Aluminum formwork embedded type all-steel climbing frame wall attaching system and construction technology thereof

The aluminum formwork embedded all-steel climbing frame wall-attached system solves the risks of aluminum formwork roof collapse and installation interference in the construction of aluminum formwork system and attached lifting scaffolding, realizes the synchronous installation and stable connection of aluminum formwork and climbing frame, and improves construction efficiency and accuracy.

CN120759416APending Publication Date: 2025-10-10中建五局第三建设有限公司
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Patent Information

Application Number
CN202511196469.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-26
Publication Date
2025-10-10

AI Technical Summary

Technical Problem

When constructing traditional aluminum formwork systems and attached lifting scaffolding, there are risks of aluminum formwork roof collapse, as well as spatial interference and precision mismatch during installation.

Method used

An aluminum formwork embedded all-steel climbing frame wall-attached system is adopted, including an aluminum formwork frame, a protective frame, a wall-attached anchoring system and a formwork. The aluminum formwork system and the attached lifting scaffolding are installed simultaneously through the prefabricated structure, and the protective frame and the wall-attached anchoring system are used to improve the connection stability and construction efficiency.

Benefits of technology

It avoids the risk of aluminum formwork roof collapse, improves construction efficiency and installation accuracy, and ensures the synchronous installation and stable connection of the aluminum formwork system and the attached lifting scaffolding.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of climbing frames, and discloses an aluminum mold embedded type all-steel climbing frame wall attaching system and a construction technology thereof, and the aluminum mold embedded type all-steel climbing frame wall attaching system comprises a plurality of layers of aluminum mold frames, a protection frame installed on the aluminum mold frames, a wall attaching anchoring system and a template; the protection frames are arranged at the joints of the adjacent aluminum mold frames. The wall-attached anchoring systems are arranged at the connecting joints of the adjacent aluminum mold frames; the formworks are arranged between the adjacent transverse frame plates and the vertical frame plates. Through the arrangement of the aluminum formwork frame and the protection frame, the aluminum formwork frame, the protection frame, the wall-attached anchoring system and the formwork can be conveniently installed on the outer side of a main body structure at the same time in the using process, synchronous installation of the aluminum formwork system and the attached type lifting scaffold can be achieved, and meanwhile the aluminum formwork system is fixed to the outer side of a building main body; the risks of aluminum mold roof falling operation and installation interference are avoided; the problems that during construction of a traditional aluminum mold system and an attached type lifting scaffold, the aluminum mold roof falling operation risk is likely to be caused, and space interference and precision mismatching are caused during installation are solved.
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Description

Technical Field

[0001] The present invention belongs to the technical field of building climbing frames, and in particular relates to an aluminum mold embedded all-steel climbing frame wall attachment system and a construction process thereof. Background Art

[0002] The integrated application of aluminum formwork systems and attached lifting scaffolding (climbing frames) has become a paradigm for efficient high-rise building construction. With its lightweight, modular design and millimeter-level installation precision, the aluminum formwork meets the dual requirements of structural appearance and mechanical performance for super-high-rise buildings. The climbing frames, through their intelligent lifting capabilities, enable rapid turnover and safe protection during facade construction. The synergy between the two can theoretically shorten construction schedules and reduce overall costs. However, a core conflict arises from the temporal and spatial conflict between the wall anchoring nodes: the aluminum formwork must be immediately assembled for the upper level after formwork removal to maintain construction continuity, while the climbing frames must be anchored to the wall supports before they can be raised. In the current construction process, the disassembly of the aluminum formwork and the installation of the climbing frame are disconnected, resulting in the climbing frame ascending lagging behind the aluminum formwork assembly, creating the risk of "aluminum formwork roof collapse." This means that pouring of the upper aluminum formwork begins before the lower climbing frame has been raised to the corresponding elevation, forcing workers to work unprotected at high altitudes, seriously threatening construction safety and hindering efficiency.

[0003] Furthermore, traditional wall-mounted anchoring nodes for climbing frames utilize rigid pre-buried bolts or welding, creating significant compatibility conflicts with aluminum formwork systems. For example, the aluminum formwork assembly must completely cover the wall surface, but the protruding structure of traditional anchor supports obstructs the formwork from being positioned. This forces the construction team to install the supports after removing the formwork, creating a process break. Aluminum formwork installation relies on laser calibration for high-precision positioning, but traditional anchor point construction often exhibits errors exceeding +10mm, resulting in misalignment between the climbing frame rails and the pre-set holes in the aluminum formwork, necessitating secondary hole expansion or cutting.

