Connecting structure for hanging frame sliding beam section adding and construction integration platform
Through the connection structure used for the hanging bracket sliding beam extension section, the card slot connection and rotatable connection are adopted to solve the safety risks and environmental pollution problems of welding extended sliding beams in high-rise structure construction, realize convenient disassembly and assembly and green environmental protection construction during the construction process, and adapt to installation, disassembly and movement under different working conditions.
Patent Information
- Application Number
- CN202422824536.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-19
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2034-11-19
AI Technical Summary
In the construction of high-rise structures, the welding of extended I-shaped sliding beams has problems such as long construction time, high safety risks, serious environmental pollution and poor general turnover, and cannot meet the installation, disassembly and movement requirements under different working conditions.
A connection structure for adding sections to a hanging frame sliding beam is provided, comprising an extended section sliding beam main board, a clamp module, a connecting plate and a limit plate. Through slot clamping and rotatable connection, the sliding beam can be detachably added to avoid welding, expand the construction operation range and solve interference and collision problems.
It realizes the convenient disassembly and assembly of the connecting structure during the construction process, is green and environmentally friendly, reduces construction costs, improves installation efficiency, and adapts to construction needs under different working conditions.
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Figure CN223398389U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of building construction, in particular to a connection structure for adding sections to a hanging frame sliding beam and a construction integrated platform. Background Art
[0002] In high-rise structure construction, a self-climbing top formwork construction platform is typically used. I-shaped sliding beams are suspended from the steel platform's trusses to mount the gantry and formwork. During typical construction, the gantry or formwork is moved along the I-shaped sliding beams to approach the construction area for work. However, during the jacking process of the top formwork construction platform, the gantry or formwork must be moved away from the construction area to prevent collisions during the jacking process.
[0003] However, in high-rise construction, the main structure's wall thickness often decreases as the height increases, leading to significant shrinkage on the outside of the wall. If this wall shrinkage is too great, the travel distance of the hanger or formwork will not meet construction requirements, making it impossible to approach the construction area for work. To address this issue, related technologies typically use welded, extended I-shaped sliding beams at the ends to meet the required sliding distance.
[0004] However, the use of welded extended I-shaped sliding beams in high-rise structures presents challenges such as long construction times, poor welding conditions, and high safety risks, as well as the generation of significant waste gas pollution. Furthermore, if the extended I-shaped sliding beams interfere with or collide with each other during construction, or if they need to be removed to increase lifting space, and if the main structure shrinks significantly, the subsequent movement length cannot meet construction requirements, making welded extended I-shaped sliding beams unsuitable for later disassembly and modification. This results in poor universal component turnover and an inability to adapt to the installation, disassembly, and movement requirements under different working conditions.
[0005] Therefore, there is an urgent need for a connection structure that can facilitate the installation of extended I-shaped sliding beams of different lengths according to construction requirements. Utility Model Content
[0006] The purpose of the utility model is to provide a connection structure for adding sections to a hanging frame sliding beam and a construction integrated platform, so as to solve the technical problems existing in the above-mentioned background technology.
[0007] To achieve the above objectives, on the one hand, an embodiment of the present invention provides a connection structure for extending a section of a pylon slide beam, the connection structure comprising an extended section slide beam main plate, a clamp module, and a connection plate, the clamp module being provided with a first clamping slot and a second clamping slot that can be clamped with the slide beam, the first clamping slot being located above the second clamping slot;
[0008] The first clamping groove is clamped with the lower flange plate of the lower chord of the truss in the construction integrated platform, and the second clamping groove is clamped with the upper flange plate of the first sliding beam, and the first sliding beam is a sliding beam in the construction integrated platform for hanging a pylon or a formwork;
[0009] The first end of the extended section sliding beam main board is rotatably connected to the clamp module, and the second end of the extended section sliding beam main board is connected to the upper end surface of the second sliding beam to be added;
[0010] The connecting plates are connected to the first sliding beam and the second sliding beam respectively, and are used to fix and align the first sliding beam and the second sliding beam.
