Multi-form variable scenery display device for interior design

By designing a multi-form variable interior design scenery display device, using a hydraulic drive and projection system combined with a multi-layer material structure, the problem that traditional display equipment cannot intuitively display the full coverage effect of materials and the immersive experience is insufficient is solved, achieving efficient space utilization and immersive material experience.

CN120808686AInactive Publication Date: 2025-10-17ZHENGZHOU ART KINDERGARTEN NORMAL SCHOOL
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Patent Information

Application Number
CN202511103719.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-07
Publication Date
2025-10-17
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Traditional interior scene display equipment cannot intuitively display the full-coverage effect of materials, lacks a multi-dimensional immersive interactive experience, and has low space utilization.

Method used

A multi-form, variable-size interior design display device is designed, including a box, a flap, an L-shaped display component, a hydraulic drive system, a projection system, and a simulation board. The hydraulically driven flap enables a 90° flip, and combined with projection and a multi-layered material structure to simulate material texture, providing an immersive experience.

Benefits of technology

It achieves an intuitive display of the full-coverage effect of the material, provides a multi-dimensional immersive interactive experience, and improves space utilization and the functionality and practicality of the display device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a multi-form variable interior design scenery display device which comprises a box body and a turning plate and further comprises an L-shaped display assembly. The box body and the turning plate jointly form an L-shaped display assembly; the two ends of the inner wall of the box body are connected with one end of the hydraulic oil cylinder through hinge seats, and the turnover plate is driven to be opened and closed through the telescopic action of the hydraulic oil cylinder, and a supporting foundation is provided for rotation of the turnover plate; when the L-shaped display assembly is closed, the L-shaped display assembly is a regular I-shaped cube and can be used as a decorative structure in a public place, the interior of the L-shaped display assembly can be used as a storage space after the L-shaped display assembly is closed, double display faces of a wall face and the ground are formed after the L-shaped display assembly is unfolded, and the L-shaped display assembly is matched with the first simulation plate, the second simulation plate and the projection part. The material laying effect can be visually displayed in a full laying mode, compared with traditional single sample plate or computer display, the visual intuition and the space utilization rate are improved, and the multiple functions of display, storage and decoration are achieved.
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Description

Technical Field

[0001] The present invention mainly relates to the technical field of interior decoration, and in particular to a multi-form changeable scenery display device for interior design. Background Art

[0002] Interior decoration refers to the practical activities of planning, arranging and beautifying the interior space of a building using certain material and technical means and aesthetic principles to meet people's various needs in life, work, etc. Its core lies in creating an indoor environment that is both functional and artistic through the integration of spatial form, color, material, light and other elements.

[0003] After the interior decoration draft is approved, materials need to be selected based on customer needs. For example, wall materials need to consider the texture and color compatibility of latex paint and ceramic tiles, while floor materials involve the coordination of flooring and tiles with the overall style. The traditional material selection process relies on single sample displays or computer renderings, which has significant limitations. A single material sample can only show local features and cannot directly show the overall visual effect of the wall and floor materials after they are fully laid. Although computer renderings can simulate the spatial layout, the light and shadow effects are distorted, making it difficult to accurately restore the texture and light and shadow changes of the materials in the real environment. Therefore, there is an urgent need for an interior design set display device that can intuitively display the full-coverage effect of materials, provide a multi-dimensional immersive interactive experience, and has high space utilization. It can not only present the overall effect of the materials through full-coverage display, but also combine light and shadow control with tactile simulation to allow customers to immersively experience the texture of the materials in the real scene, thereby more accurately assisting in material selection decisions. Summary of the Invention

[0004] The technical solution of the present invention addresses the technical problem that the existing technical solutions are too single, and mainly provides a multi-form variable interior design scenery display device to solve the technical problems raised in the above background technology that the traditional interior scenery display equipment is unable to present the full-material paving effect due to static display, single experience, fixed structure, lack of multi-dimensional immersive interactive experience and low space utilization.

[0005] The technical solution adopted by the present invention to solve the above technical problems is:

[0006] A multi-form changeable interior design scenery display device comprises a box body, a flap, and an L-shaped display component.

[0007] The cabinet and the flap together form an L-shaped display component.

[0008] The box body has two inner wall ends connected to one end of the hydraulic cylinder through a hinged seat, which is used to drive the flap to open and close through the telescopic action of the hydraulic cylinder, providing a support basis for the rotation of the flap.

