Passive ultra-low energy consumption sound insulation composite heat preservation external wall panel
Through the drive motor and lead screw system of passive ultra-low energy consumption, sound insulation composite insulation exterior wall panels, the external wall panels are easily installed and disassembled. Combined with high-strength fiber cement boards, sound insulation felts and vacuum insulation boards, the problem of poor insulation and sound insulation effect of lightweight wall panels is solved, and convenient installation and efficient sound insulation are achieved.
Patent Information
- Application Number
- CN202510994710.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-18
- Publication Date
- 2025-08-29
AI Technical Summary
While the existing lightweight concrete filled wall panels and light steel keel wall panels improve strength and load bearing capacity on the basis of lightweight, the heat insulation and sound insulation effect are poor, and the installation and disassembly are inconvenient.
Passive ultra-low energy consumption sound insulation composite heat insulation exterior wall panels are adopted to facilitate installation and disassembly of exterior wall panels through drive motors and lead screw systems, combining high-strength fiber cement boards, sound insulation felts and vacuum insulation boards to improve sound insulation and insulation effects, and fix the wall panels by rotating the motor and gear systems.
It improves the installation and disassembly of exterior wall panels, enhances sound insulation and thermal insulation performance, reduces the probability of damage to the positioning blocks by wall panel shaking and thermal expansion and contraction, and reduces construction time and material waste.
Smart Images

Figure CN120556643A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of building technology, and in particular to a passive ultra-low energy consumption sound insulation composite thermal insulation exterior wall panel. Background Art
[0002] At present, the development of traditional prefabricated concrete exterior wall panels has been restricted by problems such as heavy weight, high production and transportation costs, and high construction costs. With the development of modern industry, exterior wall panels can be prefabricated and lightweight in factories and installed and assembled on site, which can greatly save the on-site construction cycle and improve the construction quality and accuracy. At the same time, it reduces the intensity of on-site wet operations, which is beneficial to energy conservation and environmental protection. It can reduce on-site material waste to a certain extent and is suitable for large-scale promotion and application.
[0003] In existing technology, wall panel products are primarily divided into two categories. One is simple lightweight concrete-filled wall panels, primarily used for infill walls in frame structures. These panels utilize steam curing or natural cement foaming processes. To meet exterior wall strength requirements, they are typically designed to be thicker. Due to the poor shear strength of cement products, they are built with a double layer of steel mesh. The other is light steel frame wall panels, which utilize light steel studs as the primary load-bearing components of the wall. The stud gaps are filled with lightweight cement aggregate. To meet exterior wall strength requirements, this process typically requires a high steel content and employs thin-walled steel sections for lightweighting.
[0004] Regarding the above-mentioned related technologies, since only lightweight concrete-filled wall panels or light steel keels are used, the strength and bearing capacity of the wall panels can only be improved on the basis of lightweighting. Since metal materials have high conductivity, the heat insulation and sound insulation effects of the wall panels are poor, and the installation of wall panels usually uses welding rivets to fix the wall panels. The installation takes a long time, and the disassembly process is relatively cumbersome, and the installation and disassembly process is inconvenient. Summary of the Invention
[0005] In order to improve the convenience of installing and disassembling wall panels, the present application provides a passive ultra-low energy consumption sound insulation composite insulation exterior wall panel.
[0006] This application provides a passive ultra-low energy consumption sound insulation composite thermal insulation exterior wall panel, which adopts the following technical solutions: A passive ultra-low energy consumption sound insulation composite thermal insulation exterior wall panel, including an exterior wall panel assembly, the exterior wall panel assembly is used to insulate and soundproof the exterior wall, the exterior wall panel assembly is provided with a support on one side along the length direction, two support plates are fixedly provided on the upper end of the support, both support plates are arranged along the length direction of the support, a sliding groove is vertically provided on the upper end of the support, a driving motor is fixedly provided on the side of the support away from the exterior wall panel assembly, a screw is coaxially fixed to the output shaft of the driving motor, the screw is located in the sliding groove and is arranged along the length direction of the support, a sliding block is provided in the sliding groove, the sliding block is arranged along the width direction of the support, the screw passes through the sliding block, and the sliding block is arranged along the length direction of the support Material toggling mechanism, its both sides respectively have a cylinder pressure, and the cylinder pressure bar connects swing arm, and the swing arm end face has hook portion, and a bar passes position between the end of two swing arms and the hook portion.
