Outer supporting structure of composite insulation board
Through the composite structure of embedded bolts, sliding rods and mounting brackets, constant force pressing of the insulation board is achieved, solving the problems of poor bond stability and low efficiency caused by inconsistent manual pressing pressure of construction personnel, and achieving a win-win situation of stability and efficiency.
Patent Information
- Application Number
- CN202422630965.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-29
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2034-10-29
AI Technical Summary
In the prior art, the pressure and duration of the insulation board are inconsistent during the bonding process of the construction personnel, resulting in poor bonding stability and affecting construction efficiency.
The composite structure of embedded bolts, sliding rods, fixed feet and mounting brackets is adopted. The sliding rods and mounting brackets drive the pressing roller to roll and press the insulation board to ensure constant pressure, and adjust the pressing pressure degree through the locking nuts and adjustment screws, so as to achieve no need for manual maintenance.
While not affecting the construction efficiency, it ensures the stability and consistency of the bonding of the insulation board, frees the hands of the construction personnel and improves the construction efficiency.
Smart Images

Figure CN223269400U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of insulation board construction equipment, and in particular to an external support structure of a composite insulation board. Background Art
[0002] Exterior wall insulation panels are panels specifically designed for building wall insulation. Typically made from insulating materials, they offer excellent thermal and fire-resistant properties. They effectively reduce energy transmission and loss, improving a building's energy efficiency while also enhancing its fire safety. Widely used in exterior wall insulation projects across various buildings, exterior wall insulation panels are a crucial component of modern building energy-saving technology.
[0003] In the prior art, there are many ways to fix the insulation board to the exterior wall of the building. The common methods are as follows. The first is to pre-set corresponding matching installation structures on the exterior wall of the building and the insulation board, and then fix them through the installation structure. This fixing method has high operational requirements for construction workers and the cost will be relatively high. Therefore, the insulation board is often fixed by adhesive bonding. The adhesive is applied to the wall or the insulation board, and then the insulation board is pressed onto the wall to achieve the fixation of the insulation board. This method is simple to operate and has low cost. However, in the process of applying the adhesive to the insulation board and pressing it onto the wall, the construction workers need to manually press for a period of time to ensure that the adhesive is basically cured. However, the pressing force and time used by the construction workers when pressing the front and rear insulation boards are likely to be different, which not only leads to poor bonding stability of the insulation board, but also affects the construction efficiency of the insulation board. Utility Model Content
[0004] In order to ensure the stability of the insulation board bonding without affecting the construction efficiency of the insulation board, the present application provides an external support structure for a composite insulation board.
[0005] The composite insulation board external support structure provided in this application adopts the following technical solution:
[0006] A composite insulation board external support structure, comprising
[0007] A plurality of embedded bolts, wherein the embedded bolts are connected to the wall and extend out of the wall;
[0008] A sliding rod, wherein both ends of the sliding rod are connected to fixed legs, and the fixed legs are detachably fixedly connected to the extended sections of the embedded bolts;
[0009] At least one mounting bracket is slidably connected to the sliding rod, and at least one pressing roller is connected to the mounting bracket, and the pressing roller is rollingly connected to the side of the insulation board away from the wall.
[0010] By adopting the above technical solution, before installing the insulation board, the sliding rod is first fixed by the fixed support leg so that the fixed support leg is kept parallel to the wall, and then the insulation board is bonded. After one insulation board is bonded, force is applied to the installation bracket, and the installation bracket slides horizontally along the sliding rod while driving the pressing roller to move, so that the pressing roller rolls and presses on the insulation board. Since the position of the sliding rod is fixed, the pressing force applied by the pressing roller to the insulation board remains unchanged; the designed composite insulation board external support structure can provide a fixing point for the fixed support leg through embedded bolts, and the fixed support leg can cooperate with the embedded bolts to fix the position of the sliding rod, and the installation bracket can slide in the horizontal direction while driving the pressing roller to roll, completing the fixing force pressing of the insulation board, and does not require manual maintenance by the construction workers, freeing up the hands of the construction workers, and ensuring the stability of the insulation board bonding without affecting the construction efficiency of the insulation board.
