Wave conduction health care instrument capable of adjusting penetrability according to scene
By setting a corrugated structure with a step-by-step design in the waveguide cavity of the waveconductive healthcare instrument and equipped with a penetration regulation module, the problem of limited penetration depth and lack of dynamic regulation mechanism of the waveconductive healthcare instrument is solved, and effective effects and side effects are avoided on deep lesions.
Patent Information
- Application Number
- CN202510327200.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-19
- Publication Date
- 2025-06-10
AI Technical Summary
The penetration depth of existing wave conduction health care devices is limited, and it is difficult to act on deep lesions. It lacks a dynamic regulation mechanism and cannot adapt to the penetration needs of different tissue densities, which can easily cause side effects such as burning and stinging.
A wave conduction health care device that can adjust penetration according to the scene is designed. By setting a corrugated structure with a step-by-step density in the waveguide cavity and equipped with a penetration regulation module, the density of the corrugated structure is adjusted, thereby adjusting the intensity and penetration of high-frequency vibration waves.
It has achieved effective effects on deep lesions, avoided side effects such as burning and stinging caused by waves output by the health care instrument, and has the ability to dynamically adjust penetration, adapting to the needs of different tissue densities.
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Figure CN120114764A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of medical and health care equipment, and particularly relates to a wave conduction health care instrument capable of adjusting penetrability according to scenarios. Background Art
[0002] A wave conduction health care instrument is a device that outputs fluctuating conduction energy to achieve physical therapy, rehabilitation, and health improvement. Its core is particle resonance. The particle resonance technology is based on the characteristics of microparticles in quantum physics. Through high-frequency vibration waves of hundreds of millions of times per second, resonance occurs between human cells. This resonance can strip the dirt on the blood vessel wall, release toxins, and correct the disordered bio-magnetic field frequency. Therefore, taking the particle resonance wave as the core technology of the health care instrument combines quantum physics, traditional Chinese medicine theory, and modern medicine to improve human microcirculation and cell activity through high-frequency vibration energy.
[0003] However, there are still some defects in the existing wave conduction health care instruments, such as:
[0004] The penetration depth of traditional wave conduction health care instruments is limited and it is difficult to act on deep lesions. Although the penetrability can be improved by increasing high-energy output, it is easy to cause side effects such as burning and stinging. At the same time, there is a lack of a dynamic adjustment mechanism and it cannot adapt to the penetration requirements of different tissue densities (such as bones, muscles, and internal organs).
[0005] Based on this, the present invention provides a wave conduction health care instrument capable of adjusting penetrability according to scenarios to solve the above problems. Summary of the Invention
[0006] In order to overcome the deficiencies of the prior art, the present invention provides a wave conduction health care instrument capable of adjusting penetrability according to scenarios to solve the problems in the prior art.
[0007] One embodiment of the present invention provides a wave conduction health care instrument capable of adjusting penetrability according to scenarios, including a health care instrument main body, wherein:
[0008] A circuit control module and a power conversion module are arranged inside the health care instrument main body. The power conversion module is electrically connected to the circuit control module and is used to convert electrical energy into high-frequency vibration waves;
[0009] The health care instrument main body is provided with a waveguide cavity for outputting high-frequency vibration waves;
[0010] Among them, the waveguide cavity of the health care instrument main body is provided with a corrugated structure with a stepped density design, and the intensity of the output high-frequency vibration waves is reduced and the penetrability is enhanced through the corrugated structure;
[0011] Among them, a penetrability regulation module is provided in the waveguide cavity of the health care instrument main body. The penetrability regulation module is electrically connected to the circuit control module and is connected to the corrugated structure to adjust the density of the corrugated structure.
[0012] In one embodiment, the waveguide cavity is designed in a conical shape;
[0013] The diameter of the end of the waveguide cavity close to the health care instrument main body is smaller than that of the other end.
[0014] In one embodiment, the corrugated structure is arranged on the side surface of the waveguide cavity.
[0015] In one embodiment, a plurality of first annular protrusions are arranged on the side surface of the waveguide cavity;
[0016] The corrugated structure is composed of a plurality of first annular protrusions arranged on the side surface of the waveguide cavity;
[0017] Among them, the distance between the first annular protrusions gradually increases from the small end to the large end of the waveguide cavity, so that the density between the plurality of first annular protrusions is designed in a stepped manner.
