A high-frequency electromagnetic wave bidirectional regulation sympathetic nerve activity hypertension treatment device
By combining a mobile robotic arm and a directional antenna array, and using sensor feedback to adjust the radio frequency output parameters, the problems of directional adjustment and individual adaptability of existing high-frequency electromagnetic wave neuromodulation devices have been solved, achieving precise directional irradiation and stable treatment of high-frequency electromagnetic waves.
Patent Information
- Application Number
- CN202611071044.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-07-20
- Publication Date
- 2026-08-25
AI Technical Summary
Existing high-frequency electromagnetic wave neuromodulation devices have limitations such as fixed electromagnetic wave radiation direction, limited spatial position adjustment capability, lack of electromagnetic field directional control, and inability to adjust radiofrequency output parameters in real time according to the patient's physiological state, resulting in unstable treatment effects and poor individual adaptability.
By employing a combination structure of a mobile robotic arm, impedance matching device, and directional antenna array, along with sensor components and a microcontroller control unit, the irradiation components can be adjusted with multiple degrees of freedom, and the radio frequency output parameters can be adjusted based on physiological information feedback, thereby improving the directional radiation of electromagnetic waves and personalized treatment.
It achieves precise and targeted irradiation of the target sympathetic nerve area with high-frequency electromagnetic waves, improving the accuracy, stability and individual adaptability of treatment, and enhancing the safety and ease of use of the equipment.
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Figure CN122624831A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of hypertension treatment devices, and in particular to a hypertension treatment device that uses high-frequency electromagnetic waves to bidirectionally regulate sympathetic nerve activity. Background Technology
[0002] Hypertension is a common chronic cardiovascular disease, and its long-term progression can easily lead to serious complications such as cardiovascular and cerebrovascular events and kidney damage. In recent years, numerous studies have shown that persistent over-excitation of the sympathetic nervous system is one of the important pathological mechanisms in the occurrence and development of hypertension. Abnormal activation of the renal sympathetic nervous system and related autonomic neural pathways can lead to a series of physiological changes, including enhanced vasoconstriction, activation of the renin-angiotensin-aldosterone system, and sodium and water retention. Therefore, precise regulation of sympathetic nerve activity has become an important research direction in the field of hypertension intervention. In addition to drug therapy, non-drug therapy techniques based on the regulation of nerve activity using physical energy are gradually gaining widespread attention.
[0003] Currently, technologies for sympathetic nerve modulation mainly include drug control, implantable nerve stimulation, neuroablation, and physical field modulation methods such as electromagnetic waves. Among these, high-frequency electromagnetic waves have excellent tissue penetration capabilities, can achieve non-contact effects, and have easily adjustable output parameters, making them promising for applications in neuromodulation, biostimulation, and rehabilitation therapy. With the development of radiofrequency technology, directional antenna technology, digital control technology, and physiological signal detection technology, using high-frequency electromagnetic waves to modulate sympathetic nerve function has gradually become an important development trend in autonomic nervous system modulation devices. These devices are continuously evolving towards non-invasive, precise, intelligent, and real-time feedback control to improve the safety, stability, and individualized adaptability of the treatment process.
[0004] Existing high-frequency electromagnetic wave neuromodulation devices still have technical shortcomings. On the one hand, the electromagnetic wave radiation direction of existing devices is usually fixed, and the spatial position adjustment capability of the irradiation components is limited. It is difficult to flexibly adjust according to the different body characteristics, neuroanatomical locations, and treatment postures of different patients, making it difficult to stably focus electromagnetic energy on the target nerve area, which easily reduces energy utilization efficiency and neuromodulation effect. On the other hand, some devices lack good electromagnetic field directional control and impedance matching design, which can easily cause problems such as energy reflection, leakage, or excessive radiation range during electromagnetic wave radiation. This not only reduces the energy density of the target area, but may also increase the risk of surrounding tissues being irradiated by non-target sources.