[0011] In an embodiment of the present invention, the first end of the extended section sliding beam main board and the clamp module are respectively provided with matching first mounting holes, and the extended section sliding beam main board is rotatably connected to the clamp module through a pin shaft passing through the first mounting hole.
[0012] In an embodiment of the present utility model, the connecting plate fixes the first sliding beam and the second sliding beam together through a bolt structure and corresponding second mounting holes on the first sliding beam and the second sliding beam. The bolt structure is used to fix or release the connection between the first sliding beam and the second sliding beam.
[0013] In an embodiment of the present utility model, the connection structure further comprises two triangular plates;
[0014] The triangular plates are respectively arranged on the lower end surfaces of the first sliding beam and the second sliding beam, and the two triangular plates are close to each other when the first sliding beam and the second sliding beam are fixedly connected;
[0015] The two triangular plates are respectively provided with corresponding third mounting holes, and the third mounting holes are used to fix the two triangular plates through a bolt structure when the two triangular plates are close to each other.
[0016] In an embodiment of the present invention, a hoisting hole is provided on the main board of the lengthened section sliding beam, and the hoisting hole is used to hoist the connecting structure when installing or transporting the connecting structure.
[0017] In an embodiment of the present invention, a stiffening plate is further provided on the extended section sliding beam main board. The stiffening plate is arranged on the side of the extended section sliding beam main board close to the second sliding beam and is fixedly connected to the second sliding beam. The stiffening plate is used to enhance the structural stiffness of the extended section sliding beam main board.
[0018] In an embodiment of the present utility model, the connection structure further includes a limit plate, which is fixed on the slideway of the second sliding beam, and the limit plate is used to limit the movement of the pulley on the second sliding beam.
[0019] In an embodiment of the present invention, the connecting plate is an angle steel structure.
[0020] In an embodiment of the present invention, the first sliding beam and the second sliding beam are I-shaped sliding beams, the first clamping slot and the second clamping slot are T-shaped clamping slots, and the opening directions of the first clamping slot and the second clamping slot are opposite and far away from each other.
[0021] On the other hand, in order to solve the same technical problem, an embodiment of the present invention further provides a construction integrated platform, comprising any of the above-mentioned connection structures for adding sections to a pylon and a sliding beam, the construction integrated platform further comprising a truss, a pylon, and a first sliding beam for hanging the pylon;
[0022] The lower flange plate of the lower chord of the truss is engaged with the first slot of the connecting structure, and the upper flange plate of the first sliding beam is engaged with the second slot of the connecting structure, wherein the first slot is located above the second slot;
[0023] The connecting structure has a rotatable extended section sliding beam main board, the non-active end of the extended section sliding beam main board is connected to the second sliding beam to be added, the connecting structure is used to rotate the second sliding beam so that the second sliding beam is connected to or away from the first sliding beam in the direction of the truss, the hanging bracket is slidingly connected to the first sliding beam and / or the second sliding beam through a pulley, and the hanging bracket includes a construction work area.
[0024] The embodiment of the present utility model provides a connection structure and a construction integrated platform for adding sections of a hanger sliding beam, wherein the first card slot of the fixture template in the connection structure is clamped with the lower flange plate of the lower chord of the truss in the construction integrated platform, the second card slot is clamped with the upper flange plate of the first sliding beam for hanging a hanger or a template in the construction integrated platform, and the first end of the extended section sliding beam main board in the connection structure is rotatably connected to the fixture template, and the second end of the extended section sliding beam main board is connected to the upper end face of the second sliding beam to be added, so that the second sliding beam can be rotated to align the end face with the first sliding beam, and the first sliding beam and the second sliding beam are fixedly connected by the connecting plate, thereby achieving the purpose of detachable sectioning of the first sliding beam, which can not only expand the construction operation range, but also solve the interference and collision problems existing in the construction process. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] The following detailed description of the specific embodiments of the present application in conjunction with the accompanying drawings will make the technical solutions and other beneficial effects of the present application apparent.