[0018] In one embodiment, an annular groove is formed between the first annular protrusions. Among them, there are n first annular protrusions and n - 1 annular grooves;
[0019] Each of the annular grooves is provided with a through groove communicating with the inside of the health care instrument main body;
[0020] The penetrability regulation module is installed inside the health care instrument main body. One end of the penetrability regulation module is located at the through groove of the annular groove, so that the annular groove is closed.
[0021] In one embodiment, the penetrability regulation module includes a telescopic push rod, a conical cover and a second annular protrusion;
[0022] The fixed end of the telescopic push rod is fixedly connected to the inside of the health care instrument main body. The telescopic end of the telescopic push rod is fixedly connected to the conical cover to push the conical cover; a plurality of telescopic push rods are provided;
[0023] The conical cover has the same taper as the waveguide cavity. The conical cover is located inside the health care instrument main body and the conical cover is sleeved on the waveguide cavity; among them, the conical cover is composed of two semi - conical shapes, and the side surface of a single semi - conical shape is fixedly connected to the telescopic ends of at least two telescopic push rods;
[0024] The second annular protrusion is provided on the sides of both semi-cones, and the number of the second annular protrusions is the same as that of the annular grooves; one end of the second annular protrusion is located at the through groove of the annular groove to close the annular groove, and the second annular protrusion is slidably connected to the annular convex groove;
[0025] Wherein, when the telescopic push rod pushes the conical cover, the side end parts of the two semi-cones partially overlap and stagger, and drive the second annular protrusion to slide in the annular convex groove.
[0026] In one embodiment, the health care instrument main body is provided with a touch control module;
[0027] The touch control module is electrically connected to the circuit control module;
[0028] The touch control module is electrically connected to the penetrability regulation module.
[0029] In one embodiment, a protective baffle is provided in the waveguide cavity of the health care instrument main body.
[0030] In one embodiment, a heat dissipation module is provided inside the health care instrument main body.
[0031] The wave conduction health care instrument capable of adjusting penetrability according to scenarios provided by the above embodiments has the following beneficial effects:
[0032] By providing a corrugated structure in the waveguide cavity, and the density of the corrugated structure is designed in a stepped manner, the intensity of the output high-frequency vibration wave is reduced and the penetrability is enhanced, so that it can act on deep lesions and avoid side effects such as burning and stinging caused by the wave output by the health care instrument. By providing a penetrability regulation module to adjust the density between the corrugated structures, the intensity and penetrability of the output high-frequency vibration wave can be adjusted by changing the density of the corrugated structure. BRIEF DESCRIPTION OF THE DRAWINGS
[0033] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on the structures shown in these drawings.
[0034] Figure 1 It is a schematic diagram of the overall structure of the wave conduction health care instrument capable of adjusting penetrability according to scenarios provided by the embodiments of the present invention;
[0035] Figure 2 It is a schematic diagram of the internal structure position of the wave conduction health care instrument capable of adjusting penetrability according to scenarios provided by the embodiments of the present invention;
[0036] Figure 3 Schematic cross-sectional view of the conical cover of the wave conduction health care instrument capable of adjusting penetrability according to scenarios provided by the embodiments of the present invention;
[0037] Figure 4 Schematic diagram of the position of the second annular protrusion of the wave conduction health care instrument capable of adjusting penetrability according to scenarios provided by the embodiments of the present invention;
[0038] Figure 5 Schematic diagram of the positional relationship between the waveguide cavity and the penetrability control module of the wave conduction health care instrument capable of adjusting penetrability according to scenarios provided by the embodiments of the present invention;
[0039] Figure 6 Schematic diagram of the position of the protective baffle of the wave conduction health care instrument capable of adjusting penetrability according to scenarios provided by the embodiments of the present invention.