[0007] By adopting the above technical solution, the exterior wall panel assembly is used to insulate and soundproof the exterior wall, and the support is used to support the exterior wall panel assembly. When the exterior wall panel assembly needs to be installed, the exterior wall panel assembly is first placed between the two clamping plates, and the driving motor drives the lead screw to rotate. The lead screw drives the two moving blocks to approach each other through the connecting piece, so that the clamping plates clamp the exterior wall panel assembly. At this time, the moving piece drives the clamping plate to slide along the length direction of the moving groove, and then lifts the exterior wall panel assembly to a specified height. At this time, the driving motor continues to rotate. Since the clamping plate is tightly fitted with the exterior wall panel assembly, the movement of the connecting piece is restricted, and the lead screw rotates. The connecting piece and the sliding block are made to slide in the sliding groove along the length direction of the lead screw, and then the exterior wall panel assembly is placed between the two support plates, and the exterior wall panel assembly is fit with the support plates. When the exterior wall panel assembly needs to be replaced, the drive motor rotates in the opposite direction, and the lead screw drives the connecting piece to rotate in the opposite direction. At this time, the two moving blocks move away from each other. When the moving block fits with the support plate, the support plate and the moving block cooperate to limit the connecting piece. At this time, the rotation of the lead screw drives the connecting piece and the sliding block to move in the direction away from the drive motor. When the sliding block moves, the push plate drives the exterior wall panel assembly to move, thereby improving the convenience of wall panel installation and disassembly.
[0008] Optionally, the connecting member includes a first guide plate and two second guide plates, the screw passes through the first guide plate, the first guide plate is rotatably connected to the sliding block and is threadedly connected to the screw, the two second guide plates are respectively rotatably connected to both sides of the first guide plate along the length direction, and the end of the second guide plate away from the first guide plate is vertically hinged to the moving block.
[0009] By adopting the above technical solution, when the splint is in contact with the exterior wall panel assembly and there is no pressure, the rotation of the lead screw drives the first guide plate to rotate, and the first guide plate and the second guide plate cooperate to drive the two moving blocks closer to each other. When the splint is tightly fitted with the exterior wall panel assembly, the rotation of the first guide plate is restricted. When the lead screw continues to rotate, the first guide plate moves along the length direction of the lead screw, thereby improving the convenience of clamping the exterior wall panel assembly and the convenience of moving the sliding block.
[0010] Optionally, the moving part includes a telescopic part, a guide rod, a slider and a limit block. The telescopic part is located in the moving groove and fixedly connected to the moving block. The output end of the telescopic part is vertically hinged to the guide rod. The slider is located above the guide rod and is slidingly connected to the moving block along the length direction of the moving groove. The slider is fixedly connected to the splint. The upper end of the guide rod is vertically hinged to the lower end of the slider. The guide rod is tilted from bottom to top in the direction of the sliding block pointing to the driving motor. The side of the slider close to the driving motor is fixedly connected to the limit block, and the sides of the slider and the limit block away from each other are both in contact with the moving block.
[0011] By adopting the above technical solution, when the plywood clamps the exterior wall panel assembly, the telescopic part extends, and the limit block limits the displacement of the slider. The telescopic part drives the slider to move vertically through the guide rod, and the limit block limits the movement of the slider. When the upper end of the slider is in contact with the moving block, the telescopic part continues to extend, and the guide rod drives the slider to slide along the length direction of the support, so that the support supports the exterior wall panel assembly, thereby improving the convenience of lifting and moving the exterior wall panel.
[0012] Optionally, the exterior wall panel assembly includes two high-strength fiber cement boards and sound insulation felt, the sound insulation felt is located between the two high-strength fiber cement boards, and the high-strength fiber cement boards and the sound insulation felt are both arranged along the length direction of the support.
[0013] By adopting the above technical solution, high-strength fiber cement boards are used to reduce the damage to the exterior wall panels caused by external changes, and sound insulation felt is used to block the transmission of external noise into the interior, thereby improving the sound insulation effect of the exterior wall panels.
[0014] Optionally, the exterior wall panel assembly further includes two vacuum insulation panels, which are respectively located on both sides of the sound insulation felt close to the high-strength fiber cement board, and the vacuum insulation panels are respectively fixedly connected to the high-strength fiber cement board and the sound insulation felt on both sides along the thickness direction.
[0015] By adopting the above technical solution, the vacuum insulation panel is helpful to reduce the probability of indoor temperature diffusing to the outside and outdoor temperature diffusing to the indoor, thereby improving the thermal insulation effect of the exterior wall panel.
