Electric nerve blocking beautifying and wrinkle removing instrument

Through the high-frequency nerve point blocking technology of the electro-navigation beauty wrinkle removal device, the problem of difficulty and risk of dosage control of chemical drugs during the beauty wrinkle removal process is solved, and safe and accurate nerve blocking and beauty wrinkle removal effects are achieved.

CN120458709APending Publication Date: 2025-08-12LIANGXIANG HOSPITAL FANGSHAN DISTRICT BEIJING
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Patent Information

Application Number
CN202510864036.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-26
Publication Date
2025-08-12

AI Technical Summary

Technical Problem

The existing chemical drug acetylcholine neuromuscular blockers has difficulty in dose control during cosmetic wrinkle removal, and there is a risk of adverse reactions, and the lack of antagonists increases uncertainty and risk during the treatment process.

Method used

The electroneuro-blocking beauty wrinkle removal device is used, and high-frequency nerve point blocking technology is used to achieve accurate nerve blocking and monitoring through a closed-loop system composed of positive and negative electrode components, microcontrollers, electromyography nerve monitoring modules, etc., to avoid the use of chemical drugs.

Benefits of technology

It improves the safety and accuracy of treatment, ensures the reversibility and effectiveness of nerve blockade, and steadily achieves the cosmetic wrinkle removal effect, reduces the risk of adverse reactions, and provides a more reliable treatment experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of beautifying equipment, in particular to an electric nerve blocking beautifying and wrinkle removing instrument which comprises an operation body, a handle, a host, a power line and a plug. The operation main body is connected with one end of the handle; the operation main body is connected with the host through the handle and the data line and is arranged at the front end of the operation main body; the plug is connected with the host through a power line. The operation main body comprises a positive electrode operation main body and a negative electrode operation main body; a positive electrode assembly is fixed at the top end of the positive operation main body; and a cathode electrode assembly is fixed at the top end of the cathode operation main body. According to the invention, a high-frequency nerve point blocking technology is adopted, chemical drugs are not needed, risks caused by difficult drug dosage control and lack of antagonists are avoided, the treatment safety is improved, and the purposes of beautifying, wrinkle removal and aging resistance are achieved more stably and reliably.
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Description

Technical Field

[0001] The present invention relates to the field of beauty equipment, and in particular to an electric nerve blocking beauty wrinkle removing device. Background Art

[0002] In the field of cosmetic wrinkle removal and related fields, there are currently a variety of technical means. Among them, high-frequency nerve electrical stimulation technology has received a certain amount of attention. Its basic principle is to affect the nerve conduction function through electrical stimulation of a specific frequency and waveform. Specifically, it uses a high-frequency asymmetric pulse stimulation method. This pulse stimulation is not continuous, but a rest interval is inserted in the middle of the high-frequency waveform. The original intention of this design is to achieve a reversible inhibitory effect on the nerve conduction function while ensuring that nerve damage is reduced as much as possible in the case of short hair. However, despite this, it still has certain limitations. This blockade is not completely reversible, which means that there may be some uncertainty and potential risks in terms of treatment effects and subsequent effects.

[0003] Furthermore, chemical drugs such as acetylcholine neuromuscular blockers (NMBs) are also being used in this field. These are widely used chemicals to antagonize muscle activity. Their mechanism of action is to interfere with acetylcholine transmission at the neuromuscular junction, thereby reducing both dynamic and static wrinkles. In practice, they are injected into specific areas of the body to inhibit muscle activity, thereby improving wrinkle appearance.

[0004] However, chemical acetylcholine neuromuscular blockers (NMBs) present numerous challenges. First, their dosage is a critical and challenging issue. Since they require injection into the human body, precise control of the dosage is crucial. If multiple muscle antagonists are targeted simultaneously during treatment, ensuring accurate dosages for each site and that the total dose is not excessively high presents a significant challenge. Excessive dosages can trigger a range of serious adverse reactions, including muscle contraction disorders (which prevent muscles from contracting properly and affect normal physiological function); myasthenia gravis (which significantly reduces muscle strength and causes extreme fatigue and weakness); and paralysis (excessive muscle relaxation), which can affect vital physiological functions like breathing and even lead to life-threatening conditions like asphyxia. Second, there is a lack of effective pharmacological antagonists for these drugs. This means that if adverse reactions or unexpected events occur during use, there is no specific medication to quickly counteract their effects, thereby alleviating symptoms and mitigating risks. This significantly increases the uncertainty and risk of treatment, placing significant psychological pressure and practical difficulties on both patients and medical staff. Summary of the Invention

[0005] The purpose of the present invention is to overcome the above problems and provide an electric nerve blocking beauty wrinkle removal device. To achieve the above purpose, the present invention adopts the following technical solutions:

[0006] An electric nerve blocking beauty wrinkle removal device includes an operating body, a handle, a host, a power cord and a plug; the operating body is connected to one end of the handle; the operating body is connected to the host via the handle and a data cable and is installed at the front end of the operating body; the plug is connected to the host via the power cord; the operating body includes a positive operating body and a negative operating body; a positive electrode assembly is fixed to the top of the positive operating body; and a negative electrode assembly is fixed to the top of the negative operating body.

