An assembled building support base used in construction projects

By setting up a reinforcement mechanism in the support seat, using the rotating movement of the control parts and reinforcement, increasing the connection points and using the arc-shaped surface structure to achieve rapid disassembly, the contradiction between installation stability and disassembly efficiency of the prefabricated building support seat is solved, and the balance between stability and convenient disassembly is achieved.

CN116752647BActive Publication Date: 2025-08-29THE 5TH ENG OF CHINA RAILWAY 22TH BUREAU GROUP +1
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Patent Information

Application Number
CN202310682355.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-06-09
Publication Date
2025-08-29
Estimated Expiration
2043-06-09

AI Technical Summary

Technical Problem

Existing prefabricated building support seats are difficult to quickly dismantle when ensuring installation stability, and increasing the number of reinforced steel bars will lead to time-consuming and labor-intensive dismantling, while reducing the number of reinforced steel bars will not ensure installation stability.

Method used

The reinforcement mechanism in the support seat is adopted, including control components, reinforcement components and rebound mechanism. The moving seat is driven down through the weight of the building body, and the control part rotates to drive the fixture into the ground, adding connection points, and quickly disassembled through elastic parts and arc-shaped surface structure during disassembly.

Benefits of technology

It improves the installation stability and disassembly efficiency of prefabricated building support seats, ensures the stable installation and rapid disassembly of the building main body, and enhances the practicality of the support seats.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention is applicable to the technical field of construction engineering, and provides an assembled building support base for use in construction engineering, comprising a support base, wherein the support base comprises a support box, a support column, a first fixing member, and a first connecting seat, and further comprising: a reinforcement mechanism, wherein the reinforcement mechanism comprises a control assembly and a reinforcement assembly; the control assembly comprises a control member, a sliding member, a second connecting seat, and a mounting seat; the reinforcement assembly comprises a second fixing member, a reinforcement member, and a first elastic member; and a rebound mechanism. In the assembled building support base for use in construction engineering of the present invention, the reinforcement mechanism can increase the connection points between the support base and the mounting ground by cooperating with the moving seat and the rebound mechanism, thereby improving the installation stability of the support base, thereby improving the installation stability of the building body, and can realize rapid disassembly of the support base, thereby improving the practicality of the support base.
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Description

Technical Field

[0001] The present invention belongs to the technical field of construction engineering, and in particular relates to an assembled building support seat used in construction engineering. Background Art

[0002] Prefabricated buildings are structures that shift much of the traditional on-site construction work to the factory. Components and accessories (such as floor slabs, wall panels, stairs, and balconies) are manufactured in the factory and transported to the construction site for assembly on-site using reliable connections. At the construction site, the floor slabs of prefabricated buildings need to be fixed to support blocks, which are already fixed to the installation ground in advance, allowing the installation of the floor slabs.

[0003] The existing prefabricated building support seat includes a support seat, the bottom of which is distributed with reinforcing steel bars fixed to the ground, and a connecting plate is installed in the support seat, which is connected to the clamping mechanism set on the side wall of the support seat. The building body drives the connecting plate to move by its own weight, and the connecting plate drives the clamping mechanism to clamp and fix the building body by moving, thereby improving the installation stability of the building body on the support seat.

[0004] Since the prefabricated building support base needs to ensure the installation stability of the building main body, the existing prefabricated building support base improves the stability between the support base and the ground by increasing the number of reinforcing steel bars distributed at the bottom. However, this makes the prefabricated building support base more troublesome, time-consuming and labor-intensive to disassemble. If you want to achieve rapid disassembly of the prefabricated building support base, you need to reduce the number of reinforcing steel bars at the bottom of the prefabricated building support base. However, this cannot ensure the installation stability of the prefabricated building support base, which in turn leads to unstable installation of the building main body.

[0005] Therefore, in view of the above situation, there is an urgent need to develop an assembled building support base for use in construction projects to overcome the shortcomings in current practical applications. Summary of the Invention

[0006] In view of the deficiencies in the prior art, an object of the embodiments of the present invention is to provide an assembled building support base for use in construction projects to solve the problems in the above-mentioned background technology.

