A green energy-saving external wall insulation board
By setting up placement boxes, splicing components, sealing components and driving components on the exterior wall insulation board, the problem of inconvenience of exterior wall insulation boards is solved, the installation stability is enhanced and moisture-proof is effectively waterproof and moisture-proof.
Patent Information
- Application Number
- CN202411762651.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-03
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2044-12-03
AI Technical Summary
The existing exterior wall insulation board is inconvenient to fix between adjacent boards, resulting in reduced installation stability and easy gaps, affecting the thermal insulation and waterproofing and moisture-proofing effects.
A green energy-saving exterior wall insulation board is designed, and fixed splicing and sealing of adjacent insulation boards is achieved by setting a placement box, splicing components, sealing components and driving components on the insulation board.
It enhances the installation stability of the insulation board and is effectively waterproof and moisture-proof, solves the gap problem and improves the insulation effect.
Smart Images

Figure CN119243950B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of insulation boards, and particularly to a green energy-saving exterior wall insulation board. Background Art
[0002] The green energy-saving exterior wall insulation board is a building material designed to improve the energy efficiency and environmental friendliness of buildings. The background of this technology stems from the increasing global demand for sustainable buildings. Traditional insulation materials often have problems such as high energy consumption and serious pollution. The green energy-saving exterior wall insulation board uses high-quality environmentally friendly materials such as recycled polystyrene and polyurethane, and has good thermal insulation performance, which can effectively reduce building heat loss, thereby reducing air conditioning and heating energy consumption. In addition, the production process of this material is usually cleaner, which helps to reduce the carbon footprint. When constructing a building, the insulation board is installed on the exterior wall.
[0003] At present, although the exterior wall insulation board can be disassembled and replaced, it is inconvenient to fix the adjacent insulation boards, thereby reducing the stability of the insulation board installation. Moreover, there are easily gaps between the insulation boards, which further affects the heat insulation and waterproof and moisture-proof effects of the insulation board. Summary of the Invention
[0004] Aiming at the deficiencies of the prior art, the present invention provides a green energy-saving exterior wall insulation board, which solves the problems that it is inconvenient to fix the adjacent insulation boards, thereby reducing the stability of the insulation board installation, and there are easily gaps between the insulation boards, which further affects the heat insulation and waterproof and moisture-proof effects of the insulation board.
[0005] To achieve the above objectives, the present invention is realized through the following technical solutions: A green energy-saving exterior wall insulation board includes a mounting frame fixed on the exterior wall, an insulation board mounted on the mounting frame, and a decorative board mounted on the insulation board. It further includes: a placement box fixed on the insulation board, the placement box is recessed on the side of the insulation board, and an installation component is arranged inside the placement box, and the installation component is used to install the insulation board on the mounting frame; a splicing component and a sealing component arranged in the placement box, the splicing component is used to splice the adjacent two insulation boards, and the sealing component is used to seal the adjacent two insulation boards; a driving component inserted into the placement box, the driving component can move up and down in the placement box. When the driving component is in the high position, it is used to drive the splicing component and the sealing component to be inserted into an adjacent insulation board. When the driving component is in the low position, it is used to drive the installation component to be inserted into the mounting frame; a connecting block arranged on the side of the insulation board at the corner, and the connecting block is used to connect the two insulation boards at the corner transition.
[0006] Further, the installation component includes an installation gear ring, an installation rack, and a hook. The installation gear ring is arranged at the bottom of the placement box through a bearing bracket. The installation rack is slidably arranged on the inner side wall of the placement box through a collar. The hook is fixedly arranged at one end of the installation rack away from the installation gear ring. The hook is arranged in an L shape. There are two installation racks, and the two installation racks are respectively arranged on both sides of the installation gear ring. The two installation racks are arranged in a mirror image. An installation groove is formed on the surface of the installation frame. The installation groove is formed in an L shape. The hook is inserted into the installation groove. A locking component for locking the installation gear ring is arranged at the bottom of the installation gear ring.
