Template assembling device

The template assembly device, which supports the frame and moves the components, enables automated installation and disassembly of the template during the pouring of the vase-shaped pier. This solves the problems of low installation efficiency and poor precision in existing technologies, and improves construction efficiency and quality.

CN223880770UActive Publication Date: 2026-02-06TENGDA CONSTR GROUP CORP
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Patent Information

Application Number
CN202520323962.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-27
Publication Date
2026-02-06
Estimated Expiration
2035-02-27

AI Technical Summary

Technical Problem

In the existing technology, the formwork installation efficiency is low and the assembly accuracy is poor during the construction of the vase-shaped pier. Manual operation is prone to positional deviation, which affects the pouring quality and construction efficiency.

Method used

The template assembly device adopts a support frame and moving components, and uses a drive mechanism and connecting parts to realize the automated installation and disassembly of the template. The template is transported by a crane and moved precisely on the construction site. The positioning protrusions and positioning grooves ensure accurate positioning, and the template is fixed with fasteners.

Benefits of technology

It enables efficient and precise assembly of templates, reduces manual labor intensity, lowers construction errors, improves construction standardization and safety, and ensures the accuracy of the size and shape of the pouring space.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a template assembling device, which belongs to the technical field of building construction, and comprises a support frame body and a plurality of moving components, the plurality of moving components are arranged on the support frame body, each moving component comprises a driving mechanism and a connecting part, the connecting part is connected with the driving mechanism, the connecting part is used for being detachably connected with a template, and the template assembling device is arranged on the support frame body. The driving mechanism can drive the connecting part to move between a mounting position and a dismounting position; the connecting part of each moving assembly is connected with one formwork, the multiple formworks located at the installation positions can define a pouring space, and the pouring space is used for pouring concrete. And through cooperative work of the driving mechanism and the connecting part, the labor intensity of workers is reduced, personal errors in construction are reduced, and the standardization and normalization degree of construction is improved. And the template can be accurately moved to a specified position, so that the template assembling precision and efficiency are improved. A pouring space can be accurately defined by the multiple formworks at the installation position, and it is guaranteed that the size of the pouring space is accurate and the shape of the pouring space is regular.
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Description

TECHNICAL FIELD

[0001] The utility model relates to building construction technical field especially relates to a template assembly device. BACKGROUND

[0002] In the field of construction, the vase pier is a special shape pier structure, which is similar to a vase in shape, has unique beauty and good bearing capacity. The vase pier can effectively disperse the load borne by the structure such as bridge, improve the stability and safety of the structure.

[0003] In the pouring construction process of the vase pier, the template needs to be first erected to form a specific pouring space, and then the concrete is poured in the pouring space after the template is erected, so that the vase pier is formed. The role of the template is to provide an accurate shape and size limit for the pouring of concrete, to ensure that the poured vase pier meets the design requirements.

[0004] However, in the current vase pier pouring construction, the installation of the template usually needs to use a crane to hoist each part of the template to the corresponding installation area one by one, and then rely entirely on manual assembly. After the pouring operation is completed, the template needs to be disassembled and transported to a new assembly position by the crane again, and then assembled by manual operation. This method of manual assembly operation has the problem that the position of the template deviates due to manual measurement errors, uneven operation force or improper assembly sequence, which ultimately affects the quality of the poured vase pier, and the assembly process of the template is relatively cumbersome and inefficient. UTILITY MODEL CONTENT

[0005] The utility model aims at providing a template assembly device to solve the technical problems of low efficiency and poor assembly precision in the prior art.

[0006] According to the above idea, the technical scheme adopted by the utility model is:

[0007] A template assembly device comprises:

[0008] A support frame;

[0009] A plurality of moving assemblies are arranged on the support frame, the moving assembly comprises a driving mechanism and a connecting part, the connecting part is connected with the driving mechanism, the connecting part is used for detachably connecting the template, and the driving mechanism can drive the connecting part to move between the installation position and the disassembly position; the connecting part of each moving assembly is connected with one template, and a plurality of templates located at the installation position can be arranged to form a pouring space, and the pouring space is used for pouring concrete.