[0007] To achieve the above object, the present invention provides the following technical solutions:

[0008] An assembled building support base for use in a construction project includes a support base, the support base including a support box, a support column, a first fixing member, and a first connecting seat. The support box is fixed with support columns on all four sides. One end of the support box is provided with a first mounting groove for mounting a building body. One end of the support column is fixed with the first fixing member, and the other end of the support column is fixed with the first connecting seat. The support base also includes:

[0009] A reinforcement mechanism, which is distributed in the support box and includes a control component and a reinforcement component;

[0010] The control assembly includes a control member, a sliding member, a second connecting seat and a mounting seat, one end of the control member is slidably mounted in a sliding groove opened at the bottom of the moving seat, the moving seat is slidably mounted in the support box, one end of the control member passes through a through hole distributed at the bottom of the support box and is connected to the reinforcement assembly, a control groove is spirally distributed on the outer wall of the control member, one end of the sliding member is slidably mounted in the control groove, and the other end of the sliding member is connected to the mounting seat fixed on the inner wall of the support box through the second connecting seat;

[0011] The reinforcement assembly includes a second fixing member, a reinforcement member, and a first elastic member. The second fixing member is fixed to the bottom of the control member. A fourth mounting groove is distributed on the outer wall of the second fixing member. The reinforcement member is rotatably mounted in the fourth mounting groove. One end of the reinforcement member is connected to the inner wall of the fourth mounting groove via the first elastic member.

[0012] A rebound mechanism, one end of which is located in the support box and the other end of which is connected to the bottom of the movable seat;

[0013] The support box is fixed to the installation ground through the support column and the first fixing part. The building body enters the support box through the first installation groove and is placed on the mobile seat. The building body drives the mobile seat to move downward by its own weight, and the mobile seat drives multiple groups of control parts to move downward. The sliding part drives the control part to rotate by cooperating with the control groove. The control part drives the second fixing part to move downward in a rotational manner. The second fixing part drives the reinforcement part to enter the installation ground in a rotational manner. The second fixing part increases the connection point between the support box and the ground by cooperating with the reinforcement part.

[0014] As a further technical solution of the present invention, the first fixing member and the second fixing member are both a tapered columnar structure, the reinforcing member is a fan-shaped block structure, and both sides of the reinforcing member are set as arc surfaces.

[0015] As a further technical solution of the present invention, the rebound mechanism includes a telescopic member and a second elastic member, the two ends of the telescopic member are respectively connected to the moving seat and the inner wall of the support box, and the second elastic member is sleeved on the outer wall of the telescopic member.

[0016] As a further technical solution of the present invention, a third mounting groove is provided on the inner wall of the first mounting groove, and a second mounting groove is provided on the inner wall of the through hole. The second mounting groove and the third mounting groove are both used for installation of a sealing mechanism. One end of the sealing mechanism is installed in the support box, and the sealing mechanism is also connected to the movable seat. The sealing mechanism is used to seal the gap between the first mounting groove and the building body and the gap between the through hole and the control component.

[0017] As a further technical solution of the present invention, the sealing mechanism includes a driving assembly, an installation box, a conveying assembly, a connecting assembly, a first seal and a second seal. One end of the driving assembly is connected to the movable seat, and the other end of the driving assembly extends into the installation box and is connected to the conveying assembly. The installation box is fixed in the support box, and the two ends of the installation box are respectively connected to the first seal and the second seal through the connecting assembly. The first seal is installed in the second installation groove and conflicts with the outer wall of the control component. The second seal is installed in the third installation groove and conflicts with the outer wall of the building body.

[0018] As a further technical solution of the present invention, the driving assembly includes a rack, a gear and a rotating shaft. The rack is installed on the movable seat, and the rack is engaged with the gear fixed on the rotating shaft. One end of the rotating shaft extends into the installation box and is connected to the conveying assembly.