[0026] Figure 1 This is a structural diagram of a connection structure provided by an embodiment of the present utility model;
[0027] Figure 2 The embodiment of the present utility model provides Figure 1 Left view of;
[0028] Figure 3 This is another structural diagram of the connection structure provided by an embodiment of the present utility model;
[0029] The reference numerals in the accompanying drawings are as follows:
[0030] 100, connection structure; 110, extended section slide beam main board; 120, fixture module; 130, connection plate; 140, triangle plate; 150, limit plate;
[0031] 200, truss; 300, first sliding beam; 400, second sliding beam; 500, pin; 600, bolt structure; 700, cotter pin;
[0032] H1, first mounting hole; H2, second mounting hole; H3, third mounting hole; H4, lifting hole;
[0033] C1, first card slot; C2, second card slot. DETAILED DESCRIPTION
[0034] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0035] It should be noted that the directional terms mentioned in this application, such as [up], [down], [front], [back], [left], [right], [inside], [outside], [side], etc., are only used to refer to the directions in the accompanying drawings. Therefore, the directional terms used are used to illustrate and understand this application, and are not used to limit this application. In the drawings, units with similar structures are represented by the same reference numerals. In addition, the thickness and shape in the drawings of this application do not reflect the actual proportions, and are only intended to illustrate the contents of the embodiments of this application.
[0036] The terms "first", "second", "third", "fourth", etc. (if any) in the specification and claims of the present invention and the above-mentioned drawings are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that the numbers used in this way can be interchanged where appropriate, so that the embodiments of the present invention described herein can be implemented in an order other than those illustrated or described herein. In addition, the terms "including" and "having" and any variations thereof are intended to cover non-exclusive inclusions, for example, a process, method, system, product or apparatus that includes a series of steps or units is not necessarily limited to those steps or units clearly listed, but may include other steps or units that are not clearly listed or inherent to these processes, methods, products or apparatus.
[0037] In the embodiments of the present invention, a self-climbing top formwork construction platform is typically used in high-rise structure construction. I-shaped sliding beams are suspended from the steel platform's trusses to mount the gantry and formwork. During typical construction, the gantry or formwork is moved on the I-shaped sliding beams to approach the construction area for work. However, during the jacking process of the top formwork construction platform, the gantry or formwork must be moved away from the construction area to avoid collisions during the jacking process.
[0038] However, in high-rise construction, the main structure's wall thickness often decreases as the height increases, leading to significant shrinkage on the outside of the wall. If this wall shrinkage is too great, the travel distance of the hanger or formwork will not meet construction requirements, making it impossible to approach the construction area for work. To address this issue, related technologies typically use welded, extended I-shaped sliding beams at the ends to meet the required sliding distance.
[0039] However, the use of welded extended I-shaped sliding beams in high-rise structures presents challenges such as long construction times, poor welding conditions, and high safety risks, as well as the generation of significant waste gas pollution. Furthermore, if the extended I-shaped sliding beams interfere with or collide with each other during construction, or if they need to be removed to increase lifting space, and if the main structure shrinks significantly, the subsequent movement length cannot meet construction requirements, making welded extended I-shaped sliding beams unsuitable for later disassembly and modification. This results in poor universal component turnover and an inability to adapt to the installation, disassembly, and movement requirements under different working conditions.
[0040] Therefore, there is an urgent need for a connection structure that can facilitate the installation of extended I-shaped sliding beams of different lengths according to construction requirements.
[0041] To solve the above technical problems, please see Figure 1 , Figure 1This is a structural diagram of a connection structure provided by an embodiment of the present utility model. The connection structure for adding sections to the hanging bracket slide beam is described in detail below.
[0042] like Figure 1 As shown, the connection structure 100 provided in this embodiment includes an extended section sliding beam main plate 110, a clamp module 120 and a connecting plate 130. The clamp module 120 is provided with a first clamping groove C1 and a second clamping groove C2 that can be clamped with the sliding beam. The first clamping groove C1 is located above the second clamping groove C2.
