Device and method for simulating pulse beating

By imitating pulse beats, using simulated silicone arms and mobile terminal technology, the problem that traditional pulse-taking methods cannot be diagnosed when doctors cannot directly contact the patient's pulse is achieved, and long-distance pulse characteristics reproduction and more accurate diagnosis are achieved.

CN120014919APending Publication Date: 2025-05-16刘东巨
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Patent Information

Application Number
CN202510110534.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-01-23
Publication Date
2025-05-16

AI Technical Summary

Technical Problem

The traditional pulse-taking method has limitations, and it is impossible to diagnose when a doctor cannot directly contact the patient's pulse, and it is difficult for beginners to accurately grasp the characteristics of different pulse patterns.

Method used

A device that imitates pulse beat is designed, including simulated silicone arms, acupuncture simulation cavity, vibration speaker, pressure sensor patch and mobile terminal. Pulse signal acquisition, analysis and simulation are carried out through wireless connection and APP to achieve long-distance pulse characteristics reproduction.

Benefits of technology

The long-distance pulse characteristics reproduction is achieved, allowing doctors to diagnose distal patients through simulated silicone arms, improving the accuracy of the diagnosis, and providing an effective teaching method for traditional Chinese medicine teaching.

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Abstract

The invention belongs to the technical field of medical equipment, and provides a device and a method for simulating pulse beat, the device comprises a simulation silica gel arm, a signal transmitter and an acupoint simulation cavity are installed in the simulation silica gel arm, the acupoint simulation cavity is arranged in the simulation silica gel arm, and the signal transmitter is connected with the acupoint simulation cavity. The three acupuncture point simulation cavities correspond to the Chi pulse, the Guan pulse and the Cun pulse of a human body; a pulse signal is converted into a digital signal through the pressure sensor patch, then the digital signal is converted into an audio signal, the pulse of a far-end patient is reproduced through the pulse management APP and the simulated silica gel arm, a doctor can remotely take the pulse of the patient, and more accurate traditional Chinese medicine diagnosis is achieved; meanwhile, the system can be applied to teaching research of traditional Chinese medicine, the same pulse characteristic is accurately reproduced to multiple students through the pulse management APP and the simulated silica gel arm, the system is used for sensing changes and types of pulses, explanation of teachers and mastering of the students are facilitated, and the time for the students to learn pulse taking can be greatly shortened.
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Description

Technical Field

[0001] The invention belongs to the technical field of medical equipment, in particular to a device and a method for simulating pulse beating. Background Art

[0002] The pulse is the pulsation of the arteries that can be felt on the human body. The human circulatory system is composed of the heart, blood vessels, and blood, and is responsible for the transportation of oxygen, carbon dioxide, nutrients, and waste products. The blood is squeezed into the aorta by the contraction of the left ventricle of the heart, and then transmitted to the arteries throughout the body. In the medical field, Chinese medicine pulse diagnosis is an important diagnostic method of traditional medicine, relying on doctors to feel the beating characteristics of the patient's pulse through their fingers to judge the condition.

[0003] However, the traditional method of taking the pulse has certain limitations. Due to space constraints, the doctor cannot make a diagnosis when he cannot directly contact the patient's pulse; and for beginners, it is difficult to accurately grasp the characteristics of different pulse patterns. Summary of the invention

[0004] In order to solve the above technical problems, the present invention provides a device and method for simulating pulse beating to solve the problem in the prior art that a doctor cannot make a diagnosis when he cannot directly contact the patient's pulse.

[0005] A device for simulating pulse beats, comprising:

[0006] A simulated silicone arm, wherein a signal transmitter is installed inside the simulated silicone arm;

[0007] Acupoint simulation cavities, the acupoint simulation cavities are opened inside the simulated silicone arm, the number of acupoint simulation cavities is three, and a vibration speaker is installed inside each of the acupoint simulation cavities;

[0008] The first mobile terminal is wirelessly connected to the signal transmitter and includes a pulse management APP used in conjunction with the device.

