Fabricated thermal insulation wall and construction method thereof

Through the design of the connecting device and drive components, efficient installation and stable fixation of the prefabricated insulation wall is achieved, which solves the problems of low installation efficiency and poor stability in the prior art, and provides a convenient replacement and transportation solution.

CN120443753APending Publication Date: 2025-08-08CHONGQING XINZHOU ARCHITECTURE ENG CO LTD
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Patent Information

Application Number
CN202510720020.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-30
Publication Date
2025-08-08

AI Technical Summary

Technical Problem

The existing prefabricated insulation walls have low installation efficiency, poor stability, easy to fall off when fixed, and inconvenient replacement when damaged.

Method used

The connecting device is adopted, including a mounting plate, a rotating plate and a driving assembly, and the insulation wall is removable and fixed through the rotating shaft and the driving assembly. The clamping positioning of the rotating plate and the installation chamber is used, and the design of the linkage assembly and the bearing plate is combined to improve installation efficiency and stability.

Benefits of technology

It improves the installation efficiency and stability of the insulation wall, facilitates replacement when damaged, reduces transportation volume, and enhances the convenience and stability of the wall.

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Abstract

The invention relates to an assembly type heat preservation wall and a construction method thereof, and relates to the technical field of heat preservation wall bodies, the assembly type heat preservation wall comprises a plurality of heat preservation wall bodies arranged on a wall surface through a connecting device, and the connecting device comprises a plurality of mounting plates arranged on the wall surface and forming a mounting cavity with the wall surface; the rotating plates are rotationally arranged on the thermal insulation wall body through rotating shafts; and the driving assembly is used for driving the rotating shaft to rotate, so that the rotating plate is clamped and mounted on the mounting cavity for positioning. The multiple mounting plates and the driving assembly are matched to achieve fixing and dismounting of the thermal insulation wall, so that the mounting efficiency and stability of the wall are improved, replacement is facilitated when the wall is damaged, meanwhile, the rotating plate is clamped and fixed to the mounting cavity when rotating to be vertically downward, the rotating plate is positioned under the action of the gravity of the rotating plate, and the mounting efficiency of the wall is improved. Therefore, the stability of the wall body is further improved.
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Description

Technical Field

[0001] The present application relates to the technical field of prefabricated walls, and in particular to a prefabricated thermal insulation wall and a construction method thereof. Background Art

[0002] In recent years, prefabricated insulation walls have developed rapidly in my country. This type of prefabricated insulation wall is a method of prefabricating in a workshop and then assembling on site.

[0003] In the prior art, thermal insulation walls are generally bonded to the wall surface by glue, but it takes a long time to apply the glue, and the glue is easy to fall off after it expires, which reduces the installation efficiency and stability of the wall. At the same time, if the thermal insulation wall is fixed by glue, it is also troublesome to replace it if it is damaged. Summary of the Invention

[0004] In order to improve the installation efficiency and stability of the wall and facilitate replacement when the wall is damaged, the present application provides an assembled thermal insulation wall and a construction method thereof.

[0005] In the first aspect, the present application provides an assembled thermal insulation wall, which adopts the following technical solution: An assembled thermal insulation wall comprises a plurality of thermal insulation wall blocks detachably mounted on a wall surface via a connecting device, wherein the connecting device comprises: A plurality of mounting plates are arranged on the wall and cooperate with the wall to form a mounting cavity; A plurality of rotating plates are rotatably mounted on the insulation wall via a rotating shaft, with the rotating shaft being located at one end of the rotating plate; a receiving groove is provided on the side wall of the insulation wall facing away from the mounting plate, and the rotating shaft extends into the receiving groove; The driving assembly is used to drive the rotating shaft to rotate and is located in the accommodating groove, so that the rotating plate is rotated vertically downward and is snap-fitted and installed on the installation chamber for positioning. At the same time, the rotating shaft is placed on the installation plate for positioning and is used to achieve the fixed installation of the insulation wall on the wall; or, the rotating plate is rotated to the outside of the installation chamber to facilitate the removal of the insulation wall.

[0006] By adopting the above technical solution, the insulation wall is close to multiple mounting plates, so that the rotating shaft abuts against the mounting plate and the rotating plate abuts against the wall for positioning, and the driving component drives the multiple rotating plates to rotate, so that the multiple rotating plates are snap-fitted and installed on the mounting chamber for positioning, thereby fixing the insulation wall to the wall; when replacement is required, the driving component drives the multiple rotating plates to rotate outside the mounting chamber, so that the insulation wall can be removed for replacement.