[0007] Furthermore, the positive electrode assembly includes a current removal electrode, a positive temperature sensor electrode, a positive myoelectric nerve sensor electrode and a positive depth sensor electrode; a first insulating layer is provided on the top of the positive electrode assembly; and the first insulating layer is sleeved on the electrode.

[0008] Furthermore, the negative electrode assembly includes a return electrode, a negative temperature sensor electrode, a negative myoelectric nerve sensor electrode and a negative depth sensor electrode; a second insulating layer is provided on the top of the negative electrode assembly; and the second insulating layer is sleeved on the electrode.

[0009] Furthermore, the host includes a microcontroller, a high-frequency ammeter, an index monitor and an electromyographic nerve monitoring module; the high-frequency current generating module is connected to the microcontroller through a control signal line; the high-frequency ammeter and the index monitor are connected to the microcontroller through a data transmission line; and the electromyographic nerve monitoring module is connected to the microcontroller through an analog input line.

[0010] Furthermore, the index monitor is connected to the positive electrode temperature sensor electrode, the negative electrode temperature sensor electrode, the positive electrode depth sensor electrode and the negative electrode depth sensor electrode via a data transmission line.

[0011] Furthermore, the high-frequency ammeter is connected to the microcontroller through a control signal line, and the high-frequency ammeter includes a signal generator and a power amplifier circuit; the decurrent electrode is connected to the power amplifier circuit of the high-frequency ammeter, and the return electrode is connected to the common ground terminal of the circuit to form a current loop.

[0012] Furthermore, the electromyographic nerve monitoring module includes a preamplifier circuit and a filter circuit; the positive electromyographic nerve sensor electrode and the negative electromyographic nerve sensor electrode are connected to the preamplifier circuit in the electromyographic nerve monitoring module via a signal line.

[0013] Furthermore, the host is connected to a power source via a power cord or is powered by a battery.

[0014] Furthermore, a display screen is installed on the surface of the host; the display screen is a liquid crystal display screen or an OLED display screen; and the microcontroller is connected to the display screen via a parallel interface or a serial interface.

[0015] The host surface further includes a plurality of buttons, one end of each button is connected to a corresponding pin of the microcontroller, and the other end is grounded and connected to a power supply through a pull-up resistor.

[0016] The advantages of the present invention are:

[0017] This approach utilizes high-frequency nerve blockade technology, eliminating the need for chemical drugs, avoiding the difficulties of controlling drug dosage and the risks associated with a lack of antagonists, and significantly improving treatment safety. Furthermore, the accuracy and reversibility of nerve blockade have been technically optimized to more effectively achieve neuromuscular blockade, thereby stably and reliably achieving cosmetic wrinkle removal and anti-aging effects, providing users with a superior treatment experience and the desired cosmetic results. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 Schematic diagram of the structure of the electric nerve blocking beauty wrinkle removal device in Example 1.

[0019] Figure 2 This is a top view of the electric nerve blocking beauty wrinkle removal device in Example 1.

[0020] Figure 3 This is a left side view of the electrical nerve blocking beauty wrinkle removal device in Example 1.

[0021] Figure 4 This is a diagram of the actual operation of the electric nerve blocking beauty wrinkle removal device in Example 1.

[0022] Figure 5 This is a module connection diagram of the electric nerve blocking beauty wrinkle removal device in Example 1.

[0023] The symbols in the figure are:

[0024] 1. Operating body; 11. Positive operating body; 111. Current removal electrode; 112. Positive temperature sensor electrode; 113. Positive myoelectric nerve sensor electrode; 114. Positive depth sensor electrode; 115. First insulating layer; 12. Negative operating body; 121. Return electrode; 122. Negative temperature sensor electrode; 123. Negative myoelectric nerve sensor electrode; 124. Negative depth sensor electrode; 125. Second insulating layer; 2. Handle; 3. Main unit; 4. Power cord; 5. Plug; 6. Display screen; 7. Buttons. DETAILED DESCRIPTION

[0025] To make the objectives, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions of the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Generally, the components of the embodiments of the present invention described and shown in the drawings herein can be arranged and designed in various different configurations.