[0004] Based on this, the present invention proposes an aluminum mold embedded all-steel climbing frame wall attachment system and its construction process to solve the problems existing in the above-mentioned prior art. Summary of the Invention

[0005] In view of this, the main purpose of the present invention is to provide an aluminum formwork embedded all-steel climbing frame wall attachment system and its construction process, so as to solve the problems of easy aluminum formwork roof collapse risk and spatial interference and precision mismatch during installation when traditional aluminum formwork systems and attached lifting scaffolding are used for construction.

[0006] The technical solution of the present invention is achieved as follows:

[0007] The present invention provides a first solution: an aluminum formwork embedded all-steel climbing frame wall attachment system, wherein the all-steel climbing frame wall attachment system is an assembled structure, including several layers of aluminum formwork frames, a protective frame installed on the aluminum formwork frames, a wall attachment anchoring system and a formwork;

[0008] The aluminum formwork frame is an aluminum formwork support frame that is installed layer by layer in conjunction with the main structure, and includes matching horizontal frame plates, vertical frame plates and longitudinal frame plates;

[0009] The protective frame is arranged at the connection between adjacent aluminum mold frames;

[0010] The wall anchoring system is arranged at the connection nodes of adjacent aluminum formwork frames;

[0011] The template is arranged between adjacent horizontal frame plates and vertical frame plates to form a support system for the main structure.

[0012] In a preferred embodiment, the horizontal frame plates and the vertical frame plates are symmetrically arranged, and the horizontal frame plates and the vertical frame plates are perpendicular to each other on the same plane, forming the bottom support frame of the aluminum formwork frame, matching the plane where the floor slabs of the main structure are located, and the vertical frame plates are arranged at the connection nodes of the horizontal frame plates and the vertical frame plates, and are connected to both the horizontal frame plates and the vertical frame plates to form the side wall guard frames of the aluminum formwork frame; the horizontal frame plates, vertical frame plates and vertical frame plates that match the same layer are all L-shaped structures and match the formwork.

[0013] In a preferred embodiment, the aluminum formwork frame further comprises a rib frame plate, which is a T-shaped structure and is arranged between two adjacent left and right vertical frame plates. Connection holes matching the connection bolts are also provided on the wing plates on both sides of the rib frame plate.

[0014] In a preferred embodiment, the protective frame includes a protective frame, which is arranged between two adjacent horizontal frame plates, vertical frame plates, and longitudinal frame plates, and is connected to the horizontal frame plates, vertical frame plates, and longitudinal frame plates through connecting bolts; and a back rib is also provided in the middle of the inner side of the protective frame.

[0015] In a preferred embodiment, the protective frame is also provided with a locking mechanism that matches the first slot opened on the cross frame plate, and the locking mechanism includes a locking block, which is movably arranged in the first movable groove on the side wall of the protective frame, and a locking plug is provided at one end of the locking block to match the first slot; a spring and a guide rod are provided at the end of the locking block away from the locking plug, and the other end of the spring is connected to the inner side wall of the first slot, and the guide rod is a threaded rod that passes through the side wall of the protective frame, and an adjusting nut is threadedly connected to the guide rod on the outside of the cross frame plate.

[0016] In a preferred embodiment, the wall-attached anchoring system includes an anchor support and an embedded positioning piece. The embedded positioning piece is embedded and cast between two adjacent cross-frame plates at the same height, and one end of the embedded positioning piece passes through the through hole on the outer formwork and is connected to the anchor support, and the other end is connected to the cross-frame plate, and several through holes are provided on the embedded positioning piece to match the positioning ribs.

[0017] In a preferred embodiment, one end of the anchor support is connected to the climbing frame, and the other end is connected to the clamping block through a transition block, the clamping block matches the second slot set at the end of the embedded positioning piece, and a limiting block is movably provided on the clamping block, and the limiting block matches the inner top wall of the second slot.

[0018] In a preferred embodiment, the limiting block is movably arranged in the second movable groove on the clamping block and matches the adjusting bolt threadedly connected to the clamping block.

[0019] In a preferred embodiment, the bottom panel of the limit block on the side close to the adjusting bolt is an inclined surface, and a second sliding groove is provided on the bottom panel to cooperate with the chuck provided at the end of the adjusting bolt.