[0009] The turning plate is rotatably connected to one end of the box body, and the inner side wall is hingedly connected to the other end of the hydraulic oil cylinder, and the 90° turning structure is realized by hydraulic drive to form a ground display surface.

[0010] The hydraulic oil cylinder is hingedly connected to the inner wall of the box body and the inner side wall of the turning plate at both ends, and is used to drive the turning plate to open and close around the connection of the box body.

[0011] The first simulation plate is arranged on one side of the inner wall of the box body, and is used to simulate the texture of the wall surface material.

[0012] The second simulation plate is arranged on the surface of the turning plate, and is used to simulate the characteristics of the ground material.

[0013] The first projection member is installed on the outer wall of the box body, and is used to project the image of the ground material to the second simulation plate.

[0014] The second projection member is installed on the inner wall of the box body, and is located on the opposite side of the first projection member, and is used to project the image of the wall surface material to the first simulation plate.

[0015] The expansion stool is arranged at both ends of the outer wall of the box body, and can be folded and stored in the outer wall of the box body or unfolded to form a seat, thereby providing temporary resting space for the user.

[0016] The turning mechanism is installed on the box body to support the first projection member and the second projection member, and can be axially rotated to adjust the projection angle of the projection member.

[0017] Further, the power module and the control main body are fixed on the top of the box body, the fan is fixed on the inner top wall of the box body, the fan blades face the inside of the box body, long strip-shaped heat dissipation openings are respectively formed at both ends of the outer wall of the box body, the control main body includes a PLC controller and a touch panel, which are respectively electrically connected with the hydraulic oil cylinder, the first projection member, the second projection member and the fan, and the power module supplies power to the above-mentioned components.

[0018] Further, one end of the turning plate is rotatably connected to the box body, and the turning plate forms a 90° turning structure through the hydraulic oil cylinder and is vertically distributed with the box body.

[0019] Further, the anti-collision member is arranged on the side of the box body corresponding to the turning plate, a notch is formed in the bottom of the anti-collision member, a protrusion is arranged on the top of the turning plate, and a gap is formed between the notch and the protrusion.

[0020] Further, the first projection member and the second projection member are installed at both ends of the anti-collision member through the turning mechanism, the turning mechanism includes a worm gear and a worm shaft which are connected to each other, the first projection member and the second projection member are respectively fixedly connected to the shaft rod of the corresponding worm gear through the mounting frame, and the first projection member and the second projection member can rotate around the axis of the worm gear.

[0021] Further, the first simulation board is located on the opposite side of the second projection member, and the first simulation board comprises, from inside to outside, a wall base plate, an electrically-controlled light-adjusting film and a wall surface layer.

[0022] Further, the second simulation board is flipped down to a horizontal state by a flip plate, is perpendicular to the front of the box body, and is located below the first projection member, the second simulation board comprises, from inside to outside, a ground base plate, an anti-skid support layer, a light-sensing adjusting layer, a diffuse reflection layer and a surface protection layer, and the light-sensing adjusting layer and the electrically-controlled light-adjusting film are electrically connected with the power module at the top of the box body and the control main body.

[0023] Further, cavities for mounting the expansion stool are formed at both ends of the outer wall of the box body, the expansion stool comprises a support bottom plate, a seat surface grid and a vertical support grid, the support bottom plate is rotationally connected to the cavities by a damping hinge and forms a 90° flip structure, the support bottom plate is fixedly connected with the seat surface grid, and the seat surface grid and the vertical support grid are both composed of a plurality of wooden strips arranged at equal distances, and the wooden strips between the seat surface grid and the vertical support grid are staggered and connected by a mortise and tenon structure.

[0024] Further, the outer walls of the wooden strips at both ends of the vertical support grid are respectively provided with first sliding blocks, the inner walls of the wooden strips at both ends of the seat surface grid are respectively provided with limiting sliding grooves extending along the length direction, second sliding blocks are slidably arranged in the limiting sliding grooves, the first sliding blocks are rotationally connected with the second sliding blocks, the wooden strips of the vertical support grid are staggered with the wooden strips of the seat surface grid and are movably connected by the mortise and tenon structure, and the vertical support grid can be flipped from a storage state parallel to the seat surface grid to a support state perpendicular to the ground through the sliding cooperation of the first sliding blocks, the second sliding blocks and the limiting sliding grooves and the rotation limiting of the mortise and tenon structure.