[0043] Among them, the first slot C1 is clamped with the lower flange plate of the lower chord of the truss 200 in the construction integrated platform, and the second slot C2 is clamped with the upper flange plate of the first sliding beam. The first sliding beam 300 is a sliding beam in the construction integrated platform for hanging a hanger or a template; the first end of the extended section sliding beam main board 110 is rotatably connected to the clamp module 120, and the second end of the extended section sliding beam main board 110 is connected to the upper end face of the second sliding beam 400 to be added; the connecting plate 130 is respectively connected to the first sliding beam 300 and the second sliding beam 400, and the connecting plate 130 is used to fix and align the first sliding beam 300 and the second sliding beam 400.
[0044] In this embodiment, the first sliding beam 300 and the second sliding beam 400 provided in this embodiment can be I-shaped sliding beams, the first card slot C1 and the second card slot C2 can be T-shaped card slots, and the opening directions of the first card slot C1 and the second card slot C2 are opposite and far away from each other, and the hanger and the template are used to provide a construction work area for construction workers; the connection method of the second end of the extended section sliding beam main board 110 and the upper end face of the second sliding beam 400 to be added can be a welding connection method, so as to improve the structural stiffness of the connection structure 100 provided in this embodiment.
[0045] By connecting the second sliding beam 400 to be added and the first sliding beam 300 on the construction integrated platform as one, the traditional method of welding and extending the sliding beam in the construction integrated platform is replaced, ensuring the integrity of the sliding of the hanger or formwork on the sliding beam. At the same time, the second sliding beam 400 of different lengths can be easily installed according to construction requirements, and the extension direction of the second sliding beam 400 can be rotated to the vertical direction. In this way, not only can the operating range of the hanger or formwork hung on the beam be expanded, but also the problem of interference and collision during the jacking process of the construction integrated platform or during construction operations, and the problem of insufficient space during the vertical lifting of the hanger or formwork can be solved. At the same time, the connection structure 100 provided in this embodiment is easy to assemble and disassemble, can be used in a cyclical manner, avoids welding, thereby reducing pollution to the environment, improves installation efficiency, and effectively reduces construction costs, thereby effectively supporting the different use scenarios of the sliding beam hanging under the truss 200, and is a model of efficient and green construction.
[0046] In some embodiments, see Figure 1 The first end of the extended section sliding beam main board 110 provided in this embodiment and the clamp module 120 are respectively provided with matching first mounting holes H1, and the extended section sliding beam main board 110 is rotatably connected to the clamp module 120 through the pin shaft 500 passing through the first mounting hole H1.
[0047] Specifically, the extended section sliding beam main board 110 provided in this embodiment can also achieve a detachable connection with the clamp module 120 when needed by removing the pin shaft 500 passing through the first mounting hole H1, thereby improving the convenience of adding section sliding beams to the construction integrated platform.
[0048] Optionally, after the pin shaft 500 passes through the first mounting hole H1 on the extended section sliding beam main board 110 and the clamp module 120 at the same time, the pin shaft 500 can be fixed in the first mounting hole H1 by connecting the pin shaft 500 and the cotter pin 700.
[0049] In some embodiments, in order to improve the stability of the connection between the first sliding beam 300 and the second sliding beam 400, please also refer to Figure 1 and Figure 2 The connecting plate 130 provided in this embodiment can fix the first sliding beam 300 and the second sliding beam 400 through the bolt structure 600, the second mounting holes H2 correspondingly set on the first sliding beam 300 and the second sliding beam 400, and the bolt structure 600 is used to fix or release the connection between the first sliding beam 300 and the second sliding beam 400.
[0050] The connecting plate 130 provided in this embodiment may be an angle steel structure, and the bolt structure 600 may include bolts and nuts of different specifications but matching with each other.
[0051] Specifically, two bolt structures 600 are passed through the first sliding beam 300, the second sliding beam 400, and the second mounting hole H2 set on the connecting plate 130 to fix the connecting plate 130 between the first sliding beam 300 and the second sliding beam 400, thereby achieving the purpose of fixing the first sliding beam 300 and the second sliding beam 400, avoiding the first sliding beam 300 and the second sliding beam 400 from shaking, and ensuring the stability of the hanger or template hanging under the first sliding beam 300 and the second sliding beam 400 during sliding.
