Composite therapeutic apparatus system and plasma handle and electric ion handle thereof

By designing a composite therapeutic instrument system that combines plasma and electro-ion handpiece modules, the problem of insufficient flexibility in existing medical instruments is solved, enabling multifunctional medical applications and meeting diverse medical needs.

CN223528258UActive Publication Date: 2025-11-07ZHONGYILONG MEDICAL (SHENZHEN) CO LTD
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Patent Information

Application Number
CN202422902361.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-27
Publication Date
2025-11-07
Estimated Expiration
2034-11-27

AI Technical Summary

Technical Problem

Existing single-function medical instruments lack flexibility in the face of sudden medical needs and are unable to meet diverse medical requirements.

Method used

A composite therapeutic device system was designed, combining a plasma handpiece and an electro-ion handpiece. By controlling the parameters of the main board, it can achieve multiple uses, including a plasma handpiece module and an electro-ion handpiece module, which are used for sterilization, promoting wound healing, and treating soft tissue, respectively.

Benefits of technology

It enables flexible application in various medical conditions, improves the adaptability and effectiveness of medical instruments, and can switch functions according to different needs to meet diverse medical requirements.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a composite therapeutic apparatus system and a plasma handle and an electro-ion handle thereof, which is characterized by comprising a plasma handle module connected with an output filter and a relay; the electric ion handle module is connected to the output filter and the relay; and the control main board is mainly responsible for controlling the combined therapeutic apparatus system. Electric power is output to the plasma handle module or the electric ion handle module through the main board, gas and electricity in the handle react or generate a high-frequency electric field, and plasma or electric ions are generated. The plasma handle module or the electric ion handle module is matched with the control main board, so that the combined type therapeutic instrument system has multiple functions.
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Description

TECHNICAL FIELD

[0001] The utility model relates to a composite therapeutic instrument system and a multifunctional handle thereof, and covers components of the composite therapeutic instrument system, a plasma handle, an ion handle and elements thereof. BACKGROUND

[0002] Plasma is a non-bound macroscopic system composed of a large number of charged particles, which includes free electrons, free ions, and possibly neutral particles. It is the fourth largest material state besides solid, liquid and gas. Gas will become plasma under high temperature or strong electromagnetic field, which is an ionized gas with equal positive and negative charges. The generated plasma can be applied to the medical field such as wound disinfection, sterilization and wound healing promotion.

[0003] The common way to generate plasma is the glow discharge principle. It discharges in a vacuum chamber at low pressure, and the gas with appropriate pressure is introduced. The gas is usually inert gas, which is easy to be excited, and neutral gas atoms will be ionized by electron impact. The vacuum chamber can maintain glow discharge phenomenon all the time, so that the vacuum chamber is filled with plasma.

[0004] At present, single-function medical instruments are limited to specific medical needs and are difficult to handle unexpected situations, resulting in reduced flexibility of the instruments. Therefore, a composite therapeutic instrument system needs to be designed to solve the above problems. UTILITY MODEL CONTENT

[0005] The utility model aims at providing a structure of a composite therapeutic instrument system and a multifunctional handle, mainly based on a therapeutic instrument technology, using a plasma handle and an ion handle, and matching the working parameter setting of the control mainboard, so as to have multiple functions.

[0006] To achieve this purpose, the utility model adopts the following technical solutions:

[0007] A composite therapeutic instrument system, characterized in that it comprises: a first power supply, which outputs power; a main processor, which is connected to the first power supply and receives power supply therefrom, and is mainly responsible for controlling the execution of the main board and processing the output and input circuit signals; a second power supply, which outputs power; a gate driver, which is connected to the second power supply and receives power supply therefrom, and is connected to and receives the circuit signals of the main processor and outputs after quickly responding to the input circuit signals; a main filter, which is used to reduce the noise and interference of the input power supply; a power MOSFET, which is connected to the main filter and the gate driver and receives the circuit signals therefrom; a relay, which is connected to the power MOSFET and makes the controlled output circuit conductive or disconnected when the input reaches a certain value; a digital multiplexer, which is connected to the first power supply to obtain power supply, and is connected to the main processor and the digital multiplexer to input a plurality of analog or digital signals to the main processor; and an input filter, which is connected to the digital multiplexer and transmits complete and low-noise signals to the digital multiplexer.