[0007] The thermal insulation wall can be fixed and disassembled by cooperating with multiple mounting plates and drive components, thereby improving the installation efficiency and stability of the wall and facilitating replacement when the wall is damaged. At the same time, when the rotating plate is rotated vertically downward, it is clamped and fixed with the installation chamber, so that the rotating plate is positioned under the action of its own gravity, thereby further improving the stability of the wall.

[0008] At the same time, the driving component is located in the receiving groove, so the surface of the insulation wall will not be changed, and the volume of the insulation wall is greatly reduced, thereby improving the convenience of transportation of the insulation wall.

[0009] Optionally, the driving component includes: A drive shaft, slidingly mounted on the rotating shaft; The driving member is arranged on the driving shaft, and the driving member moves to the outside of the receiving groove and is used to drive the driving shaft to rotate; or, the driving member is pushed to be clamped and installed in the receiving groove and is used to position the rotating plate.

[0010] By adopting the above technical solution, when the rotating plate needs to be rotated, the driving member is pulled to the outside of the accommodating groove, the driving member drives the driving shaft to rotate, and the driving shaft drives the rotating shaft and the rotating plate to rotate. After the rotation is completed, the driving member is pushed to be clamped and installed on the accommodating groove for positioning, so that the driving plate can be driven to rotate and the position of the rotating plate can be positioned, thereby improving the stability of the insulation wall. Moreover, the driving member is placed in the accommodating groove for transportation, so it will not change the surface of the insulation wall, and greatly reduces the volume of the insulation wall, thereby improving the convenience of transportation of the insulation wall.

[0011] Optionally, the driving member is provided with a driving hole for facilitating insertion of a driving hole to pull the driving member to move.

[0012] By adopting the above technical solution, the setting of the driving hole makes it easy to pull the driving member to the outside of the accommodating groove, and then drive the driving member and the driving shaft to rotate, thereby greatly improving the convenience of driving the rotating plate and improving the wall installation efficiency.

[0013] Optionally, a bearing groove is provided on the side wall of the insulation wall close to the mounting plate, and a bearing plate is rotatably installed on the bearing groove. When the insulation wall is transported, the bearing plate is snap-fitted and installed in the bearing groove for storage, or the bearing plate is rotated to a horizontal state and rests against the bearing groove for positioning and rests against the lower surface of the mounting plate for positioning.

[0014] By adopting the above technical solution, the force acting on the thermal insulation wall is concentrated on the abutment point between the rotating shaft and the mounting plate, which makes the rotating shaft easily damaged, thereby reducing the stability of the thermal insulation wall after installation.

[0015] During transportation, the supporting plate is snap-fitted and installed in the supporting groove for storage, thereby improving the convenience of transporting the insulation wall. When the insulation wall needs to be installed on the wall, the supporting plate is turned to a horizontal state and rests against the supporting groove for positioning. After the insulation wall is fixedly installed on the wall, the supporting plate is supported on the lower surface of the installation plate for positioning, so that the supporting plate can cooperate with the rotating shaft to support and position the insulation wall, thereby improving the stability of the insulation wall after installation.

[0016] Optionally, a mounting hole is opened on the thermal insulation wall, a mounting seat is provided on the mounting hole, and the rotating shaft and the driving assembly are arranged on the mounting seat for positioning.

[0017] By adopting the above technical solution, in order to achieve the insulation effect, the material of the insulation wall is generally softer. Therefore, if the rotating shaft and the drive assembly are located on the insulation wall, the material of the insulation wall will correspondingly reduce the stability when connected to the wall.

[0018] The rotating shaft and the driving assembly are set on the mounting base. The material of the mounting base can be selected to be a material that is better than the material of the thermal insulation wall. Then the mounting base is fixedly installed on the mounting hole, thereby improving the stability during wall installation.

[0019] Optionally, the plurality of rotating shafts are interconnected via a linkage assembly, and the linkage assembly is located on a side of the mounting plate close to the insulation wall and is used to enable the plurality of rotating shafts to rotate simultaneously.