[0005] Most existing devices use preset fixed parameters for radiofrequency output, lacking the ability to dynamically monitor and adjust the patient's real-time physiological state during treatment. When physiological parameters such as blood pressure and pulse change, the device typically cannot automatically adjust the radiofrequency output power, duration of action, or other operating parameters based on real-time feedback. This can easily lead to discrepancies between treatment parameters and the patient's current state, affecting the stability of the treatment process and individual adaptability. Furthermore, some devices have rudimentary human-computer interaction functions, failing to display operating status, physiological monitoring information, and output parameters synchronously. This hinders operators from monitoring the device's operating status and managing parameters in real time, reducing the ease of use of the equipment. Summary of the Invention
[0006] The purpose of this invention is to provide a hypertension treatment device that uses high-frequency electromagnetic waves to bidirectionally regulate sympathetic nerve activity, thereby solving at least one of the above-mentioned technical problems. It can achieve precise directional irradiation of the target sympathetic nerve region by high-frequency electromagnetic waves, and dynamically adjust the radio frequency output parameters in real time by combining physiological information feedback, thereby improving the accuracy, stability and individual adaptability of sympathetic nerve regulation.
[0007] The embodiments of the present invention are implemented as follows:
[0008] A hypertension treatment device that uses high-frequency electromagnetic waves to bidirectionally regulate sympathetic nerve activity includes a main control box, a movable robotic arm, an irradiation component, a sensor component, and a power distribution component.
[0009] The main control box contains a microcontroller control unit and a radio frequency generation circuit, and the power distribution component is installed inside the main control box.
[0010] One end of the movable robotic arm is fixed to the main control box, and the other end is connected to the irradiation component.
[0011] The irradiation component is connected to the radio frequency generation circuit.
[0012] The sensor assembly is connected to the microcontroller control unit and is used to collect physiological information, feed it back to the microcontroller control unit, and adjust the radio frequency output parameters.
[0013] In a preferred embodiment of the present invention, in the above-mentioned high-frequency electromagnetic wave bidirectional modulation of sympathetic nerve activity hypertension treatment device, the movable robotic arm includes a connecting rod and a damped rotary joint, the connecting rod has at least two sections, and the damped rotary joint is disposed at the connection between the connecting rods.
[0014] The end of the movable robotic arm is provided with a ball head locking seat, which is connected to the housing of the irradiation component and is used to adjust the orientation of the irradiation component at multiple angles.
[0015] Its technical advantages are: through the cooperation of multi-section connecting rods, damped rotary joints and ball head locking seats, it can achieve multi-degree-of-freedom adjustment and stable positioning of the irradiation component, thereby improving the irradiation accuracy and flexibility of the target area.
[0016] In a preferred embodiment of the present invention, in the above-mentioned high-frequency electromagnetic wave bidirectional modulation of sympathetic nerve activity hypertension treatment device, the irradiation component includes a metal shielding shell, and an impedance matching device and a directional antenna array are disposed inside the metal shielding shell.
[0017] The directional antenna array is disposed at the front opening of the metal shielding housing.
[0018] The impedance matching circuit is connected to the radio frequency generation circuit via a radio frequency coaxial cable, and is also electrically connected to the directional antenna array.
[0019] Its technical effect is that by combining impedance matching devices with directional antenna arrays, it improves the efficiency of radio frequency energy transmission, realizes the directional radiation of high-frequency electromagnetic waves, and enhances the energy concentration in the target area.
[0020] In a preferred embodiment of the present invention, in the above-mentioned high-frequency electromagnetic wave bidirectional modulation of sympathetic nerve activity hypertension treatment device, an insulating wave-transparent cover plate is sealed and installed at the front opening of the metal shielding shell.
[0021] A sealing gasket is provided between the insulating wave-transmitting cover plate and the metal shielding shell.
[0022] The directional antenna array is disposed on the inner side of the insulating wave-transparent cover plate.
[0023] Its technical advantages are: by sealing and protecting the irradiation component with an insulating and transparent cover plate, the influence of the external environment on the internal components is reduced while ensuring normal electromagnetic radiation, thereby improving the safety and reliability of the irradiation component.
[0024] In a preferred embodiment of the present invention, in the hypertension treatment device for bidirectional modulation of sympathetic nerve activity by high-frequency electromagnetic waves, the sensor assembly includes a flexible contact sensing strip.
[0025] The flexible contact sensing strip integrates a pulse acquisition unit and a blood pressure monitoring unit.
[0026] The signal output terminals of the pulse acquisition unit and the blood pressure monitoring unit are connected to the data interface on the side of the main control box via data cables.
[0027] Its technical advantages are: by collecting physiological information such as pulse and blood pressure in real time, it provides feedback for the dynamic adjustment of radiofrequency output parameters, realizes closed-loop control of the treatment process, and improves individualized regulation capabilities.
[0028] In a preferred embodiment of the present invention, in the above-mentioned high-frequency electromagnetic wave bidirectional modulation of sympathetic nerve activity hypertension treatment device, a mounting base is provided on the top surface of the main control box.