[0008] Preferably, in the composite therapeutic instrument system, the relay and the input filter are connected to the plasma handle module and the ion handle module, and the relay inputs the circuit signals to the plasma handle module or the ion handle module and then outputs the circuit signals to the input filter.

[0009] Preferably, the composite therapeutic instrument system further comprises: a main power supply, which is connected to the first power supply, the second power supply and the main filter respectively, and serves as the power source of the first power supply, the second power supply and the main filter; a foot switch, which receives input signals and is connected to the input filter, and assists in judging the switching of the plasma handle module and the ion handle module; a screen, which is connected to the main processor and displays all instructions; and a solenoid valve, which is connected to the main processor and is responsible for the switching control of the gas pipeline.

[0010] Preferably, the plasma handle further comprises: an inert gas plasma handle module and an ozone plasma handle module; wherein the plasma handle module can be applied to sterilization, promotion of wound healing, reduction of inflammation, etc.

[0011] Preferably, the inert gas plasma handle module further comprises: a helium plasma handle module, a neon plasma handle module, an argon plasma handle module, a krypton plasma handle module and a xenon plasma handle module.

[0012] Preferably, the plasma frequency output by the plasma handle module is 10-500 KHZ, and the temperature is 35-3000℃.

[0013] Preferably, the electric ion handle further comprises: a high frequency handle module and a low and medium frequency handle module; wherein the electric ion handle module can be applied to treat soft tissues, remove small tumors, moles and polyps and the like.

[0014] Preferably, the input current of the electric ion handle module is 0-10A, the voltage is 220V, the power is 50W, the output voltage is 0-5V, and the power is 0-15W; preferably, the output voltage is 0-2.5V, and the power is 5W.

[0015] Preferably, the plasma handle module or the electric ion handle module has a groove for placing a glass tube containing inert gas or ozone; different plasma applications can be applied to different scenes of treating skin infections, pain and the like according to the flame color generated by the gas.

[0016] Preferably, the shape of the glass tube can be a comb shape, a U shape, a V shape and the like, which can be suitable for different treatment scenes of different parts of the human body.

[0017] The utility model discloses a kind of composite therapeutic apparatus systems and module, and its characteristics are as follows: by controlling the current, voltage and the like parameter setting of mainboard, it is switched to plasma handle module or electric ion handle module, it generates plasma or electric ion, can be flexibly applied in each medical field, to reach the expected treatment effect, so that the utility model has flexibility and effectiveness under multiple medical conditions. BRIEF DESCRIPTION OF DRAWINGS

[0018] Figure 1 It is the component block diagram of the composite therapeutic apparatus system and module of the utility model;

[0019] Figure 2 It is the structure diagram of the cold plasma handle module of the utility model;

[0020] Figure 3 It is the block diagram of the air inlet passage of the cold plasma handle module of the utility model;

[0021] Figure 4 It is the structure diagram of the ozone plasma handle module of the utility model;

[0022] Figure 5 It is the block diagram of the air inlet passage of the ozone plasma handle module of the utility model;

[0023] Figure 6 It is the structure diagram of the inert gas plasma handle module of the utility model;

[0024] Figure 7 It is the block diagram of the air inlet passage of the inert gas plasma handle module of the utility model;

[0025] Figure 8 The structure diagram of the electric ion handle module of the utility model. DETAILED DESCRIPTION

[0026] The embodiments of the utility model are described in detail below with reference to the drawings.

[0027] Please refer to Figure 1 The composition block diagram of the composite therapeutic instrument system and module.