[0020] The present invention provides a second solution: a construction process for an aluminum mold embedded all-steel climbing frame wall attachment system, comprising:

[0021] Step 1: First, the staff connects the horizontal frame, vertical frame and longitudinal frame of the same layer through connecting bolts to form an aluminum formwork frame;

[0022] Step 2: Then, install the rib frame plates between the horizontal frame plates, install the embedded positioning pieces between the rib frame plates, and position the embedded positioning pieces through the positioning ribs;

[0023] Step 3: After the formwork frame is assembled, install the formwork on the formwork frame and fix the formwork. Then install the anchor support through the through hole and connect the anchor support to the climbing frame.

[0024] Step 4: After the anchor support is installed, pour concrete on this layer;

[0025] Step 5: After the corresponding layer of concrete pouring is completed, a protective frame is installed on the upper ends of the horizontal frame plate, vertical frame plate, and longitudinal frame plate, and the upper ends of the horizontal frame plate, vertical frame plate, and longitudinal frame plate are fixed with the protective frame;

[0026] Step 6: Then repeat steps 1 to 5 to pour concrete;

[0027] Step 7: After the concrete pouring is completed, the horizontal frame plates, vertical frame plates, longitudinal frame plates and rib frame plates installed in steps 1 and 2 are removed, and the horizontal frame plates, vertical frame plates, longitudinal frame plates and rib frame plates are reinstalled in the same manner as in steps 1 and 2;

[0028] Step 8: Then repeat steps 3 to 5 to pour concrete;

[0029] Step 9: Repeat steps 1 to 8 to complete the support of the aluminum formwork system and the installation of the attached lifting scaffolding.

[0030] Compared with the prior art, the present invention provides an aluminum-molded embedded all-steel climbing frame wall attachment system and its construction process, which has the following beneficial effects:

[0031] 1. The aluminum formwork frame and protective frame make it easy to install the aluminum formwork frame, protective frame, wall anchoring system and formwork on the outside of the main structure at the same time during use. This allows for the simultaneous installation of the aluminum formwork system and the attached lifting scaffolding. The aluminum formwork system is also fixed to the outside of the main building, avoiding the risk of aluminum formwork roof collapse and installation interference. Furthermore, the assembled structure of the aluminum formwork frame and formwork facilitates the turnover of the aluminum formwork frame and formwork during layer-by-layer pouring, thereby improving construction and installation efficiency.

[0032] 2. Through the setting of the protective frame, the two adjacent aluminum formwork frames on the upper and lower layers can be installed and connected, effectively improving the connection stability of the aluminum formwork frames;

[0033] 3. Through the setting of the wall-attached anchoring system, it is convenient to cast the embedded positioning parts in the main structure. At the same time, the climbing frame can be fixed by quickly installing the anchoring supports. On the basis of ensuring the synchronization of the construction of the embedded positioning parts and the construction process of the aluminum formwork frame, it is convenient to install and turn over during the construction process, effectively improving the construction efficiency; it solves the problems of the traditional aluminum formwork system and the attached lifting scaffolding in the construction, which easily cause the risk of aluminum formwork roof collapse, as well as the spatial interference and precision mismatch during installation. BRIEF DESCRIPTION OF THE DRAWINGS

[0034] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained like these drawings without paying any creative work.

[0035] Figure 1 This is a structural diagram of the aluminum formwork embedded all-steel climbing frame wall attachment system of the present invention from a main viewing angle;

[0036] Figure 2 This is a schematic diagram of the structure of the aluminum-molded embedded all-steel climbing frame wall attachment system of the present invention from a rear view angle;

[0037] Figure 3 This is a schematic structural diagram of the aluminum mold frame and protective frame of the present invention;

[0038] Figure 4 A top view of the aluminum mold frame and protective frame of the storage rack of the present invention;

[0039] Figure 5 Figure 1 is a structural diagram of the main body of the aluminum mold frame and the protective frame of the present application;

[0040] Figure 6 Figure 2 is a partial enlarged view of A in Figure 1 of the present application; Figure 5

[0041] Figure 7 Figure 4 is a structural diagram of the rib frame plate on the inner side of the wall of the present application;

[0042] Figure 8 Figure 5 is a structural diagram of the rib frame plate on the outer side of the wall of the present application;

[0043] Figure 9 Figure 6 is a structural diagram of the protective frame of the present application;

[0044] Figure 10 Figure 7 is a structural diagram of the wall-attached anchoring system of the present application;

[0045] Figure 11 Figure 8 is a sectional view of the connection between the anchoring support and the pre-buried positioning member of the present application;

[0046] Figure 12 Figure 9 is a structural diagram of the limiting block of the present application;

[0047] Figure 13 Figure 10 is a structural diagram of the adjusting bolt of the present application.

