Green building system based on fabricated structure
By using the plug-in coordination between the mounting slot and wedge block in the green building system and fine-tuning the telescopic components and limiting mechanisms, the problems of slow installation progress, poor stability and difficult height adjustment of prefabricated green buildings are solved, and a fast, safe and flexible installation effect is achieved.
Patent Information
- Application Number
- CN202510517321.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-23
- Publication Date
- 2025-05-27
AI Technical Summary
The green buildings with existing prefabricated structures have problems such as slow installation progress, difficult disassembly and assembly, poor load-bearing safety, poor installation stability and inability to achieve height adjustment and buffering performance, resulting in long installation time, poor stability and great safety hazards of energy-saving equipment.
The plug-in and coordination of the positioning slot and wedge-shaped block, combined with fine-tuning telescopic components and limiting mechanisms, realize height adjustment and level adjustment of the green building system, ensuring the stable installation and safe use of energy-saving equipment.
It realizes the rapid installation and detachability of the green building system, ensures the safety and stability of the installation, and can achieve flexible adjustment of height and level, avoiding damage caused by vibration and inaccurate level of energy-saving equipment.
Smart Images

Figure CN120042382A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of prefabricated green buildings, and in particular to a green building system based on a prefabricated structure. Background Art
[0002] Green building refers to the maximum conservation of resources throughout the entire life cycle of the building, including energy saving, land saving, water saving, material saving, etc., protecting the environment and reducing pollution, providing people with healthy, comfortable and efficient use space, and buildings that coexist harmoniously with nature. Green building technology focuses on low consumption, high efficiency, economy, environmental protection, integration and optimization. It is a sharing of interests between man and nature, present and future. It is a construction means of sustainable development and also includes a green building system.
[0003] As in the prior art, the publication (announcement) number: CN215483768U discloses a prefabricated structure decoration integrated green building, which relates to the field of prefabricated green buildings to solve the problem that the existing installation frame has a poor installation effect on energy-saving devices. It includes a building wall and a partition fixedly connected to the surface of the building wall, a hanging plate is arranged between the building wall and the partition, and two groups of installation components for installing energy-saving devices are movably connected on the hanging plate, and a strip through hole is opened on the partition for the installation components to pass through.
[0004] The technical problems existing in the prior art are: 1. The use of bolts and screw holes for fixing slows down the installation of the prefabricated structure, resulting in long installation time and difficulty in disassembly and assembly; 2. Poor load-bearing safety leads to great limitations in use; 3. Poor installation stability leads to safety hazards during use; 4. It is impossible to achieve height adjustment and buffering performance, and the installation of energy-saving devices is damaged due to factors such as vibration and levelness.
[0005] For this purpose, it is necessary to provide a green building system based on prefabricated structure. Summary of the invention
[0006] In view of the problems existing in the above-mentioned prior art, the present invention provides a green building system based on an assembled structure, with the purpose of achieving the safety of the overall use of the green building system, quick installation, and detachable installation and sustainable recycling. The height adjustment of the assembled structure of the green building system is achieved by plugging and cooperating the second locking groove with the wedge block. The horizontal adjustment of the green building system assembly is achieved by the coordinated installation of the fine-tuning telescopic component and the limiting mechanism, thereby ensuring the horizontal installation platform of the energy-saving device.
