Simulation seal cutting experience ink pad

By using a simulated seal-carving experience platform, the user's carving pressure is converted into a digital signal, achieving a seamless integration of the virtual and real environments of seal-carving art. This reduces the learning difficulty, enhances immersion, and promotes the dissemination of traditional culture.

CN223665085UActive Publication Date: 2025-12-12COMMUNICATION UNIVERSITY OF CHINA
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Patent Information

Application Number
CN202422859231.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-22
Publication Date
2025-12-12
Estimated Expiration
2034-11-22

AI Technical Summary

Technical Problem

The high level of specialization, high cost of tools, and rapid material depletion in seal carving art make it difficult for beginners to participate and learn, thus hindering the promotion of seal carving art.

Method used

Design a simulated seal engraving experience ink pad, including a simulated ink pad, simulated seal stone, simulated engraving knife, signal processor and computer. The pressure sensor and signal processor convert the user's engraving pressure into a digital signal, which is displayed on the computer, realizing the seamless integration of cyber-physical systems.

Benefits of technology

It reduces the learning difficulty of seal carving art, enhances the sense of immersion, and allows users to experience the seal carving creation process in a virtual environment, thus promoting the popularization and dissemination of traditional culture.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a simulation seal cutting experience ink pad. The simulation ink pad is provided with a clamping base for containing a simulation printing stone. The simulation printing stone is mounted in the clamping seat, and a pressure sensor for monitoring the engraving pressure applied to the surface of the simulation printing stone is arranged in the simulation printing stone; the simulation nicking tool is held by a user to apply nicking pressure on the surface of the simulation printing stone; the computer is in signal connection with the simulation printing stone; and the signal processor is connected between the pressure sensor and the computer, and is configured to receive a pressure signal of the pressure sensor, convert the pressure signal into a digital signal comprising the pressure magnitude and the change trend, and display the digital signal on the computer in an image form. According to the simulation seal cutting experience ink pad, virtual seal cutting works are overlaid in a real environment, seamless fusion of an information physical system is achieved, and the difficulty of masses for knowing the seal cutting art is lowered. A user can personally feel the seal cutting creation process without mastering a complex seal cutting tool and a graver using method, and the immersion feeling is enhanced.
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Description

TECHNICAL FIELD

[0001] The utility model relates to seal carving technical field, especially provide a kind of simulation seal carving experience seal. BACKGROUND

[0002] Seal carving is a traditional art form, because ancient seal is named for adopting seal book to print. It is the art of calligraphy and engraving (including chiseling, casting) to make seal. In terms of manufacturing process, it refers to the design of pattern or text on the plane is engraved on metal, stone, teeth, horn and other materials.

[0003] Seal carving is an art that emphasizes technique and knife work. Knife method, i.e. the technique of using knife when engraving seal, the predecessors have said that there are thirteen methods of using knife, and in actual operation, cutting knife and punching knife are mainly used. The line effect of works engraved by cutting knife is concise, and the line effect of works engraved by punching knife is smooth.

[0004] For beginners, it is difficult to master its unique skills. In addition, the risk of seal carving process is high, the economic cost of professional tools and materials required is large, the material consumption speed is fast, and other reasons affect the participation and enthusiasm of the public in seal carving art experience and learning, and also affect the promotion of seal carving art. UTILITY MODEL CONTENT

[0005] In order to achieve the above purpose, the utility model provides a kind of simulation seal carving experience seal, including simulation seal, simulation seal stone, simulation engraver, signal processor and computer. The simulation seal is provided with a card seat for accommodating the simulation seal stone, the simulation seal stone is installed in the card seat, and a pressure sensor for monitoring the pressure applied to the surface of the simulation seal stone is arranged inside; the simulation engraver is used by the user to apply pressure to the surface of the simulation seal stone; the computer is connected with the simulation seal; the signal processor is connected between the pressure sensor and the computer, configured to receive the pressure signal of the pressure sensor and convert it into a digital signal including pressure size and change trend, and display it in the form of image on the computer.

[0006] Further, the top of the simulation seal stone is provided with a top sheet for receiving the pressure of the simulation engraver, and the pressure monitoring end of the pressure sensor is arranged in close contact with the top sheet.

[0007] Further, the simulation seal stone is also provided with a support shell with open top, and the top sheet is connected to the top of the support shell to form a closed structure, and the pressure sensor is vertically installed in the support shell with the pressure monitoring end arranged upward.

[0008] Further, the simulation seal stone further comprises a capacitive touch IPS serial screen, which is configured to identify position information of pressure, a pressure sensor is configured to identify the size of force applied by a user, and a conversion chip is used to connect the computer.