[0019] As a further technical solution of the present invention, the conveying assembly includes a rotating part, a connecting part, a third connecting seat and a piston. The rotating part is movably installed in the installation box through a rotating shaft. Connecting parts are eccentrically installed on both sides of the rotating part. The two groups of connecting parts are movably connected to the pistons distributed at both ends of the installation box through the third connecting seat, and the pistons are in contact with the inner wall of the installation box.

[0020] As a further technical solution of the present invention, the connecting component includes a connecting pipe, a delivery pipe and a connecting pipe. One end of the connecting pipe is respectively installed at both ends of the installation box and is connected to the interior of the installation box. The other end of the connecting pipe is connected to the delivery pipe. The delivery pipe is respectively installed on the inner walls of the upper and lower ends of the support box. One group of the delivery pipes is connected to the first seal through the connecting pipe, and the other group of the delivery pipes is connected to the second seal through the connecting pipe.

[0021] As a further technical solution of the present invention, the first sealing member and the second sealing member are both tubular structures made of a flexible material with good sealing performance.

[0022] Compared with the prior art, the present invention has the following beneficial effects:

[0023] The building body enters the support box through the first installation slot and is placed on the moving seat. The building body drives the moving seat downward by its own weight. The moving seat simultaneously drives multiple groups of control members and telescopic members to move downward. The telescopic members squeeze the second elastic member. During the downward movement of the sliding member, the sliding member can drive the control member to rotate by cooperating with the control slot. The control member drives the second fixing member to move downward in a rotational manner. The second fixing member drives the reinforcing member to enter the installation ground in a rotational manner, thereby increasing the connection points between the support seat and the installation ground, improving the installation stability of the support seat, and further improving the installation stability of the building body.

[0024] When the reinforcing member enters the installation ground, the reinforcing member is always in the fourth installation groove. When the main building body is installed, if the main building body drives the support box to shake, the support box will drive the second fixing member to move upward. Since the second fixing member and the reinforcing member enter the ground in a rotating manner, when the second fixing member and the reinforcing member move upward, the soil above the reinforcing member will drive the reinforcing member to rotate outward on the second fixing member. At this time, the reinforcing member cooperates with the soil to prevent the second fixing member from moving upward, thereby preventing the support box from moving upward, thereby improving the installation stability of the support base and further improving the installation stability of the main building body.

[0025] When the support seat needs to be disassembled, the building body leaves the support box, and the second elastic member drives the movable seat to move upward by cooperating with the telescopic member. The movable seat drives the control member and the second fixed member to move upward in a rotational manner, and the second fixed member drives the reinforcement member to move upward in a rotational manner. Since the two side walls of the reinforcement member are arranged as arc surfaces, when the reinforcement member rotates, the soil in the ground will drive the reinforcement member to rotate back into the fourth installation groove through the arc surface, thereby realizing rapid disassembly of the support seat and improving the practicality of the support seat.

[0026] In order to more clearly illustrate the structural features and effects of the present invention, the present invention is described in detail below with reference to the accompanying drawings and specific embodiments. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 A schematic structural diagram of an assembled building support base for use in construction projects provided by an embodiment of the present invention.

[0028] Figure 2 A structural cross-sectional view of an assembled building support base for use in construction projects provided by an embodiment of the present invention.

[0029] Figure 3 for Figure 2 Schematic diagram of the structure with partial section.

[0030] Figure 4 for Figure 3 Enlarged view of the structure of the reinforcement mechanism.

[0031] Figure 5 for Figure 4 A magnified view of the structure of the reinforcement component.

[0032] Figure 6 for Figure 3 An enlarged view of the local structure of the middle sealing mechanism.

[0033] Figure 7 for Figure 3 A magnified view of the structure in the middle.

[0034] Figure 8 for Figure 3 A magnified view of the structure at B in the middle.