[0029] The bottom end of the movable robotic arm is provided with a connecting flange that matches the mounting base. The connecting flange is detachably connected to the mounting base by fixing bolts.
[0030] Its technical advantages are: the use of a detachable connection method to install the movable robotic arm facilitates the installation, replacement and maintenance of the device, and improves the ease of equipment assembly.
[0031] In a preferred embodiment of the present invention, in the hypertension treatment device for bidirectional regulation of sympathetic nerve activity by high-frequency electromagnetic waves, a touch control screen is embedded in the front panel of the main control box.
[0032] The touch control screen is connected to the microcontroller control unit via a communication bus and is used to display physiological data monitoring values and radio frequency output power values in real time.
[0033] Its technical advantages are: to enable real-time display of physiological monitoring data and radio frequency output parameters, which facilitates parameter monitoring and adjustment by the operator and improves the ease of operation of the equipment.
[0034] In a preferred embodiment of the present invention, in the above-mentioned high-frequency electromagnetic wave bidirectional modulation of sympathetic nerve activity hypertension treatment device, the side wall of the main control box is provided with an array of ventilation holes.
[0035] An exhaust fan is installed inside the main control box at the position corresponding to the array ventilation hole, and the exhaust fan is connected to the power distribution component.
[0036] Its technical effect is that by combining the array of ventilation holes with the exhaust fan, the heat dissipation efficiency inside the main control box is improved, ensuring the long-term stable operation of the radio frequency circuit.
[0037] In a preferred embodiment of the present invention, in the above-mentioned high-frequency electromagnetic wave bidirectional modulation of sympathetic nerve activity hypertension treatment device, the radio frequency generation circuit includes a digitally controlled signal generator and a radio frequency power amplifier.
[0038] The control terminal of the numerical control signal generator is connected to the microcontroller control unit, and the output terminal is connected to the input terminal of the radio frequency power amplifier.
[0039] Its technical advantages are: by using a digitally controlled signal generator in conjunction with an RF power amplifier, precise control of RF output parameters can be achieved, thereby improving the stability and adjustability of high-frequency electromagnetic wave output.
[0040] In a preferred embodiment of the present invention, in the above-mentioned high-frequency electromagnetic wave bidirectional modulation of sympathetic nerve activity hypertension treatment device, a movable support base is fixedly provided at the bottom of the main control box.
[0041] The mobile support base is equipped with casters at each of the four vertices, and the casters have a self-locking function.
[0042] Its technical advantage lies in the fact that by setting up omnidirectional wheels with self-locking function, the device has both mobility and positioning stability, making it easy to deploy and fix in different usage scenarios.
[0043] The beneficial effects of the embodiments of the present invention are:
[0044] This invention provides a hypertension treatment device that uses high-frequency electromagnetic waves to bidirectionally regulate sympathetic nerve activity. By integrating a microcontroller control unit, radio frequency generation circuit, and power distribution components within the main control box, and combining these with a movable robotic arm, irradiation components, and sensor components to form a complete system structure, it achieves stable output of high-frequency electromagnetic waves and non-contact irradiation of the sympathetic nerve region. Compared to existing devices with fixed irradiation positions and insufficient adjustment capabilities, this invention allows for flexible adjustment of the position and orientation of the irradiation components according to the body shape and treatment area of different users. This improves the matching degree between the electromagnetic wave action area and the target nerve region, enhances the accuracy and stability of the high-frequency electromagnetic wave action, and improves the regulatory effect on the sympathetic nerve.
[0045] The present invention discloses a hypertension treatment device for bidirectional regulation of sympathetic nerve activity by high-frequency electromagnetic waves. The device is equipped with a movable robotic arm consisting of a multi-section connecting rod, a damped rotating joint, and a ball-head locking seat. The irradiation component can achieve multi-degree-of-freedom spatial adjustment and maintain stable positioning after adjustment. This can effectively avoid the effect of electromagnetic wave on the treatment effect due to the deviation of the irradiation angle during the treatment process.