[0010] Preferably, the driving mechanism comprises a driving motor and a pushing rod, one end of the pushing rod is connected with the output end of the driving motor, the other end of the pushing rod is connected with the connecting part, and the driving motor can drive the pushing rod to move along the axial direction of the pushing rod.

[0011] Preferably, the driving mechanism further comprises a square rotating shaft, the square rotating shaft is connected with the output end of the driving motor, the driving motor can drive the square rotating shaft to rotate around the axial direction of the square rotating shaft, a square slot is formed in the axial direction of the pushing rod, the square rotating shaft is inserted into the square slot, and a threaded groove is formed in the support frame body, the pushing rod is arranged in the threaded groove and is in threaded connection with the threaded groove.

[0012] Preferably, the connecting part is a roller bearing connector, the roller bearing connector is arranged at the end of the pushing rod away from the driving motor, and the template is detachably connected with the roller bearing connector.

[0013] Preferably, the driving mechanism further comprises a guide rod, the guide rod extends in parallel with the pushing rod, one end of the guide rod is connected with the template, a guide hole is formed in the support frame body, and the guide rod is in sliding connection with the guide hole.

[0014] Preferably, two guide rods are arranged, and the two guide rods are symmetrically arranged on the two sides of the pushing rod.

[0015] Preferably, the other end of the guide rod away from the template is provided with a limiting block, when the connecting part moves to the mounting position, the limiting block abuts against the outer wall of the support frame body.

[0016] Preferably, four moving assemblies are arranged, the four moving assemblies are arranged in a circumferential array, the included angle between adjacent two moving assemblies is 90 degrees, and the four moving assemblies can drive the corresponding templates to surround to form a pouring space with a horizontal section in a rectangular shape.

[0017] Preferably, a part of the templates is provided with a positioning protrusion, and the other part of the templates is provided with a positioning groove in correspondence, when the template is located at the mounting position, the positioning protrusion is clamped in the positioning groove.

[0018] Preferably, the template assembling device further comprises a fixing piece, and the fixing piece is used for fixing the plurality of templates located at the mounting position.

[0019] The beneficial effects of the utility model are as follows:

[0020] The template assembly device provided by the utility model is hoisted to the position where the vase pier needs to be poured by the crane in use, and then each template is installed on the connecting portion of the corresponding moving assembly. Then, the connecting portion is driven by the driving mechanism to move to the installation position in sequence until all the templates are moved to the installation position to form a pouring space, thereby completing the assembly process of the templates, and then pouring concrete into the pouring space. When the pouring work of the vase pier is completed, the connecting portion is driven by the driving mechanism to move to the disassembly position in sequence, and all the templates are removed in sequence to prepare for subsequent work.

[0021] The support frame provides a stable foundation for the moving assembly, ensuring the stability of the entire device. The driving mechanism can accurately drive the connecting portion to move, enabling automatic switching of the templates between the installation position and the disassembly position. The connecting portion of each moving assembly can be detachably connected to the templates, thereby enabling the installation and disassembly process of the templates to be automated. Through the coordinated work of the driving mechanism and the connecting portion, the templates can be accurately moved to the specified position, improving the precision and efficiency of template assembly. Multiple templates can accurately form a pouring space at the installation position, ensuring the size precision and shape regularity of the pouring space. Since automation is achieved, the labor intensity is reduced, human error in construction is reduced, and the standardization and normalization of construction are improved. At the same time, safety risks caused by manual operation are avoided, and the safety and reliability of construction are improved. BRIEF DESCRIPTION OF DRAWINGS

[0022] Figure 1 is a structural schematic view of a template provided by an embodiment of the utility model;

[0023] Figure 2 is a structural schematic view of a template cooperating with a template assembly device provided by an embodiment of the utility model;

[0024] Figure 3 is a sectional view of the template assembly device provided by an embodiment of the utility model;

[0025] Figure 4 is Figure 3 is an enlarged view of position A in FIG.

[0026] In the drawings:

[0027] 100, template; 101, main plate body; 102, side plate body; 103, positioning protrusion; 104, positioning groove; 105, pouring space;

[0028] 1, support frame; 11, threaded groove; 12, guide hole;

[0029] 2, moving assembly; 21, driving mechanism; 211, driving motor; 212, pushing rod; 2121, square slot; 213, square rotating shaft; 214, guide rod; 215, limiting block; 22, connecting part. DETAILED DESCRIPTION

[0030] The embodiments of the present application are described in detail below, examples of which are shown in the drawings, wherein the same or similar notations represent the same or similar elements or elements having the same or similar functions throughout. The embodiments described below by reference to the drawings are exemplary and are intended to explain the present application, and cannot be understood as limiting the present application.