[0009] Further, the top of the simulation seal holder comprises two seat bodies arranged transversely, the card seat is a vertical groove arranged at a position between the two seat bodies and matching the shape of the simulation seal stone, and a transverse groove is further arranged on the outside of the top of the simulation seal holder, and the simulation seal cutter is detachably clamped in the transverse groove.

[0010] Further, the bottom of the simulation seal holder is in a cylindrical structure, the top is in a structure of two semicircular structures arranged at a middle position, a triangular vertical groove is arranged at a middle position opposite to the two semicircular structures, thereby forming a card seat for placing the simulation seal stone, and a support seat is arranged at the center of the simulation seal holder and used to support the bottom of the simulation seal stone.

[0011] Further, the simulation seal cutter comprises a cutter handle and a cutter head, and the cutter head is made of a hard material matching the hardness of the top sheet.

[0012] Further, a spring is arranged at the front end of the simulation seal cutter and used to support the cutter head, and a telescopic button is arranged at the rear end of the simulation seal cutter and used to adjust the telescopic length of the cutter head.

[0013] Further, the pressure sensor is connected to the input end of a signal processor through a signal input line, and the computer is connected to the output end of the signal processor through a signal output line.

[0014] Further, the signal processor is embedded in the simulation seal holder and comprises one or a combination of a micro information processing chip, a micro computer or an artificial intelligence chip.

[0015] The simulation seal carving experience seal holder has the following beneficial effects:

[0016] Through the computer, the seal holder that can be used multiple times, the seal stone and the seal cutter and other hardware, the difficulty for the public to understand the seal carving art is reduced, the virtual seal carving work is superimposed in the real environment, and seamless integration of the information physical system is realized.

[0017] The user can experience the seal carving creation process in situ without mastering complex seal carving tools and seal cutter use methods, and immersion is enhanced. The product digitizes and gamifies the artistic creation process, and is applied to museum exhibitions or research education, so that more people can try and understand the seal carving art, and the popularization and dissemination of traditional culture are promoted. BRIEF DESCRIPTION OF DRAWINGS

[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present application or the prior art, the following will briefly introduce the drawings needed to be used in the embodiment or prior art description. Obviously, the drawings described below are only some embodiments of the present application, and for those skilled in the art, other drawings can also be obtained without creative labor on the basis of these drawings.

[0019] Figure 1 is a structural schematic view of the provided simulation seal carving experience inkpad embodiment.

[0020] Figure 2 is a system block diagram of the provided simulation seal carving experience inkpad.

[0021] Figure 3 is a split state schematic view of the provided inkpad base and simulation seal and simulation seal stone.

[0022] Figure 4 is a structural schematic view of the provided inkpad base.

[0023] Figure 5 is a structural schematic view of the provided simulation seal stone.

[0024] Figure 6 is a structural sectional view of the provided simulation seal stone.

[0025] The drawing mark explanation is as follows:

[0026] 1-simulation inkpad, 11-cylindrical structure, 12-semicircular structure, 13-transverse groove, 14-vertical groove;

[0027] 2-simulation seal stone, 21-pressure sensor, 22-top sheet, 24-IPS serial port screen;

[0028] 3-simulation seal stone, 31-spring, 32-telescopic button;

[0029] 4-computer;

[0030] 5-signal processor. DETAILED DESCRIPTION

[0031] In order to make the purpose, technical scheme and advantages of the embodiments of the present application more clear, the following will combine the drawings in the embodiments of the present application to clearly and completely describe the technical scheme in the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor belong to the scope of protection of the present application.

[0032] AsFigures 1 to 5 The utility model provides an embodiment of simulation seal experience inkpad, simulation inkpad 1 is provided with the card seat containing simulation seal 2, simulation seal 2 is installed in the card seat, and inside is provided with pressure sensor 21 of monitoring the engraving pressure applied to the surface of simulation seal 2, simulation engraver 3 is applied to the surface of simulation seal 2 by the hand of user and is applied to the surface of simulation seal 2, computer 4 is signal connected with simulation seal 2, signal processor 5 is connected between pressure sensor 21 and computer 4, is configured as receiving the engraving pressure signal of pressure sensor 21, converts it into digital image signal including pressure size and change trend, and shows in the form of image on computer 4. Simulation seal 2 also includes capacitive touch IPS serial screen 24, and the IPS serial screen 24 is configured to identify the position information of pressure, and the pressure sensor 21 identifies the size of force applied by the user, and is connected with the computer using conversion chip and is implemented as follows:

[0033] The internal structure is composed of capacitive touch IPS serial screen, two plastic discs, a weighing pressure sensor, arduino development board and conversion chip. The device is operated by the user to apply force to the simulation engraver on the top of the simulation seal, the capacitive screen identifies the position information of pressure, the weighing pressure sensor identifies the size of force applied by the user, and the conversion chip is used for data conversion, connected to the computer through the arduino development board and programmed, so that the corresponding position on the computer screen appears corresponding visual feedback according to the size of pressure.

