Interaction device for Qin brick and Han tile
By designing an interactive installation of Qin bricks and Han tiles, and using feeding and lifting components to simulate an earthquake process, the problem of the lack of interactivity and earthquake resistance in the Qin bricks and Han tiles display was solved, the interactivity and fun of the display were enhanced, and the stability and earthquake resistance of the wooden frame were demonstrated.
Patent Information
- Application Number
- CN202520265322.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-19
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2035-02-19
AI Technical Summary
The existing Qin brick and Han tile displays lack interactivity and fail to effectively showcase the stability and earthquake resistance of traditional wooden frame structures.
An interactive device based on Qin bricks and Han tiles was designed, comprising a solid wood platform, solid wood columns, wooden brackets, purlins, and an earthquake simulation base. It uses feeding and lifting components to simulate an earthquake process, and the earthquake level can be adjusted via a control panel to simulate the left-right and up-down movement of the wooden frame.
This enhanced the interactivity and interest of the Qin and Han brick and tile displays, demonstrated the stability and earthquake resistance of the wooden frame, and improved visitors' understanding of ancient architectural structures.
Smart Images

Figure CN223743204U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of Qin and Han brick and tile display technology, specifically an interactive device for Qin and Han bricks and tiles. Background Technology
[0002] The Qin and Han Dynasty Bricks and Tiles Exhibition comprehensively showcases the historical and cultural value, artistic charm, and craftsmanship of these two highly representative ancient architectural components. The exhibition utilizes a wooden frame structure, simulating the beams and rafters of a building by laying Qin bricks and Han tiles on it. The wooden frame structure, composed of columns, beams, and purlins, is joined by mortise and tenon joints, forming a flexible framework that effectively simulates the stability of a building's beams. It can withstand significant loads and allows for some deformation, thus mimicking seismic energy and reducing the structure's seismic response under earthquake loads.
[0003] In current technologies, the display of Qin and Han bricks and tiles not only needs to show their appearance and shape, but also their uses. However, simply displaying Qin and Han bricks and tiles through a wooden frame lacks interactivity and is not convenient for demonstrating the stability and earthquake resistance of traditional wooden frame structures. Therefore, an interactive device for Qin and Han bricks and tiles is proposed to solve the above problems. Utility Model Content
[0004] To address the shortcomings of existing technologies, this utility model provides an interactive device for Qin and Han dynasty bricks and tiles. It has the advantage of facilitating the simulation of the state of a wooden frame during an earthquake. It solves the problem that the display of Qin and Han dynasty bricks and tiles not only needs to show their appearance and shape, but also their uses. However, simply displaying Qin and Han dynasty bricks and tiles through a wooden frame lacks interactivity and is not convenient for demonstrating the stability and earthquake resistance of traditional wooden frame structures.
[0005] To achieve the above objectives, this utility model provides the following technical solution: an interactive device for Qin bricks and Han tiles, including a solid wood platform, on which solid wood columns and wooden brackets are provided, and purlins for displaying Qin bricks and Han tiles are provided on the solid wood columns and wooden brackets, and an earthquake simulation base is provided at the bottom of the solid wood platform.
[0006] The earthquake simulation base includes a base frame installed on the bottom of a solid wood platform. Two support frames are slidably installed inside the base frame. Two connecting plates with one end penetrating through and extending into the support frames are fixedly installed at the bottom of the solid wood column. Support components for limiting the left and right sliding trajectory of the support frames are installed on the inner bottom wall of the base frame. Feeding components for controlling the left and right movement of the support frames are installed on the inner wall of the base frame. Pressure sensors electrically connected to the feeding components are fixedly installed on the back of both support frames. A lifting assembly is provided inside the base frame.
[0007] Furthermore, the lifting assembly includes a connecting platform fixedly installed between two opposite sides of the support frame. The top of the connecting platform is equipped with a lifting component for controlling the up and down movement of the solid wood platform. The interior of both support frames is provided with anti-slip components to prevent the connecting plate from slipping off. A control panel is fixedly installed on one side of the base frame.
[0008] Furthermore, the solid wood column is fixedly installed on the solid wood platform, the wooden bracket is riveted to the solid wood column, the purlin is riveted to both the solid wood column and the wooden bracket, and a solid wood wind board is fixedly installed on the purlin.