[0025] Compared with the prior art, the present application has the following advantages:

[0026] 1. The multifunctional L-shaped deformable display assembly is provided in the present application, the L-shaped display assembly is closed to form a regular I-shaped cube, the surface is treated by stone-like texture film or artistic paint, and can be used as a decorative structure in public places, the acrylic material frame on the outer wall of the box body is convenient for displaying design cases and material parameter tables, after being unfolded, the wall surface and the ground form double display surfaces, the other two sides of the inner wall can also display excellent cases, and in cooperation with the first simulation board, the second simulation board and the projection member, the material paving effect can be directly displayed in the form of full paving, compared with the traditional single sample or computer display, and after being closed, the inside can be used as a storage space, the visual directness and the space utilization rate are improved, and the multiple functions of "displaying - storing - decorating" are realized.

[0027] 2. The present invention also provides an intelligently linked immersive material simulation system. The first simulation board and the second simulation board adopt a multi-layer special material structure. The internal electrically controlled dimming film, light-sensing adjustment layer and other components are precisely controlled by the power module PLC controller, combined with projection technology to achieve a realistic simulation of the material texture. For example, when displaying matte paint, the electrically controlled dimming film is atomized when the power is turned off to enhance the projection contrast, and the wall surface simulates a rough touch. When displaying glazed floor tiles, the light-sensing adjustment layer cooperates with the diffuse reflection layer to enhance the mirror reflection effect, restoring the material properties from multiple dimensions of vision and touch, providing users with an immersive experience. At the same time, the anti-slip support layer can enhance the realism of the material simulation from the tactile level through the structural grooves pressed on the surface. Compared with traditional display methods, it can more accurately present the real effect of the material.

[0028] 3. At the same time, the flexible form switching of the L-shaped display component provides a variety of display scenarios for immersive material simulation. Whether displaying materials on the wall or the floor, its stable structure and ample display area ensure the integrity of the projection and simulation effects. The intelligent linkage simulation system uses light and shadow simulation to make the material display of the L-shaped display component in the expanded state more intuitive, attracting users to stop and experience it. In addition, the decorative and storage functions of the L-shaped component when closed enable the overall device to efficiently utilize space even when not on display. The synergy between the two not only enhances the functionality and practicality of the display device, but also strengthens its appeal and competitiveness in the field of interior design display, bringing users a full range of high-quality experience from vision, touch to space utilization.

[0029] The present invention will be explained in detail below with reference to the accompanying drawings and specific embodiments. BRIEF DESCRIPTION OF THE DRAWINGS

[0030] Figure 1 This is a schematic diagram of the main structure of the present invention;

[0031] Figure 2 This is a schematic diagram of the main closed structure of the present invention;

[0032] Figure 3 Schematic diagram of the internal cross-sectional structure of the present invention;

[0033] Figure 4 This is a schematic diagram of the structure of the expansion stool of the present invention;

[0034] Figure 5 This is a schematic diagram of the local structure of the box body of the present invention;

[0035] Figure 6 For the present invention Figure 5 A schematic diagram of the structure at center A;

[0036] Figure 7 Schematic diagram of the cross-sectional structure of the first simulation board of the present invention;

[0037] Figure 8 Fig. 2 is a schematic view of a second simulation board profile structure of the present application;

[0038] Reference numerals in the drawings:

[0039] 1, L-shaped display assembly; 2, box; 3, flap; 4, hydraulic cylinder; 5, first simulation board; 501, wall base plate; 502, electric control light film; 503, wall surface layer; 6, second simulation board; 601, ground base plate; 602, anti-skid support layer; 603, light sensing adjustment layer; 604, diffuse reflection layer; 605, surface protection layer; 7, first projection; 8, second projection; 9, expansion stool; 901, support bottom plate; 902, sitting surface grid; 903, vertical support grid; 10, turning mechanism; 11, fan; 12, anti-collision piece. DETAILED DESCRIPTION

[0040] In order to facilitate the understanding of the present application, the present application will be described more fully below with reference to the accompanying drawings, in which several embodiments of the present application are given. However, the present application can be realized in different forms and is not limited to the embodiments described herein. On the contrary, these embodiments are provided to make the disclosure of the present application more thorough and comprehensive.