[0040] Reference numerals in the drawings:
[0041] 100, health care instrument main body; 200, circuit control module; 300, electric energy conversion module; 400, waveguide cavity; 410, first annular protrusion; 420, annular groove; 430, through groove; 500, corrugated structure; 600, penetrability control module; 610, telescopic push rod; 620, conical cover; 630, second annular protrusion; 700, touch control module; 800, protective baffle; 900, heat dissipation module. Detailed implementation manners
[0042] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without making creative efforts shall fall within the protection scope of the present invention.
[0043] It should be noted that if there are directional indications (such as up, down, left, right, front, back...) involved in the embodiments of the present invention, the directional indications are only used to explain the relative positional relationship and movement conditions between components in a specific posture. If the specific posture changes, the directional indications will also change accordingly.
[0044] In addition, if the embodiments of the present invention involve descriptions such as "first" and "second", the descriptions of "first", "second", etc. are only for descriptive purposes and should not be construed as indicating or implying their relative importance or implicitly specifying the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include at least one such feature. In addition, if "and / or" or "and / or" appears throughout the text, its meaning includes three parallel scenarios. Taking "A and / or B" as an example, it includes scenario A, or scenario B, or the scenario where both A and B are satisfied simultaneously. In addition, the technical solutions between the various embodiments can be combined with each other, but it must be based on the ability of those of ordinary skill in the art to implement. When the combination of technical solutions results in contradictions or cannot be implemented, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection required by the present invention.
[0045] Referring to Figures 1-6 , one embodiment of the present invention provides a wave conduction health care instrument that can adjust penetrability according to scenarios, including a health care instrument main body 100, wherein:
[0046] A circuit control module 200 and a power conversion module 300 are arranged inside the health care instrument main body 100. The power conversion module 300 is electrically connected to the circuit control module 200 and is used to convert electrical energy into high-frequency vibration waves;
[0047] The health care instrument main body 100 is provided with a waveguide cavity 400, and the waveguide cavity 400 is used to output high-frequency vibration waves;
[0048] Among them, the waveguide cavity 400 of the health care instrument main body 100 is provided with a corrugated structure 500 with a stepped density design. The intensity of the output high-frequency vibration waves is reduced and the penetrability is enhanced through the corrugated structure 500;
[0049] Among them, the waveguide cavity 400 of the health care instrument main body 100 is provided with a penetrability regulation module 600. The penetrability regulation module 600 is electrically connected to the circuit control module 200, and the penetrability regulation module 600 is connected to the corrugated structure 500 and is used to adjust the density of the corrugated structure 500.
[0050] In this embodiment, the health care instrument main body 100 is the shell of the health care instrument. The circuit control module 200 is a circuit board installed inside the shell of the health care instrument and is used to provide electrical energy. The power conversion module 300 is a quantum resonance generator and is used to convert electrical energy into high-frequency vibration waves hundreds of millions of times per second. The waveguide cavity 400 is then used to output the high-frequency vibration waves for treating patients, causing the cells in the patient's body to resonate at the same frequency with each other, thereby treating the patient and improving the microcirculation and cell activity in the patient's body through high-frequency vibration energy. On the side of the waveguide cavity 400, such as Figure 1As shown, a corrugated structure 500 with a stepped density design is provided. The design of the corrugated structure 500 causes the intensity of the output high-frequency vibration wave to decrease and the penetrability to increase under the action of the Bragg reflection principle. Further, a penetrability regulation module 600 is provided in the waveguide cavity 400. The penetrability regulation module 600 is used to adjust the density of the corrugated structure 500 on the waveguide cavity 400, so as to adjust the intensity and penetrability of the output high-frequency vibration wave by changing the density of the corrugated structure 500.
[0051] Since the treatment positions of different patients are different, some are deep and some are shallow, such as bones, muscles, internal organs, etc. Therefore, the penetration depth of the normally output high-frequency vibration wave is limited. Because it is necessary to consider whether it will cause adverse effects such as burning and stinging on the patient's surface skin, the penetrability of the wave cannot be improved by increasing the energy output. In this embodiment, by providing a corrugated structure 500 in the waveguide cavity 400, the density of the corrugated structure 500 is designed in a stepped manner, so that the intensity of the output high-frequency vibration wave decreases and the penetrability increases, so that it can act on deep lesions and avoid side effects such as burning and stinging caused by the wave output by the health care instrument. By providing a penetrability regulation module 600 to adjust the density between the corrugated structures, the intensity and penetrability of the output high-frequency vibration wave can be adjusted by changing the density of the corrugated structure 500.