[0007] In order to achieve the above-mentioned purpose, the present invention is implemented through the following technical solutions: a green building system based on an assembled structure, including a support platform 1, a support platform 2, and a clamping assembly, the upper part of the support platform 1 is set as a guide rail, a support block 1 is arranged circumferentially on the support platform, the bottom of the support platform 1 is set as the support platform 2, and the circumference of the support platform 2 is set as a buffer assembly 1, the buffer assembly 1 is movably installed with the support block 1, and a limiting groove 1 is symmetrically arranged on the same side surface of the support platform 1 and the support platform 2, and the internal sliding insertion of the limiting groove 1 A limiting block 1 is provided with a fixing plate 1 fixed on one side of the limiting block 1 facing the outside of the limiting groove 1, a bayonet 1 is provided at the top of one of the limiting grooves 1, the bayonet 1 extends to the inside of the limiting block 1 to form a coaxial bayonet, a pin plate 1 is plugged into the inside of the bayonet 1, the pin plate 1 extends to the inside of the limiting block 1, fixing plates 2 are symmetrically arranged on the surfaces of the limiting grooves 1 on both sides of the bayonet 1, a polygonal support rod is slidably installed on the fixing plate 2, a clamping plate 1 is arranged at the end of the polygonal support rod away from the fixing plate 2, and a clamping plate 1 is provided at the bottom of the clamping plate 1 to match the pin plate 1 The right-angle groove of the position is arranged, and the upper part of the clamping plate 1 is provided with a slope surface for the sliding installation of the pin plate 1, a spring 1 is sleeved on the polygonal support rod, and the spring 1 is installed between the clamping plate 1 and the fixing plate 2, the bottom of the support platform 2 is circumferentially arranged as a clamping component, and the bottom of the clamping component is plugged and installed with a support rod 2, and a height adjustment rod is arranged at the bottom of the support rod 2, and the end where the support rod 2 and the height adjustment rod are connected is symmetrically provided with a clamping groove 2, and the clamping groove 2 is plugged by a wedge block to fix the support rod 2 and the height adjustment rod, and the wedge-shaped The block is arranged in contact with the inner wall of the second card slot in the depth direction, one side of the second card slot is arranged with a limit block three, a plug-in slot two is coaxially arranged between the limit blocks three, a pin plate two is installed between the plug-in slots two, and the pin plate two is arranged in contact with the wedge block, a support plate three is arranged at the bottom of the support rod two, a circular baffle plate one is arranged circumferentially of the support plate three, a fine-tuning hole one is coaxially opened between the support rod two and the support plate three, a fine-tuning telescopic component is installed in the fine-tuning hole one, and the fine-tuning telescopic component fine-adjusts the height of the support rod two and is installed in a card slot with the circular baffle plate one.
[0008] Preferably, the buffer component 1 includes a fixed cylinder 1, a fixed cylinder 2, and a buffer spring. A fixed block 1 is arranged circumferentially on the support platform 2. The top of the fixed block 1 is provided with a mounting hole 1. A fixed cylinder 1 is clamped and installed on the top of the mounting hole 1. A fixed cylinder 2 is sleeved inside the fixed cylinder 1. A buffer spring is sleeved inside the fixed cylinder 2. The buffer spring is installed in contact between the mounting hole 1 and the fixed cylinder 2 to provide buffering protection for the energy-saving device installed on the support platform 1.
[0009] Preferably, the positioning assembly includes a socket kit, a positioning plate 1, and a support rod 3. The socket kit is circumferentially arranged on the bottom of the support platform 2, and the support rod 3 is arranged on the surface of the support platform 2 circumferentially of the socket kit. A positioning plate 1 is arranged on the bottom end of the support rod 3. A positioning opening 1 coaxially arranged with the socket kit is opened on the positioning plate 1, and a positioning opening 2 is circumferentially arranged at the bottom of the positioning opening 1. The top of the support rod 2 passes through the positioning opening 1 and is plugged into the inside of the socket kit, and a positioning block is circumferentially arranged on the top of the support rod 2, and the positioning block is plugged into the inside of the positioning opening 1.
[0010] Preferably, the fine-tuning telescopic assembly includes a fourth support plate, a column, a threaded plate, a rotating plate, and a limiting mechanism. The fourth support plate is arranged at the bottom of the third support plate, and a column is arranged on the upper part of the fourth support plate. The column is circumferentially provided with a threaded plate, and a rotating plate is installed on the external thread of the threaded plate. The limiting mechanism is evenly distributed on the upper part of the rotating plate. When the height of the height adjustment rod is fine-tuned, the column and the threaded plate are inserted into the inside of the fine-tuning hole one, and the rotating plate and the threaded plate are threadedly installed, so that the rotating plate and the support plate three are abutted and installed, so as to fix the fine-tuning telescopic assembly and the height adjustment rod, and the limiting mechanism and the circular baffle one are clamped and installed.
[0011] Preferably, the limiting mechanism includes a rotating shaft base 1 installed on the rotating plate, a spring column 1 installed on the rotating shaft base 1, a spring 3 is sleeved on the bottom of the spring column 1, a fixing cylinder 3 is sleeved on the outside of the spring 3, the spring 3 is abutted and installed between the fixing cylinder 3 and the spring column 1, and the outer side of the fixing cylinder 3 is connected to a limiting clamping plate 1 through a fixing rod. After the fixing cylinder 3 and the spring column 1 are telescopically lifted and adjusted, the limiting clamping plate 1 is clamped and installed with a circular baffle 1 to limit the threaded installation of the rotating plate.
