Thermal insulation wallboard for green building
The design of the elastic telescopic rod and the linkage block solves the problem of difficult high-altitude operations in the prior art, achieves a simplified installation process for the thermal insulation wall panels, and improves installation efficiency and sealing effect.
Patent Information
- Application Number
- CN202510904958.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-02
- Publication Date
- 2025-09-05
AI Technical Summary
During the installation of existing thermal insulation wall panels, high-altitude operations are difficult, especially the tightening of sealing rings and bolts.
Adopting elastic telescopic rod and linkage block structure, the automatic extrusion of sealing ring and positioning of base plate are realized by tightening bolts, which simplifies the installation process.
It realizes the automatic extrusion of the sealing ring and the fixation of the base plate during high-altitude operations, reduces the difficulty of installation and improves the installation efficiency.
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Figure CN120592389A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of wallboard construction, and more particularly to a thermal insulation wallboard for green buildings. Background Art
[0002] Curtain wall panels are non-load-bearing parts installed on the outer surface of the wall. They have functions such as decoration and insulation. When installing such insulating wall panels, brackets are first installed on the wall, and then the wall panels are installed one by one on the brackets. The existing technology will set a circle of sealing rings on the outer edge of the wall panels to seal the gaps between adjacent wall panels through the sealing rings to increase the insulation effect. However, during the installation process, it is necessary to manually press the sealing rings of the wall panels to be installed onto the adjacent wall panels, control the wall panels to be installed to remain in a pressed state, and then tighten the wall panels to be installed. This is extremely inconvenient for high-altitude operations. Summary of the Invention
[0003] In order to overcome the disadvantage of inconvenient installation of existing thermal insulation wall panels, the present invention provides a thermal insulation wall panel for green buildings.
[0004] Technical solution:
[0005] A thermal insulation wall panel for green building, comprising a base plate, a panel and a sealing ring; the base plate is fixedly connected to the panel; the panel is fixedly connected to the sealing ring; it also comprises an elastic telescopic rod 1, a connecting block, a clamping block, a bolt, a limit block, a bracket, an elastic telescopic rod 2, a linkage block 1, an elastic telescopic rod 3 and a linkage block 2; a plurality of elastic telescopic rods 1 are fixedly connected to the base plate; a plurality of connecting blocks are slidably connected to the base plate, and the connecting blocks are fixedly connected to the corresponding telescopic ends of the elastic telescopic rods 1; two parallel inclined surfaces are provided on the connecting block, and the inclined surfaces are inclined at forty-five degrees; a plurality of grooves 1 are opened on the connecting block; a plurality of clamping blocks are fixedly connected to the base plate, and the clamping blocks cooperate with the corresponding grooves 1; a bolt is screwed on each connecting block; each Each connecting block is connected to a number of limit blocks; a number of brackets are provided on the side of the panel, and the brackets are screwed to the corresponding bolts; each bracket is provided with a number of grooves 2, and the limit blocks are inserted into the corresponding grooves 2; each bracket is fixed with a number of elastic telescopic rods 2; a number of linkage blocks 1 are provided on the inner side of each bracket, and the linkage block 1 is fixedly connected to the telescopic end of the corresponding elastic telescopic rod 2; a number of elastic telescopic rods 3 are fixedly connected to the bracket; a number of linkage blocks 2 are slidably connected to the bracket, and the linkage block 2 is fixedly connected to the telescopic end of the corresponding elastic telescopic rod 3, the linkage block 2 cooperates with the corresponding linkage block 1, and the linkage block 2 cooperates with the corresponding base plate; the contact surfaces of the linkage block 1 and the linkage block 2 are both set as inclined surfaces.
[0006] Optionally, a spring is further included; each limiting block is fixedly connected to a spring, and the spring is fixedly connected to the corresponding connecting block; the limiting block is slidably connected to the connecting block.
[0007] Optionally, the inner side of the substrate is filled with a thermal insulation layer.