[0041] It should be noted that when an element is referred to as being "fixedly attached" to another element, it can be directly on the other element or there can be intervening elements, and when an element is referred to as being "connected" to another element, it can be directly connected to the other element or there can be intervening elements. The terms "vertical", "horizontal", "left", "right" and similar expressions used herein are for illustrative purposes only.

[0042] Please refer to the accompanying drawings Figures 1-8 A multi-form variable indoor design scenery display device includes a box 2 and a flap 3, and further includes an L-shaped display assembly 1.

[0043] The box 2 and the flap 3 jointly constitute the L-shaped display assembly 1.

[0044] The box 2, the inner walls of which are connected to one end of the hydraulic cylinder 4 through the hinge seats, is used to drive the flap 3 to open and close through the extension and retraction action of the hydraulic cylinder 4, and provides a support base for the rotation of the flap 3.

[0045] The flap 3 is rotationally connected to the box 2 at one end and is hingedly connected to the other end of the hydraulic cylinder 4 at the inner side wall, and is driven to rotate by 90° through hydraulic drive to form a ground display surface.

[0046] The hydraulic cylinder 4 is hingedly connected to the inner wall of the box 2 and the inner side wall of the flap 3 at both ends, and is used to drive the flap 3 to open and close around the connection of the box 2.

[0047] The first simulation plate 5 is arranged on one side of the inner wall of the box 2 and is used for simulating the texture of a wall surface material.

[0048] The second simulation plate 6 is arranged on the surface of the flap 3 and is used for simulating the characteristics of a ground surface material.

[0049] The first projection member 7 is mounted on the outer wall of the box 2 and is used for projecting an image of a ground surface material to the second simulation plate 6.

[0050] The second projection member 8 is mounted on the inner wall of the box 2 and is located on the opposite side of the first projection member 7 and is used for projecting an image of a wall surface material to the first simulation plate 5.

[0051] The expansion stool 9 is arranged on both ends of the outer wall of the box 2 and can be folded and stored in the outer wall of the box 2 or unfolded to form a seat, thereby providing a temporary resting space for a user.

[0052] The turning mechanism 10 is mounted on the box 2 and is used for supporting the first projection member 7 and the second projection member 8 and can be axially rotated to adjust the projection angle of the projection members.

[0053] The expansion stool 9 comprises a support bottom plate 901, a seat surface grid 902 and a vertical support grid 903. The support bottom plate 901 is fixedly connected with the seat surface grid 902. The seat surface grid 902 and the vertical support grid 903 each comprise a plurality of wooden strips arranged at equal distances. The wooden strips between the seat surface grid 902 and the vertical support grid 903 are arranged in a staggered manner and are connected in a mortise and tenon joint manner.

[0054] In this embodiment, as shown in Figure 3 and Figure 5 , a power supply module and a control main body are fixed to the top of the box 2. A fan 11 is fixed to the inner top wall of the box 2 and has its blades facing the inside of the box 2. Long strip-shaped heat dissipation openings are formed in both ends of the outer wall of the box 2. The control main body comprises a PLC controller and a touch panel and is electrically connected with the hydraulic cylinder 4, the first projection member 7, the second projection member 8 and the fan 11. The power supply module supplies power to the above-mentioned components.

[0055] Through the above-mentioned structure, the top of the power supply module and the control main body are integrated and arranged, thereby effectively saving the internal space of the device, ensuring that the installation and operation of the flap 3, the projection members and other components are not disturbed. The control main body composed of the PLC controller and the touch panel realizes precise control and multi-mode switching of the hydraulic system and the projection equipment and is convenient and intuitive to operate. The directional heat dissipation of the fan 11 and the heat dissipation openings can quickly discharge the heat generated by the heat generating components such as the projection members and the power supply module, thereby ensuring the stable operation of the device for a long time and improving the practicability, reliability and service life of the equipment.

[0056] In this embodiment, as shown in Figure 1 and Figure 3 , one end of the flap 3 is rotationally connected with the box 2. The flap 3 forms a 90° overturning structure through the hydraulic cylinder 4 and is distributed perpendicularly to the box 2.

[0057] Through the above structure, the flap 3 and the box 2 are turned over by 90° through the hydraulic oil cylinder 4, the shape switching from I to L is quickly completed, the high-efficiency display requirement is met, the double display surfaces of the wall surface and the ground are formed after unfolding, the projection display function is adapted, the box 2 inside is adhered when closed and can also be used as an independent storage space, and the display practicability and the space utilization rate are considered.