[0012] Preferably, the middle portion of the support platform one is arranged as a groove one, and guide rails are symmetrically arranged on the groove one.
[0013] Preferably, the upper portion of the second supporting platform is surrounded by a fixing block to form a second groove, the first supporting platform is arranged in the second groove, and a shock-absorbing pad is arranged between the second groove and the first supporting platform.
[0014] Preferably, the cross-sectional structure of the second locking groove is configured as follows: the upper portion is an arc-shaped structure, and the lower portion is a rectangular structure.
[0015] In summary, the present invention provides a green building system based on a prefabricated structure, and the beneficial effects achieved by the present invention are: The patent of the present invention realizes the fixation between support platform one and support platform two, and adopts the method of symmetrically setting a limit groove one on the same side surface of support platform one and support platform two, the inner sliding insertion of limit block one in limit groove one, and a fixing plate one is fixed on the outer side of limit block one facing limit groove one, and the limiting installation of the limit block one by the fixing plate pair ensures that the two limit grooves one are fixed by the limit block pair.
[0016] The limit block 1 is fixedly installed inside the limit groove 1 through a pair of pin plates. When the pin plate 1 is inserted downward, the two side surfaces of the pin plate 1 are slidably installed with the slope surface on the clamping plate 1. As the pin plate 1 is inserted into place, the pin plate 1 is clamped inside the right-angle groove. Through the elastic action of the pair of springs on the clamping plate 1, the right-angle groove maintains the limit installation of the pin plate 1, ensuring that the pin plate 1 is fixedly installed in the bayonet 1, ensuring the fixed installation between the support platform 1 and the support platform 2, and realizing safe use and stable structural installation.
[0017] In order to realize the adjustable support height setting of the support platform one, a support rod two and a height adjustment rod are sequentially arranged at the bottom of the support platform one, a limit block three is arranged on one side of the positioning slot two, a plug-in slot two is coaxially arranged between the limit blocks three, a pin plate two is installed between the plug-in slots two, and the pin plate two is contacted with the wedge block to realize the plug-in installation of the pin plate two on the two limit blocks three, and the limited installation of the pin plate two further ensures the stability of the plug-in installation of the pin plate two.
[0018] In order to achieve the horizontal adjustment of support platform one, support rod two and support plate three are coaxially provided with fine-tuning hole one, and a fine-tuning telescopic component is plugged and installed in fine-tuning hole one. The fine-tuning telescopic component can be used to fine-tune the height of support rod two and to be installed in a snap-fitting manner with circular baffle one, so as to achieve the fine-tuning effect of the fine-tuning telescopic component and the snap-fitting installation of the fine-tuning telescopic component and circular baffle one, thereby achieving the horizontal adjustment of support platform one and the fixed installation of the fine-tuning telescopic component after fine-tuning, thereby improving the stability of the assembly and installation. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 is a schematic diagram of the green building system structure of the prefabricated structure of the present invention; Figure 2 It is a schematic diagram of the structure of the support platform 1 of the present invention, in which the support platform 2 is installed through the buffer assembly; Figure 3 The present invention Figure 2 Schematic diagram of the analytical structure of the installation of the limit slot 1 and the limit block 1 at A in the middle; Figure 4 The present invention Figure 3 A schematic diagram of the structure of the dissection of the pin plate 1 and the clamping plate 1 installed at B in the middle; Figure 5 It is a schematic diagram of the structure of the clamping assembly and the second support rod installed in the present invention; Figure 6 It is a schematic diagram of the structure of the installation of the second support rod and the height adjustment rod of the present invention; Figure 7 It is a structural schematic diagram of the clamping assembly of the present invention; Figure 8 It is a schematic diagram of the structure of the clamping assembly and the second support rod installed in the present invention; Fig. 9 It is a schematic diagram of the installation structure of the fine-tuning telescopic component and the height adjustment rod, and the limiting mechanism of the present invention; Fig.10 This is a schematic diagram of the structure of the fine-tuning hole 1 of the present invention; In the figure: support platform 1, support platform 2, height adjustment rod 3, support block 1, buffer assembly 1, limit slot 1, limit block 1, fixing plate 1, bayonet 1, pin plate 1, fixing plate 2, polygonal support rod 1, clamping plate 1, right angle slot 1, spring 1, positioning assembly 2, support rod 2, positioning slot 2, wedge block 2, limit block 3, plug-in slot 2, pin plate 2, support plate 3, circular baffle 1, fine-tuning hole 1 34, fine-tuning telescopic assembly 35, fixing tube 1 36, fixing tube 2 37, fixing block 1 41, mounting hole 1 42, socket kit 43, positioning plate 1 44, support rod 3 45, positioning port 1 46, positioning port 2 47, support plate 4 51, column 52, threaded plate 53, rotating plate 54, limiting mechanism 55, rotating shaft base 1 56, spring column 1 57, spring 3 61, fixing tube 3 62, limiting splint 1 63, groove 1 64, groove 2 65, buffer spring 66, positioning block 67. DETAILED DESCRIPTION
[0020] The present invention will be further described below in conjunction with the accompanying drawings.