[0009] Furthermore, the supporting component includes a linear slide rail and two sliders. The two sliders are slidably connected to the linear slide rail, the linear slide rail is fixedly installed on the inner bottom wall of the base frame, and the two sliders are fixedly connected to two supporting frames.
[0010] Furthermore, the feeding component includes two linear actuators, which are respectively fixedly installed on the front and rear side walls of the inner cavity of the base frame, and the telescopic ends of the two linear actuators are respectively fixedly connected to the support frame on the left side.
[0011] Furthermore, the lifting component includes two mounting brackets and two electric push rods. The two electric push rods are respectively fixedly installed on the two mounting brackets, and the two mounting brackets are fixedly installed on the top of the connecting platform. The telescopic ends of the two electric push rods are respectively fixedly connected to the solid wood platform.
[0012] Furthermore, both of the anti-detachment components include an anti-detachment plate, which is fixedly installed between the left and right side walls of the inner cavity of the support frame. A rectangular groove is provided inside the connecting plate, and one end of the anti-detachment plate passes through the rectangular groove and is slidably connected to the inner wall of the rectangular groove.
[0013] Compared with the prior art, the technical solution of this application has the following beneficial effects:
[0014] This interactive device featuring Qin and Han dynasty bricks and tiles incorporates an earthquake simulation base. It utilizes a feeding component to control the left-right movement of the support frame, which in turn moves the wooden frame and Qin and Han dynasty bricks and tiles atop the solid wood platform. A lifting component controls the vertical movement of the wooden frame and tiles, simulating the vibration process of the wooden frame and tiles during an earthquake. The device simulates vibration through vertical and horizontal movement, and the control panel allows adjustment of the simulated earthquake intensity. This effectively demonstrates the stability of the wooden frame, enhancing the interactivity of the Qin and Han dynasty bricks and tiles and thus increasing the practicality of the interactive device. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the structure of this utility model;
[0016] Figure 2 This is a cross-sectional view of the earthquake simulation base of this utility model.
[0017] Figure 3 This is a three-dimensional schematic diagram of the structural support frame and connecting plate of this utility model.
[0018] In the diagram: 1. Solid wood platform; 2. Solid wood column; 3. Wooden bracket; 4. Purlin; 5. Solid wood air panel; 61. Base frame; 62. Support frame; 63. Connecting plate; 64. Support component; 65. Feeding component; 66. Pressure sensor; 67. Connecting platform; 68. Lifting component; 69. Anti-detachment component; 70. Control panel. Detailed Implementation
[0019] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0020] Please see Figures 1 to 3 An interactive device for displaying Qin bricks and Han tiles in this embodiment includes a solid wood platform 1, on which solid wood columns 2 and wooden brackets 3 are provided. Ridges 4 for displaying Qin bricks and Han tiles are provided on the solid wood columns 2 and wooden brackets 3. An earthquake simulation base is provided at the bottom of the solid wood platform 1. The solid wood columns 2 are fixedly installed on the solid wood platform 1. The wooden brackets 3 are riveted to the solid wood columns 2. The ribs 4 are riveted to the solid wood columns 2 and wooden brackets 3 respectively. Solid wood wind boards 5 are fixedly installed on the ribs 4.
[0021] In this implementation, the earthquake simulation base includes a base frame 61 installed at the bottom of a solid wood platform 1. Two support frames 62 are slidably installed inside the base frame 61. Two connecting plates 63, one end of which passes through and extends into the support frames 62, are fixedly installed at the bottom of the solid wood column 2. A support component 64 is installed on the inner bottom wall of the base frame 61 to limit the left and right sliding trajectory of the support frames 62. The support component 64 includes a linear slide rail and two sliders. The two sliders are slidably connected to the linear slide rail. The linear slide rail is fixedly installed on the inner bottom wall of the base frame 61. The two sliders are fixedly connected to the two support frames 62 to reduce the friction of the left and right sliding of the two support frames 62. A feed component 65 is installed on the inner wall of the base frame 61 to control the left and right movement of the support frames 62. Pressure sensors 66 electrically connected to the feed component 65 are fixedly installed on the back of each of the two support frames 62. A lifting assembly is provided inside the base frame 61.
