Adaptive deformation acrylic building and construction method thereof

Through the one-piece molded acrylic interior and exterior wall panels, combined with the adaptive deformation design of the side push rods and flexible panels, the transmittance and waterproofing problems of high-transmittance buildings are solved, the building's aesthetics and structural stability are improved, and the deadweight and light pollution are reduced.

CN114737677BActive Publication Date: 2025-09-26SHANGHAI TONGZHENG ALUMINIUM STRUCTURE CONSTRUCTION & TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202210270399.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-03-18
Publication Date
2025-09-26
Estimated Expiration
2042-03-18

AI Technical Summary

Technical Problem

Existing high-transmittance buildings have low transmittance due to keel obstruction, and waterproofing of the joints between glass panels is difficult to ensure. In addition, the glass is heavy and has the risk of self-explosion. Acrylic buildings deform greatly under temperature changes and lack structural stability.

Method used

It adopts one-piece acrylic interior wall panels, exterior wall panels and roof panels, combined with side push rods and flexible panels, fixed by installing the base, and uses the elastic deformation of the flexible panels to adapt to building deformation, avoid splicing seams, and enhance structural stability.

Benefits of technology

It achieves uniform light transmission with high light transmittance, solves the waterproofing problem at the joints of buildings, improves the aesthetics and structural stability of the building, reduces its own weight and light pollution, and extends its service life.

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Abstract

The present invention relates to an adaptively deformable acrylic building and a construction method thereof. The building comprises: an installation base provided on the ground; a mounting base fixed to the installation base; a building body comprising an integrally formed acrylic interior wall panel, an acrylic exterior wall panel, and an acrylic top panel, the bases of the acrylic interior wall panel and the acrylic exterior wall panel being inserted into corresponding mounting bases; a pair of side push rods threadedly connected to the mounting base, wherein the positions of the side push rods are adjusted so that the pair of side push rods can clamp the corresponding acrylic interior wall panel and acrylic exterior wall panel; and a first flexible plate padded between the side push rods and the corresponding acrylic interior wall panel and acrylic exterior wall panel. The present invention has high light transmittance and uniform light transmission, and has no joints, thereby solving the problem of waterproofing at building joints. The first flexible plate has a certain elastic deformation capacity and can adapt to the deformation of the acrylic building, ensuring the structural safety and stability of the building.
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Description

Technical Field

[0001] The present invention relates to the field of building construction engineering, and in particular to an acrylic building with self-adaptive deformation and a construction method thereof. Background Art

[0002] With the development of the construction industry, people's requirements for buildings are becoming more and more diverse, such as requiring buildings to have high light transmittance. Existing high-light transmittance buildings are built with glass, and the glass panels are installed through horizontal and vertical keels. However, due to the horizontal and vertical keels, they have a certain shielding effect, thereby reducing the light transmittance of the building. In addition, the glass panels need to be connected with glue (such as silicone glue), which has many seams, reducing the beauty of the building. Waterproofing of the building is a major technical problem. In addition, there is a risk of self-explosion of glass, and its heavy weight is not conducive to the design of the lower structure. In the existing technology, the use of acrylic is generally used in venues such as oceanariums. Due to its large linear expansion coefficient, it deforms greatly under the action of temperature. Summary of the Invention

[0003] The purpose of the present invention is to overcome the defects of the prior art and provide an acrylic building with adaptive deformation and a construction method thereof, so as to solve the problems of existing high-transmittance buildings made of glass, such as the light transmittance being affected by the obstruction of the keel and the difficulty in ensuring waterproofing at the joints between the glass panels, thereby improving the aesthetics of the building and solving the problem of structural stability of acrylic buildings under deformation.