[0058] In the embodiment, as shown in Figure 1 and Figure 5 , the surface of the box 2 is provided with an anti-collision piece 12 on the side corresponding to the flap 3, a notch is formed in the bottom of the anti-collision piece 12, and the top of the flap 3 is provided with a protrusion matched with the notch, and a gap is formed between the notch and the protrusion.

[0059] Through the above structure, the anti-collision piece 12 on the surface of the box 2 is matched with the protrusion of the flap 3, and a rubber buffer pad is arranged on one side of the anti-collision piece 12, so that the flap 3 is effectively buffered during opening and closing, damage is prevented, component wear or deformation caused by rigid collision is avoided, and the problem of noise during opening and closing of the flap 3 is also avoided, and the buffering effect of the rubber pad greatly reduces the collision noise.

[0060] In the embodiment, as shown in Figure 1 , Figure 3 and Figure 6 , the first projection piece 7 and the second projection piece 8 are installed on both ends of the anti-collision piece 12 through the steering mechanism 10, the steering mechanism 10 includes a worm gear and a worm shaft that are connected with each other, the first projection piece 7 and the second projection piece 8 are respectively fixedly connected with the shaft rods of the corresponding worm gears through the mounting frames, and the first projection piece 7 and the second projection piece 8 can rotate around the circumferences of the worm gears.

[0061] Through the above structure, the worm gear and the worm shaft of the steering mechanism 10 can realize the micro and accurate adjustment of the angle of the projection piece, and combined with the trapezoidal correction function of the control main body, the picture distortion caused by the distance or angle deviation can be quickly corrected, and the adhesion of the projection contents such as the wall surface and the tile joint and the wood floor texture is ensured.

[0062] In the embodiment, as shown in Figure 5 and Figure 7 , the first simulation plate 5 is located on the opposite side of the second projection piece 8, and the first simulation plate 5 includes a wall surface base plate 501, an electrically controlled light adjusting film 502 and a wall surface surface layer 503 from inside to outside.

[0063] Through the above structure, the wall base plate 501 adopts a solid high-density fiberboard, has excellent flatness and anti-deformation ability, and provides a stable base for the upper structure. The electrically controlled light modulation film 502 is made of PDLC (polymer dispersed liquid crystal) material, and the light transmittance is switched between frosted and semi-transparent by energization. The wall surface layer 503 adopts a pressed ABS plate with matte micro-sandwich / irregular fine particle texture, simulates the rough texture of real paint, enhances the realism of touch and vision, and the three are cooperated to project to make the first simulation board 5 have the advantages of intelligent light modulation and real touch.

[0064] In this embodiment, as shown in Figure 1 , Figure 8 , the second simulation board 6 is flipped down to the horizontal state through the flip plate 3, is perpendicular to the front of the box body 2, and is located below the first projection 7. The second simulation board 6 includes, from inside to outside, a ground base plate 601, an anti-skid support layer 602, a light-sensing adjustment layer 603, a diffuse reflection layer 604, and a surface protection layer 605. The light-sensing adjustment layer 603 and the electrically controlled light modulation film 502 are electrically connected with the power module and the control body at the top of the box body 2.

[0065] Through the above structure, the ground base plate 601 adopts a 20m glass-magnesium plate plus 0.8mm glass fiber mesh, provides high-strength support and is not easy to deform. The anti-skid support layer 602 is a 5mm thick high-density PVC hardboard, which is pressed with textures simulating real materials and has wear-resistant and anti-skid properties. The light-sensing adjustment layer 603 is a TiO2+WO3 composite coating, which can automatically adjust the reflectivity according to the ambient light to enhance the display effect. The diffuse reflection layer 604 is selected from 8-12mm super-white tempered glass, which is processed by frosted etching and nano coating to enhance the light diffuse reflection effect. The surface protection layer 605 is a nano-SiO2 super-hydrophobic coating, which is anti-fouling and easy to clean. The second simulation board 6 realizes the comprehensive functions of firm bearing, real simulation, and long-term durability through the cooperation of multiple layers. The layers cooperate with each other, not only bring users an immersive material experience from vision to touch, but also ensure the stability and reliability of the device in long-term high-frequency use, effectively solving the problem of single display mode and insufficient experience of traditional material display.