[0048]

Main component symbol explanation

[0049] 1, aluminum mold frame; 11, horizontal frame plate; 111, first slot; 12, vertical frame plate; 13, longitudinal frame plate; 14, rib frame plate; 141, wing plate; 15, connecting bolt; 2, protective frame; 21, protective frame; 211, first movable slot; 212, locking block; 213, spring; 214, locking plug; 215, sliding block; 216, first sliding groove; 217, guide rod; 218, adjusting nut; 22, backrest; 3, wall-attached anchoring system; 31, anchoring support; 311, transition block; 312, clamping block; 313, second movable slot; 314, strip-shaped clamping groove; 32, pre-buried positioning member; 321, second slot; 322, bottom clamping groove; 323, limiting strip; 33, positioning rib; 34, limiting block; 341, bottom plate; 342, second sliding groove; 35, adjusting bolt; 351, chuck; 4, mold plate. DETAILED DESCRIPTION

[0050] The structure and process of the aluminum mold embedded full-steel climbing frame wall-attached system of the present application will be further described in detail below in combination with the accompanying drawings and embodiments of the present application.

[0051] ​It should be noted that, in the absence of conflict, the embodiments and features of the embodiments in this application can be combined with each other. The present invention will be described in detail below with reference to the accompanying drawings and in combination with the embodiments.

[0052] It should be noted that the terms used herein are only for describing specific embodiments and are not intended to limit the exemplary embodiments of the present application. As used herein, unless the context clearly indicates otherwise, the singular form is intended to include the plural form. In addition, it should be understood that when the terms "comprise" and / or "include" are used in this specification, they indicate the presence of features, steps, operations, devices, components and / or combinations thereof.

[0053] It should be noted that the terms "first", "second", etc. in the specification and claims of the present application 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 data used in this way can be interchangeable where appropriate, so that the embodiments of the present application described herein can, for example, 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 device comprising 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 devices.

[0054] For ease of description, spatially relative terms such as "above", "above", "on the upper surface of", "above", etc. may be used herein to describe the spatial positional relationship of a device or feature to other devices or features as shown in the figures. It should be understood that spatially relative terms are intended to include different orientations of the device in use or operation in addition to the orientation described in the figures. For example, if the device in the drawings is inverted, the device described as "above other devices or structures" or "above other devices or structures" will be positioned as "below other devices or structures" or "below other devices or structures". Thus, the exemplary term "above" can include both "above" and "below". The device can also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatially relative descriptions used here are interpreted accordingly.

[0055] The following is attached with the instruction manual Figures 1-13 The present invention describes an aluminum mold embedded all-steel climbing frame wall attachment system.

[0056] Example 1:

[0057] Example 1 of the present invention Figure 13Provided is an aluminum formwork embedded all-steel climbing frame wall attachment system, which is an assembled structure and includes several layers of aluminum formwork frames 1, a protective frame 2 installed on the aluminum formwork frames 1, a wall attachment anchoring system 3, and a formwork 4; wherein:

[0058] The aluminum formwork frame 1 is an aluminum formwork support frame installed layer by layer in conjunction with the main structure, and includes matching horizontal frame plates 11, vertical frame plates 12 and vertical frame plates 13. The horizontal frame plates 11 and vertical frame plates 13 are symmetrically arranged, and the horizontal frame plates 11 and vertical frame plates 13 are perpendicular to each other on the same plane, forming the bottom support frame of the aluminum formwork frame 1, and are used in conjunction with the plane where the floor slab of the main structure is located. The vertical frame plates 12 are arranged at the connection nodes of the horizontal frame plates 11 and the vertical frame plates 13, and are connected to the horizontal frame plates 11 and the vertical frame plates 13 to form the side wall guardrails of the aluminum formwork frame 1;

[0059] The protective frame 2 is provided at the connection of adjacent aluminum formwork frames 1 to achieve a stable connection between adjacent aluminum formwork frames 1;

[0060] The wall anchoring system 3 is provided at the connection nodes of the adjacent aluminum formwork frames 1 and is used to fix the attached lifting scaffolding;

[0061] The template 4 is installed between the adjacent horizontal frame plates 11 and vertical frame plates 12 to form a support system for the main structure to prevent concrete from overflowing during the pouring process.