[0004] The technical solution to achieve the above purpose is:

[0005] The present invention provides an acrylic building with adaptive deformation, comprising:

[0006] A mounting foundation located on the ground;

[0007] A mounting base fixedly mounted on the mounting base;

[0008] The building body includes acrylic inner wall panels, acrylic outer wall panels, and acrylic top panels formed as a whole by body polymerization, wherein the bases of the acrylic inner wall panels and the acrylic outer wall panels are inserted into corresponding mounting bases and connected to the bottoms of the mounting bases;

[0009] A pair of side push rods threadedly connected to the mounting base, the pair of side push rods being disposed on both sides of the corresponding acrylic inner wall panel and acrylic outer wall panel, and the pair of side push rods being able to clamp the corresponding acrylic inner wall panel and acrylic outer wall panel by adjusting the positions of the side push rods; and

[0010] A first flexible plate is arranged between the side push rods and the corresponding acrylic inner wall panels and acrylic outer wall panels.

[0011] The present invention provides a self-adaptive acrylic building. Its main structure consists of an integrally formed acrylic interior wall panel, an acrylic exterior wall panel, and an acrylic roof panel. The structure boasts high and uniform light transmittance. Furthermore, unlike glass panel buildings, the integrally formed acrylic building lacks seams, thus resolving the problem of waterproofing at building seams. The acrylic building of the present invention only requires a mounting base to secure the acrylic interior and exterior wall panels. A first flexible panel is provided on the sides of the acrylic interior and exterior wall panels. This first flexible panel has a certain degree of elastic deformation, enabling it to adapt to the deformation of the acrylic building, ensuring the building's structural safety and stability.

[0012] A further improvement of the self-adaptive deformable acrylic building of the present invention is that acrylic supports are provided on both sides of the acrylic inner wall panel and the acrylic outer wall panel corresponding to the mounting base;

[0013] The side push rod is arranged corresponding to the acrylic support, and the first flexible board is arranged between the side push rod and the acrylic support.

[0014] A further improvement of the self-adaptive deformable acrylic building of the present invention is that a first convex strip is provided on the side surface of the acrylic support corresponding to the first flexible plate;

[0015] The first flexible board is provided with a first slot corresponding to the first convex strip. The first flexible board is attached to the side surface of the acrylic support, and the first convex strip is inserted into the corresponding first slot.

[0016] A further improvement of the self-adaptively deformable acrylic building of the present invention is that a pressing plate is connected to the end of the side push rod, and the pressing plate is in close contact with the first flexible plate.

[0017] A further improvement of the adaptively deformable acrylic building of the present invention is that a pressure rod is threadedly connected to the mounting base, and the pressure rod is located above the acrylic support. By adjusting the position of the pressure rod, the bottom of the pressure rod can be pressed tightly against the acrylic support.

[0018] The present invention also provides a construction method for an adaptively deformable acrylic building, comprising the following steps:

[0019] Construct and install the foundation at the designed position on the ground;

[0020] Providing a mounting base, and fixing the mounting base on the mounting foundation;

[0021] Providing a building body, the provided building body includes acrylic inner wall panels, acrylic outer wall panels, and acrylic top panels formed by body polymerization, inserting the bases of the acrylic inner wall panels and the acrylic outer wall panels into corresponding mounting bases and connecting them to the bottoms of the mounting bases;

[0022] Providing side push rods, threading the side push rods onto the mounting base, and arranging the side push rods on both sides of the corresponding acrylic inner wall panel and acrylic outer wall panel;

[0023] Providing a first flexible board, and placing the first flexible board between the side push rods and the corresponding acrylic inner wall panels and acrylic outer wall panels;

[0024] The side push rods are screwed to press against the first flexible plate and then clamp the corresponding acrylic inner wall panels and acrylic outer wall panels, thereby completing the construction of the acrylic building.

[0025] A further improvement of the construction method of the present invention is that it further comprises:

[0026] Providing an acrylic support, adhering the acrylic support to both sides of the acrylic inner wall panel and the acrylic outer wall panel, and the acrylic support is located inside the mounting base;

[0027] When the side push rod is threadedly connected, the position of the side push rod corresponds to the position of the acrylic support.

[0028] A further improvement of the construction method of the present invention is that it further comprises:

[0029] A first convex strip is attached to the side surface of the acrylic support at a position corresponding to the first flexible board;

[0030] A first slot is formed on the first flexible plate at a position corresponding to the first convex strip;

[0031] The first flexible board is adhered to the side surface of the acrylic support, and the first protrusion is inserted into the corresponding first slot.