[0007] Further, the splicing component includes a rotating gear, a semi-tooth ring, a connecting rod, and a splicing rod. The rotating gear is connected to the bearing bracket and arranged inside the placement box. The semi-tooth ring is arranged inside the placement box through a fixing bracket. The semi-tooth ring meshes with one side of the rotating gear. One end of the connecting rod is fixedly arranged on the side surface of the semi-tooth ring. The splicing rod and the other end of the connecting rod are integrally formed into a V shape. The splicing rod is arranged in an arc shape with the center point of the semi-tooth ring as the center of the circle. The splicing rod penetrates through the placement box. An arc groove is formed on the side of the heat preservation board away from the placement box. The splicing rod on one heat preservation board is inserted into the arc groove on the other heat preservation board in a matching manner.
[0008] Further, a clamping block is fixedly arranged at one end of the splicing rod away from the connecting rod. The clamping block is arranged in a triangular shape. The clamping block has elasticity. A clamping groove that can be clamped with the clamping block in a matching manner is formed on the inner side wall of the arc groove.
[0009] Further, the sealing component includes a sealing gear ring, a sealing rack, and a sealing strip. The sealing gear ring is fixedly connected to the top of the rotating gear. The sealing rack meshes with the sealing gear ring. The sealing strip is fixedly connected to one end of the sealing rack. A groove is formed on one side of the heat preservation board. The sealing strip is arranged in the groove. A sealing groove is formed on the other side of the heat preservation board. The sealing strip on one side of the heat preservation board is inserted into the sealing groove on the other side of the adjacent heat preservation board in a matching manner.
[0010] Further, the driving component includes a central rod, an upper connecting piece, and a lower connecting piece. The central rod is arranged inside the placement box. The central rod penetrates through the sealing gear ring and the rotating gear. The top of the central rod penetrates through the top of the placement box. A turntable is fixedly arranged at the top of the central rod. The upper connecting piece is fixedly sleeved on the surface of the central rod. The upper connecting piece is used to drive the rotating gear to rotate. The lower connecting piece is fixedly arranged at the bottom end of the central rod. The lower connecting piece is used to drive the installation gear ring to rotate.
[0011] Furthermore, the upper connecting member includes a connecting ring, a plurality of first clamping teeth and second clamping teeth. The connecting ring is fixedly sleeved on the surface of the central rod. The plurality of first clamping teeth are arranged in an array around the center of the connecting ring on the top surface of the connecting ring. The plurality of second clamping teeth are arranged in an array around the center of the rotating gear on the bottom surface of the rotating gear. When the central rod moves upward, the first clamping teeth are driven to engage with the second clamping teeth.
[0012] Furthermore, the lower connecting member includes a fixed disk, a plurality of first meshing teeth and second meshing teeth. The fixed disk is fixedly arranged at the bottom end of the central rod. The first meshing teeth are arranged in an array around the center of the fixed disk on the bottom surface of the fixed disk. The second meshing teeth are arranged in an array around the center of the mounting tooth ring on the surface of the mounting tooth ring. When the central rod moves downward, the first meshing teeth are driven to engage with the second meshing teeth.
[0013] Furthermore, the locking assembly includes a locking tooth block, a return spring, a limiting tooth and a pressing block. The locking tooth block is arranged at the bottom of the placement box through the return spring. The limiting teeth are arranged in plurality, and the limiting teeth are arranged in an array on the inner side wall of the sealing tooth ring. The locking tooth block can engage with the limiting teeth. The pressing block is fixedly arranged at the bottom of the fixed disk, and the pressing block is used to squeeze and compress the locking tooth block.
[0014] Furthermore, the connecting block is arranged between two insulation boards at the corner transition. An arc-shaped groove is formed on one side of the connecting block close to one of the insulation boards. A plugging strip is fixedly arranged on one side of the connecting block close to the other insulation board, and the plugging strip is adaptively plugged with the sealing groove.
[0015] The present invention has the following beneficial effects:
[0016] (1) For this green energy-saving exterior wall insulation board, by setting the splicing assembly and the sealing assembly, the rotating gear is driven to rotate by the driving assembly. The rotating gear drives the half-tooth ring to rotate. The half-tooth ring drives the splicing rod to rotate around the center of the half-tooth ring through the connecting rod, so that the splicing rod is adaptively plugged with the arc-shaped groove on another insulation board. While the rotating gear rotates, it also drives the sealing tooth ring to rotate. The sealing tooth ring drives the sealing rack engaged with it to move, so that the sealing strip is adaptively plugged with the sealing groove on the side of another insulation board, achieving the advantages of being able to fixedly splice between two insulation boards, enhancing the stability of the installation of the insulation board, and having a waterproof and moisture-proof effect, solving the problem of inconvenient fixation between adjacent insulation boards, thereby reducing the stability of the installation of the insulation board, and there are easily gaps between the insulation boards, which in turn affects the heat preservation and waterproof and moisture-proof effects of the insulation board.