[0046] This invention discloses a hypertension treatment device that uses high-frequency electromagnetic waves to bidirectionally regulate sympathetic nerve activity. The irradiation component employs a combination structure of a metal shielding shell, an impedance matching device, and a directional antenna array. Impedance matching reduces radio frequency signal reflection loss and improves radio frequency energy transmission efficiency. The directional antenna array enables directional radiation of high-frequency electromagnetic waves, allowing electromagnetic energy to act more concentratedly on the target area. The metal shielding shell effectively suppresses electromagnetic leakage in non-target directions, while the insulating and wave-transparent cover ensures normal electromagnetic wave radiation while providing sealed protection for internal components, thus improving the safety, stability, and service life of the irradiation component. Attached Figure Description
[0047] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of the present invention and should not be regarded as a limitation on the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.
[0048] Figure 1 This is a schematic diagram of the hypertension treatment device of the present invention, which uses high-frequency electromagnetic waves to bidirectionally regulate the activity of the sympathetic nervous system.
[0049] In the diagram: 1-Main control box; 11-Mounting base; 12-Connecting flange; 13-Touch control screen; 14-Array ventilation hole; 15-Exhaust fan; 2-Moving robotic arm; 21-Linkage; 22-Damped rotary joint; 23-Ball head locking seat; 3-Irradiation assembly; 31-Metal shielding shell; 32-Impedance matching device; 33-Directional antenna array; 34-Insulated wave-transparent cover; 4-Sensor assembly; 41-Flexible contact sensing strip; 42-Pulse acquisition unit; 43-Blood pressure monitoring unit; 5-Power distribution assembly; 51-CNC signal generator; 52-RF power amplifier; 6-Mobile support base; 61-Universal casters. Detailed Implementation
[0050] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. The components of the embodiments of the present invention described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.
[0051] Please refer to Figure 1 The first embodiment of the present invention provides a hypertension treatment device for bidirectional regulation of sympathetic nerve activity by high-frequency electromagnetic waves, which includes a main control box 1, a movable robotic arm 2, an irradiation component 3, a sensor component 4, and a power distribution component 5. The main control box 1 is equipped with a microcontroller control unit and a radio frequency generation circuit, and the power distribution component 5 is installed inside the main control box 1. One end of the movable robotic arm 2 is fixed to the main control box 1, and the other end is connected to the irradiation component 3. The irradiation component 3 is connected to the radio frequency generation circuit. The sensor component 4 is connected to the microcontroller control unit and is used to collect physiological information, feed it back to the microcontroller control unit, and adjust the radio frequency output parameters.
[0052] In a preferred embodiment of the present invention, in the above-mentioned high-frequency electromagnetic wave bidirectional modulation of sympathetic nerve activity hypertension treatment device, the movable robotic arm 2 includes a connecting rod 21 and a damped rotation joint 22. The connecting rod 21 has at least two sections, and the damped rotation joint 22 is disposed at the connection between the connecting rods 21. The end of the movable robotic arm 2 is provided with a ball head locking seat 23, which is connected to the outer shell of the irradiation component 3 and is used to adjust the orientation of the irradiation component 3 at multiple angles.
[0053] Its technical advantages are: through the cooperation of multi-section connecting rods, damped rotary joints and ball head locking seats, it can achieve multi-degree-of-freedom adjustment and stable positioning of the irradiation component, thereby improving the irradiation accuracy and flexibility of the target area.
[0054] In a preferred embodiment of the present invention, in the above-mentioned high-frequency electromagnetic wave bidirectional modulation of sympathetic nerve activity hypertension treatment device, the irradiation component 3 includes a metal shielding housing 31, and an impedance matching device 32 and a directional antenna array 33 are disposed inside the metal shielding housing 31; the directional antenna array 33 is disposed at the front opening of the metal shielding housing 31; the impedance matching device 32 is connected to the radio frequency generation circuit through a radio frequency coaxial cable, and is also electrically connected to the directional antenna array 33.
[0055] Its technical effect is that by combining impedance matching devices with directional antenna arrays, it improves the efficiency of radio frequency energy transmission, realizes the directional radiation of high-frequency electromagnetic waves, and enhances the energy concentration in the target area.
[0056] In a preferred embodiment of the present invention, in the above-mentioned high-frequency electromagnetic wave bidirectional modulation of sympathetic nerve activity hypertension treatment device, an insulating wave-transparent cover plate 34 is sealed and installed at the front opening of the metal shielding shell 31; a sealing gasket is provided between the insulating wave-transparent cover plate 34 and the metal shielding shell 31; and the directional antenna array 33 is disposed inside the insulating wave-transparent cover plate 34.
[0057] Its technical advantages are: by sealing and protecting the irradiation component with an insulating and transparent cover plate, the influence of the external environment on the internal components is reduced while ensuring normal electromagnetic radiation, thereby improving the safety and reliability of the irradiation component.