[0021] like Figures 1 to 10 As shown: In order to solve the problems in the prior art, such as long installation time and great difficulty in assembly and disassembly; poor load-bearing safety; poor installation stability and inability to achieve height adjustment and buffering performance, resulting in technical problems such as damage to energy-saving devices due to vibration and horizontality; the present invention adopts a green building system based on an assembled structure, including a support platform 1, a support platform 2, and a positioning assembly 22, and the upper part of the support platform 1 is set as a guide rail.
[0022] The specific embodiment is as follows: the energy-saving device is installed on the guide rail from both sides of the width direction of the support platform 1, the upper part of the support platform 2 is arranged on the support platform 1, and the support platform 1 is circumferentially provided with a support block 4, and the structure of the support block 4 is preferably an "L"-shaped structure, and the support block 4 and the buffer component 5 arranged circumferentially with the support platform 2 are movably installed to ensure that the energy-saving device installed on the support platform 1 has a shock-absorbing and buffering effect; In order to strengthen the fixed relationship between the support platform 1 and the support platform 2, a limit groove 6 is symmetrically arranged on the same side surface of the support platform 1 and the support platform 2, and a limit block 7 is inserted into the inner side of the limit groove 6. A fixing plate 11 is fixed to the outer side of the limit block 7 facing the limit groove 6. The fixing plate 11 is used to limit the limit block 7, which ensures that the two limit grooves 6 are fixed by the limit block 7, thereby realizing the fixation between the support platform 1 and the support platform 2. In order to ensure that the limit block 7 is installed and fixed in the limit groove 6, it is preferred to open a bayonet 12 on the top surface of the limit groove 6 on the support platform 1, and the bayonet 12 extends to the inside of the limit block 7 to form a coaxial bayonet. A pin plate 13 is inserted into the inside of the bayonet 12, and the pin plate 13 extends to the inside of the limit block 7. The surface of the limit groove 6 on both sides of the bayonet 12 is symmetrically provided with a fixing plate 2 14, and a polygonal support rod 15 is slidably installed on the fixing plate 2 14. The polygonal support rod 15 is slidably installed on the fixing plate 2 14. A clamping plate 16 is provided at the end away from the fixing plate 14. A right-angle groove 17 is provided at the bottom of the clamping plate 16 to match the pin plate 13, and a slope surface is provided on the upper part of the clamping plate 16 for the pin plate 13 to be slidably installed. A spring 21 is sleeved on the polygonal support rod 15, and the spring 21 is installed between the clamping plate 16 and the fixing plate 14. When the pin plate 13 is inserted into the inside of the bayonet 12, the limit block 7 is fixedly installed in the limit groove 6 through the pin plate 13. When the pin plate 13 is inserted downward, the two side surfaces of the pin plate 13 are slidably installed with the slope surface on the clamping plate 16. As the pin plate 13 is inserted into place, the pin plate 13 is clamped in the inside of the right-angle groove 17. Through the elastic effect of the spring 21 on the clamping plate 16, the right-angle groove 17 maintains the limited installation of the pin plate 13, ensuring that the pin plate 13 is fixedly installed in the bayonet 12, ensuring the fixed installation between the support platform 1 and the support platform 2, and realizing safe use and stable structural installation.