[0052] As an optional embodiment, in order to further improve the stability of the connection between the first sliding beam 300 and the second sliding beam 400, please also refer to Figure 1 and Figure 2 , the connection structure 100 provided in this embodiment may further include two triangular plates 140;
[0053] Among them, the triangular plates 140 are respectively arranged on the lower end surfaces of the first sliding beam 300 and the second sliding beam 400, and the two triangular plates 140 are close to each other when the first sliding beam 300 and the second sliding beam 400 are fixedly connected; the two triangular plates 140 are respectively provided with corresponding third mounting holes H3, and the third mounting holes H3 are used to fix the two triangular plates 140 through the bolt structure 600 when the two triangular plates 140 are close to each other.
[0054] In this way, when the first sliding beam 300 and the second sliding beam 400 are close to each other, the two triangle plates 140 close to each other are fixed by the bolt structure 600, so as to further avoid the shaking of the first sliding beam 300 and the second sliding beam 400, and effectively ensure the stability of the hanger or template hanging under the first sliding beam 300 and the second sliding beam 400 during sliding.
[0055] Optionally, this embodiment can simultaneously use a connecting plate 130, a triangular plate 140, and a bolt structure 600 to fix the first sliding beam 300 and the second sliding beam 400 when the first sliding beam 300 and the second sliding beam 400 are close to each other, which can effectively improve the bearing capacity of the connecting structure 100, thereby ensuring the stability of the pulley of the hanger or template moving on the first sliding beam 300 and the second sliding beam 400.
[0056] Also, see Figure 3 , Figure 3 This is another structural diagram of the connection structure provided by the embodiment of the present utility model, such as Figure 3As shown, this embodiment can also realize the horizontal release of the first sliding beam 300 and the second sliding beam 400 hanging below by dismantling the bolt structure 600 on the connecting plate 130 and the triangular plate 140, so that the extended section sliding beam main board 110 can be flipped to a reasonable angle to avoid space interference or increase the lifting space to meet the construction needs of different working conditions.
[0057] Among them, after removing the bolt structure 600 on the connecting plate 130 and the triangular plate 140 to realize the horizontal release of the first sliding beam 300 and the second sliding beam 400 hanging below, the present embodiment can pass the bolt structure 600 through the connecting plate 130 and the two second mounting holes H2 vertically arranged on the first sliding beam 300 to fix the connecting plate 130 on the first sliding beam 300 to prevent the connecting plate 130 from shaking, such as Figure 3 shown.
[0058] In some embodiments, in order to improve the stability of the connection between the extended section sliding beam main board 110 and the sliding beam provided in this embodiment, and to ensure the structural stiffness of the extended section sliding beam main board 110, the extended section sliding beam main board 110 provided in this embodiment may also be provided with a stiffening plate (not shown in the figure). The stiffening plate may be arranged on the side of the extended section sliding beam main board 110 close to the second sliding beam 400 and fixedly connected to the second sliding beam 400. The stiffening plate may enhance the structural stiffness of the extended section sliding beam main board 110.
[0059] Specifically, the stiffening plate provided in this embodiment can be welded to the upper end surface of the second sliding beam 400 , so as to enhance the structural rigidity of the extended section sliding beam main plate 110 .
[0060] In some embodiments, in order to ensure the safety of the hanger or template hanging under the first sliding beam 300 and the second sliding beam 400 during sliding, and to prevent the hanger or template from sliding out of the slideway on the second sliding beam 400, please also refer to Figure 1 and Figure 2 The connection structure 100 provided in this embodiment may further include a limit plate 150 , which is fixed on the slideway of the second sliding beam 400 , and is used to limit the movement of the pulley on the second sliding beam 400 .
[0061] Specifically, the limit plate 150 provided in this embodiment can be set at the farthest end of the slide in the second sliding beam 400 away from the first sliding beam 300, or it can be set at the middle position of the slide in the second sliding beam 400. The position of the slide in the second sliding beam 400 where the limit plate 150 is set can be set according to actual needs, as long as it can prevent the hanger or template from sliding out of the slide on the second sliding beam 400, and no specific limitation is made here.
