A device for installing and adjusting a bailey beam

By using locking, positioning, and guiding adjustment components for the Bailey beam installation adjustment device, the problem of Bailey beam installation position deviation was solved, improving construction efficiency and schedule.

CN117248459BActive Publication Date: 2026-02-17CHINA TIESIJU CIVIL ENGINEERING GROUP CO LTD +1
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Patent Information

Application Number
CN202311411976.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-10-26
Publication Date
2026-02-17
Estimated Expiration
2043-10-26

AI Technical Summary

Technical Problem

The Bailey bridge is difficult to align accurately on the first attempt during installation, which makes subsequent adjustments difficult and affects construction efficiency and schedule.

Method used

A Bailey beam installation and adjustment device was designed, including a locking component, a positioning component, and a guide adjustment component. The Bailey beam is fixed by the locking component, positioned by the positioning component, and its position is adjusted by the guide adjustment component, so as to ensure that the Bailey beam can be quickly and accurately positioned after hoisting.

Benefits of technology

This enabled rapid and convenient positioning of Bailey beams, reduced the difficulty of subsequent adjustments, improved construction efficiency, and shortened the construction period.

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Abstract

The application discloses a kind of bailey beam installation adjusting devices, relate to bailey beam, the bailey beam is installed on end beam, comprising: locking assembly, with bailey beam end two sides connection lock, for cooperating external equipment to bailey beam installation to end beam;Clamping component, for the bailey beam both ends positioning of installation to the specified position of end beam;Guiding adjusting assembly, movably set on locking assembly and located clamping component side, for the position adjustment of bailey beam existing position deviation after installation;In the application, bailey beam is hoisted by locking assembly cooperation external hoisting equipment, and the bailey beam existing position deviation after installation is quickly adjusted using guiding adjusting assembly, after adjusting, the position of bailey beam after adjusting is locked using clamping component, avoid the problem of position movement in subsequent construction process, reduce the difficulty when initially docking, convenient and fast operation, improve construction efficiency, shorten construction period.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of engineering construction, and particularly relates to a Bailey beam installation adjusting device. BACKGROUND

[0002] The Bailey beam is a truss structure formed by assembling Bailey frames, and is used for erecting simple bridges at river courses and cliffs because of its rapid erection and strong mobility, and is currently used for providing convenient paths to increase the convenience of construction.

[0003] The Bailey beam is generally hoisted during installation, and the position of the Bailey beam is difficult to be installed in place at one time after hoisting, and position deviation exists, so that subsequent adjustment is required, but the subsequent adjustment is difficult and inconvenient to operate because of the heavy weight and large volume of the Bailey beam, thereby reducing the construction efficiency and affecting the construction period. SUMMARY

[0004] The main purpose of the present application is to provide a Bailey beam installation adjusting device, which aims to solve the existing technical problems.

[0005] To achieve the above-mentioned purpose, the present application provides a Bailey beam installation adjusting device, which relates to a Bailey beam installed on an end beam and comprises:

[0006] A locking assembly is connected and locked with both sides of the end of the Bailey beam, and is used for installing the Bailey beam on the end beam in cooperation with external equipment;

[0007] A clamping assembly is arranged below the locking assembly and connected therewith, and is used for positioning both ends of the Bailey beam installed on the specified position of the end beam;

[0008] A guiding and adjusting assembly is movably arranged on the locking assembly and located on one side of the clamping assembly, and is used for adjusting the position of the Bailey beam with position deviation after installation.

[0009] Further, the locking assembly comprises a horizontal plate attached to the lower edge of the side wall of the end of the Bailey beam, the horizontal plate is provided with clamping pieces connected with the Bailey beam at both ends, and a vertical plate is arranged on the horizontal plate, a guide rod is arranged on the vertical plate and extends into the inside of the Bailey beam, and the end of the guide rod is provided with a support rod vertically distributed and abutting against the upper and lower walls inside the Bailey beam at both ends.

[0010] Further, the clamping assembly comprises a telescopic plate connected with the lower edge of the horizontal plate, the bottom of the telescopic plate is provided with a movable disc rotationally connected coaxially therewith, a anti-dropping rod located on the same diameter extension line is inserted into the side wall of the movable disc, the anti-dropping rod is movably inserted into a supporting block, the supporting block is arranged on the top of a clamping piece and rotationally connected therewith, and the clamping piece is clamped on the end beam and abuts against the Bailey beam.

