Integrated house wallboard capable of being rapidly installed
By designing the connecting components, the automatic lifting and locking of the panels using gas drive solves the problem of difficulty in adjusting the verticality and horizontality during the installation of autoclaved aerated concrete panels, achieving fast and precise panel installation and avoiding the defects of traditional pry bar operation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-03-13
- Publication Date
- 2026-04-14
AI Technical Summary
During the installation of autoclaved aerated concrete (AAC) panels, it is difficult to precisely adjust the verticality and horizontality, resulting in cumbersome operation and easy damage. In addition, the traditional pry bar operation is inefficient.
The system employs connecting components, including mounting brackets, sliders, screws, gas generating components, and permanent magnets, to automatically lift and lock the plate via gas drive, enabling rapid installation and avoiding damage caused by localized stress.
This enabled rapid and precise installation of the panels, improved installation quality and integrity, and reduced the labor intensity and costs for construction workers.
Smart Images

Figure CN121853733A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of autoclaved aerated concrete (AAC) panel installation technology, specifically to an integrated house wall panel that can be installed quickly. Background Technology
[0002] Autoclaved aerated concrete (AAC) panels are a new type of energy-saving building material made primarily from silica sand, cement, lime, and gypsum through processes such as batching, pouring, cutting, and high-pressure steam curing. These panels contain numerous micropores, giving them excellent properties such as lightweight, thermal insulation, earthquake resistance, and environmental friendliness. They also offer advantages in industrialized and standardized production and installation. AAC panels are easy to install and quick to construct, making them widely used in wall panels for residential buildings, schools, hospitals, hotels, shopping malls, factories, and other industrial and civil buildings.
[0003] During the installation of autoclaved aerated concrete (AAC) panels, the calibration of verticality and horizontality is crucial for ensuring the flatness and overall quality of the wall. Currently, installers typically use pry bars to adjust the bottom of the wall panels to achieve the required verticality and horizontality. However, because AAC panels are relatively lightweight and brittle, prying them with a pry bar can easily cause localized damage to the bottom of the panels, resulting in problems such as chipped corners and cracks. Furthermore, it is difficult to precisely control the displacement of the wall panels using a pry bar, often requiring multiple adjustments to achieve the required standard, making the process cumbersome and inefficient. Summary of the Invention
[0004] The purpose of this invention is to provide an integrated house wall panel that can be installed quickly, in order to solve the problems mentioned in the above process.
[0005] To achieve the above objectives, the present invention provides the following technical solution: An integrated house wall panel that can be quickly installed includes a panel body, a groove is provided on one side of the panel body, a protrusion adapted to the groove is provided on the other side of the panel body, a locking block is fixedly provided on the protrusion, an installation groove is provided on the groove, and a connecting component for engaging and locking with the locking block on an adjacent panel body is fixedly provided in the installation groove. The connecting assembly includes a mounting bracket and a slider slidably connected within the mounting bracket. Both the slider and the locking block are provided with mutually cooperating V-grooves. A screw with one end threaded into the slider is rotatably connected within the mounting bracket. The mounting bracket is slidably connected to a piston plate, and a gas generating assembly is disposed above the piston plate inside the mounting bracket. The mounting bracket is provided with a pressure relief channel communicating with the top of the piston plate. A connecting rod is fixed to the piston plate, and a support block supporting the ground is fixed to the bottom end of the connecting rod; A sealing plate for sealing the pressure relief channel is slidably connected inside the mounting frame. A permanent magnet is fixedly installed inside the sealing plate. A second iron block is fixed on the mounting frame above the permanent magnet. A slide is slidably connected inside the mounting bracket. A first iron block is fixedly installed on the top of the slide. The piston plate communicates with the chamber below the slide. When the slide moves, it drives the screw to rotate and pushes the sealing plate to open the pressure relief channel when it reaches the end.
[0006] As a preferred embodiment of the quick-installable integrated house wall panel of the present invention, wherein: a gear is coaxially fixed on the outer side of the screw, and a rack that meshes with the gear is fixedly installed on the slide, the rack being located in the middle of the slide so that the rack does not mesh with the gear at the beginning of the slide.
[0007] As a preferred embodiment of the rapidly installable integrated house wall panel of the present invention, the mounting frame is provided with slots for accommodating the card blocks on adjacent panels.