[0016] Optionally, a rotating motor and several support blocks are fixed on one side in the width direction of the upper end portion of the support, the rotating motor is arranged along the length direction of the support, and a first gear is coaxially fixed to the output shaft of the rotating motor. Several support blocks are arranged along the length direction of the support and are located between the rotating motor and the support plate. A rotating shaft is provided on the side of the upper end portion of the support close to the rotating motor, the rotating shaft passes through the support block and is rotatably connected to the support block, a second gear is coaxially fixed on the side of the rotating shaft close to the rotating motor, the first gear and the second gear are meshed, and a rotating shaft sleeve is provided with several positioning blocks, and the several positioning blocks are located between the two support blocks. The high-strength fiber cement board close to the rotating motor is provided with several positioning grooves, and the several positioning grooves are arranged along the length direction of the support and are located on the side of the high-strength fiber cement board close to the rotating motor, and the positioning grooves are opposite to the positioning blocks.
[0017] By adopting the above technical solution, when the exterior wall panel assembly is completely located between the two support plates, the support block supports the rotating shaft, the rotating motor rotates, the first gear and the second gear cooperate to drive the rotating shaft to rotate, and the rotating shaft drives the positioning block to rotate, so that the end of the positioning block away from the rotating shaft is located in the positioning groove, thereby fixing the exterior wall panel assembly, which is beneficial to reduce the probability of shaking of the exterior wall panel.
[0018] Optionally, a plurality of limit grooves are provided along the length direction of the rotating shaft, and the limit grooves correspond one-to-one with the positioning blocks and are directly opposite to the positioning blocks. Two elastic members are provided in the limit grooves, and the two elastic members are respectively located on both sides of the positioning blocks along the length direction of the support. The two ends of the elastic members along the length direction are fixedly connected to the positioning blocks and the rotating shaft respectively.
[0019] By adopting the above technical solution, when the high-strength fiber cement board expands and contracts due to thermal expansion and contraction, the position of the positioning groove will be offset, and the high-strength fiber cement board will drive the positioning block to slide in the positioning groove. The two elastic parts cooperate to support and limit the positioning block, which is beneficial to reduce the probability of damage to the positioning block due to thermal expansion and contraction of the high-strength fiber cement board.
[0020] Optionally, a rotating plate is provided on the side of the support away from the driving motor, and a connecting block is provided on the side of the support close to the rotating plate. The connecting block is slidably connected to the support along the width direction of the support, the connecting block is located below the rotating plate, and a spring damper is provided between the connecting block and the rotating plate. The two ends of the spring damper are vertically hinged to the connecting block and the rotating plate respectively, and the spring damper is inclined from bottom to top along the direction of the driving motor pointing to the rotating plate. A storage groove is provided on the side of the support close to the rotating plate, and the storage groove is located on one side of the support along the width direction. A connecting plate is fixedly provided on the side of the support close to the rotating plate, and the connecting plate is located on the side of the support close to the storage groove. A telescopic cylinder is fixedly provided on the side of the connecting plate close to the rotating plate, and the telescopic cylinder is arranged perpendicular to the connecting plate. The telescopic cylinder passes through the rotating plate, and the rotating plate is rotatably connected to the telescopic cylinder.
[0021] By adopting the above technical solution, in the initial state, the turn plate, spring damper and connecting block are all located in the storage groove. When the exterior wall panel assembly needs to be taken out, the connecting plate supports the telescopic cylinder, the turn plate flips along the telescopic cylinder, the turn plate is moved horizontally, and the telescopic cylinder is extended, so that the turn plate and the connecting block are both located on the side of the support away from the drive motor. When the exterior wall panel assembly is completely separated from the support plate, the exterior wall panel assembly squeezes the turn plate and flips the turn plate. When the turn plate flips, the turn plate squeezes the spring damper, so that the exterior wall panel assembly slowly tilts and contacts the ground, which is beneficial to reduce the impact of the exterior wall panel assembly on the ground when it is disassembled.
[0022] In summary, this application includes at least one of the following beneficial technical effects: When the sliding block moves, the push plate drives the outer wall panel assembly to move, thereby improving the convenience of wall panel installation and disassembly; 2. When the clamping plate is in contact with the exterior wall panel assembly and there is no pressure, the screw rotates to drive the first guide plate to rotate. The first guide plate and the second guide plate cooperate to drive the two moving blocks closer to each other. When the clamping plate and the exterior wall panel assembly are tightly fitted, the rotation of the first guide plate is restricted. When the screw continues to rotate, the first guide plate moves along the length of the screw, improving the convenience of clamping the exterior wall panel assembly and the convenience of moving the sliding block; 3. When the plywood clamps the exterior wall panel assembly, the telescopic part extends and the limit block limits the displacement of the slider. The telescopic part drives the slider to move vertically through the guide rod, and the limit block limits the movement of the slider. When the upper end of the slider is in contact with the moving block, the telescopic part continues to extend and the guide rod drives the slider to slide along the length direction of the support, so that the support supports the exterior wall panel assembly, thereby improving the convenience of lifting and moving the exterior wall panels. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1It is a schematic diagram of the overall structure of a passive ultra-low energy consumption sound insulation composite insulation exterior wall panel.