[0028] As Figure 1 As shown, the main power supply 10 supplies power to the first power supply 20, the second power supply 30 and the main filter 40. The first power supply 20 supplies power to the main processor 50 and the digital multiplexer 60, and the main processor 50 is responsible for controlling the execution of the mainboard 200 and processing the input and output circuit signals. The second power supply 30 supplies power to the gate driver 70, and when the gate driver 70 generates current to the gate of the power MOSFET 80, it charges the input capacitor between the gate and the source of the power MOSFET 80, so that the power MOSFET 80 is turned on. The main filter 40 is connected to the main power supply 10, which reduces the noise and interference of the input current. When the power MOSFET 80 is turned on by the gate driver 70, the main filter 40 can transmit current through the power MOSFET 80 to the relay 90, and the relay 90 receives the circuit signal and supplies power to the cold plasma handle module 100, the ozone plasma handle module 110, the inert gas plasma handle module 120 or the electric ion handle module 130.

[0029] Next, the input signal is input from the cold plasma handle module 100, the ozone plasma handle module 110, the inert gas plasma handle module 120 or the electric ion handle module 130 to the input filter 140. The foot switch 150 receives the input signal and is connected to the input filter 140, and assists in determining the control of the mainboard 200 for the switch of the handle module. The input filter 140 ensures that the signal is not distorted before transmitting the signal to the digital multiplexer 60. The digital multiplexer 60 receives power supplied by the first power supply 20 and can input multiple analog or digital signals from the input filter 140 to the main processor 50. The screen 160 is connected to the main processor 50 and displays all instructions. The electromagnetic valve 170 is connected to the main processor 50 and is responsible for controlling the gas pipeline of the cold plasma handle module 100, the ozone plasma handle module 110 and the inert gas plasma handle module 120.

[0030] After inputting the instruction such as "COLD", the input instruction is received to set the working parameters, and the circuit loop in the control mainboard 200 is started, and the starting signal of the control mainboard 200 is input to the cold plasma handle module 100.

[0031] Please refer to Figure 2 It is a structural schematic diagram of the cold plasma handle module, and Figure 3 It is a block diagram of the gas inlet channel of the cold plasma handle module.

[0032] After the input port 210 receives the input power, the high-voltage transformer 220 is connected to the input port 210 and converts the low voltage into high voltage output to the working chamber 230, the internal circuit board 240 is provided inside and has a wire connection with the high-voltage transformer 220, the shell 250 is fixedly provided and surrounds the outside of the working chamber 230, and the gas inlet channel 260 is fixedly provided outside the shell 250, helium gas is input to the inside of the shell 250, and the needle electrode 270 is provided inside and has a wire connection with the circuit board 240, the needle electrode 270 is the main helium plasma generation place, and the plasma output port 280 is located at one end of the shell 250 to discharge the generated helium plasma.

[0033] The gas inlet channel 260 can further include: a gas input end 290, mainly inputting helium gas, a pressure regulator 300 adjusting the helium gas flowing from the gas input end 290 to maintain the gas pressure in a stable state, the helium gas passing through a three-way valve 310 and flowing into two valves 320, 330 to maintain the helium gas pressure within a certain value according to the working parameter setting, flowing into two flow controllers 340, 350 for changing the helium gas flow setting and stabilizing the helium gas pressure, the helium gas flowing from the three-way valve 360 to the gas output end 370, and finally the helium gas flowing from the gas output end 370 to the gas inlet channel 260.

[0034] For this, when the helium gas enters the shell 250 from the gas inlet channel 260, a strong electromagnetic field is generated by the needle electrode 270 to apply high-voltage high-frequency discharge to the helium gas, so that the helium gas molecules are ionized to form helium plasma, which contains a mixture of charged particles, excited state atoms and free radicals, and the helium plasma is sprayed out of the plasma output port 280.

[0035] In the embodiment of the utility model, the cold plasma handle module 100 usually uses helium gas as the raw gas of helium plasma.