[0008] As a preferred embodiment of the rapidly installable integrated house wall panel of the present invention, the sealing plate has a T-shaped structure, and the vertical section of the sealing plate slides through the side wall of the pressure relief channel and extends to the top of the carriage.
[0009] As a preferred embodiment of the rapidly installable integrated house wall panel of the present invention, a second spring is fixedly connected between the top of the sealing plate and the mounting frame.
[0010] As a preferred embodiment of the rapidly installable integrated house wall panel of the present invention, the panel body is provided with a gas channel communicating with a pressure relief channel, and the groove is provided with a plurality of spray holes communicating with the gas channel.
[0011] As a preferred embodiment of the rapidly installable integrated house wall panel of the present invention, the gas generating assembly includes a storage box fixed on a mounting frame, a diaphragm fixed in the middle of the storage box, water and an effervescent disintegrant placed on both sides of the diaphragm in the storage box, and spikes for piercing the diaphragm slidably connected inside the storage box.
[0012] As a preferred embodiment of the rapidly installable integrated house wall panel of the present invention, the storage box is fixed with a waterproof and breathable membrane on top.
[0013] As a preferred embodiment of the quick-installable integrated house wall panel of the present invention, a pressing rod is slidably connected inside the panel, one end of the pressing rod is flush with the outer surface of the panel, the other end of the pressing rod slides into the interior of the spikes, and a first spring is fixedly installed between the pressing rod and the panel.
[0014] As a preferred embodiment of the rapidly installable integrated house wall panel of the present invention, wherein: the connecting components are configured as a plurality of components, and the plurality of connecting components are arranged in a vertical direction;
[0015] The connecting rod extends vertically and is fixedly connected to the piston plate of each connecting assembly; The gas generating component is located only within the bottommost connecting component.
[0016] Compared with the prior art, the beneficial effects of the present invention are: 1. This invention includes a connecting assembly. After the gas generating assembly is activated, a large amount of gas accumulates above the piston plate. Since the support block at the bottom of the connecting rod is pre-supported on the ground, the gas pushes the plate body upwards, achieving automatic lifting of the plate body. Simultaneously, the piston plate and the mounting bracket move relative to each other, causing the gas below the piston plate to be compressed and driving the slide to move upwards. This causes the slide to rise first and then drive the screw to rotate, thereby causing the slider to extend outwards above the locking block. When the slide reaches its end, it pushes the sealing plate to open the pressure relief channel, allowing the gas above the piston plate to be quickly discharged through the pressure relief channel. The plate falls smoothly under its own weight, causing the mounting bracket to move the slider downwards and tightly engage with the V-groove of the locking block. During the descent, the piston plate moves upwards relative to the mounting bracket, which in turn drives the slide to move in the opposite direction via air pressure. This causes the screw to pull the slider back into the mounting bracket, bringing adjacent plates closer together. Finally, the precise engagement of the groove and the protrusion completes the rapid installation of the plate. This method replaces the traditional method of prying with a crowbar, avoiding damage such as chipped corners and cracks at the bottom of the plate caused by excessive local stress, and significantly improving the installation quality and integrity of the plate.
[0017] 2. Initially, the force of the second spring is greater than the magnetic attraction of the permanent magnet to the second iron block, keeping the sealing plate blocking the pressure relief channel. As the slide pushes the sealing plate upward, the distance between the permanent magnet and the second iron block decreases, increasing the magnetic attraction. When the magnetic attraction exceeds the force of the second spring, the top of the sealing plate remains in contact with the second iron block, keeping the pressure relief channel open and ensuring the smooth descent of the plate. Simultaneously, the permanent magnet also exerts a magnetic attraction on the first iron block at the top of the slide. When the piston plate moves upward relative to the mounting bracket, reducing the air pressure below, the air pressure must first overcome the magnetic attraction of the permanent magnet to the first iron block. This causes the mounting bracket to first move the locking block downward. Then, when the driving force on the slide is greater than the magnetic attraction of the permanent magnet to the first iron block, the slide moves within the mounting bracket, driving the screw to rotate and retracting the slider back into the mounting bracket. This ensures that the V-groove of the slider and the locking block can smoothly contact and engage, guaranteeing stable operation of subsequent closing and locking operations.
