Intelligent bridge building machine connection and disconnection reconstruction construction method based on rapid assembly structure

CN120537208BActive Publication Date: 2026-09-08CHINA TIESIJU CIVIL ENGINEERING GROUP CO LTD +1
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Patent Information

Application Number
CN202510894569.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-06-30
Publication Date
2026-09-08
Estimated Expiration
2045-06-30

AI Technical Summary

Technical Problem

[0004]本申请通过提供一种基于快速拼装结构的智慧造桥机连体与解体重构施工方法,解决了现有技术中传统智慧造桥机在0号块较短的工况下长度受限、导致主桁架安装干涉及锚固困难,造成桥梁节段浇筑施工困难,降低了施工效率,实现了通过快速拼装结构可快速连接第一主桁架和第二主桁架或分离,提高拆装效率,且两侧智慧造桥机连体时可适应较短的零号块,提高造桥机的安全性以及对零号块桥梁节段的承载能力

Benefits of technology

1、本申请通过锁架组件的设置,当带齿插块插入第一上桁架构件和第二下桁架构件中后,通过锁架组件可以将带齿插块固定在第一上桁架构件和第二下桁架构件中,从而使得第二主桁架安装简便,提高第二主桁架的拆装效率,从而适应较短的零号块,使得两侧智慧造桥机形成连体造桥机,提高造桥机的安全性。

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Abstract

The application relates to the technical field of bridge construction, and particularly discloses a wisdom bridge building machine connection and disconnection reconstruction construction method based on a quick assembly structure, which comprises the following steps: S1, symmetrically installing the wisdom bridge building machine on a zero block; S2, when the zero block is short in length, connecting the wisdom bridge building machines on both sides through the quick assembly structure to form a connected bridge building machine; and S3, when the one block is constructed, the connected quick assembly structure is unlocked and disassembled before the two blocks are constructed, and the toothed plug is fixed in the first upper truss member and the second lower truss member through the lock frame assembly after the toothed plug is inserted into the first upper truss member and the second lower truss member, so that the second main truss is easy to install, the disassembly and assembly efficiency of the second main truss is improved, the wisdom bridge building machines on both sides form the connected bridge building machine, and the safety of the bridge building machine is improved.
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Description

Technical Field

[0001] This application relates to the field of bridge construction technology, and in particular to a construction method for the connection and disassembly reconstruction of an intelligent bridge-building machine based on a rapid assembly structure. Background Technology

[0002] With the rapid development of my country's economy, the construction of transportation infrastructure has also developed rapidly. As a result, the demand for viaducts constructed using bridge-building machines is increasing. When using a bridge-building machine in cantilever construction, it is installed on the outside of block 0, a formwork is installed, the formwork is moved forward to the next section, the formwork is adjusted, then the reinforcing bars are tied, concrete is poured and cured, and then the prestressed tendons are tensioned to connect the old and new beam segments. The above steps are repeated until the cantilever on both sides is closed, and the construction of the viaduct is completed.

[0003] However, the existing technology still has the following problems: the traditional intelligent bridge building machine is limited in length when the No. 0 block is short, which leads to difficulties in the installation and anchoring of the main truss, making it difficult to pour bridge segments and reducing construction efficiency. Summary of the Invention

[0004] This application provides a construction method for the connection and disassembly reconstruction of a smart bridge-building machine based on a rapid assembly structure. This method solves the problem that in the existing technology, traditional smart bridge-building machines are limited in length when the No. 0 block is short, which leads to difficulties in the installation and anchoring of the main truss, causing difficulties in the pouring of bridge segments and reducing construction efficiency. The method enables the rapid connection or separation of the first and second main trusses through a rapid assembly structure, improving the efficiency of assembly and disassembly. Furthermore, when the two smart bridge-building machines are connected, they can adapt to shorter No. 0 blocks, improving the safety of the bridge-building machine and the load-bearing capacity of the No. 0 block bridge segment.