[0011] Further, the side wall of the clamping part is provided with a hydraulic telescopic inclined strut, the end of the inclined strut is provided with an anti-skid plate in contact with the top surface of the Bailey beam, the anti-skid plate is provided on both sides of the same end of the Bailey beam, and the Bailey beams on both sides are connected by a bidirectional support rod parallel to the end beam, wherein two groups of inclined struts are provided on each side of the clamping part, and the Bailey beam is driven to rotate around the end in contact with the end beam by sequentially controlling the staggered inclined struts on both sides.

[0012] Further, the guide adjusting assembly includes an adjusting block that can slide along the cross plate, the bottom of the adjusting block is connected to one end of a first connecting rod through a Y-direction rotating mechanism, the other end of the first connecting rod is connected to one end of a second connecting rod through a Z-direction rotating mechanism, the other end of the second connecting rod is connected to a support through an X-direction rotating mechanism, the support is provided with a hydraulic disc, the outer wall of the hydraulic disc is sleeved with a rotatable rolling ring, and the hydraulic disc can be adjusted and moved in a direction perpendicular to the support through a propulsion mechanism, and the hydraulic disc can be converted from a vertical state attached to the end beam to a horizontal state between the end beam and the Bailey beam under the driving of the X-direction rotating mechanism, the Y-direction rotating mechanism and the Z-direction rotating mechanism.

[0013] Further, the clamping part is a U-shaped part, the U-shaped part has a movable end and a fixed end, the movable end is connected to the fixed end through a built-in spring, the inner concave surface of the clamping part is embedded with uniformly distributed rollers, the two ends of the roller are connected to the jacking mechanism, and the roller extends to lift the clamping part away from the end beam, wherein the two ends of the roller have limiting shafts that abut against the two sides of the end beam after extending, the limiting shafts are connected to the rollers through elastic members, and the limiting shafts extend to extrude and move the movable end outward, so that the clamping part completely separates from the end beam.

[0014] Further, it also includes a leveling assembly provided on the vertical plate, which is used to keep the posture of the Bailey beam horizontal during hoisting, the leveling assembly includes a leveling cylinder, the leveling cylinder is provided with a freely sliding leveling block, and the leveling cylinder is provided with sensors with different spacings for detecting the position of the leveling block, the outer wall of the leveling cylinder is provided with a carabiner, the carabiner is connected to a sling, the sling is connected to an external hoisting equipment, and the posture of the Bailey beam is adjusted in real time according to the real-time position of the leveling block in the leveling cylinder.

[0015] Further, the telescopic plate is slidably connected to the lower edge of the cross plate through the T-shaped protrusion provided on the top of the telescopic plate and is controlled to move by the air cylinder, and the inner cavity of the telescopic plate is provided with a buffer member, wherein the bottom center of the movable disc is connected to the clamping part through a ball joint, and the ball joint is provided with telescopic members connected to the movable disc and the clamping part around.

[0016] Further, the clamping part is provided with a positioning pin, when the roller is completely extended in the clamping part, the positioning pin does not contact the end beam.

[0017] The beneficial effects of the present application are embodied in:

[0018] In the present application, the bailey beam is hoisted by the locking assembly cooperating with the external hoisting equipment, and the bailey beam with position deviation after installation is quickly adjusted by the guide adjusting assembly, and the position of the adjusted bailey beam is locked by the clamping assembly after adjustment, so that the problem of position movement in the subsequent construction process is avoided, the difficulty in the initial butt joint is reduced, the operation is convenient and fast, the construction efficiency is improved, and the construction period is shortened. BRIEF DESCRIPTION OF DRAWINGS

[0019] Figure 1 It is a schematic view of the connection structure of the bailey beam and the end beam of the present application;

[0020] Figure 2 It is a schematic view of the overall structure of the present application;

[0021] Figure 3 It is a schematic view of the connection structure of the inclined strut of the present application;

[0022] Figure 4 It is a schematic view of the structure of the guide adjusting assembly of the present application;

[0023] Figure 5 It is a schematic view of the structure of the clamping part of the present application;

[0024] Figure 6 It is a schematic view of the structure of the present application Figure 5 It is an enlarged schematic view of the structure at A in the present application;

[0025] Figure 7 It is a schematic view of the connection structure of the movable disc and the clamping part of the present application;

[0026] Figure 8 It is a schematic view of the structure of the leveling assembly of the present application.