[0011] In a specific embodiment, the fixed legs include
[0012] An inserting cylinder, the inserting cylinder is rotatably connected to the sliding rod, the rotation axis of the inserting cylinder is vertically arranged, and the inserting cylinder is arranged away from the opening at one end of the sliding rod;
[0013] A locking nut is rotatably connected to the inserting cylinder and is threadably connected to the embedded bolt.
[0014] By adopting the above technical solution, the designed fixed support leg can achieve a detachable fixed connection with the embedded bolt through the plug-in tube and the locking nut, and the distance between the sliding rod and the wall can be adjusted by adjusting the engagement depth of the locking nut and the embedded screw, thereby ensuring that the pressing force applied by the pressing roller on the insulation board remains basically consistent.
[0015] In a specific possible implementation scheme, a twisting sleeve is provided on the plug-in cylinder, and an annular groove is provided on the plug-in cylinder for the necking section of the twisting sleeve to extend into, a rotation gap is left between the twisting sleeve and the plug-in cylinder, and the twisting sleeve is connected to the locking nut at one end away from the sliding rod.
[0016] By adopting the above technical solution, the designed twisting sleeve can facilitate the operator to twist the locking nut while realizing the rotation of the locking nut.
[0017] In a specific embodiment, the twist sleeve is integrally formed with friction patterns.
[0018] By adopting the above technical solution, it is convenient for an operator to apply force to the twisting sleeve.
[0019] In a specific embodiment, the sliding rod is hollow.
[0020] By adopting the above technical solution, the sliding rod with a hollow design can reduce the weight of the sliding rod.
[0021] In a specific embodiment, the sliding rod includes
[0022] A plurality of splicing segments, wherein the plurality of splicing segments are coaxially arranged, and the fixed legs are rotatably connected to the splicing segments;
[0023] At least one connecting segment, both ends of which are respectively threadedly connected to two adjacent splicing segments, and the connecting segment extends into the inner cavity of the splicing segment.
[0024] By adopting the above technical solution, the designed spliced sliding rod can be easy for operators to carry and install, and the overall length of the sliding rod can be changed by changing the length of the connecting section extending into the splicing section to match embedded bolts with different spacings.
[0025] In a specific embodiment, the mounting bracket includes
[0026] a sliding bar, the sliding bar being slidably connected to the sliding rod;
[0027] A mounting frame, wherein the mounting frame is rotatably connected to the pressing roller, the mounting frame is slidably connected to the sliding bar, and the sliding direction of the mounting frame is perpendicular to the wall;
[0028] An adjusting screw is threadedly connected to the mounting bracket and is rotationally connected to the sliding bar, and an axial direction of the adjusting screw is consistent with a sliding direction of the mounting bracket.
[0029] By adopting the above technical solution, the designed mounting bracket can adjust the distance between the pressing roller and the wall by twisting the adjusting screw, thereby changing the size of the pressing force applied to the insulation board.
[0030] In a specific embodiment, the pressing roller is hollow.
[0031] By adopting the above technical solution, the hollow pressing roller is designed to reduce the weight of the pressing roller.
[0032] In summary, this application includes at least one of the following beneficial technical effects:
[0033] 1. The designed external support structure of the composite insulation board can provide fixing points for the fixed legs through embedded bolts. The fixed legs can cooperate with the embedded bolts to fix the position of the sliding rod. The mounting bracket can slide in the horizontal direction while driving the pressing roller to roll, completing the fixing force pressing of the insulation board. There is no need for manual maintenance by the construction workers, which frees up the hands of the construction workers and ensures the stability of the insulation board bonding without affecting the construction efficiency of the insulation board.
[0034] 2. The designed external support structure of the composite insulation board can achieve a detachable fixed connection with the embedded bolts through the plug-in tube and the locking nut. The distance between the sliding rod and the wall can also be adjusted by adjusting the bite depth of the locking nut and the embedded screw, thereby ensuring that the pressing force applied by the pressing roller on the insulation board remains basically consistent.
[0035] 3. The designed external support structure of the composite insulation board can be easily carried and installed by operators through the spliced sliding rods. The overall length of the sliding rod can also be changed by changing the length of the connecting section extending into the splicing section to match the embedded bolts with different spacing. BRIEF DESCRIPTION OF THE DRAWINGS
[0036] Figure 1 It is a structural schematic diagram of the external support structure of the composite insulation board in an embodiment of the present application.