[0005] This application provides a construction method for the connection and disassembly reconstruction of an intelligent bridge-building machine based on a rapid assembly structure, including: Step S1: Install the intelligent bridge-building machine symmetrically on block number zero; Step S2: When constructing the shorter No. 0 block, the two intelligent bridge-building machines on both sides are connected by a quick assembly structure to form a connected bridge-building machine; Step S3: The bridge-building machine completes the construction of the first block and unlocks and disassembles the connected quick-assembly structure before constructing the second block. Step S4: Unlock the integrated bridge-building machine into a separate intelligent bridge-building machine and move it to the construction position of the second block. Then, connect the extended truss with the first main truss and the second main truss through the quick assembly structure. Step S5: Pour concrete. Step S6: After the concrete pouring is completed and the shape is set, the intelligent bridge-building machine is dismantled.

[0006] Furthermore, in step S2, the quick assembly structure is set at the end of the second main truss near the first main truss. There are four sets of quick assembly structures. The quick assembly structures are symmetrically arranged on both sides of the zero block. The second main truss includes a second upper truss component and a second lower truss component. A locking groove is opened on one side of the second upper truss component and the second lower truss component.

[0007] Furthermore, in step S2, the rapid assembly structure includes a locking frame assembly, a guiding assembly, and a booster assembly. The first main truss includes a first upper truss component and a first lower truss component. The top end of the first upper truss component and the bottom end of the first lower truss component are provided with mounting blocks and fixing blocks. A slot is opened on one side of the first upper truss component and the first lower truss component.

[0008] Furthermore, the lock frame assembly includes a toothed insert block, a drive gear is engaged on one side of the toothed insert block, a connecting arm is fixedly mounted on both ends of the drive gear, a fixed housing is fixedly mounted on the end of the connecting arm, a top spring is fixedly mounted on one side of the inside of the fixed housing, a locking block is fixedly mounted on the other end of the top spring, the locking block is slidably mounted on the inside of the fixed housing, the drive gear is rotatably mounted on the inside of the slot, a block-side handle is fixedly mounted on one side of the locking block, the toothed insert block is fixedly mounted on the end of the second upper truss member and the second lower truss member, and a lock groove is opened on one side of the second upper truss member and the second lower truss member.

[0009] Furthermore, a first end seat is rotatably provided at the top of the fixed shell, a tension spring is fixedly provided on one side of the first end seat, and a second end seat is fixedly provided at the other end of the tension spring. The second end seat is rotatably provided at the top of the first upper truss member.

[0010] Furthermore, the guiding assembly includes a top contact plate, a sliding column is slidably disposed through the top of the top contact plate, a return spring is disposed on the outside of the sliding column, a locking block is fixedly disposed on one end of the return spring and the sliding column, the sliding column is fixedly disposed on the inside of the top contact plate, the side of the locking block that is far away from the fixing block is disposed on an inclined surface, and the top contact plate is fixedly connected to the second upper truss component and the second lower truss component.

[0011] Furthermore, the booster assembly includes a fixed frame, which is fixedly mounted on the top of the mounting block. A slide rail is fixedly mounted on the inner side of the fixed frame, and sliding brackets are symmetrically slidably mounted on the outer side of the slide rail. Compression springs are fixedly mounted on the sides of the sliding brackets that are close to each other, and a support plate is fixedly mounted on the ends of the compression springs that are close to each other. The support plate is fixedly mounted on one side of the slide rail. A tensioning arm is rotatably mounted on one end of the sliding bracket, and a pressure plate is rotatably mounted on the other end of the tensioning arm.

[0012] Furthermore, in step S4, four extended trusses are provided, and the ends connected to the first main truss are provided with quick assembly structures, and the ends of the extended trusses connected to the second main truss have the same shape as the ends of the first main truss.