[0027] BRIEF DESCRIPTION OF DRAWINGS

[0028] A, bailey beam; B, end beam;

[0029] 100, locking assembly; 101, horizontal plate; 102, clamping piece; 103, vertical plate; 104, guide rod; 105, support rod; 200, detent assembly; 201, telescopic plate; 202, movable disc; 203, anti-dropping rod; 204, supporting block; 205, detent piece; 206, inclined support rod; 207, anti-skid plate; 208, bidirectional support rod; 209, ball joint; 210, telescopic piece; 300, guide adjusting assembly; 301, adjusting block; 302, first connecting rod; 303, Y-direction rotating mechanism; 304, second connecting rod; 305, Z-direction rotating mechanism; 3051, movable end; 3052, fixed end; 3053, built-in spring; 3054, jacking mechanism; 3055, limiting shaft; 3056, elastic piece; 3057, positioning bolt; 3058, roller; 306, bracket; 307, X-direction rotating mechanism; 308, hydraulic disc; 309, rolling ring; 310, pushing mechanism; 400, leveling assembly; 401, leveling cylinder; 402, leveling block; 403, sensor; 404, carabiner; 405, sling. DETAILED DESCRIPTION

[0030] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. The embodiments in the present application and the features in the embodiments can be combined with each other without conflict. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the present application.

[0031] Please refer to Figure 1 and 2 The present application relates to a Bailey beam installation adjusting device, which is installed on an end beam B and comprises:

[0032] The locking assembly 100 is connected and locked with both sides of the end A of the Bailey beam, and is used for cooperating with external equipment to install the Bailey beam A on the end beam B.

[0033] The detent assembly 200 is arranged below the locking assembly 100 and connected with the locking assembly 100, and is used for positioning both ends of the Bailey beam A installed on the specified position of the end beam B.

[0034] The guide adjusting assembly 300 is movably arranged on the locking assembly 100 and located on one side of the detent assembly 200, and is used for adjusting the position of the Bailey beam A with position offset after installation.

[0035] The embodiment is used for hoisting the bailey beam A by the locking assembly 100 cooperating with external hoisting equipment, and quickly adjusting the bailey beam A with position deviation after installation by the guiding adjusting assembly 300, and locking the position of the adjusted bailey beam A by the clamping assembly 200 after adjustment, so as to avoid the problem of position movement in the subsequent construction process, reduce the difficulty in initial butt joint, and improve the construction efficiency and shorten the construction period.

[0036] In an embodiment, referring to Figure 2 and Figure 3 The locking assembly 100 comprises a horizontal plate 101 attached to the lower edge of the side wall of the bailey beam A, clamping pieces 102 connected with the bailey beam A are arranged at the two ends of the horizontal plate 101, a vertical plate 103 is arranged on the horizontal plate 101, a guide rod 104 extending into the bailey beam A is arranged on the vertical plate 103, and support rods 105 vertically distributed and abutting against the upper and lower walls inside the bailey beam A are arranged at the ends of the guide rod 104.

[0037] In the embodiment, the bailey beam A is assembled in advance, the guide rod 104 is driven to extend into the bailey beam A and abut against the upper and lower walls, the horizontal plate 101 is simultaneously moved close to the bailey beam A, the bailey beam A is fixed by the clamping pieces 102, so as to prevent the bailey beam A from shaking randomly during hoisting, and the clamping assembly 200 and the guiding adjusting assembly 300 are assembled on the bailey beam A, so that the preparation work in the early stage is completed.

[0038] The clamping pieces 102 are hydraulic clamping blocks or clamping blocks fixed by bolts, and the guide rod 104 is a hydraulic rod.