[0035] Figure 1: 1-support base, 11-support box, 12-support column, 13-first fixing member, 14-first connecting base, 15-first mounting groove, 16-through hole, 17-second mounting groove, 18-third mounting groove, 2-building body, 3-reinforcement mechanism, 31-control component, 311-control member, 312-control groove, 313-sliding member, 314-second connecting base, 315-mounting base, 32-reinforcement component, 321-second fixing member, 322-fourth mounting groove, 323-reinforcement member, 3 24 - first elastic member, 4 - sealing mechanism, 41 - driving assembly, 411 - rack, 412 - gear, 413 - rotating shaft, 42 - mounting box, 43 - conveying assembly, 431 - rotating member, 432 - connecting member, 433 - third connecting seat, 434 - piston, 44 - connecting assembly, 441 - connecting pipe, 442 - conveying pipe, 443 - connecting pipe, 45 - first sealing member, 46 - second sealing member, 5 - rebound mechanism, 51 - telescopic member, 52 - second elastic member, 6 - moving seat, 61 - slide groove. DETAILED DESCRIPTION

[0036] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.

[0037] The specific implementation of the present invention is described in detail below with reference to specific embodiments.

[0038] like Figures 1 to 5As shown, as an embodiment of the present invention, an assembled building support base for use in a construction project includes a support base 1, the support base 1 includes a support box 11, a support column 12, a first fixing member 13 and a first connecting seat 14, the support box 11 is fixed with support columns 12 on all four sides, one end of the support box 11 is provided with a first mounting groove 15 for mounting a building body 2, one end of the support column 12 is fixed with the first fixing member 13, the other end of the support column 12 is fixed with the first connecting seat 14, and further includes:

[0039] The reinforcement mechanism 3 is distributed in the support box 11 and includes a control component 31 and a reinforcement component 32;

[0040] The control assembly 31 includes a control member 311, a sliding member 313, a second connecting seat 314 and a mounting seat 315. One end of the control member 311 is slidably mounted in the sliding groove 61 opened at the bottom of the movable seat 6, and the movable seat 6 is slidably mounted in the support box 11. One end of the control member 311 passes through the through hole 16 distributed at the bottom of the support box 11 and is connected to the reinforcement assembly 32. A control groove 312 is spirally distributed on the outer wall of the control member 311. One end of the sliding member 313 is slidably mounted in the control groove 312. The other end of the sliding member 313 is connected to the mounting seat 315 fixed on the inner wall of the support box 11 through the second connecting seat 314;

[0041] The reinforcement assembly 32 includes a second fixing member 321, a reinforcement member 323, and a first elastic member 324. The second fixing member 321 is fixed to the bottom of the control member 311. A fourth mounting groove 322 is provided on the outer wall of the second fixing member 321. The reinforcement member 323 is rotatably mounted in the fourth mounting groove 322. One end of the reinforcement member 323 is connected to the inner wall of the fourth mounting groove 322 via the first elastic member 324.

[0042] The rebound mechanism 5 has one end located in the support box 11 and the other end connected to the bottom of the movable seat 6 .

[0043] like Figure 3 and Figure 5 As shown, as a preferred embodiment of the present invention, the first fixing member 13 and the second fixing member 321 are both a conical columnar structure, the reinforcing member 323 is a fan-shaped block structure, and both sides of the reinforcing member 323 are set as arc surfaces.

[0044] like Figure 2 and Figure 3As shown, as a preferred embodiment of the present invention, the rebound mechanism 5 includes a telescopic member 51 and a second elastic member 52, the two ends of the telescopic member 51 are respectively connected to the inner wall of the movable seat 6 and the support box 11, and the second elastic member 52 is mounted on the outer wall of the telescopic member 51.

[0045] In this embodiment, the lifting machine lifts the support box 11 to the upper part of the desired installation ground through the connection between the first connecting seat 14 and the support column 12, and uses a knocking machine or tool to knock the first connecting seat 14, so that the support column 12 drives the first fixing member 13 to penetrate deep into the installation ground, thereby avoiding direct knocking on the support box 11 and ensuring the installation stability of the components inside the support box 11. In addition, the first fixing member 13 can pre-fix the support box 11 on the installation ground, ensuring that the support seat 1 will not shift when the building main body 2 is installed, thereby improving the installation accuracy of the building main body 2.