[0017] (2) The green energy-saving exterior wall insulation board is provided with a driving component. By pressing the turntable, the central rod moves downward. At the same time, the central rod drives the upper connecting piece to disconnect from the rotating gear. Then, the central rod drives the lower connecting piece to connect with the installation tooth ring, and can drive the installation tooth ring to rotate. Move the central rod upward, so that the central rod drives the lower connecting piece to disengage from the installation tooth ring, and then drives the upper connecting piece to connect with the rotating gear, thereby being able to drive the rotating gear to rotate, so that the central rod can be used to drive both the rotating gear and the installation tooth ring at the same time.
[0018] Of course, it is not necessary for any product implementing the present invention to achieve all the above-mentioned advantages simultaneously. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0020] Figure 2 It is a schematic diagram of the structure of the insulation board of the present invention;
[0021] Figure 3 It is a schematic diagram of the structure of the placement box of the present invention;
[0022] Figure 4 It is a cross-sectional view of the structure of the placement box of the present invention;
[0023] Figure 5 It is a schematic diagram of the structure of the installation component of the present invention;
[0024] Figure 6 It is a schematic diagram of the structure of the locking component of the present invention;
[0025] Figure 7 It is a schematic diagram of the structure of the splicing component of the present invention;
[0026] Figure 8 It is a schematic diagram of the structure of the sealing component of the present invention;
[0027] Figure 9 It is a schematic diagram when the splicing rod of the present invention is inserted into the arc-shaped groove;
[0028] Figure 10 It is a cross-sectional view of the structure of the mounting bracket of the present invention;
[0029] Figure 11 It is a schematic diagram of the structure of the connecting block of the present invention.
[0030] In the figure, 1 is a mounting bracket; 2 is a thermal insulation board; 3 is a decorative board; 4 is a placement box; 5 is a connecting block; 6 is a mounting gear ring; 7 is a mounting rack; 8 is a hook; 9 is a mounting groove; 10 is a rotating gear; 11 is a semi-gear ring; 12 is a connecting rod; 13 is a splicing rod; 14 is an arc-shaped groove; 15 is a clamping block; 16 is a sealing gear ring; 17 is a sealing rack; 18 is a sealing strip; 19 is a central rod; 20 is an upper connecting piece; 2001 is a connecting ring; 2002 is a first clamping tooth; 2003 is a second clamping tooth; 21 is a lower connecting piece; 2101 is a fixed disk; 2102 is a first meshing tooth; 2103 is a second meshing tooth; 22 is a turntable; 23 is a locking tooth block; 24 is a return spring; 25 is a limiting tooth; 26 is an extrusion block; 27 is a plugging strip. Detailed implementation manner
[0031] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0032] In the description of the present invention, it should be understood that the terms "opening", "upper", "lower", "thickness", "top", "middle", "length", "inner", "periphery", etc. indicating the orientation or position relationship are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the components or elements referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present invention.
[0033] Please refer to Figures 1-11 , the embodiments of the present invention provide a technical solution: a green energy-saving exterior wall thermal insulation board, including a mounting bracket 1 fixed on the exterior wall, a thermal insulation board 2 mounted on the mounting bracket 1, and a decorative board 3 mounted on the thermal insulation board 2. It further includes: a placement box 4 fixed on the thermal insulation board 2, the placement box 4 is recessed on the side of the thermal insulation board 2, and an installation component is arranged inside the placement box 4, and the installation component is used to install the thermal insulation board 2 on the mounting bracket 1; a splicing component and a sealing component arranged in the placement box 4, the splicing component is used to splice between two adjacent thermal insulation boards 2, and the sealing component is used to seal between two adjacent thermal insulation boards 2; a driving component inserted in the placement box 4, the driving component can move up and down in the placement box 4. When the driving component is in the high position, it is used to drive the splicing component and the sealing component to be inserted into an adjacent thermal insulation board 2, and when the driving component is in the low position, it is used to drive the installation component to be inserted into the mounting bracket 1; a connecting block 5 on the side of the thermal insulation board 2 at the corner, and the connecting block 5 is used to connect between two thermal insulation boards 2 at the corner transition.