[0032] A further improvement of the construction method of the present invention is that it further comprises:

[0033] Providing a push rod, threading the push rod onto the mounting base, and positioning the push rod above the acrylic support;

[0034] Providing a second flexible plate, and placing the second flexible plate between the pressing rod and the acrylic support;

[0035] The position of the pressing rod is adjusted so that the pressing rod presses tightly against the second flexible plate and further presses the acrylic support.

[0036] A further improvement of the construction method of the present invention is that it further comprises:

[0037] A second convex strip is attached to the top surface of the acrylic support at a position corresponding to the second flexible plate;

[0038] A second slot is formed on the second flexible plate at a position corresponding to the second convex strip;

[0039] The second flexible plate is adhered to the top surface of the acrylic support, and the second convex strip is inserted into the second slot. BRIEF DESCRIPTION OF THE DRAWINGS

[0040] Figure 1 This is a schematic structural diagram of the adaptively deformable acrylic building of the present invention.

[0041] Figure 2 This is a top view of the adaptively deformable acrylic building of the present invention.

[0042] Figure 3 This is a schematic diagram of the arrangement structure of the installation base in the adaptively deformable acrylic building of the present invention.

[0043] Figure 4 This is a structural schematic diagram of the unfolded acrylic interior wall panels in the adaptively deformable acrylic building of the present invention.

[0044] Figure 5 This is a structural schematic diagram of the unfolded state of the acrylic exterior wall panels in the adaptively deformable acrylic building of the present invention.

[0045] Figure 6 for Figure 2 Cross-sectional view of A1-A1.

[0046] Figure 7 for Figure 6 A local enlarged schematic diagram of point A2 in the middle.

[0047] Figure 8 This is a cross-sectional view of a mounting base in the adaptively deformable acrylic building of the present invention.

[0048] Figure 9 This is a schematic diagram of the connection structure at the root of the acrylic exterior wall panel in the adaptively deformable acrylic building of the present invention.

[0049] Figure 10 for Figure 9 A3-A3 cross-sectional view.

[0050] Figure 11 for Figure 9 A4-A4 cross-sectional view in.

[0051] Figure 12This is a cross-sectional view of the installation base of the adaptively deformable acrylic building of the present invention.

[0052] Figure 13 This is a side view of the acrylic support in the adaptively deformable acrylic building of the present invention.

[0053] Figure 14 This is a side view of the first flexible plate in the adaptively deformable acrylic building of the present invention.

[0054] Figure 15 The figure is a flow chart of the construction method of the self-adaptive deformable acrylic building of the present invention. DETAILED DESCRIPTION

[0055] The present invention will be further described below with reference to the accompanying drawings and specific embodiments.

[0056] See Figure 1 The present invention provides an acrylic building with adaptive deformation and a construction method thereof, which are used to meet the building requirements of high light transmittance. The main body of the building includes acrylic inner wall panels, acrylic outer wall panels and acrylic top panels that are integrally formed by bulk polymerization, so that the building has the characteristics of full light transmission, without any structural obstruction, and high light transmittance. The main body of the building is integrally formed by bulk polymerization, without joints, and can solve the problem of difficulty in waterproofing the joints of existing glass buildings. The acrylic building of the present invention has good light transmission performance, uniform light transmission, uniform thickness of the plate, flatness, smoothness, good weather resistance, good impact resistance, not easy to catalyze or fade, long service life, light weight, strong self-cleaning ability, and can reduce light pollution compared to glass. The following is an explanation of the acrylic building with adaptive deformation and its construction method of the present invention in conjunction with the accompanying drawings.

[0057] See Figure 1 , showing the structural diagram of the adaptively deformable acrylic building of the present invention. Figure 8 , shows a cross-sectional view of a mounting base in the adaptively deformable acrylic building of the present invention. Figure 1 and Figure 8 , the adaptively deformable acrylic building of the present invention is described.