[0023] In order to realize the adjustable support height of the support platform 1, a support rod 23 and a height adjustment rod 23 are sequentially arranged at the bottom of the support platform 1. The support rod 23 is installed at the bottom of the support platform 1 through a positioning assembly 22. A positioning groove 24 is symmetrically provided at the end where the support rod 23 and the height adjustment rod 23 are connected. A wedge block 25 is inserted between the positioning grooves 24 to fix the support rod 23 and the height adjustment rod 23. The wedge block 25 is in contact with the inner wall of the positioning groove 24 in the depth direction. The positioning groove 24 adopts a groove structure opened on one side to realize the wedge block 25 to be inserted into the positioning groove 24 from one side opening. The opening side of the positioning groove 24 adopts a closed structure: a limit block 3 26 is provided on one side of the positioning groove 24. A plug-in slot 27 is coaxially arranged between the limit blocks 3 26, and a pin plate 21 is installed between the plug-in slots 27, and the pin plate 21 is contacted with the wedge block 25. It should be specifically explained that the plug-in slot 27 located at the bottom is set with a top opening to realize the plug-in installation of the pin plate 21 on the two limit blocks 3 26, and the limited installation of the pin plate 21 further ensures the stability of the plug-in installation of the pin plate 21, and the pin plate 21 closes the open end of the clamping slot 24, and the pin plate 21 is contacted with the wedge block 25, so that the installation between the support rod 23 and the height adjustment rod 23 is stable, the safety of assembly and use is provided, and the installation is installed by the transfer clamping method, which improves the efficiency and assembly time, and realizes the design concept of green assembly. In order to achieve the horizontal adjustment of the support platform 1, a support plate 32 is arranged at the bottom of the support rod 23, and a circular baffle 1 33 is arranged circumferentially of the support plate 32. The support rod 23 and the support plate 32 are coaxially provided with a fine-tuning hole 34, and the fine-tuning hole 34 is plugged and installed with a fine-tuning telescopic component 35. The fine-tuning telescopic component 35 can fine-tune the height of the support rod 23 and is installed with the circular baffle 1 33 to achieve the fine-tuning effect of the fine-tuning telescopic component 35 and the locking installation of the fine-tuning telescopic component 35 with the circular baffle 1 33, thereby achieving the horizontal adjustment of the support platform 1 and the fixed installation of the fine-tuning telescopic component 35 after fine-tuning, thereby improving the stability of the assembly and installation.
[0024] In at least one embodiment, the buffer assembly 5 includes a fixed cylinder 1 36, a fixed cylinder 2 37, and a buffer spring 66. A fixed block 41 is arranged circumferentially on the support platform 2. The top of the fixed block 41 is provided with a mounting hole 42. The top of the mounting hole 42 is clamped and installed with the fixed cylinder 36. The fixed cylinder 2 37 is sleeved inside the fixed cylinder 1 36. The fixed cylinder 2 37 is sleeved inside the fixed cylinder 2 37. The buffer spring 66 is installed in contact between the mounting hole 42 and the fixed cylinder 2 37 to provide buffering protection for the energy-saving device installed on the support platform 1.
[0025] Specifically: a mounting hole 42 is provided at the top of the fixed block 41, a fixing cylinder 36 is clamped and installed at the top of the mounting hole 42, a buffer spring 66 is sleeved inside the mounting hole 42 and the fixing cylinder 36, the top end of the buffer spring 66 abuts against the top inner wall of the fixing cylinder 37, the fixing cylinder 37 is connected to the support block 4 in a detachable installation manner, preferably in a threaded installation manner; the fixing cylinder 37 limit sleeve is arranged inside the fixing cylinder 36 to realize the telescopic buffering of the fixing cylinder 36 and the fixing cylinder 37, so as to realize the shock-absorbing effect on the support platform 1 in cooperation with the shock-absorbing pad, so as to provide buffering protection for the energy-saving device; the installation method is detachable and reusable, and the installation is fast and convenient, thus realizing the operation method of green assembly.
[0026] In at least one embodiment, the positioning assembly 22 includes a socket kit 43, a positioning plate 1 44, and a support rod 3 45. The socket kit 43 is circumferentially arranged on the bottom circumference of the support platform 2, and the support rod 3 45 is arranged on the surface of the support platform 2 circumferentially of the socket kit 43. The bottom end of the support rod 3 45 is provided with a positioning plate 1 44. The positioning plate 1 44 is provided with a positioning opening 1 46 coaxially arranged with the socket kit 43, and the bottom circumferentially of the positioning opening 1 46 is provided with a positioning opening 2 47. The top of the support rod 23 passes through the positioning opening 1 46 and is plugged into the inside of the socket kit 43, and the top of the support rod 23 is circumferentially arranged with a positioning block 67, which is plugged into the inside of the positioning opening 1 46.