[0031] In the description of the present application, unless explicitly defined and limited otherwise, the terms "connected", "connected", "fixed" should be understood broadly, for example, it can be fixedly connected, or it can be detachably connected, or it can be integrated; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be indirectly connected through an intermediate medium; it can be the internal communication of two elements or the interaction relationship between two elements. For ordinary skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.

[0032] In the present application, unless explicitly defined and limited otherwise, the first feature "on" or "below" the second feature can include that the first and second features are in direct contact, or that the first and second features are not in direct contact but are in contact through another feature between them. Moreover, the first feature "on", "above" and "above" the second feature includes that the first feature is directly above and obliquely above the second feature, or only indicates that the horizontal height of the first feature is higher than that of the second feature. The first feature "below", "below" and "below" the second feature includes that the first feature is directly below and obliquely below the second feature, or only indicates that the horizontal height of the first feature is less than that of the second feature.

[0033] The technical scheme of the present application is further illustrated below by specific embodiments in conjunction with the drawings.

[0034] Referring to Figures 1 to 4 The template assembly device provided by the embodiment of the present application comprises a supporting frame body 1 and a moving assembly 2. A plurality of moving assemblies 2 are arranged on the supporting frame body 1, the moving assembly 2 comprises a driving mechanism 21 and a connecting part 22, the connecting part 22 is connected with the driving mechanism 21, the connecting part 22 is used for detachably connecting a template 100, and the driving mechanism 21 can drive the connecting part 22 to move between a mounting position and a disassembling position; the connecting part 22 of each moving assembly 2 is connected with one template 100, and a plurality of templates 100 located at the mounting position can be arranged to form a pouring space 105, and the pouring space 105 is used for pouring concrete.

[0035] The template assembly device provided by the utility model is hoisted to the position where the vase pier needs to be poured by the crane during use, and then each template 100 is installed on the connecting portion 22 of the corresponding moving assembly 2. Then, the connecting portion 22 is driven by the driving mechanism 21 to move to the installation position in sequence until all the templates 100 are moved to the installation position to form the pouring space 105, thereby completing the assembly process of the template 100, and then pouring concrete into the pouring space 105. After the pouring work of the vase pier is completed, the connecting portion 22 is driven by the driving mechanism 21 to move to the disassembly position in sequence, and all the templates 100 are removed in sequence to prepare for subsequent work.

[0036] The support frame body 1 provides a stable foundation for the moving assembly 2 and ensures the stability of the whole device. The driving mechanism 21 can accurately drive the connecting portion 22 to move and realize the automatic switching of the template 100 between the installation position and the disassembly position. The connecting portion 22 of each moving assembly 2 can be detachably connected with the template 100, so that the installation and disassembly process of the template 100 is realized automatically. Through the cooperative work of the driving mechanism 21 and the connecting portion 22, the template 100 can be accurately moved to the specified position, improving the precision and efficiency of the template 100 assembly. The multiple templates 100 can accurately form the pouring space 105 in the installation position, ensuring the size precision and shape regularity of the pouring space 105. Since the automatic operation is realized, the manual labor intensity is reduced, the human error in construction is reduced, and the standardization and normalization degree of construction is improved. At the same time, the safety risk caused by manual operation is avoided, and the safety and reliability of construction are improved.

[0037] The specific structure of the template assembly device will be described below.

[0038] The driving mechanism 21 is used to ensure that the template 100 can stably move between the installation position and the disassembly position. Specifically, the driving mechanism 21 comprises a driving motor 211 and a push rod 212, one end of the push rod 212 is connected with the output end of the driving motor 211, the other end of the push rod 212 is connected with the connecting portion 22, the driving motor 211 can drive the push rod 212 to move along the axial direction, thereby driving the connecting portion 22 at the end of the push rod 212 to move in a straight line synchronously, so as to realize the automatic switching of the template 100 installed on the connecting portion 22 between the installation position and the disassembly position.