[0026] In the description of the embodiments of the present invention, it should be noted that if the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. appear, the orientation or position relationship indicated is based on the orientation or position relationship shown in the accompanying drawings, or the orientation or position relationship in which the product of the invention is usually placed when in use. It is only for the convenience of describing the present invention and simplifying the description, and does not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operate in a specific orientation. Therefore, it should not be understood as limiting the present invention. In addition, the terms "first", "second", "third", etc. are only used to distinguish the description and should not be understood as indicating or implying relative importance.

[0027] Furthermore, the use of terms such as "horizontal," "vertical," and "overhanging" does not necessarily imply that the component must be absolutely horizontal or overhanging, but rather that it can be slightly tilted. For example, "horizontal" simply means that its direction is more horizontal than "vertical," not that the structure must be completely horizontal, but rather that it can be slightly tilted.

[0028] In the description of the embodiments of the present invention, "a plurality of" means at least two.

[0029] In the description of the embodiments of the present invention, it should be noted that, unless otherwise expressly specified or limited, the terms "disposed," "installed," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integral connections; they can refer to mechanical connections or electrical connections; they can refer to direct connections or indirect connections through an intermediate medium; and they can refer to internal connections between two components. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on specific circumstances.

[0030] The present invention is described in detail and specifically below through specific examples to provide a better understanding of the present invention. However, the following examples do not limit the scope of protection of the present invention.

[0031] Example 1

[0032] This embodiment discloses an electric nerve blocking beauty wrinkle removal device.

[0033] The electric nerve blocking beauty wrinkle removal device includes an operating body 1, a handle 2, a host 3, a power cord 4 and a plug 5; the operating body 1 is connected to one end of the handle 2; the operating body 1 is connected to the host 3 through the handle 2 and the data cable, and is installed at the front end of the operating body 1; the plug 5 is connected to the host 3 through the power cord 4; the operating body 1 includes a positive operating body 11 and a negative operating body 12; a positive electrode assembly is fixed to the top of the positive operating body 11; a negative electrode assembly is fixed to the top of the negative operating body 12.

[0034] This structure realizes the physical connection and power transmission between the operation end and the control end, providing a basic framework for the collaborative work of various functional modules.

[0035] Furthermore, the positive electrode assembly includes a current removal electrode 111, a positive temperature sensor electrode 112, a positive electromyographic nerve sensor electrode 113 and a positive depth sensor electrode 114; a first insulating layer 115 is provided on the top of the positive electrode assembly; and the first insulating layer 115 is sleeved on the electrode.

[0036] The current removal electrode 111 is connected to the output end of the high-frequency current meter and is used to output the therapeutic high-frequency current; the positive temperature sensor electrode 112 collects the temperature of the treatment area in real time; the positive myoelectric nerve sensor electrode 113 collects myoelectric and nerve electrical signals; the positive depth sensor electrode 114 monitors the depth of the electrode inserted into the skin; the first insulating layer 115 ensures the safe isolation of the electrode during use to avoid current leakage.

[0037] Furthermore, the negative electrode assembly includes a return electrode 121, a negative temperature sensor electrode 122, a negative electromyographic nerve sensor electrode 123 and a negative depth sensor electrode 124; a second insulating layer 125 is provided on the top of the negative electrode assembly; and the second insulating layer 125 is sleeved on the electrode.

[0038] The negative temperature sensor electrode 122, the negative electromyographic nerve sensor electrode 123, and the negative depth sensor electrode 124 cooperate with the corresponding positive electrodes to achieve synchronous monitoring of dual-region temperature, bioelectric signals and insertion depth; the function of the second insulating layer 125 is consistent with that of the first insulating layer 115 to ensure the safety of the electrodes.

[0039] Furthermore, the host 3 includes a microcontroller, a high-frequency ammeter, an index monitor and an electromyographic nerve monitoring module; the high-frequency current generating module is connected to the microcontroller through a control signal line; the high-frequency ammeter and the index monitor are connected to the microcontroller through a data transmission line; and the electromyographic nerve monitoring module is connected to the microcontroller through an analog input line.

[0040] The high-frequency ammeter generates high-frequency current, the index monitor integrates the data of the positive and negative temperature sensor electrodes 112 and 122 and the depth sensor electrodes 114 and 124, and the electromyographic nerve monitoring module processes the signals of the positive and negative electromyographic nerve sensor electrodes 113 and 123 to form a closed-loop system of "control-monitoring-feedback".

