wall of the square pipe through the perforation 4 207 and the perforation 1 104 to achieve the connection between the bracket and the square pipe. If the pipe is a round pipe, the splint 105 is made vertical and the L-shaped limit plate 113 is installed, wherein the clamping groove 112 provides interference clamping for the L-shaped limit plate 113. The L-shaped limit plate 113 One side fits into the outer wall of the clamping plate 105, which can provide a limit for the position of the clamping plate 105 to ensure that it remains vertical during the clamping process. The clamping diameter between the two clamping plates 105 can be adjusted by changing the depth of the bolt inserted into the screw hole 101, which can adapt to the external installation of round pipes of different diameters. Therefore, through the setting of the clamping mechanism 1, the installation requirements of square pipes and round pipes of different diameters can be met. Before installation, there is no need to count all pipeline specifications and the distribution of seismic brackets of different specifications one by one, which avoids back and forth turnover and facilitates improving installation efficiency.

[0059] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.

Claims

1. A building anti-seismic support that is easy to install, comprising a clamping mechanism (1), characterized in that: The clamping mechanism (1) is clamped outside the pipe, and a filling mechanism (2) is provided on the clamping mechanism (1); the top end of the clamping mechanism (1) is connected to a connecting mechanism (7), and a plurality of C-shaped channel steels (4) are connected to the connecting mechanism (7); The clamping mechanism (1) includes two L-shaped brackets (103) and two clamping plates (105), one end of each L-shaped bracket (103) is provided with an articulated frame 2 (110), the top of each clamping plate (105) is provided with an articulated frame 1 (107), each articulated frame 1 (107) is fixedly connected with an articulated shaft (111), and the articulated frame 1 (107) is correspondingly articulated to the articulated frame 2 (110) through the articulated shaft (111), and one side outer wall of each articulated frame 2 (110) is fixedly connected to the articulated frame 2 (110). A plurality of clamping grooves (112) are fixedly connected, and an L-shaped limiting plate (113) is respectively clamped in each clamping groove (112) by interference, the top inner wall of the L-shaped limiting plate (113) is movably fitted to one side of the L-shaped bracket (103), and the other inner wall of the L-shaped limiting plate (113) is movably fitted to the outer side of the clamping plate (105), and the bottom end of each clamping plate (105) is respectively fixedly connected to an inner bending bracket (106), and each clamping plate (105) is respectively provided with a plurality of through holes (104); The clamping mechanism (1) further comprises a central bracket (102), and two L-shaped brackets (103) are symmetrically arranged on both sides of the central bracket (102), each of the L-shaped brackets (103) is staggeredly provided with a plurality of second through-holes (109) and through-grooves (108), and the through-grooves (108) on each L-shaped bracket (103) respectively correspond to the second through-holes (109) on the other L-shaped bracket (103), and the central bracket (102) is inlaid with a plurality of first screw holes (101), and bolts are engaged in both the second through-holes (109) and the first screw holes (101).

2. The easy-to-install earthquake-resistant support for building construction according to claim 1, characterized in that: The filling mechanism (2) comprises a rubber sleeve (201), and the outer portion of the rubber sleeve (201) is simultaneously attached to the inner wall of the L-shaped bracket (103) and the clamping plate (105); the inner wall of each rubber sleeve (201) is tightly connected to a plurality of injection tubes (206), and a plug (205) is movably inserted into the inner wall of the top end of each injection tube (206).

3. The easy-to-install earthquake-resistant support for building construction according to claim 2, characterized in that: Each of the clamping plates (105) is respectively provided with a square through-hole (204), and a felt cloth (202) is movably inserted into the square through-hole (204), the inner wall of the bottom end of the felt cloth (202) is fitted to the bottom end of the pipe, and the two ends of the felt cloth (202) are respectively fitted to the outer wall of the inner curved bracket (106).

4. The easy-to-install earthquake-resistant support for building construction according to claim 3, characterized in that: The L-shaped bracket (103) is provided with a plurality of through-holes (207), each of the injection tubes (206) passes through the through-hole (207) and is fixedly connected to the inner wall of the through-hole (207), and each of the inner-bend brackets (106) is provided with a screw hole (203), a bolt is engaged in the screw hole (203), and the bolt passes through the felt cloth (202) at the same time.