[0008] Optionally, a waterproof layer is provided on the inner side of the substrate.
[0009] Optionally, the surface of the panel is coated with a reflective layer.
[0010] Optionally, an anti-corrosion layer is provided on the panel.
[0011] Optionally, a flame retardant layer is provided on the panel.
[0012] Optionally, the end of the bolt is provided with a chamfer.
[0013] Optionally, a chamfer is provided on the limit block.
[0014] Optionally, the contact surfaces of linkage block 1 and linkage block 2 are both set to smooth surfaces.
[0015] Beneficial effects:
[0016] First, the base plate and the parts thereon are installed on the bracket by manually tightening the bolts. During the tightening process, the bolts can also control the panel to move obliquely downward, so that the panel squeezes the left and lower sides of the sealing ring. The panel is installed from bottom to top and from left to right. The four sides of each sealing ring can be squeezed, so that the gaps on the outer sides of the panel can be sealed to ensure the sealing and thermal insulation performance. That is, the manual operation of tightening the bolts only needs to be performed once to complete the base plate fixing operation and the sealing ring squeezing operation. Compared with the existing technology, there is no need to tighten the bolts after the sealing ring is compressed, which greatly reduces the installation difficulty. This is of great significance for large-scale high-altitude operations. 2. After manually inserting the card block into the groove of the connecting block connected to the lower right baseboard, the limit block can be pushed into the inner side of the connecting block by the bracket. At this time, the baseboard and the panel are bent, that is, the manual operation only needs to overcome a small resistance to push the baseboard and the parts on it to move, which is conducive to reducing the difficulty of high-altitude operations. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 A schematic structural diagram of a thermal insulation wallboard for green building according to the present invention is shown; Figure 2 A second perspective structural diagram of the thermal insulation wallboard for green buildings of the present invention is shown; Figure 3 A first cross-sectional view of a thermal insulation wallboard for green building according to the present invention is shown; Figure 4 A second cross-sectional view of the thermal insulation wallboard for green building of the present invention is shown; Figure 5 Shows a schematic structural diagram of the card block of the present invention; Figure 6A diagram showing a first installation state of the thermal insulation wallboard for green buildings of the present invention is shown; Figure 7 A diagram showing a second installation state of the thermal insulation wallboard for green buildings of the present invention is shown; Figure 8 A third installation state diagram of the thermal insulation wall panel for green building of the present invention is shown.
[0018] Markings in the accompanying drawings: 1-base plate, 2-panel, 3-sealing ring, 4-elastic telescopic rod 1, 5-connecting block, 6-block, 7-bolt, 8-limiting block, 9-bracket, 10-elastic telescopic rod 2, 11-linkage block 1, 12-elastic telescopic rod 3, 13-linkage block 2, 14-spring, 15-wall, 91-groove 1, 92-groove 2. DETAILED DESCRIPTION
[0019] The present invention will be further described below with reference to specific embodiments. The illustrative embodiments and descriptions of the present invention are used to explain the present invention but are not intended to limit the present invention.