[0046] The building body 2 enters the support box 11 through the first installation groove 15 and is placed on the moving seat 6. The building body 2 drives the moving seat 6 to move downward by its own weight. The moving seat 6 simultaneously drives multiple groups of control members 311 and the telescopic member 51 to move downward. The telescopic member 51 squeezes the second elastic member 52. During the downward movement of the sliding member 313, the sliding member 313 can drive the control member 311 to rotate by cooperating with the control groove 312. The control member 311 drives the second fixing member 321 to move downward in a rotational manner. The second fixing member 321 drives the reinforcing member 323 to enter the installation ground in a rotational manner, thereby increasing the connection points between the support base 1 and the installation ground, improving the installation stability of the support base 1, and further improving the installation stability of the building body 2.

[0047] When the second fixing member 321 and the reinforcing member 323 are inserted into the ground for installation, the reinforcing member 323 is always in the fourth installation groove 322. When the building body 2 is installed, if the building body 2 drives the support box 11 to shake, the support box 11 will drive the second fixing member 321 to move upward. Since the second fixing member 321 and the reinforcing member 323 enter the ground in a rotating manner, when the second fixing member 321 and the reinforcing member 323 move upward, the soil above the reinforcing member 323 will drive the reinforcing member 323 to rotate outward on the second fixing member 321. At this time, the reinforcing member 323 cooperates with the soil to prevent the second fixing member 321 from moving upward, thereby preventing the support box 11 from moving upward, thereby improving the installation stability of the support base 1 and further improving the installation stability of the building body 2.

[0048] When the support seat 1 needs to be disassembled, the building body 2 leaves the support box 11, and the second elastic member 52 drives the movable seat 6 to move upward by cooperating with the telescopic member 51. The movable seat 6 drives the control member 311 and the second fixing member 321 to move upward in a rotational manner, and the second fixing member 321 drives the reinforcement member 323 to move upward in a rotational manner. Since the two side walls of the reinforcement member 323 are set as arc surfaces, when the reinforcement member 323 rotates, the soil in the ground will drive the reinforcement member 323 to rotate back to the fourth installation groove 322 through the arc surface, thereby realizing the rapid disassembly of the support seat 1 and improving the practicality of the support seat 1.

[0049] In a preferred embodiment, the control member 311 preferably adopts a columnar structure;

[0050] The sliding member 313 preferably adopts a spherical structure;

[0051] The first elastic member 324 and the second elastic member 52 are preferably a spring;

[0052] The telescopic member 51 preferably adopts a columnar structure with a telescopic function.

[0053] like Figures 3 to 8 As shown, as a preferred embodiment of the present invention, a third mounting groove 18 is provided on the inner wall of the first mounting groove 15, and a second mounting groove 17 is provided on the inner wall of the through hole 16. The second mounting groove 17 and the third mounting groove 18 are both used for installation of a sealing mechanism 4. One end of the sealing mechanism 4 is installed in the supporting box 11, and the sealing mechanism 4 is also connected to the movable seat 6. The sealing mechanism 4 is used to seal the gap between the first mounting groove 15 and the building body 2 and the gap between the through hole 16 and the control member 311.

[0054] like Figures 6 to 8 As shown, as a preferred embodiment of the present invention, the sealing mechanism 4 includes a driving component 41, an installation box 42, a conveying component 43, a connecting component 44, a first seal 45 and a second seal 46, one end of the driving component 41 is connected to the movable seat 6, the other end of the driving component 41 extends into the installation box 42 and is connected to the conveying component 43, the installation box 42 is fixed in the support box 11, and the two ends of the installation box 42 are respectively connected to the first seal 45 and the second seal 46 through the connecting component 44, the first seal 45 is installed in the second installation groove 17 and conflicts with the outer wall of the control component 311, and the second seal 46 is installed in the third installation groove 18 and conflicts with the outer wall of the building body 2.