5. The easy-to-install earthquake-resistant support for building construction according to claim 1, characterized in that: The connecting mechanism (7) includes a circular support plate three (703), and the top center position of the circular support plate three (703) is fixedly connected to the central support rod (3), and a plurality of perforations six (714) are equidistantly arranged on the circular support plate three (703). The outer wall of the bottom end of the central support rod (3) is provided with a groove (8), and the groove (8) is movably sleeved with a central branch pipe (712), and the outer wall of the bottom end of the central branch pipe (712) is fixedly connected to the circular support plate two (702).

6. The easy-to-install earthquake-resistant support for building construction according to claim 5, characterized in that: The circular support plate 2 (702) is movably fitted to the top of the circular support plate 3 (703), and two through-holes 5 (713) are symmetrically provided on the circular support plate 2 (702). The outer wall of the central branch pipe (712) is equidistantly and fixedly connected with a plurality of limit plugs (717) and blocks (711), and the plurality of limit plugs (717) and blocks (711) are staggered in an upper and lower manner.

7. The easy-to-install earthquake-resistant support for building construction according to claim 6, characterized in that: The central branch pipe (712) is movably sleeved with a circular support plate (701) outside, and the circular support plate (701) is movably fitted on the top of the circular support plate (702). The circular support plate (701) is equidistantly provided with a plurality of arc-shaped through grooves (710), and the top of the circular support plate (701) is movably fitted with a plurality of fan-shaped support frames (709), and the circular support plate (701) is symmetrically provided with two through holes (715).

8. The easy-to-install earthquake-resistant support for building construction according to claim 7, characterized in that: Each of the fan-shaped support frames (709) is respectively provided with a square through-groove (708), and a plurality of limit plugs (717) are correspondingly and movably inserted into the square through-groove (708). The outer wall of the bottom end of each of the fan-shaped support frames (709) is respectively fixedly connected with a slider (716), and each slider (716) is correspondingly and movably connected to a plurality of arc-shaped through-grooves (710).

9. The easy-to-install earthquake-resistant support for building construction according to claim 8, characterized in that: The top end of each fan-shaped support frame (709) is fixedly connected to a special-shaped support shaft (706) through a second connecting plate (707), and an arc-shaped sleeve (704) is movably sleeved on the outside of each special-shaped support shaft (706), and a special-shaped hole (705) is provided through each arc-shaped sleeve (704). The outer wall of each arc-shaped sleeve (704) is connected to the C-shaped channel steel (4) through a seismic adjustable hinge (6), and the top end of the C-shaped channel steel (4) is connected to the connecting plate (5) through the seismic adjustable hinge (6).

10. A method for installing an easy-to-install earthquake-resistant support for building construction, applied to the easy-to-install earthquake-resistant support for building construction according to claims 4 and 9, characterized in that: The specific steps include: S1: Select the installation method: If it is a square tube, bend the clamping plate (105) at the hinge to make it flush with the bottom of the L-shaped bracket (103), cut the rubber sleeve (201) to use it as a gasket, and drive bolts into the outer wall of the square tube through the fourth hole (207) and the first hole (104); If it is a round tube, make the clamping plate (105) vertical, install the L-shaped limit plate (113), and adjust the clamping diameter by changing the depth of the bolt immersed in the screw hole (101); S2: Filling with epoxy resin: Filling epoxy resin from the injection pipe (206) to change the shape of the rubber sleeve (201) and waiting for the epoxy resin to solidify; S3: Fixing the felt cloth: passing the felt cloth (202) through the square perforation (204), tightening the felt cloth (202) and fixing the position of the felt cloth (202) by means of bolts; S4: Adjust the position of the C-shaped channel steel: according to the position of the pipeline, rotate the circular support plate (701) to open the fan-shaped support frame (709), and install or remove the corresponding arc-shaped sleeve (704) and the C-shaped channel steel (4); S5: Fix the position of the C-shaped channel steel: After determining the appropriate support position, select the sixth perforation (714) at the corresponding position, and connect the sixth perforation (714) with the fifth perforation (713) and the seventh perforation (715) by bolts; S6: Fixing the ceiling: Fix the top of the central support rod (3), the connecting plate 1 (5) and the ceiling.