[0058] like Figure 1 and Figure 8As shown, the adaptively deformable acrylic building of the present invention includes a mounting base 21, a mounting base 22, a building body 23, a side push rod 24 and a first flexible plate 25. The mounting base 21 is set on the ground and is set at the designed position of the acrylic building; the mounting base 22 is fixed on the mounting base 21; the building body 23 includes an acrylic inner wall panel 231, an acrylic outer wall panel 232 and an acrylic top panel 233 formed by body polymerization. The acrylic inner wall panel 231 and the acrylic outer wall panel 232 are arranged opposite to each other, and the acrylic top panel 233 is arranged on the top of the acrylic inner wall panel 231 and the acrylic outer wall panel 232. The roots of the acrylic inner wall panel 231 and the acrylic outer wall panel 232 are inserted into the The side push rods 24 are threadedly connected to the mounting base 22. There is a pair of side push rods 24, which are arranged on both sides of the corresponding acrylic inner wall panel 231 and the acrylic outer wall panel 232. By adjusting the position of the side push rods 24, the pair of side push rods 24 can clamp the corresponding acrylic inner wall panel 231 and the acrylic outer wall panel 232; the first flexible plate 25 is padded between the side push rods 24 and the corresponding acrylic inner wall panel 231 and the acrylic outer wall panel 232 brackets. The first flexible plate 25 has a certain elastic deformation ability and can adapt to the deformation of the acrylic inner wall panel 231 and the acrylic outer wall panel 232, thereby improving the safety and stability of the building body.

[0059] In a specific embodiment of the present invention, Figure 1 and Figure 2 As shown, the acrylic interior wall panels 231 and acrylic exterior wall panels 232 of the present invention are curved panels that enclose the interior space of the building structure 23. An end cap 234 is provided at one end of the acrylic interior wall panel 231, which is connected to the corresponding acrylic exterior wall panel 232. When viewed from above, the acrylic exterior wall panel 232 is circular, with an opening serving as a door for easy access to the building structure 23. The acrylic interior wall panel 231 is semicircular in shape.

[0060] Further, combined with Figure 3 As shown, there are multiple mounting bases 22 , and the mounting bases 22 are spaced apart along the edges of the acrylic inner wall panel 231 and the acrylic outer wall panel 232 . The acrylic inner wall panel 231 and the acrylic outer wall panel 232 are mounted and fixed by the mounting bases 22 .

[0061] Furthermore, combined with Figure 4 and Figure 5As shown, the acrylic inner wall panels 231 and the acrylic outer wall panels 232 have different heights, resulting in an inclined acrylic top panel 233. The acrylic inner wall panels 231 and the acrylic outer wall panels 232 also have different heights. The height of the acrylic inner wall panels 231 gradually decreases from one end to the other, while the height of the acrylic outer wall panels 232 fluctuates, gradually increasing from one end, then gradually decreasing, and then gradually increasing again. This creates a perfectly curved building structure with an elegant shape, making it particularly suitable for use as an observation room or indoor flower garden.

[0062] In a specific embodiment of the present invention, Figures 9 to 11 As shown, acrylic supports 235 are provided on both sides of the acrylic inner wall panel 231 and the acrylic outer wall panel 232 corresponding to the mounting base 22, the side push rods 24 are provided corresponding to the acrylic supports 235, and the first flexible board 25 is padded between the side push rods 24 and the acrylic supports 235.

[0063] When the acrylic inner wall panels 231 and the acrylic outer wall panels 232 are inserted into the corresponding mounting bases 22, the acrylic supports 235 on the acrylic inner wall panels and the acrylic outer wall panels are placed in the mounting bases 22. The corresponding side push rods 24 are then screwed, causing the side push rods 24 to press against the first flexible plate 25. The first flexible plate 25 presses the side push rods 24 against the corresponding acrylic inner wall panels 231 and the acrylic outer wall panels 232, thus achieving the fixed installation of the acrylic inner wall panels 231 and the acrylic outer wall panels 232. Because the first flexible plate 25 has a certain degree of elastic deformation, it can adapt to the deformation of the acrylic inner wall panels and the acrylic outer wall panels due to temperature changes, ensuring the safety of the building structure.