[0024] Figure 2 yes Figure 1 Enlarged schematic diagram of part A.
[0025] Figure 3 This is a schematic diagram intended to highlight the internal structure of the support.
[0026] Figure 4 This is a schematic diagram intended to highlight the structure of the connector.
[0027] Figure 5 This is a diagram intended to highlight the internal structure of the moving block.
[0028] Figure 6 This is a schematic diagram intended to highlight the connection between the shaft and the positioning block.
[0029] Figure 7 This is a schematic diagram intended to highlight the positional relationship between the transfer plate and the connecting block.
[0030] Explanation of the accompanying drawings: 1. Exterior wall panel assembly; 11. High-strength fiber cement board; 12. Sound insulation felt; 13. Vacuum insulation panel; 2. Support; 21. Support plate; 22. Sliding groove; 23. Drive motor; 24. Screw; 25. Sliding block; 26. Moving block; 27. Moving groove; 28. Clamp; 29. Push plate; 3. Connecting member; 31. First guide plate; 32. Second guide plate; 4. Moving member; 41. Telescopic member; 42. Guide rod; 43. Sliding block; 44. Limiting block; 5. Rotating motor; 51. Support block; 52. First gear; 53. Rotating shaft; 54. Second gear; 55. Positioning block; 56. Positioning groove; 57. Limiting groove; 58. Elastic member; 6. Rotating plate; 61. Spring damper; 62. Connecting block; 63. Storage groove; 64. Connecting plate; 65. Telescopic cylinder. DETAILED DESCRIPTION
[0031] The present application is further described in detail below in conjunction with all the accompanying drawings.
[0032] The embodiment of the present application discloses a passive ultra-low energy consumption sound insulation composite thermal insulation exterior wall panel. Example
[0033] Reference Figure 1 and Figure 2A passive ultra-low energy consumption sound-insulating composite thermal insulation exterior wall panel includes an exterior wall panel assembly 1, which is used to insulate and soundproof the exterior wall. The exterior wall panel assembly 1 includes two high-strength fiber cement boards 11, two vacuum insulation panels 13, and sound insulation felt 12. The sound insulation felt 12 is located between the two high-strength fiber cement boards 11. The two vacuum insulation panels 13 are respectively located on both sides of the sound insulation felt 12 close to the high-strength fiber cement boards 11. The vacuum insulation panels 13 are fixedly connected to the high-strength fiber cement boards 11 and the sound insulation felt 12 on both sides along the thickness direction. The high-strength fiber cement boards 11 are used to reduce the damage to the exterior wall panels caused by external changes. The sound insulation felt 12 is used to block the effect of external noise being transmitted into the room. The vacuum insulation panels 13 are conducive to reducing the probability of indoor temperature diffusing to the outside and outdoor temperature diffusing to the indoor, thereby improving the thermal insulation and sound insulation effects of the exterior wall panels.
[0034] Reference Figure 3 The exterior wall panel assembly 1 is provided with a support 2 along one side of its length. The support 2 is used to support the exterior wall panel assembly 1. Two support plates 21 are fixedly mounted on the upper end of the support 2. Both support plates 21 are arranged along the length of the support 2. The exterior wall panel assembly 1 is located between the two support plates 21. The two support plates 21 cooperate to limit the position of the exterior wall panel assembly 1. A sliding groove 22 is vertically defined on the upper end of the support 2. A drive motor 23 is fixedly mounted on the side of the support 2 away from the sound insulation felt 12. A screw 24 is coaxially fixed to the output shaft of the drive motor 23. The screw 24 is located within the sliding groove 22 and is arranged along the length of the support 2. The drive motor 23 drives the screw 24 to rotate.