[0009] A second mobile terminal, one side of which is connected to a pressure sensor patch, and the mobile terminal includes a pulse management APP used in conjunction with the device.

[0010] Preferably, the pressure sensor patch is provided with three high-precision pressure sensors, and each of the pressure sensors corresponds one-to-one to the position of the radial pulse, guan pulse, and cun pulse on the patient's arm.

[0011] Preferably, the signal transmitter includes a 4G, 5G signal transmission module and a Bluetooth transmission module, and the signal transmitter is connected to the mobile terminal through the 4G, 5G signal transmission module and the Bluetooth transmission module.

[0012] Preferably, the pulse management APP includes:

[0013] The pulse feature library is used to collect the collected pulse signals and analyze and generate a pulse library containing the pulse name, the corresponding internal syndrome, and the treatment plan and prescription;

[0014] A digital signal analysis module, used to analyze the pulse pressure signal detected by the pressure sensor patch and output a digital signal according to the pulse pressure signal;

[0015] The pulse audio library contains a variety of different types of musical instrument sounds, which are used to select matching sounds according to different pulse characteristics to imitate the pulse beating;

[0016] The signal processing and transmission module can convert the collected pulse digital signal into an analog audio signal through an algorithm, and can choose to directly transmit the digital signal to the remote signal transmitter, or convert it into an analog audio signal locally before transmitting;

[0017] The audio control module is used to control the playing frequency, playing interval and playing speed of each of the vibration speakers in combination with the pulse audio library, so as to imitate the beating effects of the Chi pulse, Guan pulse and Cun pulse through the vibration of the vibration speaker.

[0018] Preferably, the pulse feature library is classified in detail according to the classification standards of pulse conditions, including but not limited to at least one of floating pulse, sinking pulse, slow pulse and rapid pulse, and detailed pulse feature data of multiple different cases are stored under each pulse condition.

[0019] Preferably, the pulse management APP also includes an intelligent diagnosis auxiliary module. When the number of pulse types recorded in the pulse library increases, the pulse management APP automatically matches the condition and gives treatment suggestions based on the recorded pulse types and corresponding diagnostic prescriptions.

[0020] Preferably, the pulse management APP also includes a data encryption module for encrypting the pulse pressure signal, the analog audio signal and all data in the pulse management library.

[0021] A method for simulating a device for simulating pulse beating comprises the following steps:

[0022] S1. Install three vibration speakers in the acupuncture point simulation cavity as designed and connect them to the audio control module. The signal transmitter is wirelessly connected to the first mobile terminal via Bluetooth and 4G or 5G network;

[0023] S2. The patient places the pressure sensor patch on the pulse position and connects it to the second mobile terminal through a connecting line; the patient's pulse beats to generate pressure changes, which are collected by the pressure sensor patch and output as digital signals, which are transmitted to the second mobile terminal in real time, and the pulse management APP stores, preliminarily processes and analyzes the received digital signals with the help of the digital signal analysis module;

[0024] S3, the signal processing and transmission module transmits the digital signal after preliminary processing to the first mobile terminal, and uses the pulse audio library and algorithm to deeply analyze and process the data to form an analog audio signal. The audio control module controls the vibration intensity, frequency and rhythm of the three vibration speakers to simulate the beating of the radial pulse, the guan pulse and the cun pulse respectively, so that the simulated silicone arm reproduces the pulse characteristics of the patient. The doctor performs pulse diagnosis by sensing the pulse reproduced by the simulated silicone arm;

[0025] S4. During each pulse simulation, the pulse management app will collect the original pulse digital signal, the generated analog audio signal, and the corresponding pulse name, internal syndrome, and treatment plan information into the pulse database. The intelligent diagnosis auxiliary module will automatically match the condition and give treatment suggestions based on the accumulated data;

[0026] S5. In the teaching scenario, the teacher shares the pulse signal of the same patient with multiple students through the pulse management APP for teaching and research.