[0062] In the above description, by providing the protective frame 2, the wall anchoring system 3, and the formwork 4, the aluminum formwork system and the attached lifting scaffold can be installed simultaneously, while the aluminum formwork system is fixed to the outside of the main building, avoiding the risk of aluminum formwork roof collapse. At the same time, by providing the assembled structure of the aluminum formwork frame 1 and the formwork 4, it is convenient to rotate the aluminum formwork frame 1 and the formwork 4 during layer-by-layer casting, thereby improving construction and installation efficiency. The protective frame 2 can be used to install and connect two adjacent aluminum formwork frames 1 on the upper and lower layers, thereby improving the connection stability of the aluminum formwork frames 1.

[0063] In a preferred embodiment, Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 and Figure 5As shown, the matching horizontal frame plates 11, vertical frame plates 12, and longitudinal frame plates 13 on the same layer are all L-shaped structures. Through the setting of the L-shaped structure, after installation, limiting grooves for installing the template 4 can be formed on the inner side positions of the horizontal frame plates 11, vertical frame plates 12, and longitudinal frame plates 13. On the basis of limiting the position of the template 4, the side portions of the template 4 can also be fixed to prevent the template 4 from expanding and deforming during pouring. At the same time, screw holes are provided on the horizontal frame plates 11, vertical frame plates 12, and longitudinal frame plates 13 for use with connecting bolts 15. During installation, the connecting bolts 15 are used to connect and fix the horizontal frame plates 11, vertical frame plates 12, and longitudinal frame plates 13 to the template 4.

[0064] In a preferred embodiment, Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 and Figure 5 As shown, the aluminum formwork frame 1 also includes a rib frame plate 14, which is a T-shaped structure and is arranged between the two adjacent left and right vertical frame plates 12. The wing plates 141 on both sides of the rib frame plate 14 are also provided with connecting holes for use with connecting bolts 15, which are used to connect the rib frame plate 14 with the formwork 4 and the horizontal frame plate 11 through the connecting bolts 15. In addition, the setting of the rib frame plate 14 can also enhance the strength of the long side of the entire aluminum formwork frame 1, thereby avoiding large deformation of the formwork 4 during concrete pouring and ensuring the structural safety of the aluminum formwork system.

[0065] Example 2:

[0066] like Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 、 Figure 5 、 Figure 6 、 Figure 7 、 Figure 8 and Figure 9 As shown, different from the above-mentioned embodiment 1, the protective frame 2 includes a protective frame 21, which is arranged between two adjacent horizontal frames 11, vertical frames 12, and longitudinal frames 13, and is used to be connected with the horizontal frames 11, vertical frames 12, and longitudinal frames 13 through connecting bolts 15, so that the two adjacent aluminum mold frames 1 can form a detachable and installable integral structure, and a back rib 22 is also provided in the middle of the inner side of the protective frame 21. The back rib 22 is used to strengthen the strength of the protective frame 21, and at the same time separate the horizontal frames 11, vertical frames 12, longitudinal frames 13 and rib frames 14 of the two adjacent aluminum mold frames 1, so as to facilitate the control of the docking length and increase the installation speed during installation.

[0067] In a preferred embodiment, Figure 1 、 Figure 2 、 Figure 3 、 Figure 5 、 Figure 6 and Figure 9 As shown, a locking mechanism is further provided on the protective frame 21 for use in conjunction with the first slot 111 provided on the cross frame 11, for realizing a quick connection between the protective frame 21 and the cross frame 11 through the locking mechanism when in use; the locking mechanism includes a locking block 212, the locking block 212 being movably mounted in the first movable groove 211 on the side wall of the protective frame 21, and a locking plug 214 being provided at one end of the locking block 212, the locking plug 214 being used in conjunction with the first slot 111, and by inserting the locking plug 214 into the first slot 11 1, realizing quick connection between the cross frame 11 and the protective frame 21; a spring 213 and a guide rod 217 are provided at one end of the locking block 212 away from the locking plug 214, and the other end of the spring 213 is fixedly connected to the inner side wall of the first slot 111, and is used to reset the locking block 212 when in use, so that the locking plug 214 can be inserted into the first slot 111, and the guide rod 217 is a threaded rod that passes through the side wall of the protective frame 21, and an adjusting nut 218 is threadedly connected to the guide rod 217 on the outside of the cross frame 11.