[0062] Among them, the number of the limit plates 150 provided in this embodiment can be 1 or 2. When the number of the limit plates 150 is 1, the limit plate 150 can be set on any side of the slide in the second slide; when the number of the limit plates 150 is 2, the limit plates 150 are respectively set on the opposite sides of the slide in the second slide.
[0063] It should be noted that the limit plate 150 provided in this embodiment can be welded on the slide in the second sliding beam 400 to be connected as a whole with the second sliding beam 400, effectively ensuring the limiting ability of the limit plate 150 and preventing the limit plate 150 from being easily knocked off by the pulley on the second sliding beam 400.
[0064] In some embodiments, see also Figure 1 and Figure 2 The extended section sliding beam main plate 110 provided in this embodiment may be provided with a hoisting hole H4. The hoisting hole H4 is used to hoist the connection structure 100 during installation or transportation, thereby effectively improving the portability of the connection structure 100 provided in this embodiment. Furthermore, the connection structure 100 provided in this embodiment can be conveniently disassembled or hung with slings such as wire ropes according to construction requirements, and the extended section sliding beam main plate 110 can be flipped to a suitable angle. This connection structure 100 can effectively adapt to on-site construction space requirements and construction errors, meeting the location requirements for installation, disassembly, turnover, and movement under different working conditions.
[0065] In summary, the utility model provides a connection structure for adding sections to a hanging frame sliding beam, which includes an extended section sliding beam main board, a clamp module and a connecting plate. The clamp module is provided with a first clamping slot and a second clamping slot that can be clamped with the sliding beam. The first clamping slot is clamped with the lower flange plate of the lower chord of the truss in the construction integrated platform, and the second clamping slot is clamped with the upper flange plate of the first sliding beam. The first sliding beam is a sliding beam in the construction integrated platform for hanging a hanging frame or a template. The first end of the extended section sliding beam main board is rotatably connected to the clamp module, and the second end of the extended section sliding beam main board is connected to the upper end face of the second sliding beam to be added. The connecting plate is connected to the first sliding beam and the second sliding beam respectively, and the connecting plate is used to fix and align the first sliding beam and the second sliding beam. By adopting the utility model, the second sliding beam to be added can be detachably connected to the first sliding beam in the construction integrated platform, thereby expanding the scope of construction operations and solving the interference and collision problems existing in the construction process.
[0066] In order to solve the same technical problem, an embodiment of the present utility model further provides a construction integrated platform, which includes the connection structure for adding sections to the pylon sliding beams described in any of the above embodiments, and the construction integrated platform also includes a truss, a pylon, and a first sliding beam for hanging the pylon;
[0067] In which, the lower flange plate of the lower chord of the truss is engaged with the first slot of the connecting structure, the upper flange plate of the first sliding beam is engaged with the second slot of the connecting structure, and the first slot is located above the second slot; the connecting structure has a rotatable extended section sliding beam main board, and the inactive end of the extended section sliding beam main board is connected to the second sliding beam to be added, and the connecting structure is used to rotate the second sliding beam so that the second sliding beam is connected or away from the first sliding beam in the direction of the truss, and the hanger is slidably connected to the first sliding beam and / or the second sliding beam through a pulley, and the hanger includes a construction work area.
[0068] In this way, the construction integrated platform provided by the embodiment of the utility model can also conveniently install the second sliding beam of different lengths or dismantle the second sliding beam according to construction requirements, effectively adapting to on-site construction errors to meet the installation, disassembly, turnover, and movement position requirements under different working conditions; at the same time, the structure of the construction integrated platform provided by this embodiment is simple to assemble and disassemble, can be used in a turnover manner, and effectively reduces construction costs, thereby strongly supporting different usage scenarios of the sliding beam hanging under the truss.
[0069] In addition to the above embodiments, the present application may also have other implementation methods. Any technical solution formed by equivalent replacement or equivalent replacement falls within the scope of protection required by this application.
[0070] Although the preferred embodiments of the present application have been disclosed above, the above preferred embodiments are not intended to limit the present application. Ordinary technicians in this field can make various changes and modifications without departing from the spirit and scope of the present application. Therefore, the scope of protection of the present application shall be based on the scope defined by the claims.