[0027] Compared with the prior art, the present invention has the following beneficial effects:

[0028] 1. The present invention converts the pulse signal into a vibration signal through a pressure sensor patch, and then converts it into an audio signal, thereby realizing long-distance pulse feature reproduction. Remote doctors can use the pulse management APP and the simulated silicone arm to re-examine the pulse of remote patients and achieve more accurate Chinese medicine pulse diagnosis.

[0029] 2. The present invention can reproduce the pulse of the same patient to multiple people at the same time through the pulse management APP, including teachers and students, which can be used for teaching, research and learning. This provides an effective teaching method for traditional Chinese medicine teaching and helps to inherit and promote traditional Chinese medicine culture. BRIEF DESCRIPTION OF THE DRAWINGS

[0030] Figure 1 It is a partial cross-sectional view of the simulated silicone arm of the present invention;

[0031] Figure 2 This is a system module block diagram of the pulse management APP of the present invention;

[0032] Figure 3 The figure is a flowchart of the method steps of the present invention.

[0033] In the figure:

[0034] 1. Simulated silicone arm; 2. Acupoint simulation cavity; 3. Vibration speaker; 4. Pressure sensor patch; 5. Signal transmitter; 6. First mobile terminal; 7. Second mobile terminal. DETAILED DESCRIPTION

[0035] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the specific implementation methods of the present invention are described in detail below in conjunction with the accompanying drawings.

[0036] In the following description, many specific details are set forth to facilitate a full understanding of the present invention, but the present invention may also be implemented in other ways different from those described herein, and those skilled in the art may make similar generalizations without violating the connotation of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0037] Secondly, the term "one embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The term "in one embodiment" that appears in different places in this specification does not necessarily refer to the same embodiment, nor does it refer to a separate or selective embodiment that is mutually exclusive with other embodiments.

[0038] As attached Figure 1 and attached Figure 2 As shown:

[0039] Embodiment 1: The present invention provides a device for simulating pulse beating, comprising:

[0040] The simulated silicone arm 1 has a signal transmitter 5 installed inside.

[0041] Acupoint simulation cavities 2, which are arranged inside the simulated silicone arm 1, and there are three acupoint simulation cavities 2, each of which is provided with a vibration speaker 3;

[0042] A first mobile terminal 6, the first mobile terminal 6 is wirelessly connected to the signal transmitter 5, and the first mobile terminal 6 includes a pulse management APP used in conjunction with the device;

[0043] A pressure sensor patch 4 is connected to one side of the second mobile terminal 7, and the second mobile terminal 7 includes a pulse management APP used in conjunction with the device.

[0044] As can be seen from the above, when in use, the pressure sensor patch 4 is covered on the corresponding positions of the radial pulse, guan pulse and cun pulse on the patient's wrist, and is prevented from falling off by using tape or bandage, and is connected to the patient's second mobile terminal 7 by using a connecting line. After the pulse management APP on the patient's second mobile terminal 7 is opened, the patient's pulse signal is collected through the pressure sensor patch 4 and transmitted to the pulse management APP through the connecting line. The pulse management APP directly transmits the digital signal to the remote doctor's first mobile terminal 6 pulse management APP through the network according to the setting selection, or converts the digital signal into an audio signal through an algorithm before transmitting it;

[0045] After the pulse management APP on the remote doctor's first mobile terminal 6 receives the signal, it transmits the signal to the simulated silicone arm 1. After the signal transmitter 5 in the simulated silicone arm 1 receives the signal, it controls the vibration speaker 3 in each acupoint simulation cavity 2 according to the signal transmitted by the pulse management APP, and plays audio, uses the vibration speaker 3 to transmit vibration to imitate the pulse beating, and uses different sounds produced by different musical instruments. By playing pre-stored audio with adjustable intensity, the frequency, amplitude, severity, urgency and other characteristics of the pulse beating are accurately simulated to achieve long-distance pulse feature reproduction.