[0027] Specifically, the detachable manner between the support platform 2 and the support rod 23 and the structure of the stable installation are as follows: a socket kit 43 is arranged circumferentially at the bottom of the support platform 2. In order to ensure the stable installation of the socket kit 43, a support rod 3 45 is used to install a positioning plate 44 circumferentially at the socket kit 43. A positioning opening 46 coaxially arranged with the socket kit 43 is provided on the positioning plate 44. A positioning opening 46 is arranged circumferentially at the bottom of the positioning opening 46 as a positioning opening 47. The positioning opening 47 is provided with a groove structure with an opening on one side. The top of the support rod 23 passes through the positioning opening 46 and is plugged in for installation. A positioning block 67 is arranged inside the socket kit 43 and on the top circumference of the support rod 23, and the positioning block 67 is inserted into the inside of the positioning port 1 46; it is particularly noted that the socket kit 43, the positioning port 1 46, the positioning port 2 47, and the support rod 23 are all arranged as a rectangular structure, which realizes the limited installation of the support rod 23 and the socket kit 43 and the positioning plate 1 44, and the positioning block 67 is inserted into the inside of the positioning port 1 46, which further limits the fixed installation of the support rod 23, realizes the stable support installation of the support platform 1, and improves the overall safety of use.
[0028] In at least one embodiment, the fine-tuning telescopic assembly 35 includes a support plate four 51, a column 52, a threaded plate 53, a rotating plate 54, and a limiting mechanism 55. The support plate four 51 is arranged at the bottom of the support plate three 32, and the upper part of the support plate four 51 is provided with a column 52. The column 52 is circumferentially distributed with a threaded plate 53, and the external thread of the threaded plate 53 is installed with a rotating plate 54. The upper part of the rotating plate 54 is evenly distributed with a limiting mechanism 55. When the height of the height adjustment rod 3 is fine-tuned, the column 52 and the threaded plate 53 are inserted into the inside of the fine-tuning hole one 34, and the rotating plate 54 is threadedly installed with the threaded plate 53, so that the rotating plate 54 is installed in contact with the support plate three 32, so as to fix the fine-tuning telescopic assembly 35 and the height adjustment rod 3, and the limiting mechanism 55 is installed with the circular baffle one 33 for clamping.
[0029] In order to adjust the horizontality of the support platform 1, a fine-tuning telescopic component 35 is used to fine-tune the support platform 1. The specific adjustment method is: the column 52 and the threaded plate 53 are inserted into the inside of the fine-tuning hole 34, and the rotating plate 54 and the threaded plate 53 are threadedly installed to make the rotating plate 54 abut against the support plate 32. After the abutting installation is completed, the limiting mechanism 55 and the circular baffle 33 are used for positioning and fixing installation to achieve the fine-tuning telescopic component 35 and the rotating plate 54, thereby strengthening the stable support installation of the building system assembly.
[0030] In at least one embodiment, the limiting mechanism 55 includes a rotating shaft base 56 installed on the rotating plate 54, a spring column 57 is installed on the rotating shaft base 56, a spring three 61 is sleeved on the bottom of the spring column 57, a fixed cylinder three 62 is sleeved on the outside of the spring three 61, the spring three 61 is abutted and installed between the fixed cylinder three 62 and the spring column 57, and the outer side of the fixed cylinder three 62 is connected to the limiting clamping plate 63 through a fixing rod. After the fixed cylinder three 62 and the spring column 57 are telescopically lifted and adjusted, the limiting clamping plate 63 is clamped and installed with the circular baffle 33 to thread-limit the rotating plate 54.
[0031] In order to realize the locking installation of the limiting mechanism 55 and the circular baffle 33, the technical structure is adopted as follows: after the threaded installation of the rotating plate 54 and the threaded plate 53 is completed, the fixed cylinder three 62 is pulled up, and one side of the fixed cylinder three 62 is connected to the limiting clamping plate 63 through the fixing rod, and is rotated by the spring column 57 and the rotating shaft base 56. When the limiting clamping plate 63 rotates to the top of the circular baffle 33, the fixed cylinder three 62 is released, and the fixed cylinder three 62 is rebounded by the elastic action of the spring three 61, so that the limiting clamping plate 63 is locked on the inner side of the circular baffle 33, thereby realizing the locking installation of the limiting mechanism 55 and the circular baffle 33, limiting the threaded installation of the rotating plate 54 and the threaded plate 53, reinforcing the stable installation of the fine-tuning telescopic component 35, and improving the safety of the use of the building system.