[0058] In a preferred embodiment of the present invention, in the above-mentioned high-frequency electromagnetic wave bidirectional modulation of sympathetic nerve activity hypertension treatment device, the sensor assembly 4 includes a flexible contact sensing strip 41; the flexible contact sensing strip 41 integrates a pulse acquisition unit 42 and a blood pressure monitoring unit 43; the signal output terminals of the pulse acquisition unit 42 and the blood pressure monitoring unit 43 are connected to the data interface on the side of the main control box 1 through a data cable.
[0059] Its technical advantages are: by collecting physiological information such as pulse and blood pressure in real time, it provides feedback for the dynamic adjustment of radiofrequency output parameters, realizes closed-loop control of the treatment process, and improves individualized regulation capabilities.
[0060] In a preferred embodiment of the present invention, in the above-mentioned high-frequency electromagnetic wave bidirectional modulation of sympathetic nerve activity hypertension treatment device, the top surface of the main control box 1 is provided with a mounting base 11; the bottom end of the movable robotic arm 2 is provided with a connecting flange 12 that matches the mounting base 11, and the connecting flange 12 is detachably connected to the mounting base 11 by fixing bolts.
[0061] Its technical advantages are: the use of a detachable connection method to install the movable robotic arm facilitates the installation, replacement and maintenance of the device, and improves the ease of equipment assembly.
[0062] In a preferred embodiment of the present invention, in the above-mentioned high-frequency electromagnetic wave bidirectional modulation of sympathetic nerve activity hypertension treatment device, the front panel of the main control box 1 is provided with a touch control screen 13; the touch control screen 13 is connected to the single-chip microcomputer control unit through a communication bus and is used to display physiological data monitoring values and radio frequency output power values in real time.
[0063] Its technical advantages are: to enable real-time display of physiological monitoring data and radio frequency output parameters, which facilitates parameter monitoring and adjustment by the operator and improves the ease of operation of the equipment.
[0064] In a preferred embodiment of the present invention, in the above-mentioned high-frequency electromagnetic wave bidirectional modulation of sympathetic nerve activity hypertension treatment device, the side wall of the main control box 1 is provided with an array of ventilation holes 14; an exhaust fan 15 is provided inside the main control box 1 at the position corresponding to the array of ventilation holes 14, and the exhaust fan 15 is connected to the power distribution component 5.
[0065] Its technical effect is that by combining the array of ventilation holes with the exhaust fan, the heat dissipation efficiency inside the main control box is improved, ensuring the long-term stable operation of the radio frequency circuit.
[0066] In a preferred embodiment of the present invention, in the above-mentioned high-frequency electromagnetic wave bidirectional modulation of sympathetic nerve activity hypertension treatment device, the radio frequency generation circuit includes a digitally controlled signal generator 51 and a radio frequency power amplifier 52; the control terminal of the digitally controlled signal generator 51 is connected to the microcontroller control unit, and the output terminal is connected to the input terminal of the radio frequency power amplifier 52.
[0067] Its technical advantages are: by using a digitally controlled signal generator in conjunction with an RF power amplifier, precise control of RF output parameters can be achieved, thereby improving the stability and adjustability of high-frequency electromagnetic wave output.
[0068] In a preferred embodiment of the present invention, in the above-mentioned high-frequency electromagnetic wave bidirectional regulation of sympathetic nerve activity hypertension treatment device, a movable support base 6 is fixedly provided at the bottom of the main control box 1; a universal wheel 61 is installed at each of the four vertices of the movable support base 6, and the universal wheel 61 has a self-locking function.
[0069] Its technical advantage lies in the fact that by setting up omnidirectional wheels with self-locking function, the device has both mobility and positioning stability, making it easy to deploy and fix in different usage scenarios.
[0070] It should be understood that the specific embodiments described above are merely illustrative or explanatory of the principles of the invention and do not constitute a limitation thereof. Therefore, any modifications, equivalent substitutions, improvements, etc., made without departing from the spirit and scope of the invention should be included within the protection scope of the invention. Furthermore, the appended claims are intended to cover all variations and modifications falling within the scope and boundaries of the appended claims, or equivalent forms of such scope and boundaries.