[0013] The technical solution provided in this application has at least the following technical effects or advantages: 1. By setting up a locking frame assembly, this application allows the toothed insert to be fixed in the first upper truss component and the second lower truss component after the toothed insert is inserted into them. This makes the installation of the second main truss easier and improves the efficiency of its assembly and disassembly. It also accommodates shorter zero blocks, enabling the two smart bridge-building machines on both sides to form a connected bridge-building machine and improving the safety of the bridge-building machine.

[0014] 2. This application uses extended trusses, with different extended trusses corresponding to the first and second main trusses, to facilitate the installation of extended trusses at the ends of the first and second main trusses. The extended trusses can increase the length and stiffness of the main trusses, thereby improving the load-bearing capacity of the main trusses on the bridge segments and ensuring construction safety and structural stability. Attached Figure Description

[0015] Figure 1 This is a front view structural diagram of the intelligent bridge-building machine when it is connected in an embodiment of this application.

[0016] Figure 2 This is a front view structural diagram of the connection between the first main truss and the extended truss in the embodiment of this application.

[0017] Figure 3 This is a schematic diagram of the combined structure of the first upper truss component, the first lower truss component, the second upper truss component, the second lower truss component, the locking frame assembly, the guiding assembly, and the booster assembly in the embodiments of this application.

[0018] Figure 4 This is a schematic diagram of the disassembled structure of the first main truss, the second main truss, and the toothed insert in the receiving component of this application embodiment.

[0019] Figure 5 This is a schematic diagram of the disassembled structure of the first upper truss member and the locking frame assembly in the embodiment of this application.

[0020] Figure 6 This is a schematic diagram of the combination of the first upper truss component and the second upper truss component, and the disassembled structure with the guide component in the embodiments of this application.

[0021] Figure 7 This is a schematic diagram of the combined structure of the first upper truss component and the booster component in the embodiments of this application.

[0022] In the diagram: 1. Intelligent bridge-building machine; 2. First main truss; 201. First upper truss component; 2011. Mounting block; 2012. Fixing block; 202. First lower truss component; 3. Second main truss; 301. Second upper truss component; 302. Second lower truss component; 3011. Locking groove; 4. Quick assembly structure; 5. Locking frame assembly; 501. Toothed insert; 502. Drive gear; 503. Rotating arm; 504. Fixing shell; 505. Top block spring. 506. Spring; 507. Locking block; 508. Block side handle; 509. First end seat; 510. Tension spring; 511. Second end seat; 6. Guide assembly; 601. Top mounting plate; 602. Locking block; 603. Return spring; 604. Sliding column; 7. Boosting assembly; 701. Fixed frame; 702. Slide rail; 703. Sliding bracket; 704. Compression spring; 705. Opening and closing arm; 706. Pressure plate; 8. Block 0; 9. Block 1; 10. Extended truss. Detailed Implementation

[0023] This application discloses a construction method for the integrated and disassembled reconstruction of a smart bridge-building machine based on a rapid assembly structure. By setting a locking frame assembly, after the toothed insert is inserted into the first upper truss component and the second lower truss component, the locking frame assembly can fix the toothed insert into the first upper truss component and the second lower truss component, thereby simplifying the installation of the second main truss, improving the disassembly and assembly efficiency of the second main truss, and thus adapting to shorter zero blocks, so that the two smart bridge-building machines on both sides form an integrated bridge-building machine, improving the safety of the bridge-building machine.

[0024] To better understand the above technical solutions, the following will provide a detailed explanation of the technical solutions in conjunction with the accompanying drawings and specific implementation methods. Example

[0025] Reference Figure 1 and Figure 2 This application discloses a construction method for the connection and disassembly reconstruction of a smart bridge-building machine based on a rapid assembly structure, comprising: Step S1: Install the intelligent bridge-building machine 1 symmetrically on block 0, number 8; Step S2: When constructing the shorter zero block 8, the two intelligent bridge-building machines on both sides are connected by the quick assembly structure 4 to form a connected bridge-building machine; Step S3: The integrated bridge-building machine completes the construction of block 9 and unlocks and disassembles the connected quick-assembly structure before constructing block 2. Step S4: Unlock the integrated bridge building machine into a separate intelligent bridge building machine 1 and move it to the construction position of the second block. Then, connect the extended truss 10 with the first main truss 2 and the second main truss 3 through the quick assembly structure 4. Step S5: Pour concrete. Step S6: After the concrete pouring is completed and the shape is set, remove the intelligent bridge building machine 1.