[0035] Reference Figure 3 and Figure 4 The two movable blocks 26 are respectively located on both sides of the sliding block 25 along the length direction and are slidably connected to the sliding block 25 along the length direction of the sliding block 25. A connecting piece 3 is provided between the two movable blocks 26, and the screw 24 passes through the connecting piece 3. A clamping plate 28 is provided on the side close to the two movable blocks 26. The clamping plate 28 is arranged along the length direction of the support 2 and is slidably connected to the movable block 26. When the exterior wall panel assembly 1 needs to be installed, the exterior wall panel assembly 1 is first placed between the two clamping plates 28, and the driving motor 23 drives the screw 24 to rotate. The screw 24 drives the two movable blocks 26 to approach each other through the connecting piece 3, so that the clamping plate 28 clamps the exterior wall panel assembly 1.
[0036] Reference Figure 5The two moving blocks 26 are each provided with a moving groove 27 on the side where they are close to each other. A moving member 4 is provided in the moving groove 27. The moving member 4 is used to drive the clamping plate 28 to slide along the length direction of the moving groove 27. The moving member 4 includes a telescopic member 41, a guide rod 42, a slider 43, and a limit block 44. The slider 43 is located in the moving groove 27 and is slidably connected to the moving block 26 along the length direction of the moving groove 27. The slider 43 is fixedly connected to the clamping plate 28. The movement of the slider 43 drives the clamping plate 28 to move.
[0037] Reference Figure 5 When the upper end of the slider 43 is in contact with the moving block 26, the telescopic member 41 is extended, and the limit block 44 limits the displacement of the slider 43. The telescopic member 41 drives the slider 43 to move vertically through the guide rod 42, and the limit block 44 limits the movement of the slider 43. When the upper end of the slider 43 is in contact with the moving block 26, the telescopic member 41 continues to extend, and the guide rod 42 drives the slider 43 to slide along the length direction of the support 2, so that the support 2 supports the outer wall panel assembly 1.
[0038] Reference Figure 4 The connecting member 3 includes a first guide plate 31 and two second guide plates 32. The screw 24 passes through the first guide plate 31. The first guide plate 31 is rotatably connected to the sliding block 25 and is threadedly connected to the screw 24. The two second guide plates 32 are rotatably connected to both sides of the first guide plate 31 along the length direction. The end of the second guide plate 32 away from the first guide plate 31 is vertically hinged to the moving block 26. When the clamping plate 28 is in contact with the exterior wall panel assembly 1 and there is no pressure, the screw 24 rotates to drive the first guide plate 31 to rotate, and the first guide plate 31 and the second guide plate 32 are matched. The two moving blocks 26 are driven together to move closer to each other to clamp the exterior wall panel assembly 1. When the exterior wall panel assembly 1 is located above the support 2, the drive motor 23 continues to rotate. When the clamping plate 28 is tightly fitted with the exterior wall panel assembly 1, the rotation of the first guide plate 31 is restricted. When the screw 24 continues to rotate, the first guide plate 31 moves along the length direction of the screw 24, thereby driving the sliding block 25 to slide in the sliding groove 22, placing the exterior wall panel assembly 1 between the two support plates 21, and making the exterior wall panel assembly 1 fit with the support plate 21, thereby improving the convenience of exterior wall panel installation.
[0039] Reference Figure 3A rotating motor 5 is fixedly mounted on one side of the upper end of the support 2 along the width direction. The rotating motor 5 is arranged along the length direction of the support 2. A first gear 52 is coaxially fixed to the output shaft of the rotating motor 5. The rotating motor 5 drives the first gear 52 to rotate. A plurality of support blocks 51 are fixedly mounted on the side of the upper end of the support 2 near the rotating motor 5. The plurality of support blocks 51 are arranged along the length direction of the support 2 and are located between the rotating motor 5 and the support plate 21. A rotating shaft 53 is provided on the side of the upper end of the support 2 near the rotating motor 5. The rotating shaft 53 passes through the support block 51 and is rotatably connected to the support block 51. The support block 51 supports the rotating shaft 53. A second gear 54 is coaxially fixed to the side of the rotating shaft 53 near the rotating motor 5. The first gear 52 and the second gear 54 mesh with each other. When the exterior wall panel assembly 1 is completely located between the two support plates 21, the rotating motor 5 rotates, and the first gear 52 and the second gear 54 cooperate to drive the rotating shaft 53 to rotate.