[0020] By adopting the above technical solution, multiple rotating shafts are interconnected through a linkage component, so only one driving component needs to be set up to realize the driving of multiple rotating shafts, thereby further greatly improving the convenience during operation and improving the wall installation efficiency; and by connecting multiple rotating shafts into a whole through the linkage component, it is possible to integrate and disperse the forces of multiple rotating shafts, greatly improving the stability when the rotating shaft is connected to the mounting plate, and at the same time improving the wall installation efficiency and stability after installation.

[0021] Optionally, the linkage component includes: A plurality of linkage rods are respectively arranged on the plurality of rotating shafts; The linkage parts have two ends which are rotatably mounted on the ends of two adjacent linkage rods away from the rotating plate.

[0022] By adopting the above technical solution, the rotation of the rotating shaft drives the linkage rod to rotate, and the rotation of the linkage rod drives the two adjacent linkage rods to rotate through the linkage member, so that one rotating shaft drives multiple rotating shafts to rotate at the same time, thereby realizing that one rotating shaft drives multiple rotating plates to rotate, and at the same time, it can realize that multiple rotating shafts are connected as one, and the common force is supported, thereby improving the installation efficiency of the wall and the stability after installation.

[0023] Optionally, the mounting plate is provided with an arc-shaped positioning groove that engages with the rotating shaft for positioning.

[0024] By adopting the above technical solution, multiple rotating shafts are engaged with multiple positioning grooves for positioning, so that the insulation wall can be positioned in multiple directions, thereby improving the installation efficiency and stability of the wall.

[0025] Optionally, the driving component includes: A driving rod is provided on the rotating shaft and is located in the receiving groove; The driving block is arranged on the driving rod and is used for plugging and connecting the tool with the driving block after the tool is extended into the receiving groove.

[0026] By adopting the above technical solution, when the rotating shaft needs to be rotated, the tool is extended into the accommodating groove and plugged into the driving block. The tool rotates to drive the rotating shaft and the rotating plate to rotate. After the rotation is completed, the tool is separated from the driving block and removed. Therefore, the number of structures installed on the wall is greatly reduced, and the adverse effect of slots on the wall for placing driving components on the wall is reduced. In addition, the wall installation is achieved through a unified tool, which improves the strength of the wall itself and the installation efficiency.

[0027] In a second aspect, the present application provides a construction method, which adopts the following technical solution: A construction method comprises the following steps: Fixed mounting plates: Fix multiple mounting plates on the wall as needed; Installing the insulation wall: Move the insulation wall close to the mounting plate so that multiple rotating shafts rest against the mounting plate and the rotating plate rests against the wall for positioning. The driving assembly drives multiple rotating plates to be clamped and installed on the mounting chamber, thereby realizing the installation of a single insulation wall. Repeat the above steps to complete the installation of multiple insulation walls. At the same time, when dismantling is required, the driving assembly drives the multiple rotating plates to rotate to the outside of the mounting chamber, and then the insulation wall can be removed.

[0028] By adopting the above technical solution, multiple mounting plates are fixedly installed on the wall as needed, and the insulation wall is moved close to the mounting plate so that multiple rotating shafts rest on the mounting plate and the rotating plate rests on the wall for positioning. The driving component drives multiple rotating plates to be clamped and installed on the mounting chamber, thereby realizing the installation of a single insulation wall. The above steps are repeated to complete the installation of multiple insulation walls. At the same time, when removal is required, the driving component drives the multiple rotating plates to rotate to the outside of the installation chamber, and then the insulation wall can be removed, thereby improving the wall installation efficiency and stability and facilitating the replacement of the wall.

[0029] In summary, this application includes at least one of the following beneficial technical effects: 1. The thermal insulation wall can be fixed and disassembled by cooperating with multiple mounting plates and drive components, thereby improving the installation efficiency and stability of the wall and facilitating replacement when the wall is damaged. At the same time, when the rotating plate is rotated vertically downward, it is fixed to the installation chamber, so that the rotating plate is positioned under the action of its own gravity, thereby further improving the stability of the wall.

[0030] 2. The load-bearing plate is installed in the load-bearing groove by being clipped in, so it is easy to transport. When installing the insulation wall, the load-bearing plate is turned to a horizontal state and rests against the load-bearing groove for positioning. After the insulation wall is fixedly installed on the wall, the load-bearing plate is supported on the lower surface of the installation plate for positioning, so that the load-bearing plate can cooperate with the rotating shaft to support and position the insulation wall, thereby improving the stability of the insulation wall after installation.