[0039] In an embodiment, referring to Figure 2 and Figure 7 The clamping assembly 200 comprises an expansion plate 201 connected with the lower edge of the horizontal plate 101, an activity disc 202 rotationally connected with the expansion plate 201 is arranged at the bottom of the expansion plate 201, a anti-disengagement rod 203 located on the same diameter extension line is inserted into the side wall of the activity disc 202, the anti-disengagement rod 203 is movably inserted into a supporting block 204, the supporting block 204 is arranged at the top of a clamping piece 205 and rotationally connected with the clamping piece 205, and the clamping piece 205 is clamped on the end beam B and abuts against the bailey beam A.

[0040] In the embodiment, after the bailey beam A is hoisted to the end beam B, the bailey beam A may have position deviation, in order to avoid the problem that the clamping piece 205 in advance contacts the end beam B, so that the bailey beam A located above cannot be rotated to adjust the position, the expansion plate 201 is coaxially rotationally connected with the activity disc 202, so that the bailey beam A can be rotated without obstacle under the action of the activity disc 202 during adjustment of the position, and the anti-disengagement rod 203 slides on the supporting block 204 to correspondingly adjust the position during rotation of the expansion plate 201.

[0041] In an embodiment, referring to Figure 3 , the side wall of the clamping part 205 is provided with a hydraulic telescopic inclined strut 206, the end of the inclined strut 206 is provided with an anti-skid plate 207 in contact with the top surface of the Bailey beam A, the anti-skid plate 207 is provided on both sides of the same end of the Bailey beam A, and the Bailey beams A on both sides are connected through a bidirectional support rod 208 parallel to the end beam, wherein the inclined strut 206 is provided with two groups on each side of the clamping part 205, and the Bailey beam A can be driven to rotate around the end in contact with the end beam B by sequentially controlling the staggered inclined struts 206 on both sides.

[0042] In this embodiment, after the clamping part 205 contacts the end beam B, if the position of the Bailey beam A deviates from the specified installation position, the two groups of inclined struts 206 on the side of the clamping part 205 in the direction that needs to be moved are elongated, and the two groups of inclined struts 206 on the other side are in a suspended state, so that the Bailey beam A moves along the end beam B to the specified position, when the Bailey beam A moves to the specified position, the anti-skid plates 207 on both sides are driven to contact the end beam B, and maintain the maximum distance under the action of the bidirectional support rod 208, forming a stable triangular structure with the inclined struts 206, so that the Bailey beam A is stably positioned at the specified position, and the problem of position deviation does not occur in the subsequent construction process.

[0043] In an embodiment, referring to Figure 4 , the guide adjusting assembly 300 includes an adjusting block 301 that can slide along the transverse plate 101, the bottom of the adjusting block 301 is connected to one end of a first connecting rod 302 through a Y-direction rotating mechanism 303, the other end of the first connecting rod 302 is connected to one end of a second connecting rod 304 through a Z-direction rotating mechanism 305, the other end of the second connecting rod 304 is connected to a bracket 306 through an X-direction rotating mechanism 307, the bracket 306 is provided with a hydraulic disc 308, the outer wall of the hydraulic disc 308 is sleeved with a rotatable rolling ring 309, and the hydraulic disc 308 can be adjusted and moved in a direction perpendicular to the bracket 306 through a propulsion mechanism 310, the hydraulic disc 308 can be converted from a vertical state attached to the end beam B to a horizontal state located between the end beam B and the Bailey beam A under the sequential driving of the X-direction rotating mechanism 307, the Y-direction rotating mechanism 303 and the Z-direction rotating mechanism 305.

[0044] When the bailey beam A is hoisted to the end beam B, and the angle between the bailey beam A and the end beam B is not perpendicular in the horizontal plane due to hoisting, the hydraulic disc 308 is driven to rotate along the vertical plane to the height flush with the upper surface of the end beam B through the Z-direction rotating mechanism 305, and then the hydraulic disc 308 is flipped to the upward posture through the X-direction rotating mechanism 307, and finally the hydraulic disc 308 is horizontally rotated to the lower side of the bailey beam A through the Y-direction rotating mechanism 303, and in the process, the bailey beam A is hoisted by cooperating with the external hoisting equipment, and then according to the inclination degree of the bailey beam A, the two sides of the inclined support rod 206 arranged staggered can drive the bailey beam A to rotate around the end of the bailey beam A in contact with the end beam B, wherein the rotating disc is arranged on the hydraulic disc 308, so that the bailey beam A is gradually rotated to the correct position, which is simple and fast in operation, improves the construction efficiency, and after the adjustment is completed, the hydraulic disc 308 is driven to return to the original route and abut against the side wall of the end beam B.