[0055] like Figure 3 and Figure 6As shown, as a preferred embodiment of the present invention, the driving assembly 41 includes a rack 411, a gear 412 and a rotating shaft 413, the rack 411 is installed on the movable base 6, the rack 411 is engaged with the gear 412 fixed on the rotating shaft 413, and one end of the rotating shaft 413 extends into the installation box 42 and is connected to the conveying assembly 43.

[0056] like Figure 6 As shown, as a preferred embodiment of the present invention, the conveying assembly 43 includes a rotating member 431, a connecting member 432, a third connecting seat 433 and a piston 434. The rotating member 431 is movably installed in the installation box 42 through the rotating shaft 413. Connecting members 432 are eccentrically installed on both sides of the rotating member 431. The two groups of connecting members 432 are movably connected to the pistons 434 distributed at both ends of the installation box 42 through the third connecting seat 433, and the pistons 434 are in contact with the inner wall of the installation box 42.

[0057] like Figures 6 to 8 As shown, as a preferred embodiment of the present invention, the connecting component 44 includes a connecting pipe 441, a delivery pipe 442 and a connecting pipe 443, one end of the connecting pipe 441 is respectively installed at both ends of the installation box 42 and is connected to the interior of the installation box 42, the other end of the connecting pipe 441 is connected to the delivery pipe 442, and the delivery pipe 442 is respectively installed on the inner walls of the upper and lower ends of the support box 11, one group of the delivery pipes 442 is connected to the first sealing member 45 through the connecting pipe 443, and the other group of the delivery pipes 442 is connected to the second sealing member 46 through the connecting pipe 443.

[0058] like Figure 7 and Figure 8 As shown in FIG. 4 , as a preferred embodiment of the present invention, the first sealing member 45 and the second sealing member 46 are both tubular structures made of a flexible material with good sealing properties.

[0059] In this embodiment, the movable seat 6 drives the rack 411 to move downward, the rack 411 drives the rotating shaft 413 to rotate through the gear 412, the rotating shaft 413 drives the rotating member 431 to rotate, and the rotating member 431 drives the two groups of pistons 434 to move in opposite directions through the connecting member 432 and the third connecting seat 433. The pistons 434 cooperate with the installation box 42 to transport the air inside the two ends of the installation box 42 to the connecting pipe 441. The air enters the first sealing member 45 and the second sealing member respectively through the connecting pipe 441 and the connecting pipe 443. 46, so that the first sealing member 45 and the second sealing member 46 expand, the first sealing member 45 expands to seal the gap between the control member 311 and the second installation groove 17, and the second sealing member 46 expands to seal the gap between the building body 2 and the third installation groove 18, so that the support box 11 is completely in a sealed state, avoiding external rainwater or moisture from entering the support box 11, thereby improving the service life of each component in the support box 11, and thus improving the service life of the support base 1.

[0060] In a preferred embodiment, the rotating member 431 preferably adopts a disc structure;

[0061] The connecting member 432 preferably adopts a rod-shaped structure.

[0062] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. An assembled building support base for use in a construction project, comprising a support base, the support base comprising a support box, a support column, a first fixing member and a first connecting seat, the support box being fixed with support columns on all four sides, one end of the support box being provided with a first mounting groove for mounting a building body, one end of the support column being fixed with a first fixing member, and the other end of the support column being fixed with a first connecting seat, characterized in that: Also includes: A reinforcement mechanism, which is distributed in the support box and includes a control component and a reinforcement component; The control assembly includes a control member, a sliding member, a second connecting seat and a mounting seat, one end of the control member is slidably mounted in a sliding groove opened at the bottom of the moving seat, the moving seat is slidably mounted in the support box, one end of the control member passes through a through hole distributed at the bottom of the support box and is connected to the reinforcement assembly, a control groove is spirally distributed on the outer wall of the control member, one end of the sliding member is slidably mounted in the control groove, and the other end of the sliding member is connected to the mounting seat fixed on the inner wall of the support box through the second connecting seat; The reinforcement assembly includes a second fixing member, a reinforcement member, and a first elastic member. The second fixing member is fixed to the bottom of the control member. A fourth mounting groove is distributed on the outer wall of the second fixing member. The reinforcement member is rotatably mounted in the fourth mounting groove. One end of the reinforcement member is connected to the inner wall of the fourth mounting groove via the first elastic member. A rebound mechanism, one end of which is located in the support box and the other end of which is connected to the bottom of the movable seat; The support box is fixed to the installation ground through the support column and the first fixing part. The building body enters the support box through the first installation groove and is placed on the mobile seat. The building body drives the mobile seat to move downward by its own weight, and the mobile seat drives multiple groups of control parts to move downward. The sliding part drives the control part to rotate by cooperating with the control groove. The control part drives the second fixing part to move downward in a rotational manner. The second fixing part drives the reinforcement part to enter the installation ground in a rotational manner. The second fixing part increases the connection point between the support box and the ground by cooperating with the reinforcement part.