[0034] Specifically, the installation components include an installation gear ring 6, an installation rack 7, and a hook 8. The installation gear ring 6 is arranged at the bottom of the placement box 4 through a bearing frame. The installation rack 7 is slidably arranged on the inner side wall of the placement box 4 through a collar. The hook 8 is fixedly arranged at one end of the installation rack 7 away from the installation gear ring 6. The hook 8 is arranged in an L shape. There are two installation racks 7, and the two installation racks 7 are respectively arranged on both sides of the installation gear ring 6. The two installation racks 7 are arranged in a mirror image. An installation groove 9 is formed on the surface of the installation frame 1. The installation groove 9 is formed in an L shape. The hook 8 is inserted into the installation groove 9. A locking component is arranged at the bottom of the installation gear ring 6 for locking the installation gear ring 6.
[0035] In this implementation plan, place the heat preservation board 2 at the installation position on the installation frame 1, so that the heat preservation board 2 drives the hook 8 to be inserted into the installation groove 9 on the installation frame 1. Then move the driving component downward until it is connected to the installation gear ring 6. Then rotate the installation gear ring 6 through the driving component, so that the installation gear ring 6 drives the two installation racks 7 on both sides to move towards each other, driving the two hooks 8 to clamp in the installation groove 9, thereby installing the heat preservation board 2.
[0036] Specifically, the splicing components include a rotating gear 10, a semi-tooth ring 11, a connecting rod 12, and a splicing rod 13. The rotating gear 10 is connected to the bearing frame and arranged inside the placement box 4. The semi-tooth ring 11 is arranged inside the placement box 4 through a fixing frame. The semi-tooth ring 11 meshes with one side of the rotating gear 10. One end of the connecting rod 12 is fixedly arranged on the side surface of the semi-tooth ring 11. The splicing rod 13 and the other end of the connecting rod 12 are integrally formed into a V shape. The splicing rod 13 is arranged in an arc with the center point of the semi-tooth ring 11 as the center. The splicing rod 13 penetrates through the placement box 4. An arc groove 14 is formed on the side of the heat preservation board 2 away from the placement box 4. The splicing rod 13 on one heat preservation board 2 is adaptively inserted into the arc groove 14 on the other heat preservation board 2.
[0037] In this implementation plan, after butting the two heat preservation boards 2, move the driving component on one of the heat preservation boards 2 upward until it is connected to the rotating gear 10. Then drive the rotating gear 10 to rotate through the driving component. The rotating gear 10 drives the semi-tooth ring 11 to rotate. The semi-tooth ring 11 drives the splicing rod 13 to rotate with the semi-tooth ring 11 as the center through the connecting rod 12, so that the splicing rod 13 is adaptively inserted into the arc groove 14 on the other heat preservation board 2, thereby fixedly splicing the two heat preservation boards 2.
[0038] Specifically, a clamping block 15 is fixedly arranged at one end of the splicing rod 13 away from the connecting rod 12. The clamping block 15 is arranged in a triangle. The clamping block 15 has elasticity. A clamping groove that can be adaptively clamped with the clamping block 15 is formed on the inner side wall of the arc groove 14.
[0039] In this implementation, when the splicing rod 13 is inserted into the arc-shaped groove 14, the splicing rod 13 drives the clamping block 15 to press against the inner wall of the arc-shaped groove 14, causing the clamping block 15 to be elastically compressed. After that, when the splicing rod 13 is properly inserted into the arc-shaped groove 14, the clamping block 15 is located at the opening of the card slot. Then, the clamping block 15 elastically returns to its original position and is inserted into the card slot, thereby limiting the splicing rod 13.
[0040] Specifically, the sealing assembly includes a sealing tooth ring 16, a sealing rack 17, and a sealing strip 18. The sealing tooth ring 16 is fixedly connected to the top of the rotating gear 10. The sealing rack 17 meshes with the sealing tooth ring 16. One end of the sealing strip 18 is fixedly connected to the sealing rack 17. A groove is formed on one side of the heat preservation board 2, and the sealing strip 18 is arranged in the groove. A sealing groove is formed on the other side of the heat preservation board 2. The sealing strip 18 on one side of the heat preservation board 2 is inserted into the sealing groove on the other side of the adjacent heat preservation board 2 in a matching manner.