[0066] In this embodiment, as shown in Figure 1 , Figure 2 , Figure 4 , cavities for installing the expansion stool 9 are provided at both ends of the outer wall of the box body 2. The expansion stool 9 includes a support bottom plate 901, a seat surface grid 902, and a vertical support grid 903. The support bottom plate 901 is rotatably connected to the cavity by a damping hinge and forms a 90° flip structure. The support bottom plate 901 is fixedly connected with the seat surface grid 902. The seat surface grid 902 and the vertical support grid 903 are both composed of a plurality of wooden strips arranged at equal distances. The wooden strips between the seat surface grid 902 and the vertical support grid 903 are distributed in a staggered manner and form a mortise and tenon joint.

[0067] Through the above structure, the cavity is arranged at both ends of the outer wall of the box 2 to install the expansion stool 9, and the expansion stool 9 can be completely stored in the cavity when idle, so that the device maintains a regular I-shaped appearance, and a damping hinge is used to provide smooth buffering to avoid injury or collision caused by too fast expansion or storage.

[0068] In this embodiment, as shown in the drawings, Figure 4 The outer wall of the wood strip at both ends of the vertical support grid 903 is provided with a first sliding block, the inner wall of the wood strip at both ends of the sitting surface grid 902 is provided with a limiting sliding groove extending along the length direction, and the limiting sliding groove is slidably provided with a second sliding block. The first sliding block is rotatably connected with the second sliding block. The wood strips of the vertical support grid 903 and the wood strips of the sitting surface grid 902 are distributed in a staggered manner and are movably connected through the mortise and tenon structure 904. The vertical support grid 903 can be flipped from a storage state parallel to the sitting surface grid 902 to a support state perpendicular to the ground through the sliding cooperation of the first sliding block, the second sliding block and the limiting sliding groove, and the rotation limiting of the mortise and tenon structure.

[0069] Through the above structure, the vertical support grid 903 is slidably connected with the second sliding block in the limiting sliding groove through the first sliding block, so as to realize the telescopic adjustment along the length direction of the sitting surface grid 902. The rotation limiting characteristic of the mortise and tenon structure 904 enables the vertical support grid 903 to be closely and staggeringly embedded with the wood strips of the sitting surface grid 902 when being stored. The overall thickness of the expansion stool 9 is compressed to only the sitting surface grid 902 through the engagement of the tenon and the mortise, so as to maximize the reduction of the area after being folded, so that the expansion stool 9 can be compactly stored in the cavity of the outer wall of the box 2, and the vertical support grid 903 stands on the ground. At this time, one side of the vertical support grid 903 abuts against the support bottom plate 901, so as to balance the space saving and the structural stability during use.

[0070] The specific operation process of the present application is as follows: when the flap 3 is closed, the L-shaped display assembly 1 is in a regular I-shaped cubic structure. The surface is treated with a metal film or artistic paint with a stone texture, which can be used as a decorative structure in public places. The acrylic material rack at both ends of the outer wall of the box 2 can display design case books or material parameter tables for customers to read.

[0071] The daily expansion stool 9 can be expanded. The staff holds the handhold groove arranged at the bottom of the vertical support grid 903, flips the support bottom plate 901 together with the sitting surface grid 902 downward by 90° from the outer wall of the box 2, and the vertical support grid 903 is slid outward through the cooperation of the first sliding block and the limiting sliding groove. The mortise and tenon structure surface of the vertical support grid 903 and the sitting surface grid 902 is gradually separated, and the vertical support grid 903 can be flipped to be perpendicular to the ground after reaching the limit position. At this time, one end of the vertical support grid 903 abuts against the support bottom plate 901, which effectively avoids accidental folding during use.

[0072] In the use scene, the operator starts the hydraulic system by the power supply, and the hydraulic cylinder 4 drives the flap 3 to flip down by 90°, so that the original I-shaped structure is converted into an L-shaped display assembly 1, the first simulation plate 5 on the inner wall of the box 2 can be used as a wall surface, and the second simulation plate 6 on the surface of the flap 3 can be used as a ground surface.