[0031] 3. Multiple rotating shafts are connected by linkage components, so only one driving component is required to drive multiple rotating shafts, thereby improving the wall installation efficiency; and multiple rotating shafts are connected into a whole by linkage components, so that the forces on multiple rotating shafts can be integrated and dispersed, greatly improving the stability when the rotating shaft is connected to the mounting plate, and at the same time improving the wall installation efficiency and stability after installation. BRIEF DESCRIPTION OF THE DRAWINGS

[0032] Figure 1 3D schematic diagram of the thermal insulation wall embodiment 1; Figure 2 yes Figure 1 A magnified schematic diagram of part A in the middle; Figure 3 This is a partial structural diagram of the thermal insulation wall embodiment 1, mainly showing the connection device and linkage components; Figure 4 A schematic diagram of the partial structure of the thermal insulation wall embodiment 1, mainly showing the linkage components and the bearing plate; Figure 5 It is a partial structural diagram of thermal insulation wall embodiment 2.

[0033] Figure numerals: 1. Insulation wall; 11. Mounting hole; 12. Mounting seat; 13. Load-bearing groove; 14. Load-bearing plate; 15. Accommodating groove; 16. Wall; 2. Connecting device; 21. Mounting plate; 22. Rotating plate; 23. Mounting chamber; 24. Positioning groove; 25. Clamping groove; 26. Rotating shaft; 3. Driving assembly; 31. Driving shaft; 32. Driving member; 33. Driving hole; 4. Linkage assembly; 41. Linkage rod; 42. Linkage member; 51. Driving rod; 52. Driving block. DETAILED DESCRIPTION

[0034] The present application is further described in detail below with reference to the accompanying drawings.

[0035] The embodiment of the present application discloses an assembled thermal insulation wall.

[0036] Example 1, with reference to Figure 1 The assembled thermal insulation wall 1 includes a plurality of thermal insulation wall blocks 1 detachably arranged on the wall surface 16 through a connecting device 2, and the plurality of thermal insulation wall blocks 1 are spliced against each other to form the entire wall.

[0037] Reference Figure 2 and Figure 3 The connecting device 2 includes multiple mounting plates 21, multiple rotating plates 22 and a driving assembly 3. The mounting plate 21 is fixedly mounted on the wall 16 and is in a vertical state. The mounting plate 21 cooperates with the wall 16 to form a mounting chamber 23; multiple mounting plates 21 are arranged at intervals in the vertical direction, or multiple mounting plates 21 are arranged at intervals in the horizontal direction, or multiple mounting plates 21 are arranged at intervals in the vertical and horizontal directions. The number of mounting plates 21 is designed according to needs, and multiple arc-shaped positioning grooves 24 are provided on the upper surface of the mounting plate 21 along the length direction of the mounting plate 21.

[0038] Reference Figure 2-Figure 4 , mounting holes 11 are provided on the insulation wall 1 and at the positioning grooves 24, and mounting seats 12 are fixedly installed at the mounting holes 11, which are flush with the two side walls opposite to the insulation wall 1, and multiple rotating plates 22 are arranged corresponding to the multiple mounting seats 12. The rotating plate 22 is rotatably mounted on the mounting seat 12 through the rotating shaft 26. The rotating shaft 26 is horizontal and perpendicular to the wall 16. The rotating shaft 26 is tightly positioned with the positioning groove 24. The setting of the mounting seat 12 is to improve the stability of the rotating shaft 26 during installation. The material strength of the mounting seat 12 is stronger than the material strength of the insulation wall 1; the length direction of the rotating plate 22 is perpendicular to the axis of the rotating shaft 26, one end of the rotating plate 22 is fixedly mounted on the rotating shaft 26, and the width of the rotating plate 22 is the same as the diameter of the rotating shaft 26; an accommodating groove 15 is provided on the side wall of the mounting seat 12 away from the wall 16.

[0039] The driving assembly 3 is used to drive the rotating shaft 26 to rotate and is located in the accommodating groove 15, so that the rotating plate 22 is rotated vertically downward and then clamped and installed on the installation chamber 23, and the rotating shaft 26 is placed on the positioning groove 24 for positioning, and is used to realize the fixed installation of the insulation wall 1 on the wall 16, or, to make the rotating plate 22 rotate to the outside of the installation chamber 23 and facilitate the removal of the insulation wall 1.