[0036] In the embodiment of the utility model, the helium plasma sprayed out of the plasma output port 280 of the cold plasma handle module 100 is applied to promote wound healing, accelerate wound repair speed; alleviate inflammation, inhibit inflammatory response in the body, reduce swelling and pain and other discomfort symptoms; resist microbial infection, and destroy the cell wall and nucleic acid molecules of bacteria or viruses and other microorganisms.

[0037] After inputting the instruction such as "AIR" and receiving the input instruction to set the working parameters, the circuit loop in the control mainboard 200 is started, and the starting signal of the control mainboard 200 is input to the ozone plasma handle module 110.

[0038] Please refer to Figure 4 It is a structural schematic diagram of the ozone plasma handle module, and Figure 5 It is a block diagram of the air inlet channel of the ozone plasma handle module.

[0039] After the input port 410 receives the input power, the high-voltage transformer 420 is connected to the input port 410 and converts the low voltage into high voltage and outputs to the working chamber 430. The circuit board 440 inside is connected to the high-voltage transformer 420 by wires. The shell 450 is fixedly arranged and surrounds the outside of the working chamber 430. The air inlet channel 460 is fixedly arranged outside the shell 450. The air is input to the inside of the shell 450. The needle electrode 470 is arranged inside and connected to the circuit board 440 by wires. The needle electrode 470 is the main ozone plasma generation place. The plasma output port 480 is located at one end of the shell 450 and is responsible for discharging the generated ozone plasma.

[0040] The air inlet channel 460 can further include: a gas input end 490 for an air compressor to suck air under atmospheric pressure, then compress it, and then flow the compressed air into a three-way valve 500. The air flows into two valves 510 and 520 to maintain the air pressure within a certain value according to the working parameter setting. The air flows into two flow controllers 530 and 540 to change the air flow setting and stabilize the air pressure. The air flows from the three-way valve 550 to the gas output end 560. Finally, the air flows from the gas output end 560 to the air inlet channel 460.

[0041] When the air enters the shell 450 from the air inlet channel 460, the needle electrode 470 generates a strong electromagnetic field to apply high-voltage high-frequency discharge to the air, so that oxygen molecules and nitrogen molecules are ionized to form ozone plasma, which contains a mixture of charged particles, excited state atoms and free radicals. The ozone plasma is sprayed out of the plasma output port 480.

[0042] In the embodiment of the utility model, the ozone plasma handle module 110 usually uses air as the raw gas of ozone plasma.

[0043] In the embodiment of the utility model, the ozone plasma handle module 110 sprays ozone plasma at the plasma output port 480. It can be applied to sterilization and disinfection, can destroy the cell wall and nucleic acid molecules of microorganisms such as bacteria and viruses; can also decompose and oxidize pollutants in the air, so as to achieve the effect of removing odor; and can promote blood circulation, has the effects of anti-inflammatory and promoting healing.

[0044] In the embodiment of the utility model, the plasma handle module takes ozone plasma as output plasma, and can also take inert gas as raw material gas, including helium plasma, neon plasma, argon plasma, krypton plasma, xenon plasma and the like as output plasma.

[0045] After inputting instruction such as "DBD", the input instruction is received to set working parameters, and the circuit loop in the control mainboard 200 is started, and the starting signal of the control mainboard 200 is input to the inert gas plasma handle module 120.

[0046] Please refer to Figure 6 It is a structural schematic view of the inert gas plasma handle module, and Figure 7 It is a block diagram of the gas inlet channel of the inert gas plasma handle module.

[0047] After the input port 610 receives the input power, the high-voltage transformer 620 is connected to the input port 610 and converts low voltage into high voltage output to the working chamber 630, the internal circuit board 640 is connected with the high-voltage transformer 620 by wires, the shell 650 is fixedly arranged and surrounds the outside of the working chamber 630, and the gas inlet channel 660 is fixedly arranged outside the shell 650, argon gas is input into the shell 650, and argon plasma is generated by reaction with the working chamber 630, and the plasma output port 670 is located at one end of the shell 650 and is responsible for discharging the generated argon plasma.