[0032] In at least one embodiment, in order to achieve stable installation of the energy-saving device, a groove 64 is provided in the middle of the supporting platform 1, and guide rails are symmetrically provided on the groove 64.
[0033] In at least one embodiment, in order to achieve stable installation and shock-absorbing installation of support platform 1, a structure is adopted: the upper part of support platform 2 is surrounded by fixing block 41 to form groove 2 65, support platform 1 is arranged in groove 2 65, and a shock-absorbing pad is arranged between groove 2 65 and support platform 1.
[0034] In at least one embodiment, in order to achieve a stable installation of the second support rod 23 and the height adjustment rod 3 and to achieve quick installation, the cross-sectional structure of the second locking groove 24 is set to: an arc-shaped structure at the top and a rectangular structure at the bottom.
[0035] The embodiments of the present invention are only used to illustrate the present invention and do not constitute a limitation on the scope of the claims. Other substantially equivalent substitutes that can be thought of by those skilled in the art are all within the protection scope of the present invention.
Claims
1. A green building system based on prefabricated structure, characterized in that: The invention comprises a support platform 1 (1), a support platform 2 (2), and a positioning assembly (22), wherein the upper part of the support platform 1 (1) is arranged as a guide rail, a support block 1 (4) is arranged circumferentially on the support platform 1 (1), the bottom of the support platform 1 (1) is arranged as the support platform 2 (2), a buffer assembly 1 (5) is arranged circumferentially on the support platform 2 (2), the buffer assembly 1 (5) and the support block 1 (4) are movably installed, a limiting groove 1 (6) is symmetrically arranged on the same side surface of the support platform 1 (1) and the support platform 2 (2), a limiting block 1 (7) is slidably inserted inside the limiting groove 1 (6), a fixing plate 1 (11) is fixed on the side of the limiting block 1 (7) facing the outside of the limiting groove 1 (6), and the limiting groove 1 (6) located in one of the limiting grooves The top is provided with a bayonet 1 (12), the bayonet 1 (12) extends to the inside of the limit block 1 (7) to form a coaxial bayonet, the bayonet 1 (12) is plugged with a pin plate 1 (13), the pin plate 1 (13) extends to the inside of the limit block 1 (7), the limit groove 1 (6) on both sides of the bayonet 1 (12) is symmetrically provided with a fixing plate 2 (14), a polygonal support rod (15) is slidably mounted on the fixing plate 2 (14), a clamping plate 1 (16) is arranged at the end of the polygonal support rod (15) away from the fixing plate 2 (14), a right-angle groove (17) matching with the pin plate 1 (13) is arranged at the bottom of the clamping plate 1 (16), and a pin plate 1 (13) is provided on the upper part of the clamping plate 1 (16) for slidingly mounting the pin plate 1 (13) The slope surface is provided, a spring (21) is sleeved on the polygonal support rod (15), the spring (21) is installed between the clamping plate (16) and the fixing plate (14), the bottom of the supporting platform (2) is provided with a positioning assembly (22) in the circumferential direction, the bottom of the positioning assembly (22) is plugged with a supporting rod (23), the bottom of the supporting rod (23) is provided with a height adjustment rod (3), the end where the supporting rod (23) and the height adjustment rod (3) are connected is symmetrically provided with a positioning groove (24), the positioning groove (24) is plugged by a wedge block (25) to fix the supporting rod (23) and the height adjustment rod (3), and the wedge block (25) is provided to contact the inner wall of the positioning groove (24) in the depth direction. The second locking groove (24) is provided with a limit block (26) on one side, a plug-in groove (27) is coaxially arranged between the limit blocks (26), a pin plate (31) is installed between the plug-in grooves (27), and the pin plate (31) is arranged in contact with the wedge block (25), a support plate (32) is provided at the bottom of the second support rod (23), a circular baffle (33) is arranged in the circumferential direction of the support plate (32), a fine-tuning hole (34) is coaxially opened between the second support rod (23) and the support plate (32), a fine-tuning telescopic assembly (35) is installed in the fine-tuning hole (34), and the fine-tuning telescopic assembly (35) fine-adjusts the height of the second support rod (23) and is installed in a locking position with the circular baffle (33).