[0039] Specifically, the driving mechanism 21 further comprises a square rotating shaft 213 connected with the output end of the driving motor 211, the driving motor 211 can drive the square rotating shaft 213 to rotate around its own axis, the pushing rod 212 is provided with a square slot 2121 along its own axial direction, the square rotating shaft 213 is inserted into the square slot 2121, and the support frame 1 is provided with a threaded groove 11, the pushing rod 212 is provided in the threaded groove 11 and is in threaded connection with the threaded groove 11. In work, the driving motor 211 is started to drive the square rotating shaft 213 to rotate. Since the square rotating shaft 213 is inserted into the square slot 2121 of the pushing rod 212, the rotating movement of the square rotating shaft 213 is transmitted to the pushing rod 212. At the same time, since the pushing rod 212 is in threaded connection with the threaded groove 11 of the support frame 1, under the driving of the rotating of the square rotating shaft 213, the pushing rod 212 moves axially along the threaded direction of the threaded groove 11.

[0040] For example, when the square rotating shaft 213 rotates clockwise, the pushing rod 212 extends forward under the action of the thread; when the square rotating shaft 213 rotates counterclockwise, the pushing rod 212 retracts backward. Thus, the rotating movement of the driving motor 211 is converted into the linear movement of the pushing rod 212, and the precise control and stable transmission of the movement are realized through the threaded connection. The accuracy and stability of the movement of the pushing rod 212 are ensured, so that the position of the template 100 can be accurately controlled.

[0041] In order to prevent the pushing rod 212 from rotating to drive the template 100 to rotate synchronously and cause interference between components, the connecting part 22 is connected by a roller bearing connector, the roller bearing connector is arranged at the end of the pushing rod 212 away from the driving motor 211, and the template 100 is detachably connected with the roller bearing connector. The rollers in the roller bearing connector can roll freely, so that when the pushing rod 212 rotates, the rotation of the rollers offsets the rotation of the pushing rod 212, and the template 100 can maintain a relatively stable angle and position and will not rotate.

[0042] The roller bearing connector and the template 100 can be connected by bolts, latches, buckles and the like, which are not limited here, as long as they can be detachably connected.

[0043] Further, in order to ensure the stability and accuracy of the template 100 during movement, the driving mechanism 21 further comprises a guide rod 214 extending parallel to the pushing rod 212, one end of the guide rod 214 being connected with the template 100, and a guide hole 12 being formed on the support frame 1, the guide rod 214 being slidingly connected with the guide hole 12. When the driving motor 211 drives the pushing rod 212 to push the template 100 to move, the guide rod 214 parallel to the pushing rod 212 also slides in the guide hole 12. The guide rod 214 provides additional support and guidance for the movement of the template 100, ensuring that the template 100 moves accurately along the predetermined straight trajectory, preventing the template 100 from deviating or tilting during movement.

[0044] Specifically, two guide rods 214 are provided, which are symmetrically distributed on both sides of the pushing rod 212. The two symmetrically distributed guide rods 214 can balance the lateral force received by the template 100 during movement, making the movement of the template 100 more stable and accurate. Secondly, the symmetrically designed guide rods 214 make the force on the template 100 more uniform, reducing the risk of local deformation or damage caused by uneven force. At the same time, it also provides a more stable working environment for the pushing rod 212, ensuring that it can effectively push the template 100 to move.

[0045] More specifically, the other end of the guide rod 214 away from the template 100 is provided with a limit block 215, which abuts against the outer wall of the support frame 1 when the connecting part 22 moves to the installation position. The limit block 215 plays a role in limiting the stroke, ensuring that the guide rod 214 does not move excessively, thereby preventing the template 100 from exceeding the predetermined installation position, and ensuring the accuracy of the installation position of the template 100.

[0046] Regarding the layout of the moving assembly 2. Four moving assemblies 2 are provided, which are arranged in a circumferential array with an angle of 90 degrees between adjacent two moving assemblies 2, and the four moving assemblies 2 can drive the corresponding templates 100 to form a pouring space 105 with a rectangular horizontal cross section.