[0018] 3. Initially, the rack does not mesh with the gear, so that the slider does not extend when the slide initially moves upward relative to the mounting bracket. This continues until the rack meshes with the gear. At this point, the bottom of the slider is higher than the top of the locking block, avoiding the problem of the slider hitting the locking block when it extends, which could cause the equipment to jam or the plates to move away from each other. In addition, after the connecting components are finally locked, the bottom of the plate has been lifted off the ground. At this point, the initial positions of the piston plate and the slide relative to the mounting bracket have shifted. The initial non-meshing state of the slide provides a certain stroke margin to cope with this shift, ensuring that the movement of the slide allows the slider to retract completely into the mounting bracket, ensuring a tight fit between the plates.
[0019] 4. After the pressure relief channel is opened, gas is ejected from the pressure relief channel and multiple nozzles on the gas channel, spraying towards the protrusions of the adjacent plates. While cleaning the surface of the protrusions, this gas will generate a layer of air film between the grooves and the protrusions. When the plates fall due to gravity, the V-shaped grooves of the slider and the locking block guide the two plates to quickly approach each other. The air film can play a buffering role, effectively avoiding the violent impact between the two plates during the rapid approach, which would cause damage to the assembly surface and ensure the installation quality of the plates.
[0020] 5. When using multiple connecting components, the piston plates are fixedly connected by connecting rods to ensure that the multiple connecting components move synchronously, making the installation process coordinated and consistent, and ensuring stable operation during the installation process. At the same time, only one gas generating component is needed to drive all connecting components, which effectively reduces manufacturing costs.
[0021] 6. During installation, simply press the pressing rod flush with the outer surface of the plate. The pressing rod will push the spikes to pierce the diaphragm, causing water and effervescent disintegrant to mix rapidly and generate a large amount of gas, which will enable subsequent actions to run automatically. The entire operation is simple and convenient, greatly reducing the labor intensity of construction personnel and improving installation efficiency.
[0022] 7. A waterproof and breathable membrane is installed on the top of the storage box to prevent water from flowing out of the storage box when gas escapes rapidly, thus ensuring the dryness of the board and preventing it from being damaged by moisture, thereby ensuring its service life. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the first three-dimensional structure of the present invention.
[0024] Figure 2 This is a schematic diagram of the second three-dimensional structure of the present invention.
[0025] Figure 3 This is a schematic diagram of the first cross-sectional structure of the present invention.
[0026] Figure 4 for Figure 3 A magnified structural diagram at point A.
[0027] Figure 5 for Figure 3 A magnified structural diagram at point B.
[0028] Figure 6 for Figure 3 A magnified structural diagram at point C.
[0029] Figure 7 This is a schematic diagram of the second cross-sectional structure of the present invention.
[0030] Figure 8 for Figure 7 A magnified structural diagram at point D.
[0031] Figure 9 This is a schematic cross-sectional view of the adjacent wall panel assembly structure of the present invention.
[0032] Figure 10 for Figure 9 A magnified structural diagram at point E.
[0033] Figure 11 for Figure 9 A magnified structural diagram at point F.
[0034] Figure 12 This is a partial cross-sectional view of the assembly structure of the support block of the present invention when it is lifted up.
[0035] Figure 13 This is a partial cross-sectional view of the assembly structure of the card blocks in this invention.
[0036] In the diagram: 1. Plate; 11. Groove; 111. Nozzle; 112. Mounting slot; 113. Gas passage; 12. Protrusion; 121. Locking block; 2. Pressing rod; 21. First spring; 3. Mounting bracket; 31. Connecting rod; 311. Piston plate; 312. Support block; 32. Slider; 321. Screw; 322. Gear; 33. Carriage; 331. Rack; 332. First iron block; 34. Pressure relief passage; 35. Sealing plate; 351. Permanent magnet; 352. Second spring; 353. Second iron block; 36. Storage box; 361. Diaphragm; 362. Waterproof and breathable membrane; 363. Spike. Detailed Implementation
[0037] The features and exemplary embodiments of various aspects of the present invention will now be described in detail. Numerous specific details are set forth in the following detailed description to provide a thorough understanding of the invention. However, it will be apparent to those skilled in the art that the invention may be practiced without requiring some of these specific details. The following description of embodiments is merely intended to provide a better understanding of the invention by illustrating examples of the invention. The invention is by no means limited to any specific configurations and algorithms presented below, but covers any modifications, substitutions, and improvements to elements, components, and algorithms without departing from the spirit of the invention. Well-known structures and techniques are not shown in the drawings and the following description in order to avoid unnecessarily obscuring the invention.