[0041] In this implementation, when the rotating gear 10 rotates, it drives the sealing tooth ring 16 to rotate at the same time. The sealing tooth ring 16 drives the sealing rack 17 engaged with it to move. The sealing rack 17 drives the sealing strip 18 to move along the inner wall of the groove, so that the sealing strip 18 is inserted into the sealing groove on the side of another heat preservation board 2 in a matching manner, thereby sealing the gap between the two heat preservation boards 2.
[0042] Specifically, the driving assembly includes a central rod 19, an upper connecting piece 20, and a lower connecting piece 21. The central rod 19 is arranged inside the placement box 4. The central rod 19 passes through the sealing tooth ring 16 and the rotating gear 10. The top of the central rod 19 passes through the top of the placement box 4. A turntable 22 is fixedly arranged at the top of the central rod 19. The upper connecting piece 20 is fixedly sleeved on the surface of the central rod 19, and the upper connecting piece 20 is used to drive the rotating gear 10 to rotate. The lower connecting piece 21 is fixedly arranged at the bottom end of the central rod 19, and the lower connecting piece 21 is used to drive the installation tooth ring 6 to rotate.
[0043] In this implementation, by pressing the turntable 22, the central rod 19 is driven to move downward. At the same time, the central rod 19 drives the upper connecting piece 20 to disconnect from the rotating gear 10. Then, the central rod 19 drives the lower connecting piece 21 to connect with the installation tooth ring 6, which can drive the installation tooth ring 6 to rotate. Move the central rod 19 upward, so that the central rod 19 drives the lower connecting piece 21 to disengage from the installation tooth ring 6, and then drive the upper connecting piece 20 to connect with the rotating gear 10, thereby being able to drive the rotating gear 10 to rotate, so that the central rod 19 can be used to drive both the rotating gear 10 and the installation tooth ring 6 at the same time.
[0044] Specifically, the upper connecting member 20 includes a connecting ring 2001, a plurality of first engaging teeth 2002 and second engaging teeth 2003. The connecting ring 2001 is fixedly sleeved on the surface of the central rod 19. The plurality of first engaging teeth 2002 are arranged in an array around the center of the connecting ring 2001 on the top surface of the connecting ring 2001. The plurality of second engaging teeth 2003 are arranged in an array around the center of the rotating gear 10 on the bottom surface of the rotating gear 10. When the central rod 19 moves upward, it drives the first engaging teeth 2002 to engage with the second engaging teeth 2003.
[0045] In this embodiment, when the central rod 19 is connected to the rotating gear 10, the central rod 19 drives the connecting ring 2001 to move upward, and the connecting rod 12 drives the first engaging teeth 2002 to engage with the second engaging teeth 2003 at the bottom of the rotating gear 10, thereby connecting the central rod 19 to the rotating gear 10. Then, when the central rod 19 is rotated, the central rod 19 drives the rotating gear 10 to rotate.
[0046] Specifically, the lower connecting member 21 includes a fixed disk 2101, a plurality of first meshing teeth 2102 and second meshing teeth 2103. The fixed disk 2101 is fixedly arranged at the bottom end of the central rod 19. The first meshing teeth 2102 are arranged in an array around the center of the fixed disk 2101 on the bottom surface of the fixed disk 2101. The second meshing teeth 2103 are arranged in an array around the center of the mounting tooth ring 6 on the surface of the mounting tooth ring 6. When the central rod 19 moves downward, it drives the first meshing teeth 2102 to engage with the second meshing teeth 2103.
[0047] In this embodiment, when the central rod 19 is connected to the mounting tooth ring 6, the central rod 19 drives the first meshing teeth 2102 to engage with the second meshing teeth 2103 on the mounting tooth ring 6 through the fixed disk 2101, thereby connecting the connecting rod 12 to the mounting tooth ring 6. Then, when the turntable 22 is rotated to drive the central rod 19 to rotate, the central rod 19 drives the mounting tooth ring 6 to rotate, thereby installing the heat preservation board 2.