[0040] The thermal insulation wall 1 is placed close to the wall 16 so that the multiple rotating shafts 26 are placed on the multiple positioning grooves 24 for positioning, and the rotating plates 22 are placed against the wall 16 for positioning. The driving component 3 drives the multiple rotating shafts 26 to rotate, so that the multiple rotating plates 22 are rotated vertically downward, and the multiple rotating plates 22 are clamped and installed on the installation chamber 23 for positioning, thereby achieving the fixed installation of the thermal insulation wall 1 on the wall 16; when it needs to be removed, the driving component 3 starts to drive the multiple rotating plates 22 to rotate outside the installation chamber 23, so that the thermal insulation wall 1 can be removed.

[0041] Reference Figure 1-Figure 2 The accommodating groove 15 is arc-shaped, and the rotating shaft 26 extends coaxially into the accommodating groove 15; two clamping grooves 25 are provided in a circular array around the axis of the accommodating groove 15 on the side wall of the mounting seat 12 away from the rotating plate 22, and the two clamping grooves 25 are both connected to the accommodating groove 15 and the angle between the two is 180 degrees, one of the clamping grooves 25 is vertically downwardly arranged and the top end is connected to the accommodating groove 15, and the other clamping groove 25 is vertically upwardly arranged and the bottom end is connected to the accommodating groove 15.

[0042] Reference Figure 2-Figure 3 The driving assembly 3 includes a driving shaft 31 and a driving member 32. The driving shaft 31 is coaxially slidably mounted on one end of the rotating shaft 26 located in the accommodating groove 15, and the driving shaft 31 rotates simultaneously with the rotating shaft 26; one end of the driving member 32 is fixedly mounted on the driving shaft 31 and is used to drive the driving shaft 31 to rotate. The length directions of the driving member 32 and the rotating plate 22 are parallel. When the rotating plate 22 is vertically downwardly clamped and mounted on the mounting chamber 23, the driving member 32 is clamped and mounted on the vertically downward clamping groove 25 for positioning; when the rotating plate 22 is rotated to the outside of the mounting chamber 23, the driving member 32 is clamped and mounted on the vertically upward clamping groove 25 for positioning; a driving hole 33 is opened on the driving member 32 for a tool or a hand to reach in to drive the driving member 32 to move.

[0043] When it is necessary to drive the rotating plate 22 to rotate, the driving member 32 and the driving shaft 31 are pulled to move through the driving hole 33, so that the driving member 32 moves to the outside of the clamping groove 25, and the driving member 32 rotates to drive the driving shaft 31, the rotating shaft 26 and the rotating plate 22 to rotate. After the driving is completed, the driving member 32 and the driving shaft 31 are pushed back, so that the driving member 32 is clamped and installed on the clamping groove 25 for positioning, thereby improving the convenience during the driving process and the stability of the rotating plate 22 when connected, and improving the assembly efficiency and stability of the insulation wall 1.

[0044] Reference Figure 3-Figure 4The support 14 is supported on the bottom of the support 13 so that the support 14 can be lifted up and down, thereby facilitating the transportation of the support 1. At the same time, there is a certain gap between the top of the support plate 14 and the support groove 13, which makes it easy to rotate the support plate 14 to the outside of the support groove 13.

[0045] Reference Figure 2-Figure 3 , among the multiple rotating shafts 26 located on the same insulation wall 1 and on the same horizontal plane, only one rotating shaft 26 needs to be provided with a driving component 3, and the clamping groove 25 is also provided with only one accommodating groove 15. The multiple rotating shafts 26 on the same horizontal plane are connected by a linkage component 4, so that the rotation of one rotating shaft 26 can drive multiple rotating plates 22 to rotate at the same time, thereby improving the assembly efficiency. At the same time, the linkage component 4 is located between the mounting plate 21 and the insulation wall 1.

[0046] Reference Figure 3-Figure 4 The linkage assembly 4 includes multiple linkage rods 41 and linkage parts 42. Multiple linkage rods 41 are fixedly installed on the rotating shaft 26, and the linkage rods 41 and the rotating plate 22 have the same length direction. The linkage rods 41 and the rotating plate 22 extend to both sides of the rotating shaft 26 respectively; the two ends of the linkage part 42 are rotatably installed on two adjacent linkage rods 41, thereby realizing the simultaneous rotation of multiple rotating shafts 26.