[0034] (I) Position

[0035] Hardware: Taojingchi X5 series 4-inch high-resolution capacitive touch IPS serial screen 86 box panel smart home (model TJC4848X540_011C_I_Y).

[0036] Input: establish a coordinate system based on the serial screen, capture the click position x, y by clicking the simulation engraver.

[0037] Output: get the click position x, y, the serial screen displays a red circular cursor with x, y as the center, and the data output position x, y.

[0038] Conversion hardware: Taojingchi serial screen USB to TTL serial module power board CP2102 chip.

[0039] (II) Pressure

[0040] Hardware: HL-8 type weighing sensor.

[0041] Input: input the current weight, subtract the self-weight of the device above, and get the capacitive pen click force n.

[0042] Output: data output pressure n.

[0043] Located below the disc in the lower part of the figure.

[0044] Conversion hardware: special high-precision 24-bit AD conversion chip HX711 (small square in the lower right of the sketch inside the disc, used for signal amplification and A / D conversion).

[0045] (Three) overall composition

[0046] Input: click the serial screen with the simulation graver.

[0047] Output: the serial screen displays the cursor position.

[0048] Arduino outputs the click position and click force x, y, n.

[0049] As shown in Figure 3 and Figure 4 , the top of the simulation inkpad 1 includes two seats arranged transversely, the card seat is a vertical groove 14 arranged at the middle position between the two seats and matching the shape of the simulation inkstone 2, and the outer side of the top of the simulation inkpad 1 is also provided with a transverse groove 13, and the simulation graver 3 is detachably clamped in the transverse groove 13.

[0050] As shown in Figure 4 , in some preferred embodiments, the bottom of the simulation inkpad 1 is a cylindrical structure 11 with a diameter of 14 cm, the top is two semicircular structures 12 arranged in the middle, and the middle of the two semicircular structures 12 is arranged with a triangular vertical groove 14 to form a card seat for placing the simulation inkstone 2, and the center of the simulation inkpad 1 is provided with a supporting seat for supporting the bottom of the simulation inkstone 2.

[0051] As shown in Figure 5 , the simulation inkstone is also provided with an open-top support shell with a height of 8 cm, the top of the simulation inkstone is provided with a top sheet 22 for receiving the pressure of the simulation graver 3, the top sheet 22 is connected to the top of the support shell to form a closed structure, the pressure sensor 21 is vertically installed in the support shell and the pressure monitoring end is arranged upwardly, and the pressure monitoring end of the pressure sensor 21 is arranged in close contact with the top sheet 22.

[0052] As shown in Figure 3 and Figure 6As shown, the simulation chisel 3 includes a handle and a head, and the head is provided with a hard material that matches the hardness of the top sheet 22. The simulation chisel 3 has no special structure and is made of a hard material that is not sharp, and the shape is copied from a seal carving chisel. In some embodiments, the inner front end of the simulation chisel 3 is provided with a spring 31 supporting the head, and the rear end is provided with a telescopic button 32 adjusting the telescopic extension of the head. The simulation seal carving chisel is shaped like a metal seal carving chisel, and has a mechanical mechanism similar to a ballpoint pen, which is composed of a spring 31 and a telescopic button 32. When the user uses the chisel to experience on the seal stone, the button and the spring 32 will make the chisel tip extend and retract in a small range, thereby simulating the feeling of carving stone in real seal carving creation.

[0053] As shown in Figure 1 and Figure 2 The signal processor 5 is embedded in the simulation seal 1, including but not limited to one or a combination of a micro information processing chip, a microcomputer or an artificial intelligence chip. The pressure applied by the user on the interactive material is detected in real time through unity programming. The pressure sensor 21 is connected to the input end of the signal processor 5 through a signal input line, and the computer 4 is connected to the output end of the signal processor 5 through a signal output line.

[0054] As shown in Figure 1 , Figure 2 and Figure 3 The simulation seal carving experience seal provided is divided into a simulation seal 1 and a simulation chisel 2 and a simulation seal stone 2. The user wears a computer 4, uses a simulation chisel 2 to apply force on a simulation seal stone 1, and the pressure applied by the user on the interactive material is detected in real time through unity programming and converted into a digital signal. Through the development and modeling of the program based on Unity, the system generates corresponding seal carving effects according to the change of the user's pressure, and presents visual feedback in real time on the computer 4.