[0040] Reference Figure 1 and Figure 3 The rotating shaft 53 is provided with a plurality of positioning blocks 55, and the plurality of positioning blocks 55 are located between the two supporting blocks 51. The high-strength fiber cement board 11 near the rotating motor 5 is provided with a plurality of positioning grooves 56. The plurality of positioning grooves 56 are arranged along the length direction of the support 2 and are located on the side of the high-strength fiber cement board 11 near the rotating motor 5. The positioning grooves 56 are opposite to the positioning blocks 55. The rotating shaft 53 drives the positioning blocks 55 to rotate so that the end of the positioning blocks 55 away from the rotating shaft 53 is located in the positioning groove 56, thereby fixing the exterior wall panel assembly 1, which is beneficial to reduce the probability of shaking of the exterior wall panel.
[0041] Reference Figure 6 The rotating shaft 53 is provided with a plurality of limiting grooves 57 along the length direction. The limiting grooves 57 correspond to the positioning blocks 55 one by one and are directly opposite to the positioning blocks 55. Two elastic members 58 are provided in the limiting grooves 57. The two elastic members 58 are respectively located on both sides of the positioning blocks 55 along the length direction of the support 2. The two ends of the elastic member 58 along the length direction are fixedly connected to the positioning blocks 55 and the rotating shaft 53 respectively. When the high-strength fiber cement board 11 expands and contracts with heat, the position of the positioning groove 56 will be offset. The high-strength fiber cement board 11 drives the positioning block 55 to slide in the positioning groove 56. The two elastic members 58 cooperate to support and limit the positioning block 55, which is beneficial to reduce the probability of damage to the positioning block 55 caused by the thermal expansion and contraction of the high-strength fiber cement board 11.
[0042] Reference Figure 4A push plate 29 is vertically fixed to the upper end of the sliding block 25. When the exterior wall panel assembly 1 needs to be replaced, the drive motor 23 rotates in the opposite direction, and the lead screw 24 drives the connecting member 3 to rotate in the opposite direction. At this time, the two moving blocks 26 move away from each other. When the moving block 26 is in contact with the support plate 21, the support plate 21 and the moving block 26 cooperate to limit the connecting member 3. At this time, the lead screw 24 rotates to drive the connecting member 3 and the sliding block 25 to move in the direction away from the drive motor 23. When the sliding block 25 moves, the push plate 29 drives the exterior wall panel assembly 1 to move, thereby improving the convenience of disassembly of the exterior wall panel.
[0043] Reference Figure 7 A receiving groove 63 is provided on the side of the support 2 close to the rotating plate 6. The receiving groove 63 is located on one side of the support 2 along the width direction. A connecting plate 64 is fixedly provided on the side of the support 2 close to the rotating plate 6. The connecting plate 64 is located on the side of the support 2 close to the receiving groove 63. A telescopic cylinder 65 is fixedly provided on the side of the connecting plate 64 close to the rotating plate 6. A rotating plate 6 is provided on the side of the support 2 away from the driving motor 23. The telescopic cylinder 65 passes through the rotating plate 6. The rotating plate 6 is rotatably connected to the telescopic cylinder 65. In the initial state, the rotating plate 6 is located in the receiving groove 63, the connecting plate 64 supports the telescopic cylinder 65, and the telescopic cylinder 65 supports the rotating plate 6.
[0044] Reference Figure 7 , a connecting block 62 is provided on one side of the support 2 close to the rotating plate 6, and the connecting block 62 is slidably connected to the support 2 along the width direction of the support 2. The connecting block 62 is located below the rotating plate 6, and a spring damper 61 is provided between the connecting block 62 and the rotating plate 6. The two ends of the spring damper 61 are respectively vertically hinged to the connecting block 62 and the rotating plate 6. The spring damper 61 is tilted from bottom to top along the direction of the driving motor 23 pointing to the rotating plate 6. In the initial state, the rotating plate 6, the spring damper 61 and the connecting block 62 are all located in the storage groove 63. When the exterior wall panel assembly 1 needs to be taken out, When the outer wall panel assembly 1 is completely separated from the support plate 21, the outer wall panel assembly 1 squeezes the turn plate 6 and causes the turn plate 6 to flip over. When the turn plate 6 flips over, the turn plate 6 squeezes the spring damper 61, causing the outer wall panel assembly 1 to slowly tilt and contact the ground, which helps to reduce the impact of the outer wall panel assembly 1 on the ground when it is disassembled.