[0046] The pulse signal is converted into a digital signal through the pressure sensor patch 4, and then into an audio signal, so that the pulse characteristics can be reproduced over a long distance. The doctor can diagnose the pulse of the remote patient through the pulse management APP and the simulated silicone arm 1 to achieve a more accurate traditional Chinese medicine diagnosis.

[0047] As attached Figure 1 As shown:

[0048] Specifically, regarding the above-mentioned pressure sensor patch 4, three pressure sensors are arranged on the pressure sensor patch 4, and each pressure sensor corresponds to the position of the radial pulse, guan pulse, and cun pulse on the patient's arm.

[0049] The pressure sensor on the pressure sensor patch 4 is a high-precision pressure sensor.

[0050] As can be seen from the above, the pressure sensor on the pressure sensor patch 4 can effectively collect the pulse signals of the Chi pulse, Guan pulse and Cun pulse, and transmit the collected pulse signals to the pulse management APP on the second mobile terminal 7 through the connecting line.

[0051] As attached Figure 1 As shown:

[0052] Specifically, regarding the above-mentioned signal transmitter 5, the signal transmitter 5 includes a 4G, 5G signal transmission module and a Bluetooth transmission module, and the signal transmitter 5 is connected to the first mobile terminal 6 through the 4G, 5G signal transmission module and the Bluetooth transmission module.

[0053] As can be seen from the above, the integrated 4G, 5G signal transmission module and the Bluetooth transmission module can be connected to the pulse management APP on the proximal first mobile terminal 6 to realize the control of the playback of the vibration speaker 3 and the reproduction of the pulse by the simulated silicone arm 1, providing support for remote diagnosis.

[0054] As attached Figure 1 and attached Figure 2 As shown:

[0055] Specifically, regarding the above-mentioned pulse management APP, the pulse management APP includes:

[0056] The pulse feature library is used to collect the collected pulse signals and analyze and generate a pulse library containing the pulse name, the corresponding internal syndrome, and the treatment plan and prescription;

[0057] A digital signal analysis module, used to analyze the pulse pressure signal detected by the pressure sensor patch 4, and output a digital signal according to the pulse pressure signal (communication protocols of the digital signal include but are not limited to SPI, I2C, UART, etc.);

[0058] The pulse audio library contains a variety of different types of musical instrument sounds, which are used to select matching sounds according to different pulse characteristics to imitate the pulse beating;

[0059] The signal processing and transmission module can convert the collected pulse digital signal into an analog audio signal through an algorithm, and can choose to directly transmit the digital signal to the remote signal transmitter 5, or convert it into an analog audio signal locally before transmitting;

[0060] The audio control module is used to control the playing frequency, playing interval and playing speed of each vibration speaker 3 in combination with the pulse audio library, and to imitate the beating effects of the Chi pulse, Guan pulse and Cun pulse through the vibration of the vibration speaker 3.

[0061] As can be seen from the above, the pulse feature library is used to store pulse signals and related information, including pulse name, internal syndrome, treatment plan and prescription, etc.; the pulse audio library includes a variety of different types of musical instrument sounds, providing rich materials for simulating pulse beating;

[0062] The digital signal analysis module analyzes the pulse pressure signal detected by the pressure sensor patch 4 and outputs a digital signal according to the pulse pressure signal;

[0063] The signal processing and transmission module converts the digital signal into an analog audio signal based on the pulse audio library and algorithm, and can choose to directly transmit the digital signal to the pulse management APP on the first mobile terminal 6 or convert it into an analog audio signal locally before transmitting;

[0064] The audio control module controls the vibration of the vibration speaker 3 according to the pulse audio library, and realizes the simulation of the radial pulse, guan pulse and cun pulse through the simulated silicone arm 1.

[0065] Specifically, regarding the above-mentioned pulse feature library, the pulse feature library is classified in detail according to the classification standards of pulse conditions, including but not limited to at least one of floating pulse, sinking pulse, slow pulse, and rapid pulse, and each pulse condition stores detailed pulse feature data of multiple different cases.