2. A green building system based on prefabricated structure according to claim 1, characterized in that: The buffer assembly 1 (5) comprises a fixing cylinder 1 (36), a fixing cylinder 2 (37), and a buffer spring (66). A fixing block 1 (41) is arranged in the circumference of the supporting platform 2 (2). The top of the fixing block 1 (41) is provided with a mounting hole 1 (42). The top of the mounting hole 1 (42) is clamped and mounted with the fixing cylinder 1 (36). The fixing cylinder 2 (37) is sleeved inside the fixing cylinder 1 (36). The fixing cylinder 2 (37) is sleeved inside the fixing cylinder 2 (37). The buffer spring (66) is installed in contact between the mounting hole 1 (42) and the fixing cylinder 2 (37) to provide buffer protection for the energy-saving device installed on the supporting platform 1 (1).
3. A green building system based on prefabricated structure according to claim 1, characterized in that: The locking assembly (22) comprises a socket set (43), a locking plate one (44), and a support rod three (45); the socket set (43) is arranged on the bottom circumference of the support platform two (2); the support rod three (45) is arranged on the surface of the support platform two (2) in the circumference of the socket set (43); the locking plate one (44) is arranged on the bottom end of the support rod three (45); the locking plate one (44) is provided with a locking opening one (46) coaxially arranged with the socket set (43); the bottom circumference of the locking opening one (46) is provided with a locking opening two (47); the top of the support rod two (23) passes through the locking opening one (46) and is plugged into the inside of the socket set (43); and the top of the support rod two (23) is provided with a locking block (67) in the circumference, and the locking block (67) is plugged into the inside of the locking opening one (46).
4. A green building system based on prefabricated structure according to claim 1, characterized in that: The fine-tuning telescopic assembly (35) comprises a support plate four (51), a column (52), a threaded plate (53), a rotating plate (54), and a limiting mechanism (55). The support plate four (51) is arranged at the bottom of the support plate three (32). The support plate four (51) is provided with a column (52) on the upper part of the support plate four (51). The column (52) is provided with threaded plates (53) distributed circumferentially. The rotating plate (54) is installed with external threads of the threaded plate (53). The limiting mechanism (55) is evenly distributed on the upper part of the rotating plate (54). When the height of the height adjustment rod (3) is fine-tuned, the column (52) and the threaded plate (53) are inserted into the interior of the fine-tuning hole one (34), the rotating plate (54) and the threaded plate (53) are installed with threads, and the rotating plate (54) and the support plate three (32) are installed in contact with each other, so that the fine-tuning telescopic assembly (35) and the height adjustment rod (3) are fixedly installed, and the limiting mechanism (55) and the circular baffle plate one (33) are installed in a clamping position.
5. A green building system based on prefabricated structure according to claim 4, characterized in that: The limiting mechanism (55) comprises a rotating shaft base (56) mounted on the rotating plate (54), a spring column (57) mounted on the rotating shaft base (56), a spring column (61) sleeved on the bottom of the spring column (57), a fixing cylinder (62) sleeved on the outside of the spring column (61), the spring column (61) being mounted in contact between the fixing cylinder (62) and the spring column (57), an outer side of the fixing cylinder (62) being connected to a limiting clamping plate (63) via a fixing rod, and the limiting clamping plate (63) is mounted to the circular baffle (33) after the fixing cylinder (62) and the spring column (57) are telescopically lifted and adjusted, so as to limit the threaded installation of the rotating plate (54).
6. A green building system based on prefabricated structure according to claim 1, characterized in that: The middle part of the support platform 1 (1) is provided with a groove 1 (64), and guide rails are symmetrically arranged on the groove 1 (64).
7. A green building system based on prefabricated structure according to claim 1, characterized in that: The upper part of the second supporting platform (2) is surrounded by the first fixing block (41) to form the second groove (65), the first supporting platform (1) is arranged in the second groove (65), and a shock-absorbing pad is arranged between the second groove (65) and the first supporting platform (1).
8. A green building system based on prefabricated structure according to claim 1, characterized in that: The cross-sectional structure of the second locking groove (24) is arranged as follows: the upper portion is an arc-shaped structure and the lower portion is a rectangular structure.
Citation Information
Patent Citations
Fabricated structure decoration integrated green building
CN215483768U