[0068] In the above description, before installing the aluminum mold frame 1, the locking block 212 is moved backward by rotating the adjusting nut 218 to ensure that the locking plug 214 does not affect the installation of the aluminum mold frame 1. After the aluminum mold frame 1 is installed to the position of the back rib 22, the adjusting nut 218 is rotated in the opposite direction so that the locking block 212 can be reset under the action of the spring 213 and inserted into the first slot 111 on the aluminum mold frame 1 to lock the position of the aluminum mold frame 1; the locking block 212 also plays a guiding role, guiding the movement of the locking block 212.

[0069] In a preferred embodiment, Figure 6 As shown, sliders 215 are symmetrically provided on both sides of the locking block 212. The sliders 215 are used in conjunction with the first sliding groove 216 provided on the side wall of the first movable groove 211 to guide and limit the movement of the locking block 212 through the cooperation between the first sliding groove 216 and the slider 215.

[0070] Example 3:

[0071] like Figure 1 、 Figure 2 、 Figure 3 、 Figure 10 、 Figure 11 、 Figure 12 and Figure 13As shown, different from the above-mentioned embodiment, the wall-attached anchoring system 3 includes an anchor support 31 and an embedded positioning member 32. The embedded positioning member 32 is embedded and cast between two adjacent cross-frame plates 11 at the same height, and one end of the embedded positioning member 32 passes through the through hole 142 on the outer formwork 4 and is connected to the anchor support 31, and the other end is connected to the cross-frame plate 11, and a number of through holes are provided on the embedded positioning member 32 for use with the positioning rib 33.

[0072] In the above description, by pre-embedded positioning parts 32 and cast in the wall, the anchor support 31 can be effectively fixed and positioned, which facilitates the installation of the climbing frame. At the same time, the construction of the pre-embedded positioning parts 32 can be carried out simultaneously with the construction process of the aluminum formwork frame 1, effectively avoiding the risk of "aluminum formwork roof collapse operation"; at the same time, by setting the positioning ribs 3, the position of the embedded positioning parts 32 can be effectively positioned to ensure the positioning accuracy of the embedded positioning parts 32.

[0073] In a preferred embodiment, Figure 1 、 Figure 2 、 Figure 3 、 Figure 9 、 Figure 10 、 Figure 11 、 Figure 12 and Figure 13 As shown, one end of the anchor support 31 is connected to the climbing frame, and the other end is connected to the clamping block 312 through the transition block 311. The clamping block 312 is used in conjunction with the second slot 321 set at the end of the embedded positioning member 32, and a limiting block 34 is movably provided on the clamping block 312, and the limiting block 34 is used in conjunction with the inner top wall of the second slot 321.

[0074] In the above description, the lower end of the clamping block 312 is provided with a plurality of strip-shaped clamping grooves 314, which cooperate with the limiting strips 323 provided in the bottom clamping grooves 322 of the second slot 321. That is, after the clamping block 312 is inserted into the second slot 321, the lower end of the clamping block 312 is inserted into the clamping grooves 322, and then the limiting strips 323 are inserted into the strip-shaped clamping grooves 314, thereby achieving the connection between the anchor support 31 and the embedded positioning member 32. At the same time, by inserting the lower end of the clamping block 312 into the bottom clamping grooves 322, the clamping block 312 can be limited, thereby ensuring the stability of the climbing frame after installation.

[0075] In a preferred embodiment, Figure 1 、 Figure 2 、 Figure 3 、 Figure 9 、 Figure 10 、 Figure 11 and Figure 12As shown, the limit block 34 is movably installed in the second movable groove 313 on the clamping block 312, and is used in conjunction with the adjusting bolt 35 threadedly connected to the clamping block 312. When in use, the limit block 34 is pushed upward by screwing in the adjusting bolt 35 so that it is in close contact with the inner top wall of the second slot 321, thereby ensuring the connection stability between the anchor support 31 and the embedded positioning member 32.

[0076] In the above description, the bottom panel 341 on the side of the limit block 34 close to the adjusting bolt 35 is an inclined surface, and a second sliding groove 342 is provided on the bottom panel 341 for use with a chuck 351 provided at the end of the adjusting bolt 35, so that when adjusting, the chuck 351 is stuck in the second sliding groove 342. In the process of screwing in the adjusting bolt 35, the chuck 351 slides in the second sliding groove 342, pushing the limit block 34 to move in the second movable groove 313.