[0022] The feeding component 65 includes two linear actuators, which are fixedly installed on the front and rear side walls of the inner cavity of the base frame 61. The telescopic ends of the two linear actuators are fixedly connected to the support frame 62 on the left side, so as to control the left and right movement of the support frame 62 by telescopic control of the linear actuators, thereby driving the solid wood platform 1 to move synchronously to simulate the left and right vibration during an earthquake.
[0023] Using the above technical solution, when the linear actuator is started, it pushes the left support frame 62 to move left and right along the linear slide rail, and the right support frame 62 moves synchronously. Pressure sensors 66 are fixed on the back of the two support frames 62. When the support frame 62 moves to a certain position and contacts a specific position on the inner wall of the base frame 61, the pressure sensor 66 senses the pressure change and feeds the signal back to the linear actuator. The linear actuator adjusts the extension and retraction direction according to the signal to realize the reciprocating left and right movement of the support frame 62, simulating the horizontal swaying during an earthquake.
[0024] In this implementation, the lifting assembly includes a connecting platform 67 fixedly installed between two opposing sides of the support frames 62. A lifting component 68 for controlling the vertical movement of the solid wood platform 1 is installed on the top of the connecting platform 67. The lifting component 68 includes two mounting brackets and two electric push rods. The two electric push rods are fixedly installed on the two mounting brackets, which are both fixedly installed on the top of the connecting platform 67. The telescopic ends of the two electric push rods are fixedly connected to the solid wood platform 1, facilitating the vertical movement of the solid wood platform 1 by extending and retracting the electric push rods, thus simulating the vertical vibration during an earthquake. Anti-slip components 69 are installed inside both support frames 62 to prevent the connecting plate 63 from slipping. A control panel 70 is fixedly installed on one side of the base frame 61. The control panel 70 visually displays the operating parameters of the electric push rods, such as speed and position. By manually adjusting the parameters, the extension and retraction speed and frequency of the electric push rods can be changed, thereby altering the simulated earthquake level.
[0025] Both anti-detachment components 69 include anti-detachment plates, which are fixedly installed between the left and right side walls of the inner cavity of the support frame 62. A rectangular groove is provided inside the connecting plate 63, and one end of the anti-detachment plate passes through the rectangular groove and is slidably connected to the inner wall of the rectangular groove, thus restricting the trajectory of the connecting plate 63 sliding up and down inside the support frame 62.
[0026] By employing the aforementioned technical solution, the telescopic movement of the solid wood platform 1 is achieved, thereby simulating the vertical vibration during an earthquake. This demonstrates how the overall wooden structure of Qin bricks and Han tiles works together to resist vibration, showcasing the scientific and stable nature of ancient architectural structural design. It helps visitors gain a deeper understanding of the exquisite craftsmanship of ancient architecture. The electric push rod of the lifting component 68 and the linear drive of the feeding component 65 can flexibly adjust the telescopic range according to different needs, thereby changing the intensity and frequency of the simulated earthquake, meeting diverse display requirements and visitor experience demands. By simulating earthquake scenarios, it breaks through the traditional static display method, allowing visitors to personally experience the state of Qin bricks and Han tiles under earthquake action, enhancing interactivity and interest, and enabling visitors to gain a deeper understanding of Qin bricks and Han tiles and ancient architectural structures.
[0027] The working principle of the above embodiments is as follows:
[0028] The interactive installation of Qin bricks and Han tiles is based on a solid wood platform 1. Solid wood columns 2 are vertically fixed on the solid wood platform 1. Wooden brackets 3 are connected to the solid wood columns 2 by riveting. Ridges 4 are set on the solid wood columns 2 and wooden brackets 3 to display Qin bricks and Han tiles. Solid wood wind boards 5 are also fixed on the ribs 4. The whole structure forms a display rack similar to the structure of ancient buildings. The earthquake simulation base is located at the bottom of the solid wood platform 1 to provide simulated earthquake movement for the entire display structure.