[0047] The working principle of the embodiment of this application is as follows: The heat preservation wall 1 is brought close to the wall 16 so that the multiple rotating shafts 26 are mounted on the multiple positioning grooves 24 and the rotating plate 22 is against the wall 16. The driving member 32 is pulled to the outside of the clamping groove 25 through the driving hole 33. The driving member 32 drives the multiple rotating plates 22 to rotate, so that the multiple rotating plates 22 are rotated vertically downward, and the multiple rotating plates 22 are clamped and installed on the installation chamber 23 for positioning, thereby achieving the heat preservation wall 1 fixedly installed on the wall 16, and then the driving member 32 is pushed to be clamped and installed on the clamping groove 25 for positioning, thereby improving the assembly efficiency and stability of the heat preservation wall 1; when it needs to be removed, the driving member 32 starts to drive the multiple rotating plates 22 to rotate outside the installation chamber 23, so that the heat preservation wall 1 can be removed, which is convenient for replacement when the heat preservation wall 1 is damaged.

[0048] Example 2, reference Figure 2 、 Figure 3 and Figure 5 The difference between this embodiment and embodiment 1 is that there is no need to provide a clamping groove 25 on the mounting seat 12; the driving assembly 3 includes a driving rod 51 and a driving block 52, the driving rod 51 is coaxially arranged on one end of the rotating shaft 26 located in the receiving groove 15, and the driving block 52 is fixedly mounted on the driving rod 51, and the driving block 52 is a regular hexagonal structure. The driving block 52 is used for the tool to extend into the receiving groove 15 and be plugged into it. The rotation of the tool is used to drive the rotating shaft 26 and the rotating plate 22 to rotate.

[0049] The working principle of the embodiment of this application is as follows: Use a tool to extend into the accommodating groove 15 and the clamping sleeve is set on the driving block 52. The tool rotates to drive the driving rod 51 and the rotating shaft 26. After the rotation is completed, the tool can be removed, thereby reducing the volume of the groove body on the mounting seat 12 and improving the stability of the insulation wall 1.

[0050] The embodiment of the present application discloses a construction method.

[0051] Reference Figure 1-Figure 3 , the construction method comprises the following steps: Fixed mounting plates 21: multiple mounting plates 21 are fixedly mounted on the wall 16 as needed; Install the insulation wall 1: Move the insulation wall 1 close to the installation plate 21, so that the multiple rotating shafts 26 rest on the multiple positioning grooves 24 and the rotating plate 22 rests on the wall 16 for positioning, and the driving component 3 drives the multiple rotating plates 22 to be clamped and installed on the installation chamber 23, thereby realizing the installation of a single insulation wall 1. Repeat the above steps to complete the installation of multiple insulation walls 1. At the same time, when dismantling is required, the driving component 3 drives the multiple rotating plates 22 to rotate to the outside of the installation chamber 23, and then the insulation wall 1 can be removed.

[0052] The working principle of the embodiment of this application is as follows: As needed, multiple mounting plates 21 are fixedly installed on the wall 16, and the insulation wall 1 is moved close to the mounting plate 21, so that the multiple rotating shafts 26 rest on the multiple positioning grooves 24 and the rotating plate 22 rests on the wall 16 for positioning, and the driving component 3 drives the multiple rotating plates 22 to be clamped and installed on the mounting chamber 23, thereby realizing the installation of a single insulation wall 1. Repeat the above steps to complete the installation of multiple insulation walls 1. At the same time, the driving component 3 drives the multiple rotating plates 22 to rotate to the outside of the mounting chamber 23, and the insulation wall 1 can be removed, which improves the assembly efficiency and stability of the insulation wall 1 and is convenient for replacement when the insulation wall 1 is damaged.

[0053] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.