[0073] The second projection member 8 displays the wall surface material on the first simulation plate 5, when matte paint display is performed, the power module can cut off the power supply of the electrically controlled light-adjusting film 502, so that the PDLC material in the electrically controlled light-adjusting film 502 loses the electric field effect due to power-off, the internal liquid crystal molecules are arranged in disorder, and a frosted haze state (transmittance ≤ 10%) is presented, the haze state effectively weakens the reflection of the light bar on the top wall in the box 2 and the ambient light, so that the first simulation plate 5 becomes a low-reflective projection surface, the projection contrast is improved in cooperation with the projection of the paint texture pattern by the second projection member 8, the paint particle texture is accurately restored, and the wall surface layer 503 presents a “rough touch” in synchronization with the projection texture without the need of additional devices.

[0074] When glazed ceramic tile display is performed, the power module supplies power to the electrically controlled light-adjusting film 502, so that the electrically controlled light-adjusting film 502 is converted into a translucent state (transmittance 60%), the PDLC liquid crystal molecules are arranged in order under the action of the electric field, and the light bar on the top wall in the box 2 is adjusted to cold white light, so as to simulate the mirror reflection characteristic of the glazed surface of the ceramic tile, the transparent state of the electrically controlled light-adjusting film 502 reflects the light bar light, and the “glazed reflection band” is formed on the micro-mirror area of the wall surface layer 503, the UV coating on the surface of the wall surface layer 503 further enhances the reflection authenticity, the high light trajectory and the physical mirror texture are superimposed in cooperation with the projection, and the visual authenticity of the “glazed moist feeling” of the ceramic tile is enhanced.

[0075] When wooden wallboard display is performed, the power supply of the electrically controlled light-adjusting film 502 is cut off, the PDLC molecules are arranged in disorder, and a frosted haze state (transmittance ≤ 10%) is presented, the second projection member 8 projects a wood grain texture, and the “matt micro-sand” texture of the wall surface layer 503 is superimposed with the projected wood grain noise points, so as to approach the “mat rough feeling” of the real wood.

[0076] The first projection member 7 displays the ground material on the second simulation plate 6, when glazed tile / polished stone ground display is performed, the light-sensing adjusting layer 603 is converted into a translucent state (transmittance 60%) after being powered on, and the micro-mirror structure of the diffuse reflection layer 604 (8 mm super-white tempered glass) reflects the ambient light to simulate the mirror effect of the polished surface of the stone.

[0077] The first projection member 7 is started to project a picture containing a paving pattern of floor tiles, a highlight of joints and a bright point of stone crystal. The fine joint texture on the surface of the anti-skid supporting layer 602 (5mm high-density PVC) is combined with the projected floor tiles and the highlight of the joint in the projected picture to visually enhance the real texture of the glazed floor tiles.

[0078] When the solid wood floor / anti-skid floor tile ground display is performed, the light-sensing adjusting layer 603 is powered on to maintain a low light transmittance (30%) and weaken the reflection of ambient light to provide a matte base for projection and combine with the structure of the anti-skid supporting layer 602 (5mm high-density PVC) to simulate the wood board and ceramic tile joints.

[0079] The application is described above by way of example with reference to the accompanying drawings. It is apparent that the specific implementation of the application is not limited to the above-described manner, and any non-essential improvement or direct application of the concept and technical solution of the application to other occasions is within the protection scope of the application.

Claims

1. A multi-form, changeable interior design display device, characterized by: include: The box body (2) and the flap (3) also include: an L-shaped display assembly (1); The box body (2) and the flap (3) together form an L-shaped display assembly (1); The box body (2) has two ends of an inner wall connected to one end of a hydraulic cylinder (4) through a hinged seat, so as to drive the flap (3) to open and close through the telescopic action of the hydraulic cylinder (4), thereby providing a support base for the rotation of the flap (3); The flap (3) is rotatably connected to the box (2) at one end, and the inner wall is hinged to the other end of the hydraulic cylinder (4), and is hydraulically driven to achieve a 90° flip to form a ground display surface; A hydraulic cylinder (4) is hinged at both ends to the inner wall of the box (2) and the inner wall of the flap (3), and is used to drive the flap (3) to open and close around the connection of the box (2); A first simulation board (5) is provided on one side of the inner wall of the box (2) and is used to simulate the texture of the wall material; A second simulation plate (6) is provided on the surface of the flap (3) and is used to simulate the characteristics of the ground material; A first projection member (7) is mounted on the outer wall of the box (2) and is used to project an image of ground material onto the second simulation board (6); A second projection member (8) is mounted on the inner wall of the box (2) and is located on the opposite side of the first projection member (7), and is used to project an image of the wall material onto the first simulation board (5); Extension stools (9) are provided at both ends of the outer wall of the box body (2) and can be folded and stored in the outer wall of the box body (2) or unfolded to form a seat, providing a temporary rest space for users; The steering mechanism (10) is installed on the box (2) to support the first projection member (7) and the second projection member (8), and can be axially rotated to adjust the projection angle of the projection member.