[0064] Preferably, the acrylic supports 235 are arc-shaped blocks, which are arranged on the corresponding acrylic inner wall panels 231 and acrylic outer wall panels 232 at intervals. The acrylic supports 235 are fixed to the corresponding acrylic inner wall panels 231 and acrylic outer wall panels 232 by epoxy resin.

[0065] Further, combined with Figure 13 and Figure 14 As shown, a first ridge 2351 is provided on the side of the acrylic support 235, corresponding to the first flexible board 25. A first slot 251 is formed in the first flexible board 25, corresponding to the first ridge 2351. The first flexible board 25 is attached to the side of the acrylic support 235, and the first ridge 2351 is inserted into the corresponding first slot 251. The provision of the first ridge 2351 and the first slot 251 ensures a more secure and reliable connection between the first flexible board 25 and the acrylic support 235.

[0066] Preferably, the depth of the first slot 251 is smaller than the thickness of the first flexible board 25 .

[0067] Preferably, the first flexible board 25 is fixed to the side surface of the acrylic support 235 by gluing with epoxy resin.

[0068] Furthermore, combined with Figures 9 to 11 As shown, a pressing plate 241 is connected to the end of the side push rod 24, and the pressing plate 241 is in close contact with the first flexible plate 25. Preferably, the pressing plate 241 is adapted to the size of the first flexible plate 25. The pressing plate 241 can evenly transmit the pushing force of the side push rod 24 to the first flexible plate 25.

[0069] In a preferred embodiment, the shapes of the compression plate 241 and the first flexible plate 25 match those of the acrylic support 235 and are curved. A U-shaped piece is provided on the back of the compression plate 241, and the ends of the side push rods 24 are secured to the corresponding U-shaped piece. Preferably, two side push rods 24 are provided for each acrylic support 235. The compression plate 241 and the first flexible plate 25 are secured together using epoxy resin.

[0070] In a specific embodiment of the present invention, Figure 8 and Figure 9 As shown, a push rod 26 is threadedly connected to the mounting base 22 , and the push rod 26 is located above the acrylic support 235 . By adjusting the position of the push rod 26 , the bottom of the push rod 26 can be pressed tightly against the acrylic support 235 .

[0071] When installing the main body of the building, the pressing rod 26 is screwed so that the pressing rod 26 presses the acrylic support 235 tightly, ensuring that the acrylic support 235 is installed firmly and reliably.

[0072] Furthermore, a second flexible plate 27 is provided between the top pressure rod 26 and the acrylic support 235. The second flexible plate 27 has a certain elastic deformation capability and can adapt to the deformation of the building body under the influence of temperature.

[0073] Furthermore, the top surface of the acrylic support 235 is provided with a second ridge corresponding to the second flexible plate 27; the second flexible plate 27 is provided with a second slot corresponding to the second ridge. The second flexible plate 27 is attached to the top surface of the acrylic support 235, and the second ridge is inserted into the corresponding second slot. Preferably, there are multiple second ridges and multiple second slots.

[0074] In a preferred embodiment, the second flexible board 27 is fixed to the top surface of the acrylic support 235 by using epoxy resin.

[0075] Furthermore, the end of the pressing rod 26 is connected to a pressing plate 261, and the pressing plate 261 is in close contact with the second flexible plate 27. Preferably, the pressing plate 261 and the second flexible plate 27 are fixed by epoxy resin.

[0076] In a specific embodiment of the present invention, Figure 12 As shown, the mounting base 22 includes a bottom plate 221, a pair of side plates 222 erected on the bottom plate 221, ribs 223 fixedly connecting the outer side surfaces of the side plates 222 and the bottom plate 221, and a pair of mounting plates 224 fixedly connected to the inner side surfaces of the side plates 222 and located at the top of the side plates 222. A through hole is provided on the mounting plate 224 corresponding to the push rod 26, and a nut threadedly connected to the push rod 26 is fixed on the top of the mounting plate 224, so that the push rod 26 can be adjusted up and down by threaded connection. A threaded hole 2221 is provided on the side plate 222, and the side push rod 24 is threadedly connected to the threaded hole 2221. A space is formed between the two side plates 222 to accommodate the root of the acrylic inner wall panel or the acrylic outer wall panel. Two threaded holes 2211 are provided on the bottom plate 221, and the two threaded holes 2211 are used to install and connect the acrylic inner wall panel or the acrylic outer wall panel, combined with Figure 6 and Figure 9 As shown, the bottom of the acrylic interior or exterior wall panel is provided with a base, which is connected to a fastening thread. The fastening thread is threadedly connected to the threaded hole 2211 on the bottom plate 221, thereby fixedly connecting the mounting base to the corresponding acrylic interior or exterior wall panel. There are multiple ribs 223, which are used to strengthen the structural strength of the side panels 222.