[0077] The construction process of the aluminum formwork embedded all-steel climbing frame wall attachment system described in Examples 1 to 3 of the present invention includes:

[0078] Step 1: First, the staff connects the horizontal frame 11, vertical frame 12, and longitudinal frame 13 of the same layer through the connecting bolts 15 to form the aluminum formwork frame 1;

[0079] Step 2: Then install the rib frame plates 14 between the cross frame plates 11, and install the embedded positioning members 32 between the rib frame plates 14, and position the embedded positioning members 32 through the positioning ribs 33;

[0080] Step 3: After the template frame is assembled, the template 4 is installed on the template frame and fixed. Then, the anchor support 31 is installed through the through hole 142 and the anchor support 31 is connected to the climbing frame;

[0081] Step 4: After the anchor support 31 is installed, concrete is poured on this layer;

[0082] Step 5: After the corresponding layer of concrete pouring is completed, a protective frame 21 is installed on the upper ends of the horizontal frame plate 11, the vertical frame plate 12, and the longitudinal frame plate 13, and the protective frame 21 is used to fix the upper ends of the horizontal frame plate 11, the vertical frame plate 12, and the longitudinal frame plate 13;

[0083] Step 6: Then repeat steps 1 to 5 to pour concrete;

[0084] Step 7: After the concrete pouring is completed, the horizontal frame plate 11, vertical frame plate 12, longitudinal frame plate 13 and rib frame plate 14 installed in steps 1 and 2 are removed, and the horizontal frame plate 11, vertical frame plate 12, longitudinal frame plate 13 and rib frame plate 14 are reinstalled in the same manner as in steps 1 and 2;

[0085] Step 8: Then repeat steps 3 to 5 to pour concrete;

[0086] Step 9: Repeat steps 1 to 8 to complete the support of the aluminum formwork system and the installation of the attached lifting scaffolding.

[0087] The technical features of the above embodiments can be combined arbitrarily. To make the description concise, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0088] The above-described embodiments merely illustrate several embodiments of the present invention, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the present invention. It should be noted that a person skilled in the art would be able to make various modifications and improvements without departing from the spirit of the present invention, and these modifications and improvements fall within the scope of the present invention. Therefore, the scope of the present invention shall be determined by the appended claims.

Claims

1. An aluminum-molded embedded all-steel climbing frame wall attachment system, characterized by: The all-steel climbing frame wall-attached system is an assembled structure, comprising several layers of aluminum formwork frames (1), a protective frame (2) installed on the aluminum formwork frames (1), a wall-attached anchoring system (3) and a formwork (4); The aluminum formwork frame (1) is an aluminum formwork support frame that is installed layer by layer in conjunction with the main structure, and includes matching horizontal frame plates (11), vertical frame plates (12) and longitudinal frame plates (13); The protective frame (2) is arranged at the connection between adjacent aluminum mold frames (1); The wall anchoring system (3) is arranged at the connection nodes of adjacent aluminum formwork frames (1); The template (4) is arranged between adjacent horizontal frame plates (11) and vertical frame plates (12) to form a supporting system for the main structure.

2. The aluminum formwork embedded all-steel climbing frame wall attachment system according to claim 1, characterized in that: The horizontal frame plate (11) and the vertical frame plate (13) are symmetrically arranged, and the horizontal frame plate (11) and the vertical frame plate (13) are perpendicular to each other on the same plane, forming a bottom support frame of the aluminum formwork frame (1), matching the plane where the floor of the main structure is located, and the vertical frame plate (12) is arranged at the connection node between the horizontal frame plate (11) and the vertical frame plate (13), and is connected to the horizontal frame plate (11) and the vertical frame plate (13), forming a side wall guard frame of the aluminum formwork frame (1); the horizontal frame plate (11), vertical frame plate (12) and vertical frame plate (13) matched on the same layer are all L-shaped structures and match the template (4).

3. The aluminum formwork embedded all-steel climbing frame wall attachment system according to claim 1, characterized in that: The aluminum mold frame (1) further comprises a rib frame plate (14), which is a T-shaped structure and is arranged between two adjacent left and right vertical frame plates (13). Connection holes are also provided on the wing plates (141) on both sides of the rib frame plate (14) to match the connection bolts (15).