[0048] Specifically, the locking assembly includes a locking tooth block 23, a return spring 24, a limiting tooth 25 and a pressing block 26. The locking tooth block 23 is arranged at the bottom of the placement box 4 through the return spring 24. A plurality of limiting teeth 25 are provided, and the limiting teeth 25 are arranged in an array on the inner side wall of the sealing tooth ring 16. The locking tooth block 23 can engage with the limiting teeth 25. The pressing block 26 is fixedly arranged at the bottom of the fixed disk 2101, and the pressing block 26 is used to press and compress the locking tooth block 23.
[0049] In this embodiment, when the central rod 19 moves downward, it drives the extrusion block 26 to move downward through the fixed disk 2101. When the first engaging tooth 2102 engages with the second engaging tooth 2103, the extrusion block 26 presses the locking tooth block 23 downward. At the same time, the locking tooth block 23 squeezes the return spring 24 to be elastically compressed. A guide plate is fixedly arranged on the side of the locking tooth block 23, and the guide plate is connected to the inner side wall of the bearing frame. The locking tooth block 23 drives the guide plate to move along the inner side wall of the inner bearing frame to guide the locking tooth block 23, so that the locking tooth block 23 disengages from the limiting tooth 25 on the inner side wall of the mounting tooth ring 6, thereby releasing the limitation on the mounting tooth ring 6 and enabling the mounting tooth ring 6 to rotate. When the central rod 19 moves upward, it drives the extrusion block 26 to move upward, and at the same time, drives the locking tooth block 23 to move upward under the elastic reset of the return spring 24, so that the locking tooth block 23 is inserted into the mounting tooth ring 6 and engages with the limiting tooth 25, thereby being able to limit the mounting tooth ring 6 and prevent the mounting tooth ring 6 from rotating self.
[0050] Specifically, the connecting block 5 is arranged between two heat preservation plates 2 at the corner transition. An arc-shaped groove 14 is formed on one side of the connecting block 5 close to one of the heat preservation plates 2, and a plugging strip 27 is fixedly arranged on the side of the connecting block 5 close to the other heat preservation plate 2. The plugging strip 27 is adaptively plugged into the sealing groove.
[0051] In this embodiment, when it is necessary to splice two heat preservation plates 2 at the corner of the wall, the connecting block 5 is placed between the two heat preservation plates 2, and then the plugging strip 27 on the connecting block 5 is adaptively plugged into the sealing groove on one of the heat preservation plates 2. Then, the splicing rod 13 on the other heat preservation plate 2 is adaptively plugged into the arc-shaped groove 14 on the connecting block 5, so that the two heat preservation plates 2 at the corner of the wall can be spliced.
[0052] During operation, when installing the heat preservation plate 2, the mounting frame 1 is fixed to the outer wall by bolts, and then the heat preservation plate 2 is placed at the mounting position of the mounting frame 1, so that the heat preservation plate 2 drives the hook 8 to be plugged into the mounting groove 9 on the mounting frame 1. Then, the driving component moves downward until it is connected to the mounting tooth ring 6. When the central rod 19 is connected to the mounting tooth ring 6, the central rod 19 drives the first engaging tooth 2102 to engage with the second engaging tooth 2103 on the mounting tooth ring 6 through the fixed disk 2101, thereby connecting the connecting rod 12 and the mounting tooth ring 6. Then, the turntable 22 is rotated to drive the central rod 19 to rotate, and the central rod 19 drives the mounting tooth ring 6 to rotate, so as to install the heat preservation plate 2. Then, an adjacent heat preservation plate 2 is installed in the same way.
[0053] After installing the two thermal insulation boards 2, move the driving assembly on one of the thermal insulation boards 2 upward until it is connected to the rotating gear 10. When the central rod 19 is connected to the rotating gear 10, the central rod 19 drives the connecting ring 2001 upward, and the connecting rod 12 drives the first engaging tooth 2002 to engage with the second engaging tooth 2003 at the bottom of the rotating gear 10, thereby connecting the central rod 19 to the rotating gear 10. Then rotate the central rod 19. The central rod 19 drives the rotating gear 10 to rotate, and the rotating gear 10 drives the half-tooth ring 11 to rotate. The half-tooth ring 11 drives the splicing rod 13 to rotate around the half-tooth ring 11 through the connecting rod 12, so that the splicing rod 13 is adaptively inserted into the arc-shaped groove 14 on the other thermal insulation board 2, thereby fixedly splicing between the two thermal insulation boards 2.