[0052] A usage principle of this embodiment is as follows:
[0053] During use, determine the lesion position of the patient. If it is deep, start the penetrability regulation module 600 to make the density of the corrugated structure smaller. If it is shallow, there is no need to start the penetrability regulation module 600; after determining the lesion position of the patient, start the health care instrument. The circuit control module 200 provides electric energy, the electric energy conversion module 300 converts the electric energy into high-frequency vibration waves of hundreds of millions of times per second, and the waveguide cavity 400 outputs the high-frequency vibration waves. When outputting, the high-frequency vibration wave passes through the corrugated structure 500 on the side of the waveguide cavity 400. Under the action of the Bragg reflection principle, the intensity of the high-frequency vibration wave decreases and the penetrability increases, so that the high-frequency vibration wave output by the waveguide cavity 400 will not cause side effects such as burning and stinging to the patient; the high-frequency vibration wave output from the waveguide cavity 400 enters the patient's body to treat the patient, causing the cells in the patient's body to generate synchronous resonance with each other, so as to treat the patient and improve the microcirculation and cell activity in the patient's body through high-frequency vibration energy.
[0054] In one of the embodiments, the waveguide cavity 400 is designed in a conical shape;
[0055] The diameter of the end of the waveguide cavity 400 close to the main body 100 of the health care instrument is smaller than the diameter of the other end.
[0056] In this embodiment, asFigure 1 As shown, the waveguide cavity 400 with a conical design can evenly diffuse high-frequency vibration waves, reducing the intensity per unit area and avoiding the risk of burning the patient's body surface.
[0057] In one embodiment, the corrugated structure 500 is disposed on the side surface of the waveguide cavity 400.
[0058] In this embodiment, as Figure 1 shown, the corrugated structure 500 is disposed on the side surface of the waveguide cavity 400, which can make the output high-frequency vibration waves pass through the corrugated structure to reduce the intensity and enhance the penetrability.
[0059] In one embodiment, a plurality of first annular protrusions 410 are provided on the side surface of the waveguide cavity 400;
[0060] The corrugated structure 500 is composed of a plurality of first annular protrusions 410 provided on the side surface of the waveguide cavity 400;
[0061] Wherein, the distance between the first annular protrusion 410 and the first annular protrusion 410 gradually increases from the small end to the large end of the waveguide cavity 400, so that the density between the plurality of first annular protrusions 410 is designed in a stepped manner
[0062] Wherein, an annular groove 420 is formed between the first annular protrusion 410 and the first annular protrusion 410. Among them, the number of the first annular protrusions 410 is n, and the number of the annular grooves 420 is n - 1;
[0063] Each of the annular grooves 420 is provided with a through groove 430 communicating with the inside of the health care instrument main body 100;
[0064] The penetrability regulation module 600 is installed inside the health care instrument main body 100, and one end of the penetrability regulation module 600 is located at the through groove 430 of the annular groove 420 to close the annular groove 420.
[0065] In one embodiment, the penetrability regulation module 600 includes a telescopic push rod 610, a conical cover 620, and a second annular protrusion 630;
[0066] The fixed end of the telescopic push rod 610 is fixedly connected to the inside of the health care instrument main body 100, and the telescopic end of the telescopic push rod 610 is fixedly connected to the conical cover 620 for pushing the conical cover 620; a plurality of telescopic push rods 610 are provided;
[0067] The conical cover 620 has the same taper as the waveguide cavity 400. The conical cover 620 is located inside the health care instrument main body 100 and the conical cover 620 is sleeved on the waveguide cavity 400. Wherein, the conical cover 620 is composed of two semi-cones, and the side surface of a single semi-cone is fixedly connected to the telescopic ends of at least two telescopic push rods 610;
[0068] The second annular protrusion 630 is provided on the side surfaces of both semi-cones, and the number of the second annular protrusions 630 is the same as that of the annular grooves 420. One end of the second annular protrusion 630 is located at the through groove 430 of the annular groove 420 to close the annular groove 420, and the second annular protrusion 630 is slidably connected to the annular protrusion groove;
[0069] Wherein, when the telescopic push rod 610 pushes the conical cover 620, the side end parts of the two semi-cones partially overlap each other, and drive the second annular protrusion 630 to slide in the annular protrusion groove.