[0048] The gas inlet channel 660 can further include: a gas input end 680, mainly inputting argon gas, a pressure regulator 690 adjusting the argon gas pressure flowing from the gas input end 680 to maintain the pressure in a stable state, the argon gas passing through a three-way valve 700, flowing into two valves 710, 720 respectively, and the argon gas pressure is maintained within a certain value according to the working parameter setting, flowing into two flow controllers 730, 740 for changing the argon gas flow setting and stabilizing the argon gas pressure, and the argon gas flows from the three-way valve 750 to the gas output end 760, and finally the argon gas flows from the gas output end 760 to the gas inlet channel 660.

[0049] For this, when the argon gas enters the shell 650 from the gas inlet channel 660, and the working chamber 630 receives the current of the circuit board 640 to generate a strong electromagnetic field in the working chamber 630 to apply high-voltage high-frequency discharge to the argon gas, the argon molecules are ionized to form argon plasma, which contains a mixture of charged particles, excited state atoms and free radicals, and the argon plasma is sprayed from the plasma output port 670.

[0050] In the embodiment of the utility model, the inert gas plasma handle module 120 usually takes argon gas as the raw material gas of the inert gas plasma.

[0051] In the embodiment of the utility model, the argon plasma is sprayed at the plasma output port 670 in the inert gas plasma handle module 120, the temperature is 35-3000 DEG C, and the frequency is 10-500 KHZ. It is applied to repair muscle tissue to promote wound healing, and also applied to sterilization and disinfection, destroy the cell wall and nucleic acid molecules of bacteria, viruses and other microorganisms.

[0052] In the embodiment of the utility model, the inert gas plasma handle module 120 is applied to disinfection, treatment of infection, removal of cancer cells by controlling the parameters of frequency, temperature, power, airflow speed and concentration, and the plasma with the output temperature of 30-45 DEG C and the frequency of 10-50 KHZ is applied to remove soft tissue, cancerous tissue and the like, and the plasma with the temperature of up to 3000 DEG C and the frequency of 300-500 KHZ is applied to remove soft tissue, cancerous tissue and the like.

[0053] In addition, the structure and generation principle of the ionization handle module are different from those of the plasma handle module, and any raw gas is not required, heat is generated by high-frequency voltage discharge and object friction to cause local thermalization.

[0054] After inputting the instruction such as "SPARK", the input instruction is received to set the working parameters, the circuit loop in the control mainboard 200 is started, the input current of 0-10A, the voltage of 220V and the power of 50W are input to the ionization handle module 130 through the start signal of the control mainboard 200.

[0055] Please refer to Figure 8 It is a structural schematic view of the ionization handle module.

[0056] After the input port 800 receives the input power, the high-voltage transformer 810 is connected to the input port 800 and converts low voltage into high voltage output to the working chamber 820, the circuit board 830 is arranged inside and has a wire connection with the high-voltage transformer 810, the needle electrode 840 is fixedly arranged at one end of the working chamber 820 and has a wire connection with the circuit board 830, and the needle electrode 840 generates a high-frequency electric field after receiving the power.

[0057] When the high-frequency electric field generated by the needle electrode 840 is in close contact with the skin tissue, electronic friction is generated on the surface of the tissue, heat energy is generated in the tissue, and then the tissue is deformed, coagulated and vaporized.

[0058] In the embodiment of the utility model, the output time of the high-frequency electric field generated by the needle electrode 840 in the ionization handle module 130 is 1-3s, the output voltage is 0-5V, and the power is 0-15W; more preferably, the output voltage is 0-2.5V, and the power is 5W.

[0059] In the embodiment of the utility model, ion handle module 130 can switch different modes according to requirements: when in low gear mode, low intermediate frequency handle module outputs ion one by one; when in high gear mode, high frequency handle module ion is a lightning from naked eye, can act on deep skin, rely on heat damage accumulation to treat soft tissue, cut off redundant soft tissue, treatment repair damage can be adjusted through gear switching and use frequency.