Claims
1. A hypertension treatment device that uses high-frequency electromagnetic waves to bidirectionally regulate sympathetic nerve activity, characterized in that, It includes a main control box (1), a mobile robotic arm (2), an irradiation assembly (3), a sensor assembly (3), and a power distribution assembly (5); The main control box (1) is equipped with a single-chip microcomputer control unit and a radio frequency generation circuit, and the power distribution component (5) is installed inside the main control box (1); One end of the movable robotic arm (2) is fixed to the main control box (1), and the other end is connected to the irradiation assembly (3). The irradiation component (3) is connected to the radio frequency generating circuit; The sensor assembly (4) is connected to the microcontroller control unit and is used to collect physiological information, feed it back to the microcontroller control unit, and adjust the radio frequency output parameters.
2. The hypertension treatment device for bidirectional modulation of sympathetic nerve activity by high-frequency electromagnetic waves according to claim 1, characterized in that, The movable robotic arm (2) includes a link (21) and a damped rotary joint (22). The link (21) has at least two sections, and the damped rotary joint (22) is disposed at the connection between the links (21). The end of the movable robotic arm (2) is provided with a ball head locking seat (23), which is connected to the outer shell of the irradiation component (3) and is used to adjust the orientation of the irradiation component (3) at multiple angles.
3. The hypertension treatment device for bidirectional regulation of sympathetic nerve activity using high-frequency electromagnetic waves according to claim 1, characterized in that, The illumination assembly (3) includes a metal shielding housing (31), and an impedance matching device (32) and a directional antenna array (33) are disposed inside the metal shielding housing (31). The directional antenna array (33) is disposed at the front opening of the metal shielding housing (31); The impedance matching device (32) is connected to the radio frequency generation circuit via a radio frequency coaxial cable, and is also electrically connected to the directional antenna array (33).
4. The hypertension treatment device for bidirectional regulation of sympathetic nerve activity by high-frequency electromagnetic waves according to claim 3, characterized in that, An insulating wave-transmitting cover plate (34) is sealed at the front opening of the metal shielding shell (31). A sealing gasket is provided between the insulating wave-transparent cover plate (34) and the metal shielding shell (31); The directional antenna array (33) is disposed inside the insulating wave-transparent cover plate (34).
5. The hypertension treatment device for bidirectional regulation of sympathetic nerve activity by high-frequency electromagnetic waves according to claim 1, characterized in that, The sensor assembly (4) includes a flexible contact sensing strip (41). The flexible contact sensing strip (41) integrates a pulse acquisition unit (42) and a blood pressure monitoring unit (43). The signal output terminals of the pulse acquisition unit (42) and the blood pressure monitoring unit (43) are connected to the data interface on the side of the main control box (1) via data cables.
6. The hypertension treatment device for bidirectional modulation of sympathetic nerve activity by high-frequency electromagnetic waves according to claim 1, characterized in that, The top surface of the main control box (1) is provided with a mounting base (11); The bottom end of the movable robotic arm (2) is provided with a connecting flange (12) that matches the mounting base (11). The connecting flange (12) is detachably connected to the mounting base (11) by fixing bolts.
7. The hypertension treatment device for bidirectional modulation of sympathetic nerve activity by high-frequency electromagnetic waves according to claim 1, characterized in that, The front panel of the main control box (1) is equipped with a touch control screen (13); The touch control screen (13) is connected to the single-chip microcomputer control unit via a communication bus and is used to display physiological data monitoring values and radio frequency output power values in real time.
8. The hypertension treatment device for bidirectional regulation of sympathetic nerve activity by high-frequency electromagnetic waves according to claim 1, characterized in that, The main control box (1) has an array of ventilation holes (14) on its side wall. An exhaust fan (15) is provided inside the main control box (1) at the position corresponding to the array ventilation hole (14), and the exhaust fan (15) is connected to the power distribution component (5).
9. The hypertension treatment device for bidirectional modulation of sympathetic nerve activity by high-frequency electromagnetic waves according to claim 1, characterized in that, The radio frequency generation circuit includes a numerically controlled signal generator (51) and a radio frequency power amplifier (52). The control terminal of the numerical control signal generator (51) is connected to the single-chip microcomputer control unit, and the output terminal is connected to the input terminal of the radio frequency power amplifier (52).
10. The hypertension treatment device for bidirectional modulation of sympathetic nerve activity by high-frequency electromagnetic waves according to claim 1, characterized in that, The bottom of the main control box (1) is fixedly provided with a movable support base (6); The mobile support base (6) is equipped with casters (61) at each of the four vertices, and the casters (61) have a self-locking function.