[0038] Example 1, referring to Figures 1-13 The first embodiment of the present invention provides an integrated house wall panel that can be quickly installed. This integrated house wall panel that can be quickly installed includes a panel body 1. A groove 11 is provided on one side of the panel body 1, and a protrusion 12 adapted to the groove 11 is provided on the other side of the panel body 1. A locking block 121 is fixedly provided on the protrusion 12. An installation groove 112 is provided on the groove 11. A connecting component for locking with the locking block 121 on the adjacent panel body 1 is fixedly provided in the installation groove 112. The connecting assembly includes a mounting bracket 3 and a slider 32 slidably connected within the mounting bracket 3. Both the slider 32 and the locking block 121 are provided with mutually cooperating V-shaped grooves. A screw 321 with one end threaded into the slider 32 is rotatably connected within the mounting bracket 3. The mounting bracket 3 is slidably connected to the piston plate 311. A gas generating assembly is provided inside the mounting bracket 3 above the piston plate 311. The mounting bracket 3 is provided with a pressure relief channel 34 that communicates with the top of the piston plate 311. A connecting rod 31 is fixed on the piston plate 311, and a support block 312 supporting the ground is fixed at the bottom end of the connecting rod 31. A sealing plate 35 for sealing the pressure relief channel 34 is slidably connected inside the mounting frame 3. A permanent magnet 351 is fixedly installed inside the sealing plate 35. A second iron block 353 is fixed on the mounting frame 3 above the permanent magnet 351. The mounting bracket 3 has a sliding carriage 33 inside. A first iron block 332 is fixedly installed on the top of the carriage 33. The piston plate 311 is connected to the chamber below the carriage 33. When the carriage 33 moves, it drives the screw 321 to rotate and pushes the sealing plate 35 to open the pressure relief channel 34 when it moves to the end.
[0039] A gear 322 is coaxially fixed on the outer side of the screw 321, and a rack 331 that meshes with the gear 322 is fixedly installed on the slide 33. The rack 331 is located in the middle of the slide 33, so that the rack 331 does not mesh with the gear 322 at the beginning of the slide 33.
[0040] The mounting bracket 3 is provided with a slot for accommodating the card block 121 on the adjacent plate 1.
[0041] The sealing plate 35 has a T-shaped structure. The vertical section of the sealing plate 35 slides through the side wall of the pressure relief channel 34 and extends above the slide 33.
[0042] A second spring 352 is fixedly connected between the top of the sealing plate 35 and the mounting bracket 3.
[0043] The gas generating assembly includes a storage box 36 fixed to the mounting bracket 3. A diaphragm 361 is fixed in the middle of the storage box 36. Water and an effervescent disintegrant are placed on both sides of the diaphragm 361 inside the storage box 36. Spikes 363 for puncturing the diaphragm 361 are slidably connected inside the storage box 36. The effervescent disintegrant is a solid reactant that reacts chemically with water to produce gas. It is preferably a mixture of citric acid and sodium bicarbonate. When the two come into contact with water, an acid-base neutralization reaction occurs, rapidly producing a large amount of carbon dioxide gas.
[0044] A waterproof and breathable membrane 362 is fixed to the top of the storage box 36. Preferably, the waterproof and breathable membrane 362 is an ePTFE waterproof and breathable membrane. ePTFE is a high-performance film made of expanded polytetrafluoroethylene (PTFE), which possesses both waterproof and breathable functions due to its unique microporous structure. Its breathability rate meets the gas production rate of the effervescent disintegrant, preventing expansion and rupture due to excessive internal pressure. Furthermore, the waterproof and breathable membrane 362 on the top of the storage box 36 prevents water from flowing out of the storage box 36 in the event of rapid gas overflow, ensuring the dryness of the plate 1, preventing moisture damage to the plate 1, and ensuring its service life.
[0045] A pressing rod 2 is slidably connected inside the plate 1. One end of the pressing rod 2 is flush with the outer surface of the plate 1, and the other end of the pressing rod 2 slides into the interior of the spike 363. A first spring 21 is fixedly installed between the pressing rod 2 and the plate 1.