[0045] The rolling ring 309 arranged outside the hydraulic disc 308 can provide guiding and limiting action when the bailey beam A moves linearly, and in the subsequent demolition process, the bailey beam A arranged in rows can be quickly and conveniently pulled out from the lower side of the building to the side and hoisted and dismantled, which is labor-saving and convenient in operation.

[0046] In the above process, the movable disc 202 below the bailey beam A rotates correspondingly, and the anti-disengagement rod 203 arranged thereon slides and guides on the supporting block 204, so that the clamping part 205 can slide along the end beam B following the bailey beam A in the process.

[0047] The X-direction rotating mechanism 307, the Y-direction rotating mechanism 303 and the Z-direction rotating mechanism 305 can adopt a structure with rotating function such as a rotary air cylinder or a motor.

[0048] In an embodiment, please refer to Figure 5 and Figure 6 The clamping part 205 is a U-shaped part, the U-shaped part has a movable end 3051 and a fixed end 3052, the movable end 3051 is connected with the fixed end 3052 through the built-in spring 3053, the inner concave surface of the clamping part 205 is embedded with uniformly distributed rolling shafts 3058, the two ends of the rolling shaft 3058 are connected with the jacking mechanism 3054, the rolling shaft 3058 extends to jack up the clamping part 205 away from the end beam, wherein the two ends of the rolling shaft 3058 have limiting shafts 3055 which abut against the two sides of the end beam B after extending, the limiting shaft 3055 is connected with the rolling shaft 3058 through the elastic element 3056, and the limiting shaft 3055 extends to extrude and move the movable end 3051 outward, so that the clamping part 205 completely separates from the end beam B.

[0049] The embodiment is configured in this way. When the Bailey beam A is linearly moved and adjusted on the end beam B, the roller 3058 is driven to extend in the clamping part 205 by the jacking mechanism 3054, and the limiting shaft 3055 pushes the movable end 3051 outward under the action of the elastic part 3056, so that the limiting shaft 3055 replaces the clamping part 205 to contact the side surface of the end beam B, and the clamping part 205 is in a semi-suspended state. At this time, the Bailey beam A can be easily pushed to move along the end beam B under the action of the inclined support rod 206, the moving resistance is reduced, and the position adjusting efficiency is improved. At the same time, in the subsequent demolition process, the roller 3058 also replaces the clamping part 205 to contact the end beam B, thereby reducing the moving resistance, and the row of Bailey beams A can be quickly and conveniently pulled out from below the building to the side and hoisted and dismantled, which is labor-saving and convenient.

[0050] In an embodiment, referring to Figure 8 The leveling assembly 400 is arranged on the vertical plate 103 and is used to keep the posture of the Bailey beam A horizontal during hoisting. The leveling assembly 400 comprises a leveling cylinder 401, a leveling block 402 freely sliding in the leveling cylinder 401, and sensors 403 with different spacings arranged in the leveling cylinder 401 and used to detect the position of the leveling block 402. A carabiner 404 is arranged on the outer wall of the leveling cylinder 401, and a sling 405 connected with an external hoisting device is connected to the carabiner 404. The posture of the Bailey beam A is adjusted in real time according to the real-time position of the leveling block 402 in the leveling cylinder 401.

[0051] The embodiment is configured in this way. In order to keep the Bailey beam A horizontal during hoisting and moving, the posture of the Bailey beam A is grasped in real time by the leveling cylinder 401 and the leveling block 402 in cooperation with the sensors 403, and the Bailey beam A is adjusted in real time when it is inclined, so that the Bailey beam A is kept horizontal when it is placed on the end beam B, thereby reducing the difficulty of subsequent work and avoiding the problem of collision between the Bailey beam A and the end beam B.

[0052] In an embodiment, referring to Figure 7 The telescopic plate 201 is slidingly connected to the lower edge of the horizontal plate 101 through a T-shaped protrusion arranged at the top of the telescopic plate 201 and is controlled to move by a pneumatic cylinder. A buffer is arranged in the inner cavity of the telescopic plate 201. The bottom center of the movable disc 202 is connected to the clamping part 205 through a ball joint 209, and the ball joint 209 is surrounded by telescopic parts 210 connected to the movable disc 202 and the clamping part 205.