[0026] By setting up the rapid assembly structure 4, the two sides of the intelligent bridge building machine 1 can be quickly connected to form a connected bridge building machine when dealing with the construction work of the shorter No. 0 block 8. This improves the safety and load-bearing capacity of the bridge building machine and facilitates construction. After the construction is completed, the two sides of the intelligent bridge building machine 1 can be separated, and then the No. 2 block can be constructed. When the intelligent bridge building machine 1 moves to the construction position of the No. 2 block, the extended truss 10 is installed to improve the load-bearing capacity of the main truss on the bridge segment and ensure construction safety and structural stability.

[0027] In step S2, the quick assembly structure 4 is set at the end of the second main truss 3 near the first main truss 2. There are four sets of quick assembly structures 4. The quick assembly structures 4 are symmetrically arranged on both sides of the zero block 8. The second main truss 3 includes a first upper truss component 301 and a second lower truss component 302. A locking groove is opened on one side of the first upper truss component 301 and the second lower truss component 302.

[0028] 4 can quickly connect 2 and 3, allowing 1 to form a connecting bridge-building machine, thus improving assembly and disassembly efficiency.

[0029] See Figure 2 In step S4, four extended trusses 10 are provided, and the end of the extended truss 10 connected to the first main truss 2 is provided with a quick assembly structure 4. The end of the extended truss 10 connected to the second main truss 3 has the same shape as the end of the first main truss 2.

[0030] Because the end shapes of the first main truss 2 and the second main truss 3 are different, and the second main truss 3 has a partial quick-assembly structure 4 at its end (i.e., toothed inserts 501 and guide components 6), the design of the extended truss 10 is also different. The extended truss 10 connected to the first main truss 2 has a partial quick-assembly structure 4 at its connecting end (i.e., toothed inserts 501 and guide components 6) for installation and connection with the end of the first main truss 2. However, the extended truss 10 connected to the second main truss 3 does not have the toothed inserts 501 and guide components 6 in the quick-assembly structure 4. The connecting end of the extended truss 10 has the same shape as the connecting end of the first main truss 2 and is equipped with a locking frame component 5 and a booster component 7, which facilitates successful docking with the second main truss 3 and facilitates the assembly and disassembly of the extended truss 10. Example

[0031] Reference Figure 1 and Figure 2In step S2, the rapid assembly structure 4 includes a locking frame assembly 5, a guiding assembly 6, and a boosting assembly 7. The first main truss 2 includes a first upper truss component 201 and a first lower truss component 202. The top of the first upper truss component 201 and the bottom of the first lower truss component 202 are provided with an installation block 2011 and a fixing block 2012. A slot is opened on one side of the first upper truss component 201 and the first lower truss component 202.

[0032] The quick-assembly structure 4 facilitates the installation and disassembly of the first main truss 2 and the second main truss 3, thereby improving construction efficiency and reducing installation difficulty.

[0033] Reference Figure 2 , Figure 3 and Figure 4 The lock frame assembly 5 includes a toothed insert block 501. A drive gear 502 is meshed on one side of the toothed insert block 501. A connecting arm 503 is fixedly installed at both ends of the drive gear 502. A fixed housing 504 is fixedly installed at the end of the connecting arm 503. A top block spring 505 is fixedly installed on one side inside the fixed housing 504. A locking block 506 is fixedly installed at the other end of the top block spring 505. The locking block 506 is slidably installed inside the fixed housing 504. The drive gear 502 is rotatably installed inside the slot. A block side handle 507 is fixedly installed on one side of the locking block 506. The toothed insert block 501 is fixedly installed at the end of the second upper truss member 301 and the second lower truss member 302. A lock groove 3011 is opened on one side of the second upper truss member 301 and the second lower truss member 302.