[0077] Further, if Figure 9 As shown, the bottom plate of the mounting base 22 is fixedly connected to the mounting foundation 21 by anchor bolts. The mounting foundation 21 is a concrete cushion layer. Figure 10 As shown, strip holes are provided on the bottom plate 221 corresponding to the anchor bolts, and the installation position of the mounting base 22 can be adjusted through the strip holes, thereby improving the installation accuracy of the building body.

[0078] In a specific embodiment of the present invention, Figures 6 to 8 As shown, waterproof baffles 236 are installed on both sides of the acrylic inner and outer wall panels, corresponding to the mounting bases 22. These baffles 236 are located above the mounting bases 22. Preferably, the baffles 236 are fixed to the acrylic inner and outer wall panels using epoxy resin. The baffles 236 are located above the mounting bases 22, and their ends are provided with downwardly bent shielding portions.

[0079] At the bottom of the main structure, a floor 31 is provided, shielding the mounting base 22. The floor 31 is supported on the mounting base 21, and a parapet 32 ​​is also provided on the mounting base 21. A drainage ditch 34 is formed on the side of the parapet 32 ​​facing away from the mounting base 22. The top of the parapet 32 ​​is connected to a water guide plate 33. The water guide plate 33 is fixedly connected to the top of the parapet 32 ​​and extends horizontally above the mounting base 22. It then abuts the corresponding acrylic inner and outer wall panels. It then extends from the gap between the acrylic inner and outer wall panels and the floor 31, bends, and abuts the waterproof baffle 236. Water on the surface of the floor 31 is thus directed through the water guide plate 33 into the drainage ditch for drainage.

[0080] In a specific embodiment of the present invention, Figure 9 and Figure 12 As shown, due to the placement of the mounting plate 224 on the mounting base 22, the acrylic interior and exterior wall panels of the building structure cannot be inserted between the two side panels 222. This is because the acrylic supports 235 provided on the acrylic interior and exterior wall panels would collide with the mounting plate 224. During installation, the mounting base 22 and the acrylic supports 235 can be first inserted together in an offset manner, and then the mounting base 22 can be fixed. Alternatively, the mounting base 22 can be positioned and fixed first, the building structure inserted onto the mounting base 22, and then the mounting plate 224 can be welded to the mounting base 22.

[0081] Preferably, the mounting base 22, the top pressure plate 261 and the pressing plate 241 of the present invention are all made of steel. The first flexible plate 25 and the second flexible plate 27 are made of polytetrafluoroethylene plates.

[0082] The present invention also provides a construction method for an acrylic building with adaptive deformation, which is described below.

[0083] The construction method of the present invention comprises the following steps:

[0084] Execute step S11 to construct and install the foundation at the designed position on the ground; then execute step S12;

[0085] Execute step S12, provide a mounting base, and fix the mounting base on the mounting foundation; then execute step S13;

[0086] Executing step S13, providing a building body, the provided building body including acrylic inner wall panels, acrylic outer wall panels, and acrylic top panels integrally formed by body polymerization, inserting the bases of the acrylic inner wall panels and acrylic outer wall panels into corresponding mounting bases and connecting them to the bottoms of the mounting bases; then executing step S14;

[0087] Execute step S14 to provide side push rods, thread the side push rods onto the mounting base, and install the side push rods on both sides of the corresponding acrylic inner wall panel and acrylic outer wall panel; then execute step S15;

[0088] Execute step S15, provide a first flexible board, and place the first flexible board between the side push rod and the corresponding acrylic inner wall board and acrylic outer wall board; then execute step S16;

[0089] Execute step S16, screw the side push rod, so that the side push rod presses against the first flexible plate and then clamps the corresponding acrylic inner wall panel and acrylic outer wall panel, thereby completing the construction of the acrylic building.