[0053] The embodiment is configured in this way that the telescopic plate 201 is slidably connected with the lower edge of the horizontal plate 101, so that the telescopic plate 201 can be adjusted according to the actual connecting position of the bailey beam A and the end beam B; the bottom center of the movable disc 202 is connected with the clamping part 205 through the ball joint 209, so that the movable disc 202 and the clamping part 205 are connected in a buffering manner, and the problem that the connection between the movable disc 202 and the clamping part 205 is unstable or broken due to excessive force when the upper telescopic plate 201 drives the movable disc 202 to rotate is avoided.

[0054] In an embodiment, referring to Figure 5 The positioning pin 3057 is arranged on the clamping part 205 in a penetrating manner, and the positioning pin 3057 does not contact the end beam B when the roller 3058 is completely extended in the clamping part 205.

[0055] The embodiment is configured in this way that when the bailey beam A moves to a specified position, the roller 3058 is driven to retract into the clamping part 205, so that the clamping part 205 directly contacts the end beam B, at this time, the positioning pin 3057 arranged thereon is inserted into the positioning hole arranged on the end beam B in a matching manner, the position of the bailey beam A is further reinforced, and the stability in the subsequent construction process is ensured.

[0056] It should be noted that if the embodiment of the present application involves directional indications such as up, down, left, right, front, back, and the like, the directional indications are only used to explain the relative positional relationship, movement condition and the like between components in a certain specific posture, such as shown in the accompanying drawings, and if the specific posture changes, the directional indications also change accordingly.

[0057] In addition, if the embodiment of the present application involves descriptions such as “first”, “second” and the like, the descriptions of “first”, “second” and the like are only for description purposes, and cannot be understood as indicating or implying the relative importance of the indicated technical features or implicitly indicating the number of the indicated technical features. Therefore, the features limited by “first” and “second” can explicitly or implicitly include at least one of the features. In addition, the meaning of “and / or” appearing throughout the text includes three parallel schemes, for example, “A and / or B” includes A scheme, or B scheme, or A and B schemes. In addition, “multiple” refers to two or more. In addition, the technical solutions of each embodiment can be combined with each other, but it must be based on the fact that a person of ordinary skill in the art can realize it, and when the combination of technical solutions contradicts each other or cannot be realized, it should be considered that the combination of technical solutions does not exist.

[0058] The above only describes the preferred embodiments of the present application and cannot be used to limit the present application, and any modification, equivalent replacement, improvement and the like made within the spirit and principle of the present application shall be included in the protection scope of the present application.