[0034] As the toothed insert 501 enters the first upper truss component 201 and the first lower truss component 202, the toothed insert 501 drives the drive gear 502 to rotate. The rotation of the drive gear 502 causes the connecting arm 503 to rotate, and drives the fixed shell 504 and the locking block 506 to slowly approach the locking groove 3011. When the connecting arm 503 rotates to a horizontal position, the locking block 506 enters the locking groove 3011, thereby locking the first main truss 2 and the second main truss 3. This locks the first main truss 2 and the second main truss 3 relatively, preventing them from moving arbitrarily and improving assembly efficiency.

[0035] It should be noted that a first end seat 508 is rotatably mounted on the top of the fixed shell 504, a tension spring 509 is fixedly mounted on one side of the first end seat 508, and a second end seat 510 is fixedly mounted on the other end of the tension spring 509. The second end seat 510 is rotatably mounted on the top of the first upper truss member 201.

[0036] As the fixed shell 504 flips, the tension spring 509 extends. After the locking block 506 is inserted into the locking groove 3011, the tension spring 509 returns to its original length, so that the locking block 506 will not easily loosen or flip, making the locking block 506 more secure when locked.

[0037] Reference Figure 2 and Figure 5 The guide assembly 6 includes a top base plate 601, a sliding column 604 that passes through and slides on the top of the top base plate 601, a return spring 603 that is provided on the outside of the sliding column 604, a locking block 602 that is fixedly provided on one end of the return spring 603 and the sliding column 604, the sliding column 604 that is fixedly provided on the inside of the top base plate 601, the locking block 602 and the side of the fixing block 2012 that are far away from each other are provided with an inclined surface, and the top base plate 601 is fixedly connected to the second upper truss component 301 and the second lower truss component 302.

[0038] The top mounting plate 601 moves together with the second main truss 3, and the locking block 602 contacts the fixing block 2012. Since one side of the locking block 602 and the fixing block 2012 is inclined, the locking block 602 will rise when they contact each other. The locking block 602 slides with the top mounting plate 601 and is connected to the return spring 603 and the sliding column 604. Therefore, when the locking block 602 rises, the sliding column 604 will also be lifted, and the return spring 603 will be compressed. Through the compression force of the return spring 603, when the locking block 602 slides past the fixing block 2012, the locking block 602 will fall and be located on the other side of the fixing block 2012, thereby further locking the first main truss 2 and the second main truss 3. The guide component 6 and the booster component 7 provided on the second lower truss component 302 are located at the bottom end of the second lower truss component 302.

[0039] Reference Figure 2 and Figure 6 The booster assembly 7 includes a fixed frame 701, which is fixedly mounted on the top of the mounting block 2011. A slide rail 702 is fixedly mounted on the inner side of the fixed frame 701. A sliding bracket 703 is symmetrically slidably mounted on the outer side of the slide rail 702. A compression spring 704 is fixedly mounted on one side of the sliding bracket 703 that is close to each other. A support plate is fixedly mounted on one side of the compression spring 704 that is close to each other. The support plate is fixedly mounted on one side of the slide rail 702. A tensioning arm 705 is rotatably mounted on the end of the sliding bracket 703. A pressure plate 706 is rotatably mounted on the other end of the tensioning arm 705.

[0040] When the guide assembly 6 is locked in place, the top mounting plate 601 will press the pressure plate 706 in the push assembly 7. The pressure plate 706 is pressed and moved, which will increase the angle between the opening and closing arms 705. The sliding bracket 703 will slide along the slide rail 702, and the compression spring 704 will extend. When the top mounting plate 601 leaves the pressure plate 706, the pressure plate 706 will return to its original position by the elastic force of the compression spring 704. In this way, when unlocking the locking frame assembly 5 and the guide assembly 6, the push assembly 7 can generate a certain boosting force to push the second main truss 3, making it easier to disassemble the second main truss 3.