[0066] From the above, it can be seen that this classification method is helpful for systematic management and analysis of pulse signals, and is convenient for users to query and study according to different pulse conditions.

[0067] Specifically, regarding the above-mentioned pulse management APP, the pulse management APP also includes an intelligent diagnosis assistance module. As the number of pulse types included in the pulse library increases, the pulse management APP automatically matches the condition and gives treatment suggestions based on the included pulse types and corresponding diagnostic prescriptions.

[0068] From the above, it can be seen that the intelligent diagnosis assistance module can effectively improve the intelligence level of the equipment. During use, it can assist doctors in diagnosing patients, facilitate doctors to identify pulse types and understand corresponding pulse treatment plans, so as to make more accurate diagnosis and treatment, reduce treatment risks and improve efficiency.

[0069] Specifically, regarding the above-mentioned pulse management APP, the pulse management APP also includes a data encryption module for encrypting the pulse pressure signal, the audio signal and all the data in the pulse management library.

[0070] From the above, it can be seen that through the setting of the data encryption module, the data can be encrypted and the permissions of the access personnel can be limited, which ensures the security and privacy of the data, prevents the data from being stolen or tampered with during transmission and storage, and ensures the reliability of the equipment in medical applications.

[0071] As attached Figure 1 , Attachment Figure 2 and attached Figure 3 As shown:

[0072] Embodiment 2:

[0073] A method for simulating a device for simulating pulse beating comprises the following steps:

[0074] S1. Three vibration speakers 3 are installed in the acupuncture point simulation cavity 2 as designed, and connected to the audio control module. The signal transmitter 5 is wirelessly connected to the first mobile terminal 6 via Bluetooth and 4G, 5G networks; the patient sticks the pressure sensor patch 4 to the pulse position to ensure that the sensor is in close contact with the skin, and connects it to the second mobile terminal 7 via a connecting line. The connecting line transmits the pulse pressure signal collected by the sensor on the pressure sensor patch 4 to the second mobile terminal 7; encrypted data communication is performed between the first mobile terminal 6 and the second mobile terminal 7.

[0075] S2, the patient's pulse generates pressure changes, which are collected by the pressure sensor patch 4 and converted into digital signals through preliminary processing by the digital signal analysis module, and then transmitted to the second mobile terminal 7 in real time;

[0076] The second mobile terminal 7 transmits the digital signal to the first mobile terminal 6 through encrypted communication. The signal processing and transmission module in the pulse management APP of the first mobile terminal 6 relies on the pulse audio library and algorithm to deeply process and analyze the received digital signal, select the most matching audio signal and audio combination to generate an analog audio signal or directly generate an analog audio signal through an algorithm; first, the digital signal is filtered to remove noise interference to ensure the accuracy of the signal, and then the characteristic parameters of the digital signal are extracted, including the frequency, amplitude, and waveform of the pulse. These characteristic parameters provide an important basis for subsequent audio matching and algorithm reproduction of the pulse.

[0077] S3. The audio control module in the pulse management APP receives the simulated audio signal, controls the vibration intensity, frequency and rhythm of the three vibration speakers 3, and simulates the beating of the radial pulse, guan pulse and cun pulse respectively, so that the simulated silicone arm 1 reproduces the pulse characteristics of the patient. The doctor performs pulse diagnosis through the pulse reproduced by the simulated silicone arm 1; in this process, the doctor can judge the patient's condition according to the beating of the pulse and the characteristics of the pulse.

[0078] S4. During each pulse simulation process, the pulse management APP collects the original pulse signal, generates the simulated audio signal, and the corresponding pulse name, internal symptoms, and treatment plan information into the pulse library. The intelligent diagnosis assistance module automatically matches the condition and gives treatment suggestions based on the accumulated data. The intelligent diagnosis assistance module can effectively improve the intelligence level of the equipment. When the pulse signal matches a certain pulse feature, the intelligent diagnosis assistance module can determine the patient's possible disease and provide corresponding treatment plans, which is convenient for doctors to identify the pulse type and understand the corresponding pulse treatment plan, so as to make more accurate diagnosis and treatment.