[0070] In this embodiment, referring to Figures 2-5 , the penetrability regulation module 600 is composed of a telescopic push rod 610, a conical cover 620 and a second annular protrusion 630. The telescopic push rod 610 is used to push the conical cover 620, the conical cover 620 is used to drive the second annular protrusion 630, and the second annular protrusion 630 is used to change the density of the corrugated structure 500 of the waveguide cavity 400. The conical cover 620 is composed of two semi-cones, and each semi-cone is provided with a second annular protrusion 630. The number of the second annular protrusions 630 is the same as that of the annular grooves 420 and the positions correspond to each other. The end of each second annular protrusion 630 is located in the annular groove 420 and is flush with the annular protrusion groove 420; referring to Figure 3 , the diameter of one of the semi-cones is larger than that of the other semi-cone, and the two semi-cones are stagger-designed. Each semi-cone is connected to at least two telescopic push rods 610 to ensure smoothness during the pushing process; the taper of the conical cover 620 is the same as that of the waveguide cavity 400, and the conical cover 620 sleevingly surrounds the waveguide cavity 400; referring to Figure 5 , the ends of several second annular protrusions 630 on the conical sleeve 620 are all located in the annular groove 420 (i.e., between the two first annular protrusions 410); when adjusting the density of the corrugated structure 500, it is started by the telescopic push rod 610 to push the two semi-cones, so that the side end parts of the two semi-cones overlap each other, so that the conical sleeve 620 drives the second annular protrusion 630 to slide in the annular protrusion groove 420 and protrude in the waveguide cavity 400. When pushed to the limit position, the second annular protrusion 630 is flush with the first annular protrusion 410, so as to achieve the purpose of changing the density of the corrugated structure 500.
[0071] In one of the embodiments, the health care instrument main body 100 is provided with a touch control module 700;
[0072] The touch module 700 is electrically connected to the circuit control module 200;
[0073] The touch module 700 is electrically connected to the penetrability regulation module 600.
[0074] In this embodiment, the touch module 700 is a touch panel, which is used to operate and start the health care instrument and adjust the energy output gear of the health care instrument, and is also used to operate and start the penetrability regulation module 600 to adjust the density of the corrugated structure 500.
[0075] In one embodiment, a protective baffle 800 is provided in the waveguide cavity 400 of the health care instrument main body 100.
[0076] In this embodiment, the protective baffle 800 is provided at the large end of the waveguide cavity 400 to prevent the user from touching the quantum resonance generator during use and causing danger.
[0077] In one embodiment, a heat dissipation module 900 is provided inside the health care instrument main body 100.
[0078] In this embodiment, the heat dissipation module 900 is a heat dissipation groove provided on the surface of the health care instrument main body 100 and an air duct inside the health care instrument main body 100. By providing the heat dissipation module 900 inside the health care instrument main body 100, the risk of short circuit caused by overheating inside during use can be avoided.
[0079] As needed, the above-mentioned installation, setting, providing or connection methods include but are not limited to installation, setting or connection by means of screws, riveting, welding or socketing, fixing, etc., and the installation, setting or connection method is selected according to the working scenario requirements.
[0080] The above are only the preferred embodiments of the present invention, and do not limit the patent scope of the present invention. Any equivalent structural transformation made under the inventive concept of the present invention, or direct / indirect application in other related technical fields, is included in the patent protection scope of the present invention.