4. The aluminum-molded embedded all-steel climbing frame wall attachment system according to claim 1, characterized in that: The protective frame (2) comprises a protective frame (21), which is arranged between two upper and lower adjacent horizontal frame plates (11), vertical frame plates (12), and longitudinal frame plates (13), and is connected to the horizontal frame plates (11), vertical frame plates (12), and longitudinal frame plates (13) via connecting bolts (15); and a back rib (22) is further arranged in the middle of the inner side of the protective frame (21).

5. The aluminum formwork embedded all-steel climbing frame wall attachment system according to claim 4, characterized in that: The protection frame (21) is also provided with a locking mechanism that matches the first slot (111) provided on the cross frame (11), and the locking mechanism includes a locking block (212), the locking block (212) being movably provided in the first movable slot (211) on the side wall of the protection frame (21), and a locking plug (214) being provided at one end of the locking block (212) to match the first slot (111); a spring (213) and a guide rod (217) are provided at one end of the locking block (212) away from the locking plug (214), the other end of the spring (213) being connected to the inner side wall of the first slot (111), the guide rod (217) being a threaded rod that passes through the side wall of the protection frame (21), and an adjusting nut (218) being threadedly connected to the guide rod (217) on the outer side of the cross frame (11).

6. The aluminum formwork embedded all-steel climbing frame wall attachment system according to claim 1, characterized in that: The wall-attached anchoring system (3) comprises an anchor support (31) and a pre-embedded positioning member (32). The pre-embedded positioning member (32) is pre-embedded and cast between two adjacent horizontal frame plates (11) at the same height. One end of the pre-embedded positioning member (32) passes through a through hole (142) on the outer template (4) and is connected to the anchor support (31), while the other end is connected to the horizontal frame plate (11). A plurality of through holes are provided on the pre-embedded positioning member (32) to match the positioning ribs (33).

7. The aluminum formwork embedded all-steel climbing frame wall attachment system according to claim 6, characterized in that: One end of the anchor support (31) is connected to the climbing frame, and the other end is connected to the clamping block (312) through a transition block (311); the clamping block (312) matches a second slot (321) provided at the end of the embedded positioning member (32); and a limiting block (34) is movably provided on the clamping block (312); the limiting block (34) matches an inner top wall of the second slot (321).

8. The aluminum formwork embedded all-steel climbing frame wall attachment system according to claim 7, characterized in that: The limiting block (34) is movably arranged in the second movable groove (313) on the clamping block (312) and matches the adjusting bolt (35) threadedly connected to the clamping block (312).

9. The aluminum formwork embedded all-steel climbing frame wall attachment system according to claim 7, characterized in that: The bottom panel (341) on one side of the limit block (34) close to the adjustment bolt (35) is an inclined surface, and a second sliding groove (342) is provided on the bottom panel (341) to cooperate with the chuck (351) provided at the end of the adjustment bolt (35).

10. A construction process for an aluminum-molded embedded all-steel climbing frame wall attachment system as claimed in claim 1, characterized in that: include: Step 1: First, the staff connects the horizontal frame, vertical frame and longitudinal frame of the same layer through connecting bolts to form an aluminum formwork frame; Step 2: Then, install the rib frame plates between the horizontal frame plates, install the embedded positioning pieces between the rib frame plates, and position the embedded positioning pieces through the positioning ribs; Step 3: After the formwork frame is assembled, install the formwork on the formwork frame and fix the formwork. Then install the anchor support through the through hole and connect the anchor support to the climbing frame. Step 4: After the anchor support is installed, pour concrete on this layer; Step 5: After the corresponding layer of concrete pouring is completed, a protective frame is installed on the upper ends of the horizontal frame plate, vertical frame plate, and longitudinal frame plate, and the upper ends of the horizontal frame plate, vertical frame plate, and longitudinal frame plate are fixed with the protective frame; Step 6: Then repeat steps 1 to 5 to pour concrete; Step 7: After the concrete pouring is completed, the horizontal frame plates, vertical frame plates, longitudinal frame plates and rib frame plates installed in steps 1 and 2 are removed, and the horizontal frame plates, vertical frame plates, longitudinal frame plates and rib frame plates are reinstalled in the same manner as in steps 1 and 2; Step 8: Then repeat steps 3 to 5 to pour concrete; Step 9: Repeat steps 1 to 8 to complete the support of the aluminum formwork system and the installation of the attached lifting scaffolding.