[0060] In the embodiment of the utility model, ion handle module 130 can be applied to different operation, treatment scenes according to different frequency: when frequency is below 100KHZ, especially frequency is 10-50KHZ, produce vibration effect like electrode to body;When frequency is 100-200KHZ, be applied to skin disinfection, relieve skin pain and the like;When frequency is above 200KHZ, especially frequency is 2000-5000KHZ, be applied to remove small tumor, nevus, wart, polyp and spot and have hemostasis and blood coagulation to small blood vessel and prevent blood vessel hemorrhage, and cut skin or subcutaneous tissue.

[0061] In addition, the structure of ion handle module and plasma handle module has the recess of glass tube, and the glass tube is inserted into the handle recess and is tightened when using, and is used to treat infection pain and the like on the surface of skin tissue;The shape of glass tube can be comb, U shape, V shape and the like according to the different parts of human body;The color of inert gas plasma flame is different, and different colors can be presented according to gas plasma in glass tube when using, to distinguish application scene.

[0062] The above-mentioned embodiments are only preferred embodiments for fully illustrating the utility model, and the protection scope of the utility model is not limited to this.The equivalent replacement or transformation of technical personnel in the technical field on the basis of the utility model is all within the protection scope of the utility model.The protection scope of the utility model is subject to the patent claim book.The protection scope of the utility model is subject to the patent claim book.

Claims

1. A plasma handle comprising an ozone plasma handle module and an inert gas plasma handle module, characterized in that, The plasma handle further comprises: an input port; a high voltage transformer connected to the input port; a working chamber fixedly arranged at one end of the high voltage transformer, the working chamber comprising a circuit board arranged inside the working chamber and a housing fixedly arranged and surrounding the outside of the working chamber; and an air inlet channel fixedly arranged outside the housing, inputting a raw gas into the inside of the housing, the air inlet channel comprising a gas input end, a three-way valve connected to the gas input end, two valves respectively connected to the three-way valve, two flow controllers respectively connected to the two valves, a three-way valve connected to the two flow controllers, a gas output end connected to the three-way valve, and a plasma outlet at one end of the housing. The ozone plasma handle module and the inert gas plasma handle module further respectively comprise a needle electrode fixedly arranged at one end of the working chamber. The inert gas plasma handle module comprises a helium plasma handle module, a neon plasma handle module, an argon plasma handle module, a krypton plasma handle module, and a xenon plasma handle module.

2. The plasma handle of claim 1, wherein, The gas input end of the ozone plasma handle module is an air compressor.

3. The plasma handle of claim 1, wherein, The raw gas inputted into the air inlet channel comprises helium, air, or argon.

4. The plasma handle of claim 1, wherein, The air inlet channel comprises a pressure regulator connected between the gas input end and the three-way valve.

5. The plasma handle of claim 1, wherein, The ion handle further comprises:

6. The plasma handle of claim 1, wherein, an input port; 7. An ion handpiece comprising a high frequency handpiece module and a low intermediate frequency module, characterized in that, a high voltage transformer connected to the input port; a working chamber fixedly arranged at one end of the high voltage transformer, the working chamber comprising a circuit board arranged inside the working chamber and a needle electrode fixedly arranged at one end of the working chamber. comprising a first power supply; a main processor connected to the first power supply; 8. A combination therapy system comprising a handle as claimed in any one of claims 1 to 7, wherein, a second power supply; a gate driver connected to and receiving circuit signals of the second power supply and the main processor; a main filter; a power MOSFET connected to and receiving circuit signals of the main filter and the gate driver; a relay connected to the power MOSFET; a digital multiplexer connected to the main processor and the first power supply; and an input filter connected to the digital multiplexer. further comprising: a main power source respectively connected to the first power supply, the second power supply, and the main filter; a foot switch connected to the input filter; 9. The combination therapy system of claim 8, wherein, a screen connected to the main processor; and a solenoid valve connected to the main processor. ​ ​ ​ ​

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