[0020] Example 1:
[0021] A thermal insulation wall panel for green building, such as Figures 1-8As shown, it includes a base plate 1, a panel 2 and a sealing ring 3; the base plate 1 is fixed with a panel 2; the panel 2 is fixed with a sealing ring 3, and the sealing ring 3 is set to a soft rubber material; it also includes an elastic telescopic rod 1 4, a connecting block 5, a clamping block 6, a bolt 7, a limit block 8, a bracket 9, an elastic telescopic rod 2 10, a linkage block 1 11, an elastic telescopic rod 3 12 and a linkage block 2 13; four elastic telescopic rods 1 4 are fixed to the base plate 1; two connecting blocks 5 are slidably connected to the base plate 1, and the connecting blocks 5 are fixed to the corresponding telescopic ends of the elastic telescopic rods 1 4; two parallel inclined surfaces are provided on the connecting block 5, and the inclined surfaces are inclined at forty-five degrees; two grooves 91 are provided on the connecting block 5; four clamping blocks 6 are fixed to the base plate 1, and the clamping blocks 6 cooperate with the corresponding grooves 91; each connecting block 5 is screwed with a bolt 7; each connecting block 5 is connected There are two limit blocks 8, which are made of high-hardness material; several brackets 9 are arranged on the side of the panel 2, and the brackets 9 are screwed to the corresponding bolts 7; several grooves 2 92 are opened on each bracket 9, and the limit blocks 8 are inserted into the corresponding grooves 2 92; several elastic telescopic rods 2 10 are fixedly connected to each bracket 9; several linkage blocks 1 11 are arranged on the inner side of each bracket 9, and the linkage block 1 11 is fixedly connected to the telescopic end of the corresponding elastic telescopic rod 2 10; several elastic telescopic rods 3 12 are fixedly connected to the bracket 9; several linkage blocks 2 13 are slidably connected to the bracket 9, and the linkage block 2 13 is fixedly connected to the telescopic end of the corresponding elastic telescopic rod 3 12, the linkage block 2 13 cooperates with the corresponding linkage block 11, and the linkage block 2 13 cooperates with the corresponding base plate 1; the contact surfaces of the linkage block 11 and the linkage block 2 13 are both set as inclined surfaces.
[0022] like Figure 1As shown, assuming that the upper left, lower left and lower right substrates 1 have been installed, the upper right is the substrate 1 to be installed. During installation, the substrate 1 to be installed and the parts thereon are manually moved to the position to be installed, so that the upper clamping block 6 is inserted into the groove 1 91 of the connecting block 5 connected to the lower right substrate 1, and the limiting block 8 on it is inserted into the groove 2 92. At this time, a narrow gap is formed between the upper right sealing ring 3 and the upper left sealing ring 3, and a narrow gap is also formed between the upper right sealing ring 3 and the lower right sealing ring 3. The front and rear sides of the clamping block 6 are tightly fitted with the groove 1 91, but the clamping block 6 can still slide in the groove 1 91, and the limiting block 8 and the groove 2 92 cooperate to position the connecting block 5 and the parts thereon, so that the bolt member 7 is aligned with the threaded hole on the bracket 9, and then the bolt member 7 is manually screwed backward using a wrench to screw the rear end of the bolt member 7 into the bracket 9. At this time, through the connecting block 5 When the locking cam 11 is in the closed position, the locking cam 12 is in the closed position, and the locking cam 13 is in the closed position, so that the locking cam 12 is in the closed position, and the locking cam 13 is in the closed position, so that the locking cam 12 is in the closed position, and the locking cam 13 is in the closed position, so that the locking cam 12 is in the closed position, and the locking cam 13 is in the closed position, so that the locking cam 12 is in the closed position, and the locking cam 13 is in the closed position, so that the locking cam 12 is in the closed position, and the locking cam 13 is in the closed position, so that the locking cam 12 is in the closed position, and the locking cam 13 is in the closed position, so that the locking cam 12 is in the closed position, and the locking cam 13 is in the closed position, so that the locking cam 12 is in the closed position, Figure 1 The display shows that the lower side and left side of the wall panel to be installed are both installed wall panels. Figure 6 The display shows the situation where the left side of the wall panel to be installed is the wall panel that has been installed, and the lower side is the wall 15. Figure 7 The display shows the situation where the wall panels to be installed are already installed on the lower side and the wall 15 is on the left. Figure 8 The display shows the situation where the lower side and left side of the wall panel to be installed are both walls 15. The installation is carried out from bottom to top and from left to right, so that the sealing ring 3 on each panel 2 can be squeezed, so that the gap on the outside of the panel 2 can be sealed.