[0029] The support component 64 installed on the inner bottom wall of the base frame 61 consists of a linear slide rail and two sliders. The two sliders are slidably connected to the linear slide rail and are fixed to the two support frames 62 respectively. This restricts the support frame 62 to slide left and right along the direction of the linear slide rail, providing guidance for simulating the horizontal movement of an earthquake. The two linear actuators of the feed component 65 are fixed to the front and rear side walls of the inner cavity of the base frame 61 respectively. Their telescopic ends are fixedly connected to the left support frame 62. When the linear actuator is activated, it pushes the left support frame 62 to move left and right along the linear slide rail, and the right support frame 62 moves synchronously. Pressure sensors 66 are fixed on the back of the two support frames 62. When the support frame 62 moves left and right to a certain position and contacts a specific position on the inner wall of the base frame 61, the pressure sensor 66 senses the pressure change and feeds the signal back to the linear actuator. The linear actuator adjusts the telescopic direction according to the signal to realize the reciprocating left and right movement of the support frame 62, simulating the horizontal swaying during an earthquake.
[0030] The connecting platform 67 in the lifting assembly is fixed between the two support frames 62 on opposite sides, serving to connect the two support frames 62 and provide an installation base for the lifting component 68. After the electric push rod is started, it pushes the solid wood platform 1 up and down through the telescopic action, thereby simulating the vertical vibration during an earthquake.
[0031] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0032] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An interactive device of Qin brick and Han tile, comprising a solid wood platform (1), characterized in that: The solid wood platform (1) is provided with solid wood columns (2) and wood brackets (3), the solid wood columns (2) and wood brackets (3) are provided with order purlins (4) for displaying Qin brick Han tiles, and the bottom of the solid wood platform (1) is provided with an earthquake simulation base; The earthquake simulation base comprises a base frame (61) mounted at the bottom of the solid wood platform (1), two support frames (62) are slidably mounted in the base frame (61), the bottom of the solid wood column (2) is fixedly provided with two connecting plates (63) penetrating into and extending into the support frames (62), a support component (64) for limiting the left-right sliding track of the support frames (62) is mounted on the inner bottom wall of the base frame (61), a feeding component (65) for controlling the left-right movement of the support frames (62) is mounted on the inner wall of the base frame (61), a pressure sensor (66) electrically connected with the feeding component (65) is fixedly mounted on the back of each of the support frames (62), and a lifting assembly is arranged in the base frame (61).
2. An interactive device for a Qin brick Han tile according to claim 1, characterized in that: The lifting assembly comprises a connecting table (67) fixedly mounted between the opposite sides of the two support frames (62), a lifting component (68) for controlling the up-down movement of the solid wood platform (1) is mounted on the top of the connecting table (67), an anti-falling component (69) for preventing the connecting plate (63) from falling off is arranged in each of the support frames (62), and a control panel (70) is fixedly mounted on one side of the base frame (61).
3. An interactive device for a Qin brick and Han tile according to claim 1, characterized in that: The solid wood column (2) is fixedly mounted on the solid wood platform (1), the wood bracket (3) is riveted with the solid wood column (2), the order purlin (4) is riveted with the solid wood column (2) and the wood bracket (3) respectively, and the solid wood wind plate (5) is fixedly mounted on the order purlin (4).
4. The interactive device of a Qin brick and Han tile according to claim 1, characterized in that: The support component (64) comprises a straight line sliding rail and two sliding blocks, the two sliding blocks are slidably connected with the straight line sliding rail respectively, and the straight line sliding rail is fixedly mounted on the inner bottom wall of the base frame (61).
5. The interactive device of a Qin brick and Han tile according to claim 1, characterized in that: The feeding component (65) comprises two linear actuators, the two linear actuators are fixedly mounted on the front and rear side walls of the inner cavity of the base frame (61) respectively, and the telescopic ends of the two linear actuators are fixedly connected with the left support frame (62) respectively.
6. An interactive device for a Qin brick and Han tile according to claim 2, characterized in that: The lifting component (68) comprises two mounting frames and two electric push rods, the two electric push rods are fixedly mounted on the two mounting frames respectively, the two mounting frames are fixedly mounted on the top of the connecting table (67), and the telescopic ends of the two electric push rods are fixedly connected with the solid wood platform (1) respectively.
7. An interactive device for a Qin brick and Han tile according to claim 2, characterized in that: Each of the two anti-falling components (69) comprises an anti-falling plate, the anti-falling plate is fixedly mounted between the left and right side walls of the inner cavity of the support frame (62), a rectangular groove is formed in the inner part of the connecting plate (63), and one end of the anti-falling plate penetrates through the rectangular groove and is slidably connected with the inner wall of the rectangular groove.