[0037] Figure 2 yes Figure 1 sectional view of .
[0038] Figure 3 yes Figure 2 Schematic diagram of part of the structure.
[0039] Figure 4 yes Figure 3 Enlarged view of part A in the middle.
[0040] Explanation of the accompanying symbols: 01, wall; 1, embedded bolt; 2, sliding rod; 21, splicing section; 22, connecting section; 3, fixed support leg; 31, plug-in cylinder; 32, locking nut; 33, twisting sleeve; 4, mounting bracket; 41, sliding bar; 42, mounting frame; 43, adjusting screw; 5, pressing roller. DETAILED DESCRIPTION
[0041] The following is combined with Figure 1-4 This application is described in further detail.
[0042] An embodiment of the present application discloses an external support structure for a composite thermal insulation board.
[0043] Reference Figure 1A composite insulation board external support structure includes embedded bolts 1, fixed legs 3 and sliding rods 2. There are multiple embedded bolts 1, and the embedded bolts 1 are embedded in the wall 01 when the wall 01 is poured. The axial direction of the embedded bolts 1 is perpendicular to the wall 01 and is arranged horizontally. Multiple embedded bolts 1 at the same horizontal height are grouped as a group, and multiple groups of embedded bolts 1 are distributed along the height direction. One end of the fixed leg 3 is detachably fixedly connected to the protruding section of the embedded bolt 1 extending out of the wall 01, and the other end is rotatably connected to the sliding rod 2, and the rotation axis of the sliding rod 2 is vertically arranged.
[0044] Reference Figure 1 In order to achieve constant force pressing of the insulation board and free the hands of the construction workers to improve the construction efficiency of the insulation board, the external support structure of the composite insulation board also includes at least one mounting bracket 4 and at least one pressing roller 5. The mounting bracket 4 is slidably connected to the sliding rod 2, and the mounting bracket 4 is rotatably connected to the pressing roller 5. The rotation axis of the pressing roller 5 is vertically arranged. After the insulation board is bonded, the mounting bracket 4 is driven to slide along the long side direction of the sliding rod 2, thereby driving the pressing roller 5 to press the insulation board.
[0045] Reference Figure 2 Specifically, the fixed support leg 3 includes an inserting cylinder 31 and a locking nut 32. One end of the inserting cylinder 31 is rotatably connected to the sliding rod 2. The rotation axis of the inserting cylinder 31 is vertically arranged, and the end of the inserting cylinder 31 away from the sliding rod 2 is opened for the insertion of the protruding section of the embedded bolt 1. The locking nut 32 is rotatably connected to the inserting cylinder 31, and the locking nut 32 can be threadedly connected to the protruding section of the embedded bolt 1. By rotating the locking nut 32, the inserting cylinder 31 can be moved toward the side of the wall 01 and sleeved on the outside of the embedded bolt 1.
[0046] Reference Figure 2 and Figure 3 The cam 33 is screwed to the locking nut 32 to prevent the locking nut 32 from rotating. The cam 33 is screwed to the locking nut 32 to prevent the locking nut 32 from rotating.
[0047] Reference Figure 3In order to reduce the deadweight of the external support structure, the sliding rod 2 and the pressing roller 5 are both hollow. In addition, the sliding rod 2 specifically includes a plurality of splicing sections 21 and at least one connecting section 22. The plurality of splicing sections 21 are coaxially arranged, and the plug-in tube 31 is rotatably connected to the splicing section 21 at the end. The two ends of the connecting section 22 are respectively threadedly connected to the two adjacent splicing sections 21, and the connecting section 22 extends into the inner cavity of the splicing section 21. The two sides of the connecting section 22 are respectively formed into a positive thread and a negative thread. The connection of the two splicing sections 21 can be achieved by twisting the connecting section 22 without interfering with the sliding of the mounting bracket 4. At the same time, the overall length of the sliding rod 2 can be changed by changing the length of the connecting section 22 extending into the splicing section 21 to match the embedded bolts 1 with different spacings.