Claims

1. A device for adjusting the installation of a Bailey beam, relating to a Bailey beam (A) installed on an end beam (B), characterized in that , comprising: Locking assembly (100), with both sides of the end of the bailey beam (A) connection lock, for the external device to bailey beam (A) installed to the end beam (B) on; The card position assembly (200) is arranged below the locking assembly (100) and connected with the locking assembly (100), used for positioning the bailey beam (A) installed to the end beam (B) in the specified position; The guide adjusting assembly (300) is movably arranged on the locking assembly (100) and located on one side of the locking assembly (100), used for adjusting the position of the bailey beam (A) with position offset after installation; The locking assembly (100) comprises a horizontal plate (101) attached to the lower edge of the side wall of the bailey beam (A), the horizontal plate (101) is provided with clamping pieces (102) connected with the bailey beam (A) at both ends, and the horizontal plate (101) is provided with a vertical plate (103), the vertical plate (103) is provided with a guide rod (104) extending into the bailey beam (A), and the guide rod (104) is provided with a support rod (105) vertically distributed and abutting with the upper and lower walls of the bailey beam (A) at both ends; The card position assembly (200) includes a telescopic plate (201) connected with the lower edge of the horizontal plate (101), the bottom of the telescopic plate (201) is provided with a movable disc (202) rotationally connected with the same axis, the movable disc (202) is provided with a anti-drop rod (203) located on the same diameter extension line, the anti-drop rod (203) is movably inserted into the support block (204), the support block (204) is arranged on the top of the clamping piece (205) and rotationally connected with the clamping piece (205), the clamping piece (205) is clamped on the end beam (B) and abuts with the bailey beam (A); The side wall of the clamping piece (205) is provided with a hydraulic telescopic inclined strut (206), the end of the inclined strut (206) is provided with an anti-skid plate (207) in contact with the top surface of the bailey beam (A), the anti-skid plate (207) is arranged on both sides of the same end of the bailey beam (A), and the bailey beam (A) on both sides is connected by a bidirectional support rod (208) parallel to the end beam, wherein the inclined strut (206) is provided with two groups on each side of the clamping piece (205), and the bailey beam (A) is driven to rotate around the end in contact with the end beam (B) by sequentially controlling the staggered inclined struts (206) on both sides. The guiding and adjusting assembly (300) comprises an adjusting block (301) which can slide along the transverse plate (101), the bottom of the adjusting block (301) is connected with one end of a first connecting rod (302) through a Y-direction rotating mechanism (303), the other end of the first connecting rod (302) is connected with one end of a second connecting rod (304) through a Z-direction rotating mechanism (305), the other end of the second connecting rod (304) is connected with a support (306) through an X-direction rotating mechanism (307), a hydraulic disc (308) is arranged on the support (306), a rotatable rolling ring (309) is arranged on the outer wall of the hydraulic disc (308), and the hydraulic disc (308) can be adjusted and moved in a direction perpendicular to the support (306) through a propelling mechanism (310), and the hydraulic disc (308) can be converted from a vertical state attached to the end beam (B) to a horizontal state between the end beam (B) and the Bailey beam (A) under the driving of the X-direction rotating mechanism (307), the Y-direction rotating mechanism (303) and the Z-direction rotating mechanism (305) in sequence.

2. A falsework assembly adjustment device as claimed in claim 1, wherein: The clamping part (205) is a U-shaped part, the U-shaped part has a movable end (3051) and a fixed end (3052), the movable end (3051) is connected with the fixed end (3052) through a built-in spring (3053), the inner concave surface of the clamping part (205) is embedded with uniformly distributed rolling shafts (3058), the two ends of the rolling shafts (3058) are connected with the jacking mechanism (3054), and the rolling shafts (3058) are extended to jack up the clamping part (205) to be separated from the end beam (B), wherein the two ends of the rolling shafts (3058) have limiting shafts (3055) which are extended to abut against the two sides of the end beam (B), the limiting shafts (3055) are connected with the rolling shafts (3058) through elastic elements (3056), and the limiting shafts (3055) are extended to extrude and move the movable end (3051) outward, so that the clamping part (205) is completely separated from the end beam (B).

3. A falsework beam mounting adjustment device as claimed in claim 1, wherein: The leveling assembly (400) arranged on the vertical plate (103) is used for keeping the posture of the Bailey beam (A) horizontal during hoisting, the leveling assembly (400) comprises a leveling cylinder (401), the leveling cylinder (401) is provided with a freely sliding leveling block (402) and sensors (403) with different spacings, the sensors (403) are used for detecting the position of the leveling block (402), the outer wall of the leveling cylinder (401) is provided with a carabiner (404), the carabiner (404) is connected with a sling (405), the sling (405) is connected with an external hoisting device, and the posture of the Bailey beam (A) is adjusted in real time according to the real-time position of the leveling block (402) in the leveling cylinder (401).

4. A falsework assembly as claimed in claim 1, wherein: The telescopic plate (201) is slidably connected with the lower edge of the horizontal plate (101) through a T-shaped lug arranged at the top of the telescopic plate (201) and is controlled to move by a pneumatic cylinder, and the inner cavity of the telescopic plate (201) is provided with a buffer element, wherein the bottom center of the movable disc (202) is connected with a clamping element (205) through a ball joint (209), and the periphery of the ball joint (209) is provided with telescopic elements (210) connected with the movable disc (202) and the clamping element (205).

5. A falsework beam mounting adjustment device as claimed in claim 2, wherein: A positioning pin (3057) is arranged through the clamping element (205), and when the roller shaft (3058) is completely extended in the clamping element (205), the positioning pin (3057) is not in contact with the end beam (B).

Citation Information

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