[0045] The implementation principle of a passive ultra-low energy consumption sound-insulating composite thermal insulation exterior wall panel in the embodiment of the present application is as follows: the sound insulation felt 12 is used to block the effect of external noise being transmitted into the room, and the vacuum insulation panel 13 is conducive to reducing the probability of the indoor temperature diffusing to the outside and the outdoor temperature diffusing into the room. When the exterior wall panel assembly 1 needs to be installed, the exterior wall panel assembly 1 is located between the two clamping plates 28, and the driving motor 23 and the lead screw 24 cooperate to drive the first guide plate 31 to rotate, and the first guide plate 31 and the second guide plate 32 cooperate to drive the two moving blocks 26 to approach each other, so that the clamping plates 28 clamp the exterior wall panel assembly 1, and the moving part 4 drives the clamping plates 28 to slide along the length direction of the moving groove 27, thereby lifting the exterior wall panel assembly 1 to a specified height. At this time, the driving motor 23 continues to rotate. The rotation of the first guide plate 31 is restricted. When the screw 24 continues to rotate, the first guide plate 31 moves along the length direction of the screw 24, placing the exterior wall panel assembly 1 between the two support plates 21, and making the exterior wall panel assembly 1 fit with the support plates 21. When the exterior wall panel assembly 1 needs to be replaced, the drive motor 23 rotates in the opposite direction, and the screw 24 drives the connecting member 3 to rotate in the opposite direction. At this time, the two moving blocks 26 move away from each other. When the moving block 26 fits with the support plate 21, the support plate 21 and the moving block 26 cooperate to limit the connecting member 3. At this time, the screw 24 rotates to drive the connecting member 3 and the sliding block 25 to move in the direction away from the drive motor 23. When the sliding block 25 moves, the push plate 29 drives the exterior wall panel assembly 1 to move, thereby improving the convenience of wall panel installation and disassembly.
[0046] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.
Claims
1. A passive ultra-low energy consumption sound insulation composite thermal insulation exterior wall panel, comprising an exterior wall panel assembly (1), the exterior wall panel assembly (1) being used for thermal insulation and sound insulation of an exterior wall, characterized in that: The exterior wall panel assembly (1) is provided with a support (2) on one side along the length direction, two support plates (21) are fixedly provided on the upper end of the support (2), and the two support plates (21) are both arranged along the length direction of the support (2). A sliding groove (22) is vertically opened on the upper end of the support (2), and a driving motor (23) is fixedly provided on the side of the support (2) away from the exterior wall panel assembly (1). A lead screw (24) is coaxially fixed to the output shaft of the driving motor (23), and the lead screw (24) is located in the sliding groove (22) and is arranged along the length direction of the support (2). A sliding block (25) is provided in the sliding groove (22), and the sliding block (25) is arranged along the width direction of the support (2). The lead screw (24) passes through the sliding block (25), and the sliding block (25) is slidably connected to the support (2) along the length direction of the support (2) and is rotatably connected to the lead screw (24). Two moving blocks (26) are provided on the side away from the driving motor (23). The two moving blocks (26) are respectively located on both sides of the sliding block (25) along the length direction and are slidably connected to the sliding block (25) along the length direction of the sliding block (25). A connecting piece (3) is provided between the two moving blocks (26). The lead screw (24) passes through the connecting piece (3). A moving groove (27) is provided on the side where the two moving blocks (26) are close to each other. A clamping plate (28) is provided on the side where the two moving blocks (26) are close to each other. The clamping plate (28) is arranged along the length direction of the support (2) and is slidably connected to the moving block (26). A moving piece (4) is provided in the moving groove (27). The moving piece (4) is used to drive the clamping plate (28) to slide along the length direction of the moving groove (27). A push plate (29) is fixed vertically on the upper end of the sliding block (25).
2. The passive ultra-low energy consumption sound insulation composite thermal insulation exterior wall panel according to claim 1, characterized in that: The connecting member (3) comprises a first guide plate (31) and two second guide plates (32). The lead screw (24) passes through the first guide plate (31). The first guide plate (31) is rotatably connected to the sliding block (25) and is threadedly connected to the lead screw (24). The two second guide plates (32) are rotatably connected to both sides of the first guide plate (31) along the length direction. One end of the second guide plate (32) away from the first guide plate (31) is vertically hinged to the moving block (26).
3. The passive ultra-low energy consumption sound insulation composite thermal insulation exterior wall panel according to claim 1, characterized in that: The movable member (4) comprises a telescopic member (41), a guide rod (42), a slider (43) and a limit block (44); the telescopic member (41) is located in the movable groove (27) and fixedly connected to the movable block (26); the output end of the telescopic member (41) is vertically hinged to the guide rod (42); the slider (43) is located above the guide rod (42) and is slidably connected to the movable block (26) along the length direction of the movable groove (27); the slider (43) is fixedly connected to the clamping plate (28); the upper end of the guide rod (42) is vertically hinged to the lower end of the slider (43); the guide rod (42) is tilted from bottom to top along the direction of the sliding block (25) pointing to the driving motor (23); the side of the slider (43) close to the driving motor (23) is fixedly connected to the limit block (44); the sides of the slider (43) and the limit block (44) away from each other are both in contact with the movable block (26).