[0090] In a specific embodiment of the present invention, the construction method of the present invention further comprises:

[0091] Provide acrylic supports, stick them on both sides of the acrylic inner wall panel and the acrylic outer wall panel, and the acrylic supports are located inside the mounting base;

[0092] When threading the side push rod, make sure that the side push rod corresponds to the position of the acrylic support.

[0093] In a specific embodiment of the present invention, the construction method of the present invention further comprises:

[0094] A first convex strip is attached to the side of the acrylic support at a position corresponding to the first flexible plate;

[0095] A first slot is formed on the first flexible plate at a position corresponding to the first protruding strip;

[0096] The first flexible board is pasted on the side surface of the acrylic support, and the first protruding strip is inserted into the corresponding first slot.

[0097] In a specific embodiment of the present invention, the construction method of the present invention further comprises:

[0098] Provide a push rod, thread the push rod onto the mounting base, and position the push rod above the acrylic support;

[0099] Providing a second flexible plate, and placing the second flexible plate between the top pressure rod and the acrylic support;

[0100] Adjust the position of the push rod so that it presses the second flexible plate tightly and then presses the acrylic support tightly.

[0101] In a specific embodiment of the present invention, the construction method of the present invention also includes: pasting a second convex strip on the top surface of the acrylic support at a position corresponding to the second flexible plate; opening a second slot hole on the second flexible plate at a position corresponding to the second convex strip; pasting the second flexible plate on the top surface of the acrylic support, and inserting the second convex strip into the second slot hole.

[0102] The present invention has been described in detail above with reference to the embodiments of the accompanying drawings. A person skilled in the art can make various modifications to the present invention based on the above description. Therefore, certain details in the embodiments should not be construed as limiting the present invention. The scope of protection of the present invention shall be determined by the scope defined in the appended claims.

Claims

1. An adaptively deformable acrylic building, characterized in that: include: A mounting foundation located on the ground; A mounting base fixedly mounted on the mounting base; The building body includes acrylic inner wall panels, acrylic outer wall panels, and acrylic top panels formed as a whole by body polymerization, wherein the bases of the acrylic inner wall panels and the acrylic outer wall panels are inserted into corresponding mounting bases and connected to the bottoms of the mounting bases; A pair of side push rods threadedly connected to the mounting base, the pair of side push rods being arranged on both sides of the corresponding acrylic inner wall panel and acrylic outer wall panel, and the pair of side push rods can be made to clamp the corresponding acrylic inner wall panel and acrylic outer wall panel by adjusting the position of the side push rods; as well as a first flexible plate provided between the side push rods and the corresponding acrylic inner wall panels and acrylic outer wall panels; Acrylic supports are provided on both sides of the acrylic inner wall panel and the acrylic outer wall panel corresponding to the mounting base; The side push rod is arranged corresponding to the acrylic support, and the first flexible plate is arranged between the side push rod and the acrylic support; A first convex strip is provided on the side surface of the acrylic support corresponding to the first flexible plate; The first flexible board is provided with a first slot corresponding to the first convex strip. The first flexible board is attached to the side surface of the acrylic support, and the first convex strip is inserted into the corresponding first slot. The depth of the first slot is less than the thickness of the first flexible board. A push rod is threadedly connected to the mounting base, and the push rod is located above the acrylic support. By adjusting the position of the push rod, the bottom of the push rod can be pressed tightly against the acrylic support. A second flexible pad is provided between the top pressure rod and the acrylic support; Waterproof baffles are provided on both sides of the acrylic inner wall panels and the acrylic outer wall panels corresponding to the mounting bases. The waterproof baffles are located above the mounting bases, and the ends of the waterproof baffles are provided with downwardly bent shielding portions. A floor is provided at the bottom of the main building body, which covers the installation base. The floor is supported on the installation base, and a parapet is provided on the installation base. A drainage ditch is formed on the side of the parapet away from the installation base. A water guide plate is connected to the top of the parapet. The water guide plate is fixedly connected to the top of the parapet and extends horizontally to block the top of the installation base, and then adheres to the corresponding acrylic inner wall panel and acrylic outer wall panel. Then, it extends from the gap between the acrylic inner wall panel and the acrylic outer wall panel and the floor, bends, and adheres to the waterproof baffle. The acrylic inner wall panels and the acrylic outer wall panels are curved panels, which enclose the interior space of the building. When viewed from above, the acrylic outer wall panels are circular with an opening on them as a door, and the acrylic inner wall panels are semicircular.