[0041] Working principle: The second main truss 3 is installed according to the different lengths of the first block 9. The second main truss 3 is hoisted using lifting equipment, aligning the toothed inserts 501 at the ends of the second upper truss member 301 and the second lower truss member 302 with the first upper truss member 201 and the first lower truss member 202. The toothed inserts 501 are then inserted into the interior of the first upper truss member 201 and the first lower truss member 202. Inside 02, the toothed insert 501 drives the drive gear 502 to rotate. The rotation of the drive gear 502 causes the connecting arm 503 to rotate, and drives the fixed shell 504 and the locking block 506 to slowly approach the locking groove 3011. When the connecting arm 503 rotates to the horizontal, the locking block 506 will enter the locking groove 3011, thereby locking the first main truss 2 and the second main truss 3, so that the first main truss 2 and the second main truss 3 are relatively locked and will not move arbitrarily, and the assembly efficiency is improved. When the fixed shell 504 flips, the tension spring 509 will extend. After the locking block 506 is inserted into the locking groove 3011, the tension spring 509 will return to its original length, so that the locking block 506 will not easily loosen and flip, making the locking block 506 more secure when locked. If it is necessary to separate the first main truss 2 from the second main truss 3, the side handle 507 is pulled to one side, so that the locking block 506 enters the fixed shell 504, and the top block spring 505 will be compressed. At this time, the second main truss 3 is pulled out. That is, the intelligent bridge building machine 1 that sets the second main truss 3 can be moved directly, so that the toothed block 501 can drive the drive gear 502 to reverse and drive the connecting arm 503 to rotate. The connecting arm 503 will then drive the fixed shell 504 and the locking block 506 to rotate together, thereby completing the unlocking of the second main truss 3 and improving the separation efficiency of the first main truss 2 and the second main truss 3. When the second main truss 3 and the first main truss 2 are connected, the top contact plate 601 in the guide assembly 6 will also move, and the locking block 602 will contact the fixing block 2012. Since one side of the locking block 602 and the fixing block 2012 is set with an incline, the locking block 602 will rise when the two are in contact. The locking block 602 slides with the top contact plate 601 and is connected with the return spring 603 and the sliding column 604. Therefore, when the locking block 602 rises, the sliding column 604 will also be lifted, and the return spring 603 will be compressed. Through the compression force of the return spring 603, when the locking block 602 slides past the fixing block 2012, the locking block 602 will fall and then be located on the other side of the fixing block 2012, thereby further locking the first main truss 2 and the second main truss 3. The guide assembly 6 and the booster assembly 7 set on the second lower truss component 302 are located at the bottom end of the second lower truss component 302. When the top mounting plate 601 moves into position, it presses down on the pressure plate 706 in the booster assembly 7. The pressure plate 706 is pressed and moved, which increases the angle between the opening and closing arms 705. The sliding frame 703 slides along the slide rail 702, and the compression spring 704 extends. When the top mounting plate 601 leaves the pressure plate 706, the pressure plate 706 returns to its original position by the elastic force of the compression spring 704. In this way, when unlocking the locking frame assembly 5 and the guide assembly 6, the booster assembly 7 can generate a certain boosting force to push the second main truss 3, making it easier to disassemble the second main truss 3. This allows it to adapt to the shorter zero block 8, so that the two smart bridge-building machines 1 on both sides form a connected bridge-building machine, improving the safety of the bridge-building machine and ensuring the overall construction quality of the zero block 8. It is also easy to separate and connect, and simple to use.

[0042] Obviously, those skilled in the art can make various modifications and variations to this invention without departing from its spirit and scope. Therefore, if these modifications and variations fall within the scope of the claims of this invention and their equivalents, this invention also intends to include these modifications and variations.

[0043] The above description is merely a preferred embodiment of the present application, but the scope of protection of the present application is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present application, based on the technical solution and concept of the present application, should be covered within the scope of protection of the present application.