2. The assembled building support used in construction engineering according to claim 1, characterized in that: The first fixing member and the second fixing member are both a tapered columnar structure, the reinforcing member is a fan-shaped block structure, and both sides of the reinforcing member are configured as arc surfaces.

3. The assembled building support used in construction engineering according to claim 1, characterized in that: The rebound mechanism includes a telescopic member and a second elastic member. Two ends of the telescopic member are respectively connected to the moving seat and the inner wall of the supporting box. The second elastic member is sleeved on the outer wall of the telescopic member.

4. The assembled building support used in construction engineering according to claim 1, characterized in that: A third mounting groove is provided on the inner wall of the first mounting groove, and a second mounting groove is provided on the inner wall of the through hole. The second mounting groove and the third mounting groove are both used for installing a sealing mechanism. One end of the sealing mechanism is installed in the support box, and the sealing mechanism is also connected to the movable seat. The sealing mechanism is used to seal the gap between the first mounting groove and the building body and the gap between the through hole and the control component.

5. The assembled building support used in construction engineering according to claim 4, characterized in that: The sealing mechanism includes a driving assembly, an installation box, a conveying assembly, a connecting assembly, a first seal and a second seal. One end of the driving assembly is connected to the movable seat, and the other end of the driving assembly extends into the installation box and is connected to the conveying assembly. The installation box is fixed in the support box, and the two ends of the installation box are respectively connected to the first seal and the second seal through the connecting assembly. The first seal is installed in the second installation groove and conflicts with the outer wall of the control component. The second seal is installed in the third installation groove and conflicts with the outer wall of the building body.

6. The assembled building support used in construction engineering according to claim 5, characterized in that: The driving assembly includes a rack, a gear and a rotating shaft. The rack is installed on the moving seat and meshes with the gear fixed on the rotating shaft. One end of the rotating shaft extends into the installation box and is connected to the conveying assembly.

7. The assembled building support used in construction engineering according to claim 6, characterized in that: The conveying assembly includes a rotating part, a connecting part, a third connecting seat and a piston. The rotating part is movably installed in the installation box through a rotating shaft. Connecting parts are eccentrically installed on both sides of the rotating part. Two groups of connecting parts are movably connected to the pistons distributed at both ends of the installation box through the third connecting seat. The pistons are in contact with the inner wall of the installation box.

8. The assembled building support used in construction engineering according to claim 5, characterized in that: The connecting assembly includes a connecting pipe, a delivery pipe and a connecting pipe. One end of the connecting pipe is respectively installed at both ends of the installation box and is connected to the interior of the installation box. The other end of the connecting pipe is connected to the delivery pipe. The delivery pipe is respectively installed on the inner walls of the upper and lower ends of the support box. One group of the delivery pipes is connected to the first sealing member through the connecting pipe, and the other group of the delivery pipes is connected to the second sealing member through the connecting pipe.

9. The assembled building support used in construction engineering according to claim 5, characterized in that: The first sealing member and the second sealing member are both tubular structures made of a flexible material with good sealing performance.

Citation Information

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