[0041] The CS9706F medical high-frequency leakage current tester can be used as a high-frequency current meter. It features an internal signal generator capable of generating high-frequency signals. This signal is then amplified by a power amplifier circuit and connected to the current-eliminating electrode 111. This meter accurately outputs a high-frequency current that meets treatment needs. Its stable performance ensures accurate and stable high-frequency current output during wrinkle reduction treatments, meeting the requirements for reversible nerve conduction blockade and muscle activity inhibition. A microcontroller can be connected to the high-frequency current meter via a control signal line, enabling precise control of its output parameters, such as the intensity and frequency of the high-frequency current, to accommodate the treatment needs and stages of different users.

[0042] Furthermore, the index monitor is connected to the positive temperature sensor electrode 112 , the negative temperature sensor electrode 122 , the positive depth sensor electrode 114 , and the negative depth sensor electrode 124 via data transmission lines.

[0043] The index monitor can be modified and adapted based on the QuesTemp series regional thermal index monitor to be used as an index monitor. In this embodiment, a customized data transmission line is connected to the positive temperature sensor electrode 112, the negative temperature sensor electrode 122, the positive depth sensor electrode 114, and the negative depth sensor electrode 124. This allows for rapid and accurate data collection from each sensor. After analysis by the internal data processing unit, the temperature and depth data are transmitted to the microcontroller in real time via the data transmission line. Based on this data, the microcontroller dynamically adjusts relevant parameters during the treatment process. For example, when the temperature approaches or exceeds a safety threshold, the output power of the high-frequency current meter is promptly adjusted to ensure the safety and accuracy of the treatment process, providing reliable monitoring data support for cosmetic wrinkle removal treatments.

[0044] The index monitor is connected to the positive temperature sensor electrode 112, the negative temperature sensor electrode 122, the positive depth sensor electrode 114, and the negative depth sensor electrode 124 through a data transmission line, collects temperature data and electrode insertion depth data of the treatment area in real time, and transmits these data to the microcontroller for analysis and processing, providing a basis for the microcontroller to dynamically adjust the high-frequency current parameters, thereby ensuring the safety and accuracy of the treatment process.

[0045] Furthermore, the high-frequency ammeter is connected to the microcontroller through a control signal line, and the high-frequency ammeter includes a signal generator and a power amplifier circuit; the decurrent electrode 111 is connected to the power amplifier circuit of the high-frequency ammeter, and the return electrode 121 is connected to the common ground terminal of the circuit to form a current loop.

[0046] The high-frequency current meter is connected to the microcontroller via a control signal line. Its internal signal generator and power amplifier circuit generate and amplify the high-frequency current. The current-discharging electrode 111 is connected to the output of the power amplifier circuit, delivering the high-frequency current to the treatment site. The return electrode 121 is connected to the circuit's common ground, forming a current loop. The microcontroller adjusts the frequency, intensity, and other parameters of the high-frequency current via the control signal line to achieve reversible blockade of nerve conduction function, inhibiting muscle activity and achieving wrinkle reduction.

[0047] Furthermore, the electromyographic nerve monitoring module includes a preamplifier circuit and a filter circuit; the positive electromyographic nerve sensor electrode 113 and the negative electromyographic nerve sensor electrode 123 are connected to the preamplifier circuit in the electromyographic nerve monitoring module via a signal line.

[0048] The myoelectric nerve monitoring module includes a preamplifier circuit and a filter circuit. The myoelectric and nerve electrical signals collected by the positive and negative myoelectric nerve sensor electrodes 113 and 123 are first amplified by the preamplifier circuit, then filtered out by the filter circuit to remove interference noise. Finally, the signals are transmitted to the microcontroller via a signal line. The microcontroller analyzes these signals, determines the effectiveness of nerve blockade and muscle activity, and determines whether the treatment is achieving the desired effect. This helps the operator adjust treatment parameters.

[0049] Furthermore, the host 3 is connected to a power source via a power cord 4 or is powered by a battery.

[0050] The host 3 supports connecting to a power source via a power cord 4 or using a battery. These two power supply methods allow the device to be used in fixed locations or portable scenarios, meeting the needs of beauty medical institutions or home use, avoiding treatment interruptions due to power supply problems, and ensuring the stable functioning of the device.