[0054] When the rotating gear 10 rotates, it simultaneously drives the sealing tooth ring 16 to rotate. The sealing tooth ring 16 drives the sealing rack 17 engaged with it to move, and the sealing rack 17 drives the sealing strip 18 to move along the inner side wall of the groove, so that the sealing strip 18 is adaptively inserted into the sealing groove on the side of the other thermal insulation board 2, thereby sealing the gap between the two thermal insulation boards 2. After the installation is completed, the decorative panel 3 is fixed to the surface of the thermal insulation board 2 by pasting or screws.
[0055] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device.
[0056] The preferred embodiments of the present invention disclosed above are only used to help illustrate the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific embodiments described. Obviously, many modifications and changes can be made according to the content of this specification. These embodiments are selected and specifically described in this specification to better explain the principles and practical applications of the present invention, so that those skilled in the art can understand and utilize the present invention well. The present invention is only limited by the claims and their full scope and equivalents.
Claims
1. A green energy-saving exterior wall insulation board, comprising a mounting frame (1) fixed to an exterior wall, an insulation board (2) mounted on the mounting frame (1), and a decorative board (3) mounted on the insulation board (2), characterized in that: Also includes: A placement box (4) fixed on the insulation board (2), the placement box (4) being recessed in a side surface of the insulation board (2), a mounting component being arranged inside the placement box (4), the mounting component being used to mount the insulation board (2) on the mounting frame (1); A splicing component and a sealing component are arranged in the placement box (4), the splicing component is used to splice two adjacent insulation boards (2), and the sealing component is used to seal between two adjacent insulation boards (2); A drive assembly plugged into the placement box (4), the drive assembly moving up and down in the placement box (4); when the drive assembly is in a high position, it is used to drive the splicing assembly and the sealing assembly to be plugged into an adjacent insulation board; when the drive assembly is in a low position, it is used to drive the mounting assembly to be plugged into the mounting frame (1); A connecting block (5) arranged on the side of the insulation board (2) at the corner, the connecting block (5) being used to connect the two insulation boards (2) at the corner transition; The mounting assembly comprises a mounting gear ring (6), a mounting rack (7) and a hook (8); the mounting gear ring (6) is arranged at the bottom of the placement box (4) through a bearing frame; the mounting rack (7) is slidably arranged on the inner wall of the placement box (4) through a sleeve ring; the hook (8) is fixedly arranged at one end of the mounting rack (7) away from the mounting gear ring (6); the hook (8) is arranged in an L shape; the mounting rack (7) is arranged in two pieces, the two mounting racks (7) are respectively arranged on both sides of the mounting gear ring (6); the two mounting racks (7) are arranged in a mirror image; a mounting groove (9) is provided on the surface of the mounting frame (1); the mounting groove (9) is provided in an L shape; the hook (8) is plugged into the mounting groove (9); and a locking assembly for locking the mounting gear ring (6) is provided at the bottom of the mounting gear ring (6).
2. A green energy-saving exterior wall insulation board according to claim 1, characterized in that: The splicing assembly comprises a rotating gear (10), a half-toothed ring (11), a connecting rod (12) and a splicing rod (13); the rotating gear (10) is arranged inside the placement box (4) through a bearing connecting frame; the half-toothed ring (11) is arranged inside the placement box (4) through a fixing frame; the half-toothed ring (11) meshes with one side of the rotating gear (10); one end of the connecting rod (12) is fixedly arranged on the side of the half-toothed ring (11); the splicing rod (13) and the other end of the connecting rod (12) are integrally formed into a V shape; the splicing rod (13) is arranged in an arc shape with the center point of the half-toothed ring (11) as the center of the circle; the splicing rod (13) passes through the placement box (4); an arc groove (14) is provided on the side of the insulation board (2) away from the placement box (4); the splicing rod (13) on one of the insulation boards (2) is adapted to be plugged into the arc groove (14) on the other insulation board (2).