[0047] In this embodiment, four templates 100 are provided correspondingly, which are main plate bodies 101 located on two long sides of the rectangle and side plate bodies 102 located on two wide sides of the rectangle. During installation, first, two main plate bodies 101 are moved to the installation position by the moving assembly 2, and then two side plate bodies 102 are moved to the installation position and fixed with the main plate bodies 101, thereby forming the pouring space 105.

[0048] Further, a positioning protrusion 103 is arranged on a part of the template 100, and a positioning slot 104 is correspondingly arranged on another part of the template 100. When the template 100 is located at the installation position, the positioning protrusion 103 is clamped in the positioning slot 104. Specifically, the positioning protrusion 103 is arranged at both ends of each side plate body 102, and the positioning slot 104 is formed at the corresponding position of the main plate body 101. The cooperation of the positioning protrusion 103 and the positioning slot 104 can ensure the relative position between the templates 100 to be accurate and correct, and avoid deviation and misplacement. At the same time, the positioning protrusion 103 is clamped into the positioning slot 104, which can effectively prevent the template 100 from moving or deforming during the pouring process, and ensure the integrity and stability of the pouring space 105.

[0049] In addition, the template assembling device further comprises a fixing member for fixing the plurality of templates 100 located at the installation position. Specifically, the fixing member is selected from angle iron. After the templates 100 are assembled and reach the installation position, the angle iron is placed at the joint of the adjacent templates 100. One side of the angle iron is tightly connected to one template 100 through a bolt, and the other side is also fixed to the adjacent template 100 through a bolt.

[0050] For example, for four templates 100 surrounding to form a rectangular pouring space 105, one angle iron is arranged at the joint of each corner. The bolt passes through the hole pre-formed in the angle iron and the corresponding hole in the template 100, and then is tightened with a nut, so as to firmly fix the adjacent templates 100 together. Thus, during the concrete pouring process, even if subjected to a larger pressure and impact force, the plurality of templates 100 can maintain a stable position and shape, ensuring the smooth progress of the pouring work and the pouring quality.

[0051] In other embodiments, the fixing member can also be a metal bandage, which is wrapped around the connection of the plurality of templates 100 and is fastened through a bolt or a buckle to provide uniform binding force to fix the templates 100. Alternatively, the fixing member can also be a locking bolt, which is inserted into the hole reserved at the joint of the templates 100 and is tightened to clamp the templates 100 to achieve fixation, etc. The specific form of the fixing member is not limited herein.

[0052] In addition, the template assembling device further comprises a sensor, which is signal connected with the moving assembly 2. When the connecting part 22 moves to the installation position or the disassembling position, the sensor can generate a prompt information.

[0053] Specifically, the sensors are position sensors. The position sensors are respectively installed at the installation position and the disassembly position of the template assembly device. Each moving assembly 2 is in signal connection with the position sensors in a wireless manner. The position sensors can monitor the position change of the connecting part 22 in the moving assembly 2 in real time. When the connecting part 22 moves to the installation position, the position sensor at the installation position is triggered, and a prompt information indicating that the installation is completed is generated and sent to the control center. The prompt information can be a specific electrical signal, optical signal or sound signal, etc.

[0054] For example, when the prompt information is an electrical signal, the green indicator light is on to indicate that the installation is completed after the control center receives the signal. Similarly, when the connecting part 22 moves to the disassembly position, the position sensor at the disassembly position is activated, and a prompt information indicating that the disassembly is completed is generated and sent. After the control center receives the signal, the red indicator light is on to indicate that the disassembly is completed. Through the sensors, the visualization and controllability of the template 100 assembly and disassembly process are improved, and the operator can timely and accurately understand the position state of the template 100, thereby effectively improving the work efficiency and safety.

[0055] It can be understood that the above-mentioned sensors, control center, indicator light and other devices are selected from existing electrical devices, which are common devices in the art, and those skilled in the art should understand their working principles and specific structures, which will not be described here.

[0056] The specific use process of the template assembly device will be described below.

[0057] In use, the template assembly device is hoisted by a crane to the position where the vase pier needs to be poured, and then the main plate body 101 and the side plate body 102 are respectively installed on the roller bearing connecting head of the corresponding moving assembly 2.