Claims
1. A wave conduction health care device capable of adjusting penetrability according to a scene, comprising a health care device body (100), characterized in that: A circuit control module (200) and an electric energy conversion module (300) are arranged inside the health care instrument body (100); the electric energy conversion module (300) is electrically connected to the circuit control module (200) and is used to convert electric energy into high-frequency vibration waves; The health care instrument body (100) is provided with a waveguide cavity (400), and the waveguide cavity (400) is used to output high-frequency vibration waves; The waveguide cavity (400) of the health care instrument body (100) is provided with a corrugated structure (500) with a stepped density design, and the intensity of the output high-frequency vibration wave is reduced and the penetration is enhanced by the corrugated structure (500); The waveguide cavity (400) of the health care instrument body (100) is provided with a permeability regulation module (600), the permeability regulation module (600) is electrically connected to the circuit control module (200), and the permeability regulation module (600) is connected to the corrugated structure (500) for adjusting the density of the corrugated structure (500).
2. The wave conduction health care device capable of adjusting penetration according to the scene as claimed in claim 1, characterized in that: The waveguide cavity (400) is designed to be conical; The diameter of one end of the waveguide cavity (400) close to the health care instrument body (100) is smaller than the diameter of the other end.
3. The wave conduction health care device capable of adjusting penetration according to the scene as claimed in claim 1, characterized in that: The corrugated structure (500) is arranged on the side of the waveguide cavity (400).
4. The wave conduction health care device capable of adjusting penetration according to the scene as claimed in claim 3, characterized in that: A plurality of first annular protrusions (410) are arranged on the side of the waveguide cavity (400); The corrugated structure (500) is composed of a plurality of first annular protrusions (410) arranged on the side of the waveguide cavity (400); The distance between the first annular protrusions (410) and the first annular protrusions (410) gradually increases from the small end toward the large end of the waveguide cavity (400), so that the density between the plurality of first annular protrusions (410) is designed in a stepped manner.
5. The wave conduction health care device capable of adjusting penetration according to the scene as claimed in claim 4, characterized in that: An annular groove (420) is formed between the first annular protrusions (410) and the first annular protrusions (410), wherein the number of the first annular protrusions (410) is n, and the number of the annular grooves (420) is n-1; Each of the annular grooves (420) is provided with a through groove (430) that is connected to the interior of the health care instrument body (100); The permeability regulation module (600) is installed inside the health care instrument body (100), and one end of the permeability regulation module (600) is located at the through groove (430) of the annular groove (420), so that the annular groove (420) is closed.
6. The wave conduction health care device capable of adjusting penetration according to the scene as claimed in claim 5, characterized in that: The penetration control module (600) comprises a telescopic push rod (610), a conical cover (620) and a second annular protrusion (630); The fixed end of the telescopic push rod (610) is fixedly connected to the inside of the health care instrument body (100), and the telescopic end of the telescopic push rod (610) is fixedly connected to the conical cover (620) for pushing the conical cover (620); a plurality of telescopic push rods (610) are provided; The conical cover (620) has the same taper as the waveguide cavity (400), the conical cover (620) is located inside the health care instrument body (100), and the conical cover (620) is sleeved on the waveguide cavity (400); wherein the conical cover (620) is composed of two semi-conical shapes, and the side surface of a single semi-conical shape is fixedly connected to the telescopic ends of at least two telescopic push rods (610); The second annular protrusion (630) is arranged on both semi-conical side surfaces, and the number of the second annular protrusion (630) is the same as the number of the annular groove (420); one end of the second annular protrusion (630) is located at the through groove (430) of the annular groove (420), so that the annular groove (420) is closed, and the second annular protrusion (630) is slidably connected to the annular protrusion groove; When the telescopic push rod (610) pushes the conical cover (620), the two semi-conical side end portions overlap and drive the second annular protrusion (630) to slide in the annular protrusion groove.
7. The wave conduction health care device capable of adjusting the penetration according to the scene as claimed in any one of claims 1 to 6, characterized in that: The health care instrument body (100) is provided with a touch module (700); The touch control module (700) is electrically connected to the circuit control module (200); The touch control module (700) is electrically connected to the penetration control module (600).
8. The wave conduction health care device capable of adjusting the penetration according to the scene as claimed in any one of claims 1 to 6, characterized in that: The waveguide cavity (400) of the health care instrument body (100) is provided with a protective baffle (800).
9. The wave conduction health care device capable of adjusting the penetration according to the scene as claimed in any one of claims 1 to 6, characterized in that: A heat dissipation module (900) is arranged inside the health care instrument body (100).