2. The multi-form changeable interior design scenery display device according to claim 1, characterized in that: A power module and a control body are fixed on the top of the outer side of the box (2); a fan (11) is fixed on the inner top wall of the box (2), with its blades facing the inside of the box (2); and long strip-shaped heat dissipation openings are respectively opened at both ends of the outer wall of the box (2); the control body includes a PLC controller and a touch panel, which are respectively electrically connected to the hydraulic cylinder (4), the first projection component (7), the second projection component (8) and the fan (11); and the power module supplies power to the above components.

3. The multi-form changeable interior design display device according to claim 1, characterized in that: One end of the flap (3) is rotatably connected to the box body (2); the flap (3) forms a 90° flip structure through a hydraulic oil cylinder (4) and is vertically distributed with the box body (2).

4. The multi-form changeable interior design display device according to claim 1, characterized in that: The surface of the box body (2) is provided with an anti-collision member (12) on one side corresponding to the flap (3), a notch is provided at the bottom of the anti-collision member (12), and a protrusion adapted thereto is provided at the top of the flap (3), with a gap formed between the notch and the protrusion.

5. The multi-form changeable interior design display device according to claim 4, characterized in that: The first projection member (7) and the second projection member (8) are mounted on both ends of the anti-collision member (12) via a steering mechanism (10), and the steering mechanism (10) comprises a worm wheel and a worm that are meshed and connected to each other. The first projection member (7) and the second projection member (8) are respectively fixedly connected to the shaft of the corresponding worm wheel via a mounting frame, and the first projection member (7) and the second projection member (8) can rotate circumferentially around the axis of the worm wheel along with the worm wheel.

6. The multi-form changeable interior design scenery display device according to claim 1, characterized in that: The first simulation board (5) is located on the opposite side of the second projection component (8), and the first simulation board (5) comprises, from the inside to the outside, a wall base board (501), an electrically controlled dimming film (502), and a wall surface layer (503).

7. The multi-form changeable interior design scenery display device according to claim 1, characterized in that: The second simulation board (6) is flipped downward to a horizontal state by the flip plate (3), is perpendicular to the front of the box (2), and is located below the first projection member (7). The second simulation board (6) comprises, from the inside to the outside, a ground base plate (601), an anti-slip support layer (602), a light sensitivity adjustment layer (603), a diffuse reflection layer (604), and a surface protection layer (605). The light sensitivity adjustment layer (603) and the electrically controlled dimming film (502) are electrically connected to a power module and a control body at the top of the box (2).

8. The multi-form changeable interior design scenery display device according to claim 1, characterized in that: The outer walls of the box (2) are provided with cavities for installing an expansion stool (9), and the expansion stool (9) comprises a supporting base plate (901), a seat grid (902) and a vertical support grid (903), and the supporting base plate (901) is rotatably connected to the cavity via a damping hinge to form a 90° flip structure, and the supporting base plate (901) is fixedly connected to the seat grid (902), and the seat grid (902) and the vertical support grid (903) are both composed of a plurality of wooden strips arranged at equal distances, and the wooden strips between the seat grid (902) and the vertical support grid (903) are staggered and form a mortise and tenon joint.

9. The multi-form changeable interior design scenery display device according to claim 8, characterized in that: The outer walls of the wooden strips at the two ends of the edge of the vertical support grid (903) are respectively provided with a first slider, and the inner walls of the wooden strips at the two ends of the edge of the sitting surface grid (902) are respectively provided with a limiting slide groove extending along the length direction, and a second slider slides in the limiting slide groove, and the first slider is rotatably connected to the second slider. The wooden strips of the vertical support grid (903) and the wooden strips of the sitting surface grid (902) are staggered and movably connected through a mortise and tenon structure (904). The vertical support grid (903) can be flipped from a storage state parallel to the sitting surface grid (902) to a support state perpendicular to the ground through the sliding cooperation of the first slider, the second slider and the limiting slide groove, and the rotation limitation of the mortise and tenon structure.