4. The passive ultra-low energy consumption sound insulation composite thermal insulation exterior wall panel according to claim 1, characterized in that: The exterior wall panel assembly (1) comprises two high-strength fiber cement boards (11) and a sound insulation felt (12), wherein the sound insulation felt (12) is located between the two high-strength fiber cement boards (11), and the high-strength fiber cement boards (11) and the sound insulation felt (12) are both arranged along the length direction of the support (2).
5. The passive ultra-low energy consumption sound insulation composite thermal insulation exterior wall panel according to claim 4, characterized in that: The exterior wall panel assembly (1) further comprises two vacuum insulation panels (13), the two vacuum insulation panels (13) being respectively located on both sides of the sound insulation felt (12) close to the high-strength fiber cement board (11), and the two sides of the vacuum insulation panel (13) along the thickness direction being respectively fixedly connected to the high-strength fiber cement board (11) and the sound insulation felt (12).
6. The passive ultra-low energy consumption sound insulation composite thermal insulation exterior wall panel according to claim 4, characterized in that: A rotating motor (5) and a plurality of support blocks (51) are fixedly provided on one side of the width direction of the upper end of the support (2). The rotating motor (5) is arranged along the length direction of the support (2). The output shaft of the rotating motor (5) is coaxially fixed with a first gear (52). The plurality of support blocks (51) are arranged along the length direction of the support (2) and are located between the rotating motor (5) and the support plate (21). A rotating shaft (53) is provided on one side of the upper end of the support (2) close to the rotating motor (5). The rotating shaft (53) passes through the support block (51) and is rotatably connected to the support block (51). The rotating shaft (53) is close to the support block (51). A second gear (54) is coaxially fixed on one side near the rotating motor (5), the first gear (52) and the second gear (54) are meshed, a rotating shaft (53) is sleeved with a plurality of positioning blocks (55), the plurality of positioning blocks (55) are located between the two supporting blocks (51), a high-strength fiber cement board (11) near the rotating motor (5) is provided with a plurality of positioning grooves (56), the plurality of positioning grooves (56) are arranged along the length direction of the support (2), and are located on one side of the high-strength fiber cement board (11) near the rotating motor (5), and the positioning grooves (56) are directly opposite to the positioning blocks (55).
7. The passive ultra-low energy consumption sound insulation composite thermal insulation exterior wall panel according to claim 6, characterized in that: The rotating shaft (53) is provided with a plurality of limiting grooves (57) along the length direction. The limiting grooves (57) correspond to the positioning blocks (55) one by one and are directly opposite to the positioning blocks (55). Two elastic members (58) are provided in the limiting grooves (57). The two elastic members (58) are respectively located on both sides of the positioning blocks (55) along the length direction of the support (2). The two ends of the elastic members (58) along the length direction are respectively fixedly connected to the positioning blocks (55) and the rotating shaft (53).
8. The passive ultra-low energy consumption sound insulation composite thermal insulation exterior wall panel according to claim 1, characterized in that: A rotating plate (6) is provided on the side of the support (2) away from the driving motor (23), and a connecting block (62) is provided on the side of the support (2) close to the rotating plate (6). The connecting block (62) is slidably connected to the support (2) along the width direction of the support (2). The connecting block (62) is located below the rotating plate (6). A spring damper (61) is provided between the connecting block (62) and the rotating plate (6). The two ends of the spring damper (61) are respectively hinged to the connecting block (62) and the rotating plate (6) in a vertical direction. The spring damper (61) is arranged from bottom to top along the driving motor (23) toward the rotating plate (6). The support (2) is tilted in the direction, a receiving groove (63) is provided on one side of the support (2) close to the rotating plate (6), the receiving groove (63) is located on one side of the support (2) along the width direction, a connecting plate (64) is fixedly provided on one side of the support (2) close to the rotating plate (6), the connecting plate (64) is located on one side of the support (2) close to the receiving groove (63), a telescopic cylinder (65) is fixedly provided on one side of the connecting plate (64) close to the rotating plate (6), the telescopic cylinder (65) is arranged perpendicular to the connecting plate (64), the telescopic cylinder (65) passes through the rotating plate (6), and the rotating plate (6) is rotatably connected to the telescopic cylinder (65).