[0046] During use, in the process of quickly splicing two plates 1, after adjusting the verticality and horizontality, one plate 1 is fixed to the wall and support beam by a fixing tool (such as a tube or U-shaped groove), and the side away from the wall is a protrusion 12, on which a locking block 121 is fixed. Then, the other plate 1 is brought close and its groove 11 is fitted onto the outside of the protrusion 12 of the plate 1 close to the wall, so that the inner wall of the groove 11 of the plate 1 away from the wall abuts against the end of the locking block 121, and the bottom of the plate 1 away from the wall contacts the ground. The operator holds the side away from the connection point. Then press the pressing lever 2, causing it to push the spike 363 to move, piercing the diaphragm 361. This allows the water and effervescent disintegrant on both sides of the diaphragm 361 inside the storage box 36 to mix. The effervescent disintegrant is preferably a mixture of citric acid and sodium bicarbonate. Upon contact with water, the two undergo an acid-base neutralization reaction, rapidly generating a large amount of carbon dioxide gas. This gas accumulates above the piston plate 311. Since the support block 312 at the bottom of the connecting rod 31 is pre-supported on the ground, the high pressure generated by the large amount of gas pushes the plate 1 upwards, causing it to automatically rise. Simultaneously, the piston plate 311 moves downwards relative to the mounting frame 3 within the mounting frame 3, causing... The gas below the piston plate 311 is compressed and squeezed into the lower part of the slide 33, thereby driving the slide 33 to move upward. Since the rack 331 is located in the middle of the slide 33, the rack 331 does not mesh with the gear 322 when the slide 33 initially rises. During this process, the mounting bracket 3 drives the slider 32 to move upward. The slider 32 does not extend until the rack 331 meshes with the gear 322. At this time, the bottom of the slider 32 is higher than the top of the block 121. Then the upward movement of the slide 33 causes the rack 331 to drive the gear 322 to rotate, thereby driving the screw 321 to rotate, which in turn causes the threaded slider 32 to extend outward, so that the slider 32 moves above the block 121. Then, when the slide 33 moves upward to the end, the top of the slide 33 pushes the sealing plate 35 to open the pressure relief channel 34. Initially, the elastic force of the second spring 352 is greater than the magnetic attraction force of the permanent magnet 351 on the second iron block 353, so that the sealing plate 35 keeps the pressure relief channel 34 blocked. When the slide 33 pushes the sealing plate 35 upward, the distance between the permanent magnet 351 and the second iron block 353 decreases, which increases the magnetic attraction force. When the magnetic attraction force is greater than the elastic force of the second spring 352, the top of the sealing plate 35 remains in contact with the second iron block 353, so that the pressure relief channel 34 remains open. The gas above the piston plate 311 is rapidly discharged through the pressure relief channel 34, and the plate 1 falls smoothly under its own gravity. Simultaneously, the permanent magnet 351 magnetically attracts the first iron block 332 at the top of the slide 33. When the piston plate 311 moves upward relative to the mounting bracket 3, reducing the air pressure below, the air pressure must first overcome the magnetic attraction of the permanent magnet 351 to the first iron block 332. This causes the mounting bracket 3 to first move the locking block 121 downward. Then, when the driving force on the slide 33 is greater than the magnetic attraction of the permanent magnet 351 to the first iron block 332, the slide 33 moves within the mounting bracket 3, allowing the slider 32 to smoothly engage with the V-groove on the locking block 121. Then, the piston plate 311 moves upward relative to the mounting bracket 3, causing the slide 33 to move downward relative to the mounting bracket 3. The movement causes the rack 331 to drive the gear 322 to rotate in the opposite direction, which in turn drives the screw 321 to rotate in the opposite direction, retracting the slider 32 back into the mounting bracket 3. This ensures that the slider 32 and the V-groove of the locking block 121 can smoothly contact and engage. During the descent, the screw 321 retracts the threaded slider 32 into the mounting bracket 3, allowing the adjacent plates 1 to move closer to each other. Finally, the precise engagement of the groove 11 and the protrusion 12 completes the rapid installation of the plate 1, and the locking block 121 retracts into the slot on the mounting bracket 3. Thus, through pneumatic drive and structural design, the traditional method of partial prying with a crowbar is replaced, avoiding damage problems such as chipped corners and cracks at the bottom of the plate 1 caused by excessive local force, and significantly improving the installation quality and integrity of the plate 1.