[0048] Reference Figure 4 The mounting bracket 4 includes a sliding bar 41, a mounting bracket 42 and an adjusting screw 43. The sliding bar 41 is slidably connected to the sliding rod 2, the mounting bracket 42 is rotatably connected to the pressing roller 5, and the mounting bracket 42 is slidably connected to the sliding bar 41. The sliding direction of the mounting bracket 42 is perpendicular to the wall 01. The adjusting screw 43 is threadedly connected to the mounting bracket 42, and the adjusting screw 43 passes through the mounting bracket 42 and is rotatably connected to the sliding bar 41. The axial direction of the adjusting screw 43 is consistent with the sliding direction of the mounting bracket 42. The distance between the pressing roller 5 and the wall 01 is adjusted by twisting the adjusting screw 43, thereby changing the size of the pressing force applied to the insulation board.
[0049] After the jack is fixed on the wall 01, the jack is pressed on the wall 02 and the fixing plate 2 is fixed on the wall 03. The fixing plate 2 is fixed on the wall 01 and the fixing plate 2 is fixed on the wall 02. The fixing plate 2 is fixed on the wall 02 and the fixing plate 2 is fixed on the wall 03.
[0050] 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. A composite insulation board external support structure, characterized by: include A plurality of embedded bolts (1), wherein the embedded bolts (1) are connected to the wall (01) and extend out of the wall (01); A sliding rod (2), both ends of the sliding rod (2) are connected to fixed legs (3), and the fixed legs (3) are detachably fixedly connected to the extended section of the embedded bolt (1); At least one mounting bracket (4), the mounting bracket (4) is slidably connected to the sliding rod (2), and at least one pressing roller (5) is rotatably connected to the mounting bracket (4), and the pressing roller (5) is rollingly connected to the side of the insulation board away from the wall (01).
2. The composite insulation board external support structure according to claim 1, characterized in that: The fixed support leg (3) comprises A plug-in cylinder (31), the plug-in cylinder (31) is rotatably connected to the sliding rod (2), the rotation axis of the plug-in cylinder (31) is vertically arranged, and the plug-in cylinder (31) is opened at one end away from the sliding rod (2); A locking nut (32) is rotatably connected to the plug-in cylinder (31), and the locking nut (32) is threadedly connected to the embedded bolt (1).
3. The composite insulation board external support structure according to claim 2, characterized in that: The plug-in cylinder (31) is provided with a twisting sleeve (33), and the plug-in cylinder (31) is provided with an annular groove for the shrinking section of the twisting sleeve (33) to extend into, a rotation gap is left between the twisting sleeve (33) and the plug-in cylinder (31), and the end of the twisting sleeve (33) away from the sliding rod (2) is connected to the locking nut (32).
4. The composite insulation board external support structure according to claim 3, characterized in that: The twisting sleeve (33) is integrally formed with friction lines.
5. The composite insulation board external support structure according to claim 1, characterized in that: The sliding rod (2) is hollow.
6. The composite insulation board external support structure according to claim 5, characterized in that: The sliding rod (2) comprises A plurality of splicing sections (21), wherein the plurality of splicing sections (21) are coaxially arranged, and the fixed legs (3) are rotatably connected to the splicing sections (21); At least one connecting section (22), both ends of the connecting section (22) are respectively threadedly connected to two adjacent splicing sections (21), and the connecting section (22) extends into the inner cavity of the splicing section (21).
7. The composite insulation board external support structure according to claim 1, characterized in that: The mounting bracket (4) comprises A sliding bar (41), the sliding bar (41) is slidably connected to the sliding rod (2); A mounting frame (42), wherein the mounting frame (42) is rotatably connected to the pressing roller (5), the mounting frame (42) is slidably connected to the sliding bar (41), and the sliding direction of the mounting frame (42) is perpendicular to the wall (01); An adjusting screw (43) is threadedly connected to the mounting frame (42), and the adjusting screw (43) is rotationally connected to the sliding bar (41), and the axial direction of the adjusting screw (43) is consistent with the sliding direction of the mounting frame (42).
8. The composite insulation board external support structure according to claim 7, characterized in that: The pressing roller (5) is hollow.