[0079] S5. In the teaching scenario, the teacher shares the pulse signal of the same patient with multiple students through the pulse management APP for teaching research; students can learn the characteristics of the pulse and the knowledge of pulse condition by perceiving the pulse characteristics reproduced by the simulated silicone arm 1. The teacher can use the function of the pulse management APP to show the pulse signals of different pulse conditions to the students, so that the students can understand the relationship between the pulse and the disease. At the same time, the teacher can also organize students to discuss and analyze, cultivate students' thinking ability and innovative consciousness, and students can deepen their understanding of the pulse and pulse condition by simulating the pulse beating, improve learning effects, and effectively reduce learning time.

[0080] From the above, we can see that the pulse of the same patient can be reproduced simultaneously for multiple people including teachers and students, and can be used for teaching, research and learning. This provides an effective teaching method for TCM teaching and helps to inherit and promote TCM culture.

[0081] Importantly, it should be noted that the construction and arrangement of the present application shown in a plurality of different exemplary embodiments are only exemplary. Although only a few embodiments are described in detail in this disclosure, it should be readily understood by those who refer to this disclosure that many modifications are possible (e.g., the size, scale, structure, shape and proportion of various elements, and parameter values ​​(e.g., temperature, pressure, etc.), installation arrangement, use of materials, color, directional changes, etc.) without substantially departing from the novel teachings and advantages of the subject matter described in the application. For example, the element shown as integrally formed can be composed of multiple parts or elements, the position of the element can be inverted or otherwise changed, and the nature or number or position of the discrete element can be changed or changed. Therefore, all such modifications are intended to be included in the scope of the present invention. The order or sequence of any process or method steps can be changed or reordered according to alternative embodiments. In the claims, any "device plus function" clause is intended to cover the structure of performing the function described herein, and is not only structurally equivalent but also equivalent structure. Without departing from the scope of the present invention, other replacements, modifications, changes and omissions can be made in the design, operating conditions and arrangement of the exemplary embodiments. Therefore, the invention is not limited to a specific embodiment, but extends to numerous modifications still falling within the scope of the appended claims.

[0082] Additionally, in order to provide a concise description of exemplary embodiments, all features of an actual embodiment (ie, those features that are not relevant to the best mode presently contemplated for carrying out the invention or those that are not relevant to implementing the invention) may not be described.

[0083] It will be appreciated that in the development of any actual implementation, as in any engineering or design project, numerous implementation-specific decisions may be made. Such a development effort may be complex and time-consuming, but will be a routine task of design, fabrication, and production for those of ordinary skill having the benefit of this disclosure without undue experimentation.

[0084] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention rather than to limit it. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present invention may be modified or replaced by equivalents without departing from the spirit and scope of the technical solutions of the present invention, which should all be included in the scope of the claims of the present invention.

Claims

1. A device for simulating pulse beating, characterized in that: include: A simulated silicone arm (1), wherein a signal transmitter (5) is installed inside the simulated silicone arm (1); an acupuncture point simulation cavity (2), wherein the acupuncture point simulation cavity (2) is provided inside the simulated silicone arm (1), the number of the acupuncture point simulation cavities (2) is three, and a vibration speaker (3) is installed inside each of the acupuncture point simulation cavities (2); A first mobile terminal (6), the first mobile terminal (6) being wirelessly connected to the signal transmitter (5), the first mobile terminal (6) comprising a pulse management APP for use with the device; A pressure sensor patch (4) is connected to one side of the second mobile terminal (7), and the second mobile terminal (7) includes a pulse management APP used in conjunction with the device.

2. The device for simulating pulse beating according to claim 1, characterized in that: The pressure sensor patch (4) is provided with three pressure sensors, each of which corresponds to the position of the radial pulse, guan pulse and cun pulse on the patient's arm.