[0055] The simulation seal carving experience seal provided by the computer, the simulation seal 1, the simulation seal stone 2 and the simulation chisel 1 and other hardware can be used multiple times, which reduces the difficulty for the public to understand seal carving art, superimposes virtual seal carving works on the real environment, and realizes the seamless integration of information physical system. The user does not need to master complex seal carving tools and chisel use methods, and can experience the seal carving creation process in person, enhancing the sense of immersion. The product digitizes and gamifies the artistic creation process, and applies it to museum exhibitions or research education, which can attract more people to try and understand seal carving art, and promote the popularization and dissemination of traditional culture.

[0056] The various embodiments in the specification are described in a related manner, and the same and similar parts between the various embodiments can be referred to each other, and each embodiment focuses on the difference from other embodiments. Especially, for the device, electronic equipment and readable storage medium embodiments, since they are basically similar to the method embodiments, the description is relatively simple, and the related parts can refer to the part of the method embodiment.

[0057] The above only describes the preferred embodiment of the utility model, and is not used to limit the protection scope of the utility model. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the utility model are included in the protection scope of the utility model.

Claims

1. A simulated seal engraving experience ink pad, characterized in that, include: The simulated ink pad (1) is equipped with a holder for accommodating the simulated inkstone (2); The simulated seal stone (2) is installed in the card holder and is equipped with a pressure sensor (21) that monitors the pressure applied to the surface of the simulated seal stone (2). A simulated engraving knife (3) is used by the user to apply engraving pressure to the surface of the simulated seal stone (2); Computer (4), connected to the simulated seal stone (2) via signal; and A signal processor (5), connected between the pressure sensor (21) and the computer (4), is configured to receive the pressure signal from the pressure sensor (21), convert it into a digital image signal including the pressure magnitude and trend of change, and display it as an image on the computer (4).

2. The simulated seal engraving experience ink pad according to claim 1, characterized in that, The top of the simulated seal stone (2) is provided with a top thin plate (22) to receive the engraving pressure of the simulated engraving knife (3), and the pressure monitoring end of the pressure sensor (21) is attached to the top thin plate (22).

3. The simulated seal engraving experience ink pad according to claim 2, characterized in that, The simulated seal stone (2) is also provided with a support shell with an open top. The top sheet (22) is connected to the top of the support shell to form a closed structure. The pressure sensor (21) is vertically installed in the support shell with the pressure monitoring end facing upward.

4. The simulated seal engraving experience ink pad according to claim 3, characterized in that, The simulated seal stone (2) also includes a capacitive touch IPS serial port screen (24), which is configured to identify pressure location information. The pressure sensor (21) identifies the magnitude of the force applied by the user and connects to the computer using a conversion chip.

5. The simulated seal engraving experience ink pad according to claim 3, characterized in that, The top of the simulated ink pad (1) includes two seats arranged horizontally apart. The card holder is a vertical groove (14) set in the middle of the two seats and matching the shape of the simulated ink stone (2). A horizontal groove (13) is also provided on the outer side of the top of the simulated ink pad (1). The simulated engraving knife (3) is detachably installed in the horizontal groove (13).

6. The simulated seal engraving experience ink pad according to claim 4 or 5, characterized in that, The bottom of the simulated ink pad (1) is a cylindrical structure (11), and the top is two semi-circular structures (12) arranged at a distance in the middle. The two semi-circular structures (12) are arranged with triangular vertical grooves (14) in the middle to form a holder for placing the simulated inkstone (2). The simulated ink pad (1) is provided with a support base at the center to support the bottom of the simulated inkstone (2).

7. The simulated seal engraving experience ink pad according to claim 2 or 3, characterized in that, The simulated engraving knife (3) includes a handle and a blade, the blade being provided with a hard material that matches the hardness of the top sheet (22).

8. The simulated seal engraving experience ink pad according to claim 1, characterized in that, The simulated engraving knife (3) has a spring (31) supporting the blade head at the front end and a telescopic button (32) for adjusting the extension and retraction of the blade head at the rear end.

9. The simulated seal engraving experience ink pad according to claim 1, characterized in that, The pressure sensor (21) is connected to the input terminal of the signal processor (5) via a signal input line, and the computer (4) is connected to the output terminal of the signal processor (5) via a signal output line.

10. The simulated seal engraving experience ink pad according to claim 1 or 9, characterized in that, The signal processor (5) is embedded in the simulated printing pad (1), including but not limited to one or a combination of a micro information processing chip, a microcomputer, or an artificial intelligence chip.