[0051] Furthermore, a display screen 6 is mounted on the surface of the host 3; the display screen 6 is a liquid crystal display screen or an OLED display screen; the microcontroller is connected to the display screen 6 via a parallel interface or a serial interface, and the display screen can display temperature, resistance and energy parameters.

[0052] Furthermore, the surface of the host 3 also includes a plurality of buttons 7, one end of each button 7 is connected to a corresponding pin of the microcontroller, and the other end is grounded and connected to a power supply through a pull-up resistor.

[0053] The display screen 6 mounted on the surface of the host 3 is connected to the microcontroller via a parallel interface or a serial interface, and displays information such as the device operating status and treatment progress in real time; the operator can input instructions through the button 7 on the surface of the host 3. One end of the button 7 is connected to the microcontroller pin, and the other end is grounded and powered through a pull-up resistor, thereby realizing functions such as high-frequency current parameter setting, treatment mode selection, and historical data viewing, and cooperating with the display screen 6 to form a complete human-computer interaction system.

[0054] While the specific embodiments of the present invention have been described in detail above, they are merely exemplary, and the present invention is not equivalent to the specific embodiments described above. For those skilled in the art, any equivalent modifications and substitutions of the present invention are also within the scope of the present invention. Therefore, equivalent changes and modifications made without departing from the spirit and scope of the present invention are intended to be encompassed within the scope of the present invention.

Claims

1. Electric nerve blocking beauty wrinkle removal device, characterized by: It includes an operating body, a handle, a host, a power cord and a plug; the operating body is connected to one end of the handle; the operating body is connected to the host through the handle and the data cable, and is installed at the front end of the operating body; the plug is connected to the host through the power cord; the operating body includes a positive operating body and a negative operating body; a positive electrode assembly is fixed on the top of the positive operating body; a negative electrode assembly is fixed on the top of the negative operating body.

2. The electric nerve blocking beauty wrinkle removal device according to claim 1, characterized in that: The positive electrode assembly includes a current removal electrode, a positive temperature sensor electrode, a positive myoelectric nerve sensor electrode and a positive depth sensor electrode; a first insulating layer is provided on the top of the positive electrode assembly; and the first insulating layer is sleeved on the electrode.

3. The electric nerve blocking beauty wrinkle removal device according to claim 3, characterized in that: The negative electrode assembly includes a return electrode, a negative temperature sensor electrode, a negative myoelectric nerve sensor electrode and a negative depth sensor electrode; a second insulating layer is provided on the top of the negative electrode assembly; and the second insulating layer is sleeved on the electrode.

4. The electric nerve blocking beauty wrinkle removal device according to claim 3, characterized in that: The host includes a microcontroller, a high-frequency ammeter, an index monitor and an electromyographic nerve monitoring module; the high-frequency current generating module is connected to the microcontroller via a control signal line; the high-frequency ammeter and the index monitor are connected to the microcontroller via a data transmission line; and the electromyographic nerve monitoring module is connected to the microcontroller via an analog input line.

5. The electric nerve blocking beauty wrinkle removal device according to claim 4, characterized in that: The index monitor is connected to the positive electrode temperature sensor electrode, the negative electrode temperature sensor electrode, the positive electrode depth sensor electrode and the negative electrode depth sensor electrode via a data transmission line.

6. The electric nerve blocking beauty wrinkle removal device according to claim 5, characterized in that: The high-frequency ammeter is connected to the microcontroller through a control signal line. The high-frequency ammeter includes a signal generator and a power amplifier circuit. The current removal electrode is connected to the power amplifier circuit of the high-frequency ammeter, and the return electrode is connected to the common ground terminal of the circuit to form a current loop.

7. The electric nerve blocking beauty wrinkle removal device according to claim 6, characterized in that: The electromyographic nerve monitoring module includes a preamplifier circuit and a filter circuit; the positive electromyographic nerve sensor electrode and the negative electromyographic nerve sensor electrode are connected to the preamplifier circuit in the electromyographic nerve monitoring module through a signal line.

8. The electric nerve blocking beauty wrinkle removal device according to claim 7, characterized in that: The host is connected to a power source via a power cord or is powered by a battery.

9. The electric nerve blocking beauty wrinkle removal device according to claim 8, characterized in that: A display screen is installed on the surface of the host; the display screen is a liquid crystal display screen or an OLED display screen; the microcontroller is connected to the display screen via a parallel interface or a serial interface.

10. The electric nerve blocking beauty wrinkle removal device according to claim 9, characterized in that: The host surface also includes a plurality of buttons, one end of each button is connected to a corresponding pin of the microcontroller, and the other end is grounded and connected to a power supply through a pull-up resistor.