[0047] Initially, the rack 331 of the slide 33 does not mesh with the gear 322, so that when the slide 33 first moves upward relative to the mounting bracket 3, the slider 32 does not extend until the rack 331 meshes with the gear 322. At this time, the bottom of the slider 32 is higher than the top of the locking block 121, which avoids the problem of the slider 32 hitting the locking block 121 when it extends, which would cause the equipment to jam or the plates 1 to move away from each other. In addition, after the connecting components are finally locked, the bottom of the plate 1 has been lifted off the ground. At this time, the initial positions of the piston plate 311 and the slide 33 have been offset relative to the mounting bracket 3. The initial non-meshing state of the slide 33 gives it a certain stroke margin to cope with this offset, which can ensure that the movement of the slide 33 can make the slider 32 completely retract into the mounting bracket 3, ensuring the tight fit of the plate 1.
[0048] During installation, simply press the pressing rod 2, which is flush with the outer surface of the plate 1, so that the pressing rod 2 pushes the spike 363 to pierce the diaphragm 361, causing water and effervescent disintegrant to mix rapidly and generate a large amount of gas, enabling subsequent actions to run automatically. The entire operation is simple and convenient, greatly reducing the labor intensity of construction personnel and improving installation efficiency. Initially, the end of the pressing rod 2 does not contact the inner bottom surface of the spike, so that the pressing rod 2 can drive the spike 363 to move only after pressing for a certain length, thus preventing accidental activation.
[0049] In summary, during use, simply pressing the pressing rod 2, which is flush with the outer surface of the plate 1, triggers the gas generating component to produce high-pressure gas. This drives a series of actions, including automatically lifting the plate 1, locking the slider 32, releasing pressure and falling, and retracting the slider 32. Finally, the precise engagement of the groove 11 and the protrusion 12 completes the plate assembly. Throughout the process, the misalignment design of the rack 331 and gear 322 prevents the slider 32 from colliding with the locking block 121 when it extends. The cooperation between the permanent magnet 351 and the second spring 352 ensures the reliability of the action sequence, avoids damage to the bottom of the plate 1, achieves one-time precise calibration during installation, significantly reduces labor intensity, and improves construction efficiency and quality.
[0050] Example 2, refer to Figures 2-10 This is the second embodiment of the present invention, which differs from the first embodiment in that: The plate 1 is provided with a gas channel 113 that communicates with the pressure relief channel 34, and the groove 11 is provided with a plurality of nozzles 111 that communicate with the gas channel 113.
[0051] During use, after the pressure relief channel 34 is opened, the gas above the piston plate 311 flows out from the pressure relief channel 34, and at the same time, some gas enters the gas channel 113 and is finally ejected from the multiple nozzles 111 on the gas channel 113, spraying towards the protrusions 12 of the adjacent plate 1. While cleaning the surface of the protrusions 12, this gas will also generate a layer of air film between the groove 11 and the protrusions 12. When the plate 1 falls due to gravity, the V-shaped groove slope of the slider 32 and the locking block 121 guides the two plates 1 to quickly approach each other. The air film can play a buffering role, effectively avoiding the violent impact of the two plates during the rapid approach, which would cause damage to the assembly surface and ensure the installation quality of the plate 1.
[0052] The remaining structure is the same as that in Example 1.
[0053] Example 3, referring to Figures 2-9 This is the third embodiment of the present invention, which differs from the second embodiment in that: Multiple connecting components are configured, and these multiple connecting components are arranged vertically. The connecting rod 31 extends vertically and is fixedly connected to the piston plate 311 of each connecting assembly; The gas generating component is located only in the bottommost connecting component.
[0054] During use, when multiple connecting components are used for installation, only one gas generating component is set up. After the gas generating component is triggered during installation, the connecting rod 31 fixes the piston plates 311 together, so that the multiple piston plates 311 move synchronously. This ensures that the multiple connecting components move synchronously. Through the above process, multiple sets of locking blocks 121 and sliders 32 are connected and retracted synchronously, making the process of the plates 1 approaching each other more smoothly. This makes the installation process coordinated and consistent, avoiding misalignment or jamming caused by multiple connecting components being out of sync, and ensuring stable operation of the installation process. At the same time, only one gas generating component is needed to drive all connecting components to work, which effectively reduces manufacturing costs.