[0058] Then, two driving motors 211 corresponding to the two main plate bodies 101 are respectively started. The driving motor 211 is started to drive the square shaft 213 to rotate clockwise. Since the square shaft 213 is inserted into the square slot 2121 of the push rod 212, the rotating motion of the square shaft 213 is transmitted to the push rod 212. At the same time, since the push rod 212 is threadedly connected with the threaded groove 11 on the support frame 1, under the rotating drive of the square shaft 213, the push rod 212 moves axially along the thread direction of the threaded groove 11, thereby driving the main plate body 101 to move in the direction of approaching the installation position.

[0059] When the driving motor 211 drives the pushing rod 212 to push the main plate body 101 to move, the guide rod 214 parallel to the main plate body 101 also slides in the guide hole 12. With the movement of the guide rod 214, the distance between the limiting block 215 fixed to the other end of the guide rod 214 and the outer wall of the support frame body 1 will gradually shorten, and when the limiting block 215 abuts against the outer wall of the support frame body 1, the main plate body 101 will stop moving, and at this time, the main plate body 101 also moves to the installation position.

[0060] When the main plate body 101 stops moving, the side plate body 102 is driven by the two driving motors 211 corresponding to the side plate body 102 to move towards the installation position, and the movement process and principle of the side plate body 102 are similar to those of the main plate body 101, which will not be repeated here.

[0061] With the movement of the side plate body 102, the distance between the positioning protrusion 103 arranged on the side plate body 102 and the positioning groove 104 arranged on the main plate body 101 will gradually shorten, and when the positioning protrusion 103 completely enters the inside of the positioning groove 104 and the side plate body 102 and the outer surface of the main plate body 101 are attached, it indicates that the four molds 100 for pouring the vase piers are successfully moved to the installation position. Then the operator places the angle iron at the splicing position of the adjacent molds 100. One side of the angle iron is tightly connected to a mold 100 through a bolt, and the other side is also fixed to the adjacent mold 100 through a bolt, so as to fix the two side plate bodies 102 and the two main plate bodies 101 through the angle iron.

[0062] When the vase pier pouring operation is completed, the angle iron is removed, and then the side plate body 102 is moved to the disassembly position through the driving motor 211 corresponding to the side plate body 102, and then the main plate body 101 is moved to the disassembly position through the driving motor 211 corresponding to the main plate body 101, so as to complete the disassembly process of the mold 100.

[0063] The disassembly process of the mold 100 is the reverse process of the above-mentioned installation process of the mold 100, and the specific operation and principle thereof will not be repeated here.

[0064] The above embodiments only illustrate the basic principles and characteristics of the present application, and the present application is not limited by the above embodiments. Without departing from the spirit and scope of the present application, various changes and modifications can be made to the present application, and these changes and modifications all fall within the scope of the present application. The scope of protection of the present application is defined by the appended claims and their equivalents.

Claims

1. A template assembly device, characterized by, The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1).

2. The template assembly apparatus of claim 1, wherein, The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1).

3. The template assembly apparatus of claim 2, wherein, The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1).

4. The template assembly apparatus of claim 3, wherein, The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1).

5. The template assembly apparatus of claim 2, wherein, The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1).

6. The template assembly apparatus of claim 5, wherein, The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1).

7. The template assembly apparatus of claim 5, wherein, The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). 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The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which comprises a support frame (1) and a plurality of moving assemblies (2) arranged on the support frame (1). The utility model relates to a movable template for concrete pouring, which 8. The template assembly apparatus of claim 1, wherein, The moving assembly (2) is provided with four, four moving assemblies (2) are arranged in a circumferential array, the included angle between two adjacent moving assemblies (2) is 90 degrees, and four moving assemblies (2) can drive the corresponding formwork (100) to surround to form a pouring space (105) with a rectangular horizontal cross section.

9. The template assembly apparatus of claim 1, wherein, A part of the formwork (100) is provided with a positioning protrusion (103), and the other part of the formwork (100) is provided with a positioning groove (104) correspondingly, when the formwork (100) is located in the installation position, the positioning protrusion (103) is clamped in the positioning groove (104).

10. The template assembly apparatus of claim 1, wherein, The formwork assembling device further comprises a fixing member for fixing a plurality of formworks (100) located in the installation position.