3. The device for simulating pulse beating according to claim 1, characterized in that: The signal transmitter (5) comprises a 4G, 5G signal transmission module and a Bluetooth transmission module, and the signal transmitter (5) is connected to the first mobile terminal (6) via the 4G, 5G signal transmission module and the Bluetooth transmission module.

4. The device for simulating pulse beating according to claim 1, characterized in that: The pulse management APP includes: The pulse feature library is used to collect the collected pulse signals and analyze and generate a pulse library containing the pulse name, the corresponding internal syndrome, and the treatment plan and prescription; A digital signal analysis module, used for analyzing the pulse pressure signal detected by the pressure sensor patch (4), and outputting a digital signal according to the pulse pressure signal (communication protocols of the digital signal include but are not limited to SPI, I2C, UART, etc.); The pulse audio library contains a variety of different types of musical instrument sounds, which are used to select matching sounds according to different pulse characteristics to imitate the pulse beating; The signal processing and transmission module is capable of converting the collected pulse digital signal into an analog audio signal through an algorithm, and can choose to directly transmit the digital signal to the remote signal transmitter (5), or convert it into an analog audio signal locally before transmitting it; The audio control module is used to control the playing frequency, playing interval and playing speed of each of the vibration speakers (3) in combination with the pulse audio library, so as to simulate the beating effects of the cun pulse, guan pulse and cun pulse through the vibration of the vibration speaker (3).

5. The device for simulating pulse beating according to claim 4, characterized in that: The pulse characteristic library is classified in detail according to the classification standard of pulse conditions, including but not limited to at least one of floating pulse, sinking pulse, slow pulse and rapid pulse, and detailed pulse characteristic data of multiple different cases are stored under each pulse condition.

6. The device for simulating pulse beat according to claim 5, characterized in that: The pulse management APP also includes an intelligent diagnosis auxiliary module. When the number of pulse types recorded in the pulse library increases, the pulse management APP automatically matches the condition and gives treatment suggestions based on the recorded pulse types and corresponding diagnostic prescriptions.

7. The device for simulating pulse beat according to claim 5, characterized in that: The pulse management APP also includes a data encryption module for encrypting pulse vibration signals, digital signals, analog audio signals and all data in the pulse management library.

8. The method for simulating a device for simulating pulse beating according to claim 7, characterized in that: The following steps are involved: S1. Three vibration speakers (3) are installed in the acupuncture point simulation cavity (2) according to the design and connected to the audio control module. The signal transmitter (5) is wirelessly connected to the first mobile terminal (6) via Bluetooth and 4G or 5G network; S2, the patient places the pressure sensor patch (4) on the pulse position and connects it to the second mobile terminal (7) via a connecting line; the patient's pulse beats to generate pressure changes, which are collected by the pressure sensor patch (4) and output as digital signals, which are transmitted to the second mobile terminal (7) in real time, and the pulse management APP stores, preliminarily processes and analyzes the received digital signals with the help of a digital signal analysis module; S3, the signal processing and transmission module transmits the digital signal after preliminary processing to the first mobile terminal (6), and uses the pulse audio library and algorithm to deeply analyze and process the data to form a simulated audio signal, and controls the vibration intensity, frequency and rhythm of the three vibration speakers (3) through the audio control module to simulate the beating of the radial pulse, the guan pulse and the cun pulse respectively, so that the simulated silicone arm (1) reproduces the pulse characteristics of the patient, and the doctor performs pulse diagnosis by sensing the pulse reproduced by the simulated silicone arm (1); S4. During each pulse simulation, the pulse management app will collect the original pulse digital signal, the generated analog audio signal, and the corresponding pulse name, internal syndrome, and treatment plan information into the pulse database. The intelligent diagnosis auxiliary module will automatically match the condition and give treatment suggestions based on the accumulated data; S5. In the teaching scenario, the teacher shares the pulse signal of the same patient with multiple students through the pulse management APP for teaching and research.