2. The self-adaptive deformable acrylic building according to claim 1, characterized in that: The end of the side push rod is connected to a pressing plate, and the pressing plate is in close contact with the first flexible plate.

3. A construction method for an adaptively deformable acrylic building, characterized in that: The steps include: Construct and install the foundation at the designed position on the ground; Providing a mounting base, and fixing the mounting base on the mounting foundation; Providing a building body, the provided building body includes acrylic inner wall panels, acrylic outer wall panels, and acrylic top panels formed by body polymerization, inserting the bases of the acrylic inner wall panels and the acrylic outer wall panels into corresponding mounting bases and connecting them to the bottoms of the mounting bases; Providing side push rods, threading the side push rods onto the mounting base, and arranging the side push rods on both sides of the corresponding acrylic inner wall panel and acrylic outer wall panel; Providing a first flexible board, and placing the first flexible board between the side push rods and the corresponding acrylic inner wall panels and acrylic outer wall panels; Twist the side push rods to press against the first flexible plate, thereby clamping the corresponding acrylic inner wall panels and acrylic outer wall panels, thereby completing the construction of the acrylic building; Also includes: Providing an acrylic support, adhering the acrylic support to both sides of the acrylic inner wall panel and the acrylic outer wall panel, and the acrylic support is located inside the mounting base; When the side push rod is threadedly connected, the position of the side push rod corresponds to the position of the acrylic support; Also includes: A first convex strip is attached to the side surface of the acrylic support at a position corresponding to the first flexible board; A first slot is formed on the first flexible plate at a position corresponding to the first convex strip; Adhere the first flexible board to the side surface of the acrylic support, and insert the first convex strip into the corresponding first slot; Also includes: Providing a push rod, threading the push rod onto the mounting base, and positioning the push rod above the acrylic support; Providing a second flexible plate, and placing the second flexible plate between the pressing rod and the acrylic support; Adjust the position of the pressing rod so that the pressing rod presses tightly against the second flexible plate and further presses the acrylic support; Also includes: A second convex strip is attached to the top surface of the acrylic support at a position corresponding to the second flexible plate; A second slot is formed on the second flexible plate at a position corresponding to the second convex strip; Adhere the second flexible plate to the top surface of the acrylic support, and insert the second convex strip into the second slot; The depth of the first slot is less than the thickness of the first flexible plate; Waterproof baffles are provided on both sides of the acrylic inner wall panels and the acrylic outer wall panels corresponding to the mounting bases. The waterproof baffles are located above the mounting bases, and the ends of the waterproof baffles are provided with downwardly bent shielding portions. A floor is provided at the bottom of the main building body, which covers the installation base. The floor is supported on the installation base, and a parapet is provided on the installation base. A drainage ditch is formed on the side of the parapet away from the installation base. A water guide plate is connected to the top of the parapet. The water guide plate is fixedly connected to the top of the parapet and extends horizontally to block the top of the installation base, and then adheres to the corresponding acrylic inner wall panel and acrylic outer wall panel. Then, it extends from the gap between the acrylic inner wall panel and the acrylic outer wall panel and the floor, bends, and adheres to the waterproof baffle. The acrylic inner wall panels and the acrylic outer wall panels are curved panels, which enclose the interior space of the building. When viewed from above, the acrylic outer wall panels are circular with an opening on them as a door, and the acrylic inner wall panels are semicircular.

Citation Information

Patent Citations

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