Claims
1. A connection structure for adding sections to a hanging frame sliding beam, characterized in that: The connecting structure includes an extended section sliding beam main board, a clamp module and a connecting plate, the clamp module is provided with a first clamping slot and a second clamping slot that can be clamped with the sliding beam, and the first clamping slot is located above the second clamping slot; The first clamping groove is clamped with the lower flange plate of the lower chord of the truss in the construction integrated platform, and the second clamping groove is clamped with the upper flange plate of the first sliding beam, and the first sliding beam is a sliding beam in the construction integrated platform for hanging a pylon or a formwork; The first end of the extended section sliding beam main board is rotatably connected to the clamp module, and the second end of the extended section sliding beam main board is connected to the upper end surface of the second sliding beam to be added; The connecting plates are connected to the first sliding beam and the second sliding beam respectively, and are used to fix and align the first sliding beam and the second sliding beam.
2. The connection structure for adding sections to a pylon slide beam according to claim 1, characterized in that: The first end of the extended section sliding beam main board and the clamp module are respectively provided with matching first mounting holes, and the extended section sliding beam main board is rotatably connected to the clamp module through a pin shaft passing through the first mounting hole.
3. The connection structure for adding sections to a pylon slide beam according to claim 1, characterized in that: The connecting plate fixes the first sliding beam and the second sliding beam together through a bolt structure and corresponding second mounting holes on the first sliding beam and the second sliding beam. The bolt structure is used to fix or release the connection between the first sliding beam and the second sliding beam.
4. The connection structure for adding sections to a pylon slide beam according to claim 1, characterized in that: The connecting structure further comprises two triangular plates; The triangular plates are respectively arranged on the lower end surfaces of the first sliding beam and the second sliding beam, and the two triangular plates are close to each other when the first sliding beam and the second sliding beam are fixedly connected; The two triangular plates are respectively provided with corresponding third mounting holes, and the third mounting holes are used to fix the two triangular plates through a bolt structure when the two triangular plates are close to each other.
5. The connection structure for adding sections to a pylon slide beam according to claim 1, characterized in that: The extended section sliding beam main board is provided with a hoisting hole, and the hoisting hole is used to hoist the connecting structure when installing or transporting the connecting structure.
6. The connection structure for adding sections to a pylon slide beam according to claim 1, characterized in that: A stiffening plate is also provided on the extended section sliding beam main board. The stiffening plate is arranged on the side of the extended section sliding beam main board close to the second sliding beam and is fixedly connected to the second sliding beam. The stiffening plate is used to enhance the structural rigidity of the extended section sliding beam main board.
7. The connection structure for adding sections to a pylon slide beam according to claim 1, characterized in that: The connection structure further includes a limit plate, which is fixed on the slideway of the second slide beam and is used to limit the movement of the pulley on the second slide beam.
8. The connection structure for adding sections to a pylon slide beam according to claim 1, characterized in that: The connecting plate is an angle steel structure.
9. The connection structure for adding sections to a pylon slide beam according to claim 1, characterized in that: The first sliding beam and the second sliding beam are I-shaped sliding beams, the first clamping slot and the second clamping slot are T-shaped clamping slots, and the opening directions of the first clamping slot and the second clamping slot are opposite and far away from each other.
10. A construction integrated platform, characterized in that: The connecting structure for adding sections to a pylon and a sliding beam according to any one of claims 1 to 9, wherein the construction integrated platform further comprises a truss, a pylon, and a first sliding beam for hanging the pylon; The lower flange plate of the lower chord of the truss is engaged with the first slot of the connecting structure, and the upper flange plate of the first sliding beam is engaged with the second slot of the connecting structure, wherein the first slot is located above the second slot; The connecting structure has a rotatable extended section sliding beam main board, the non-active end of the extended section sliding beam main board is connected to the second sliding beam to be added, the connecting structure is used to rotate the second sliding beam so that the second sliding beam is connected to or away from the first sliding beam in the direction of the truss, the hanging bracket is slidingly connected to the first sliding beam and / or the second sliding beam through a pulley, and the hanging bracket includes a construction work area.