Claims

1. An assembled thermal insulation wall, characterized by: It comprises a plurality of thermal insulation wall bodies (1) detachably arranged on a wall surface (16) via a connecting device (2), wherein the connecting device (2) comprises: A plurality of mounting plates (21) are arranged on the wall surface (16) and cooperate with the wall surface (16) to form a mounting chamber (23); A plurality of rotating plates (22) are rotatably mounted on the heat-insulating wall (1) via a rotating shaft (26) such that the rotating shaft (26) is located at one end of the rotating plate (22); a receiving groove (15) is provided on a side wall of the heat-insulating wall (1) facing away from the mounting plate (21); and the rotating shaft (26) extends into the receiving groove (15); A driving assembly (3) is used to drive the rotating shaft (26) to rotate and is located in the receiving groove (15), so that the rotating plate (22) rotates vertically downward and is snap-fitted and installed on the installation chamber (23) for positioning, and at the same time, the rotating shaft (26) is placed on the installation plate (21) for positioning and is used to achieve the fixed installation of the insulation wall (1) on the wall surface (16); or, the rotating plate (22) is rotated to the outside of the installation chamber (23) and is convenient for removing the insulation wall (1).

2. The assembled thermal insulation wall according to claim 1, characterized in that: The driving assembly (3) comprises: A drive shaft (31) is slidably mounted on the rotating shaft (26); A driving member (32) is provided on the driving shaft (31), and the driving member (32) is moved to the outside of the receiving groove (15) and is used to drive the driving shaft (31) to rotate; or, the driving member (32) is pushed to be snap-fitted into the receiving groove (15) and is used to position the rotating plate (22).

3. The assembled thermal insulation wall according to claim 2, characterized in that: The driving member (32) is provided with a driving hole (33) for facilitating insertion and pulling of the driving member (32).

4. The assembled thermal insulation wall according to claim 1, characterized in that: A bearing groove (13) is provided on the side wall of the thermal insulation wall (1) close to the mounting plate (21), and a bearing plate (14) is rotatably mounted on the bearing groove (13). When the thermal insulation wall (1) is transported, the bearing plate (14) is snap-fitted and mounted in the bearing groove (13) for storage, or the bearing plate (14) is rotated to a horizontal state and rests on the bearing groove (13) for positioning and rests on the lower surface of the mounting plate (21) for positioning.

5. The assembled thermal insulation wall according to claim 1, characterized in that: The thermal insulation wall (1) is provided with a mounting hole (11), a mounting seat (12) is provided on the mounting hole (11), and the rotating shaft (26) and the driving assembly (3) are arranged on the mounting seat (12) for positioning.

6. The assembled thermal insulation wall according to claim 1, characterized in that: The plurality of rotating shafts (26) are interconnected via a linkage assembly (4); the linkage assembly (4) is located on a side of the mounting plate (21) close to the thermal insulation wall (1) and is used to achieve simultaneous rotation of the plurality of rotating shafts (26).

7. The assembled thermal insulation wall according to claim 6, characterized in that: The linkage component (4) comprises: A plurality of linkage rods (41) are respectively arranged on the plurality of rotating shafts (26); The linkage member (42) has two ends which are rotatably mounted on one end of two adjacent linkage rods (41) away from the rotating plate (22).

8. The assembled thermal insulation wall according to claim 1, characterized in that: The mounting plate (21) is provided with an arc-shaped positioning groove (24) which is engaged with the rotating shaft (26) for positioning.

9. The assembled thermal insulation wall according to claim 1, characterized in that: The driving assembly (3) comprises: A driving rod (51) is disposed on the rotating shaft (26) and is located in the receiving groove (15); The driving block (52) is arranged on the driving rod (51) and is used for the tool to be plugged and connected to the driving block (52) after the tool extends into the receiving groove (15).

10. A construction method for installing the thermal insulation wall according to any one of claims 1 to 9, characterized in that: The following steps are involved: Fixed mounting plate (21): multiple mounting plates (21) are fixedly mounted on the wall (16) as needed; Installing the thermal insulation wall (1): Move the thermal insulation wall (1) close to the installation plate (21) so that the multiple rotating shafts (26) are against the installation plate (21) and the rotating plate (22) is against the wall surface (16) for positioning. The driving component (3) drives the multiple rotating plates (22) to be clamped and installed on the installation chamber (23), thereby realizing the installation of a single thermal insulation wall (1). Repeat the above steps to complete the installation of multiple thermal insulation walls (1). At the same time, when removal is required, the driving component (3) drives the multiple rotating plates (22) to rotate to the outside of the installation chamber (23), and then the thermal insulation wall (1) can be removed.