[0023] During use, the base plate 1 and the parts thereon are installed on the bracket 9 by manually tightening the bolt member 7. During the tightening process, the bolt member 7 can also control the panel 2 to move obliquely downward, so that the panel 2 squeezes the left and lower sides of the sealing ring 3. It is installed in order from bottom to top and from left to right. The four sides of each sealing ring 3 can be squeezed, so that the outer gap of the panel 2 can be sealed to ensure the sealing and heat preservation performance. That is, the manual operation of tightening the bolt member 7 only needs to be performed once to complete the base plate 1 fixing operation and the sealing ring 3 squeezing operation. Compared with the existing technology, there is no need to tighten the bolt member 7 after the sealing ring 3 is pressed, which greatly reduces the installation difficulty, which is of great significance for large-scale high-altitude operations.
[0024] Example 2:
[0025] On the basis of Example 1, Figure 3-Figure 5 As shown, a spring 14 is also included; each limit block 8 is fixed with a spring 14, the spring 14 is fixed with the corresponding connecting block 5, and the spring 14 is set to an alloy material; the limit block 8 is slidably connected to the connecting block 5.
[0026] The inner side of the substrate 1 is filled with a heat-insulating layer to improve the heat-insulating effect.
[0027] A waterproof layer is provided on the inner side of the substrate 1 to provide a waterproof effect.
[0028] The surface of the panel 2 is coated with a reflective layer for reflecting sunlight to avoid high temperature.
[0029] An anti-corrosion layer is provided on the panel 2 to provide an anti-corrosion effect.
[0030] A flame retardant layer is provided on the panel 2 to provide a flame retardant effect.
[0031] The end of the bolt member 7 is provided with a chamfer, so that the bolt member 7 is easier to screw into the connecting block 5 and the bracket 9.
[0032] The limiting block 8 is provided with a chamfer, so that the limiting block 8 is easier to insert into the second groove 92 .
[0033] The contact surfaces of linkage block 1 11 and linkage block 2 13 are both configured as smooth surfaces to reduce frictional resistance.
[0034] After the card block 6 is inserted into the groove 1 91 of the connecting block 5 connected to the lower right base plate 1, the front and rear sides of the card block 6 are connected to the groove 1 91, that is, the front and rear sides of the card block 6 are limited. If the limit block 8 is not aligned with the groove 2 92 at this time, the limit block 8 will contact the bracket 9 and push up the upper end of the base plate 1, so that the upper end of the base plate 1 bends forward. At this time, the base plate 1 and the parts thereon are manually pushed to move left and right and up and down until the limit block 8 is aligned with the groove 2 92. Only then can the limit block 8 be inserted into the groove 2 92, and then the tightening and fixing operation is performed. During this process, the base plate 1 and the panel 2 will bend, and deformation and damage may occur. The reaction force generated by the bending of the base plate 1 and the panel 2 will press the card block 6 onto the groove 1 91, and at the same time, the limit block 8 will be pressed onto the bracket 9, making it difficult to manually push the base plate 1 and the panel 2. Movement, especially for high-altitude operations, greatly increases the difficulty of operation. Therefore, the limit block 8 is slidably connected to the connecting block 5. When the card block 6 is manually inserted into the groove 1 91 of the connecting block 5 connected to the lower right base plate 1, if the limit block 8 is not aligned with the groove 2 92, the base plate 1 will press the limit block 8 onto the bracket 9. At this time, the limit block 8 will slide to the inside of the connecting block 5 and compress the spring 14. Then, the base plate 1 and the parts thereon are manually pushed to move left and right and up and down until the limit block 8 is aligned with the groove 2 92. The spring 14 rebounds and drives the limit block 8 to move backward, so that the limit block 8 is inserted into the groove 2 92, and then the tightening and fixing operation is performed. During this process, the base plate 1 and the panel 2 will not bend, that is, humans only need to overcome a small resistance to push the base plate 1 and the parts thereon to move, which is conducive to reducing the difficulty of high-altitude operations.