[0055] The remaining structure is the same as that in Example 2.
[0056] Different technical features appearing in different embodiments can be combined to achieve beneficial effects. Those skilled in the art, based on a study of the drawings, specification, and claims, should be able to understand and implement other variations of the disclosed embodiments. In the claims, the term "comprising" does not exclude other means or steps; the indefinite article "a" does not exclude a plurality; the terms "first" and "second" are used to identify names rather than to indicate any particular order. No reference numerals in the claims should be construed as limiting the scope of protection. The functionality of multiple parts appearing in the claims can be implemented by a single hardware or software module. The appearance of certain technical features in different dependent claims does not mean that these technical features cannot be combined to achieve beneficial effects.
Claims
1. An integrated house wall panel that can be quickly installed, characterized in that: The plate includes a plate body, one side of which is provided with a groove, and the other side of which is provided with a protrusion adapted to the groove. A locking block is fixedly provided on the protrusion, and an installation groove is provided on the groove. A connecting component for engaging and locking with the locking block on an adjacent plate body is fixedly provided in the installation groove. The connecting assembly includes a mounting bracket and a slider slidably connected within the mounting bracket. Both the slider and the locking block are provided with mutually cooperating V-grooves. A screw with one end threaded into the slider is rotatably connected within the mounting bracket. The mounting bracket is slidably connected to a piston plate, and a gas generating assembly is disposed above the piston plate inside the mounting bracket. The mounting bracket is provided with a pressure relief channel communicating with the top of the piston plate. A connecting rod is fixed to the piston plate, and a support block supporting the ground is fixed to the bottom end of the connecting rod; A sealing plate for sealing the pressure relief channel is slidably connected inside the mounting frame. A permanent magnet is fixedly installed inside the sealing plate. A second iron block is fixed on the mounting frame above the permanent magnet. A slide is slidably connected inside the mounting bracket. A first iron block is fixedly installed on the top of the slide. The piston plate communicates with the chamber below the slide. When the slide moves, it drives the screw to rotate and pushes the sealing plate to open the pressure relief channel when it reaches the end.
2. The integrated house wall panel that can be quickly installed according to claim 1, characterized in that: A gear is coaxially fixed to the outside of the screw, and a rack that meshes with the gear is fixedly installed on the slide. The rack is located in the middle of the slide so that the rack does not mesh with the gear at the beginning of the slide.
3. The integrated house wall panel that can be quickly installed according to claim 1, characterized in that: The mounting bracket is provided with slots for accommodating the card blocks on adjacent plates.
4. The integrated house wall panel that can be quickly installed according to claim 1, characterized in that: The sealing plate has a T-shaped structure, and the vertical section of the sealing plate slides through the side wall of the pressure relief channel and extends to the top of the carriage.
5. The integrated house wall panel that can be quickly installed according to claim 1, characterized in that: A second spring is fixedly connected between the top of the sealing plate and the mounting bracket.
6. The integrated house wall panel that can be quickly installed according to claim 1, characterized in that: The plate body is provided with a gas channel communicating with the pressure relief channel, and the groove is provided with a plurality of nozzles communicating with the gas channel.
7. The integrated house wall panel that can be quickly installed according to claim 1, characterized in that: The gas generating assembly includes a storage box fixed on a mounting bracket, a diaphragm fixed in the middle of the storage box, water and an effervescent disintegrant placed on both sides of the diaphragm inside the storage box, and spikes for piercing the diaphragm slidably connected inside the storage box.
8. The integrated house wall panel that can be quickly installed according to claim 7, characterized in that: The top of the storage box is fixed with a waterproof and breathable membrane.
9. The integrated house wall panel that can be quickly installed according to claim 7, characterized in that: A pressing rod is slidably connected inside the plate. One end of the pressing rod is flush with the outer surface of the plate, and the other end of the pressing rod slides into the spike. A first spring is fixedly installed between the pressing rod and the plate.
10. The integrated house wall panel that can be quickly installed according to claim 1, characterized in that: The connecting components are configured as a plurality of components, and the plurality of connecting components are arranged in a vertical direction; The connecting rod extends vertically and is fixedly connected to the piston plate of each connecting assembly; The gas generating component is located only within the bottommost connecting component.