3. A green energy-saving exterior wall insulation board according to claim 2, characterized in that: A clamping block (15) is fixedly provided at one end of the splicing rod (13) away from the connecting rod (12); the clamping block (15) is arranged in a triangular shape; the clamping block (15) is elastic; and a clamping groove adapted to be clamped with the clamping block (15) is provided on the inner side wall of the arc-shaped groove (14).
4. The green energy-saving exterior wall insulation board according to claim 3 is characterized by: The sealing assembly comprises a sealing toothed ring (16), a sealing rack (17) and a sealing strip (18); the sealing toothed ring (16) is fixedly connected to the top of the rotating gear (10); the sealing rack (17) is meshed with the sealing toothed ring (16); the sealing strip (18) is fixedly connected to one end of the sealing rack (17); a groove is provided on one side of the insulation board (2); the sealing strip (18) is arranged in the groove; a sealing groove is provided on the other side of the insulation board (2); the sealing strip (18) on one side of the insulation board (2) is adapted to be plugged into the sealing groove on the other side of the adjacent insulation board (2).
5. The green energy-saving exterior wall insulation board according to claim 4 is characterized by: The driving assembly comprises a center rod (19), an upper connecting member (20) and a lower connecting member (21); the center rod (19) is arranged inside the placement box (4); the center rod (19) penetrates the sealing gear ring (16) and the rotating gear (10); the top of the center rod (19) penetrates the top of the placement box (4); a rotating disk (22) is fixedly arranged on the top of the center rod (19); the upper connecting member (20) is fixedly sleeved on the surface of the center rod (19); the upper connecting member (20) is used to drive the rotating gear (10) to rotate; the lower connecting member (21) is fixedly arranged at the bottom end of the center rod (19); the lower connecting member (21) is used to drive the mounting gear ring (6) to rotate.
6. The green energy-saving exterior wall insulation board according to claim 5 is characterized by: The upper connecting member (20) comprises a connecting ring (2001), a plurality of first engaging teeth (2002) and a second engaging teeth (2003); the connecting ring (2001) is fixedly sleeved on the surface of the center rod (19); the plurality of first engaging teeth (2002) are arranged in an array around the center of the connecting ring (2001) on the top surface of the connecting ring (2001); the plurality of second engaging teeth (2003) are arranged in an array around the center of the rotating gear (10) on the bottom surface of the rotating gear (10); when the center rod (19) moves upward, the first engaging teeth (2002) are driven to mesh with the second engaging teeth (2003).
7. The green energy-saving exterior wall insulation board according to claim 5 is characterized by: The lower connecting member (21) comprises a fixed disk (2101), a plurality of first meshing teeth (2102) and second meshing teeth (2103); the fixed disk (2101) is fixedly arranged at the bottom end of the center rod (19); the first meshing teeth (2102) are arranged in an array around the center of the fixed disk (2101) on the bottom surface of the fixed disk (2101); the second meshing teeth (2103) are arranged in an array around the center of the mounting gear ring (6) on the surface of the mounting gear ring (6); when the center rod (19) moves downward, the first meshing teeth (2102) are driven to mesh with the second meshing teeth (2103).
8. The green energy-saving exterior wall insulation board according to claim 1 is characterized by: The locking assembly comprises a locking tooth block (23), a return spring (24), a limiting tooth (25) and an extrusion block (26); the locking tooth block (23) is arranged at the bottom of the placement box (4) through the return spring (24); a plurality of limiting teeth (25) are arranged; an array of the limiting teeth (25) is arranged on the inner side wall of the sealing tooth ring (16); the locking tooth block (23) is meshed with the limiting tooth (25); the extrusion block (26) is fixedly arranged at the bottom of the fixed disk (2101); and the extrusion block (26) is used to extrude and compress the locking tooth block (23).
9. The green energy-saving exterior wall insulation board according to claim 1, characterized in that: The connecting block (5) is arranged between two insulation boards (2) at the corner transition, an arc groove (14) is provided on a side of the connecting block (5) close to one of the insulation boards (2), and a plug-in strip (27) is fixedly provided on a side of the connecting block (5) close to the other insulation board (2), and the plug-in strip (27) is adapted to be plugged into the sealing groove.
Citation Information
Patent Citations
Building external wall insulation board
CN117386032A
External wall insulation board fixing device
CN215563475U
Building heat-insulation energy-saving wall module component device
CN220790179U