[0035] During use, after manually inserting the card block 6 into the groove 91 of the connecting block 5 connected to the lower right base plate 1, the limit block 8 can be pushed into the inner side of the connecting block 5 by the bracket 9. At this time, the base plate 1 and the panel 2 are bent, that is, the manual operation only needs to overcome a small resistance to push the base plate 1 and the parts thereon to move, which is conducive to reducing the difficulty of high-altitude operations.
[0036] It should be understood that the above description is only for illustrative purposes and is not intended to limit the present invention. Those skilled in the art will appreciate that variations of the present invention will fall within the scope of the claims herein.
Claims
1. A thermal insulation wall panel for green buildings, comprising a base plate (1); a panel (2) fixedly connected to the base plate (1); and a sealing ring (3) fixedly connected to the panel (2); wherein: A plurality of elastic telescopic rods (4) are fixedly connected to the base plate (1); a plurality of connecting blocks (5) are slidably connected to the base plate (1), and the connecting blocks (5) are fixedly connected to the corresponding telescopic ends of the elastic telescopic rods (4); two parallel inclined surfaces are provided on the connecting block (5), and the inclined surfaces are inclined at a forty-five degree angle; a plurality of grooves (91) are provided on the connecting block (5); a plurality of clamping blocks (6) are fixedly connected to the base plate (1), and the clamping blocks (6) are matched with the corresponding grooves (91); a bolt member (7) is screwed onto each connecting block (5); a plurality of limiting blocks (8) are connected to each connecting block (5); a plurality of brackets (9) are provided on the side of the panel (2), and the brackets (9) are screwed onto the corresponding bolt members (7); a plurality of recesses are provided on each bracket (9). Groove 2 (92), and the limit block (8) is inserted into the corresponding groove 2 (92); each bracket (9) is fixed with a plurality of elastic telescopic rods 2 (10); a plurality of linkage blocks 1 (11) are provided on the inner side of each bracket (9), and the linkage blocks 1 (11) are fixed with the corresponding elastic telescopic rod 2 (10) telescopic end; a plurality of elastic telescopic rods 3 (12) are fixed on the bracket (9); a plurality of linkage blocks 2 (13) are slidably connected on the bracket (9), and the linkage blocks 2 (13) are fixed with the corresponding elastic telescopic rod 3 (12) telescopic end, and the linkage blocks 2 (13) cooperate with the corresponding linkage blocks 1 (11), and the linkage blocks 2 (13) cooperate with the corresponding base plate (1); the contact surfaces of the linkage blocks 1 (11) and the linkage blocks 2 (13) are both set as inclined surfaces.
2. The thermal insulation wallboard for green building according to claim 1, characterized in that: It also includes a spring (14); each limiting block (8) is fixedly connected to a spring (14), and the spring (14) is fixedly connected to the corresponding connecting block (5); the limiting block (8) is slidably connected to the connecting block (5).
3. The thermal insulation wallboard for green building according to claim 2, characterized in that: The inner side of the substrate (1) is filled with a heat-insulating layer.
4. The thermal insulation wallboard for green building according to claim 3 is characterized by: A waterproof layer is provided on the inner side of the base plate (1).
5. The thermal insulation wallboard for green building according to claim 4, characterized in that: The surface of the panel (2) is coated with a reflective layer.
6. The thermal insulation wallboard for green building according to claim 5, characterized in that: An anti-corrosion layer is provided on the panel (2).
7. The thermal insulation wallboard for green building according to claim 5, characterized in that: A flame retardant layer is provided on the panel (2).
8. The thermal insulation wallboard for green building according to any one of claims 1 to 7, characterized in that: The end of the bolt member (7) is provided with a chamfer.
9. The thermal insulation wallboard for green building according to claim 8, characterized in that: The limit block (8) is provided with a chamfer.
10. The thermal insulation wallboard for green building according to claim 9, characterized in that: The contact surfaces of linkage block 1 (11) and linkage block 2 (13) are both set to smooth surfaces.