Claims

1. A construction method for the connection and disassembly reconstruction of an intelligent bridge-building machine based on a rapid assembly structure, characterized in that: include: Step S1: Install the intelligent bridge-building machine symmetrically on block number zero; Step S2: When constructing the shorter No. 0 block, the two intelligent bridge-building machines on both sides are connected by a rapid assembly structure to form a connected bridge-building machine; Step S3: The integrated bridge-building machine completes the construction of the first block and unlocks and disassembles the connected quick-assembly structure before constructing the second block. Step S4: Unlock the integrated bridge-building machine into a separate intelligent bridge-building machine and move it to the construction position of the second block. Then, connect the extended truss with the first main truss and the second main truss through the quick assembly structure. Step S5: Pour concrete. Step S6: After the concrete pouring is completed and the shape is set, dismantle the intelligent bridge-building machine. The rapid assembly structure includes a locking frame assembly, a guiding assembly, and a booster assembly. The first main truss includes a first upper truss component and a first lower truss component. The top end of the first upper truss component and the bottom end of the first lower truss component are provided with mounting blocks and fixing blocks. A slot is opened on one side of the first upper truss component and the first lower truss component. The second main truss includes a second upper truss member and a second lower truss member; The lock frame assembly includes a toothed insert block, a drive gear is engaged on one side of the toothed insert block, a connecting arm is fixedly mounted on both ends of the drive gear, a fixed shell is fixedly mounted on the end of the connecting arm, a top block spring is fixedly mounted on one side of the inside of the fixed shell, a locking block is fixedly mounted on the other end of the top block spring, the locking block is slidably mounted on the inside of the fixed shell, the drive gear is rotatably mounted on the inside of the slot, a block side handle is fixedly mounted on one side of the locking block, the toothed insert block is fixedly mounted on the end of the second upper truss member and the second lower truss member, and a lock groove is opened on one side of the second upper truss member and the second lower truss member; The guiding assembly includes a top contact plate, a sliding column is slidably disposed through the top of the top contact plate, a return spring is disposed on the outside of the sliding column, a locking block is fixedly disposed on one end of the return spring and the sliding column, the sliding column is fixedly disposed on the inside of the top contact plate, the side of the locking block that is away from the fixing block is set as an inclined surface, and the top contact plate is fixedly connected to the second upper truss component and the second lower truss component; The booster assembly includes a fixed frame, which is fixedly mounted on the top of the mounting block. A slide rail is fixedly mounted on the inner side of the fixed frame, and sliding brackets are symmetrically slidably mounted on the outer side of the slide rail. Compression springs are fixedly mounted on the sides of the sliding brackets that are close to each other, and a support plate is fixedly mounted on the ends of the compression springs that are close to each other. The support plate is fixedly mounted on one side of the slide rail. A tensioning arm is rotatably mounted on one end of the sliding bracket, and a pressure plate is rotatably mounted on the other end of the tensioning arm.

2. The intelligent bridge-building machine construction method based on a rapid assembly structure for connection and disassembly reconstruction as described in claim 1, characterized in that, In step S2, the rapid assembly structure is set at the end of the second main truss near the first main truss. There are four sets of the rapid assembly structure, which are symmetrically arranged on both sides of the zero block.

3. The intelligent bridge-building machine construction method based on a rapid assembly structure for connection and disassembly reconstruction as described in claim 1, characterized in that, The top of the fixed shell is rotatably provided with a first end seat, a tension spring is fixedly provided on one side of the first end seat, and a second end seat is fixedly provided on the other end of the tension spring. The second end seat is rotatably provided on the top of the first upper truss member.

4. The intelligent bridge-building machine construction method based on a rapid assembly structure for connection and disassembly reconstruction as described in claim 1, characterized in that, In step S4, four extended trusses are provided, and the ends connected to the first main truss are provided with quick assembly structures. The ends of the extended trusses connected to the second main truss have the same shape as the ends of the first main truss.

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