Intelligent rhythm radio frequency biological energy instrument

Through the intelligent rhythmic radio frequency bioenergy instrument combining radio frequency pulse electromagnetic stimulation and horizontal rhythm, the problems of insufficient personalized adjustment and large vibration energy loss of existing sole massage equipment are solved, achieving more efficient whole-body health care effects, promoting blood circulation and extending the life of the equipment.

CN120242329APending Publication Date: 2025-07-04ZHUHAI HARGONG TIANYU ROBOT GROUP CO LTD
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Patent Information

Application Number
CN202510620551.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-14
Publication Date
2025-07-04

AI Technical Summary

Technical Problem

The existing sole massage equipment has problems such as insufficient personalized adjustment ability, large vibration energy loss, large noise, single vibration direction, and inability to meet the needs of deep muscle relaxation.

Method used

The technical means of combining radio frequency pulse electromagnetic stimulation and horizontal rhythm are adopted, combined with the flexible connection structure, and directly contact the user's foot through the electrode plate. The horizontally installed vibration motor and eccentric block design are used, and the vibration isolation bracket is combined with the clamping groove of the upper shell assembly to achieve stable non-rigid connection, reducing noise propagation and improving vibration efficiency.

Benefits of technology

It achieves a more efficient and comfortable whole-body health care experience, promotes blood circulation, avoids discomfort caused by excessive local pressure, extends the service life of the equipment, and reduces noise and vibration losses.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an intelligent rhythm radio frequency biological energy instrument which comprises a radio frequency rhythm assembly, an upper shell assembly and a bottom shell assembly, the radio frequency rhythm assembly comprises an electrode plate, a heating device and a foot bottom supporting device, the heating device is located between the electrode plate and the foot bottom supporting device, and a vibration isolation support is arranged outside the foot bottom supporting device; the edge of the vibration isolation support is provided with a reverse buckling protruding point. Two feet of a user can be in direct contact with the electrode plates; a containing groove is formed in the upper shell assembly, a clamping groove is formed in the side edge of the containing groove, and the reverse buckling protruding point can be clamped in the clamping groove so that the radio frequency rhythm assembly can be fixed to the containing groove. The bottom shell assembly is fixed to the lower portion of the upper shell assembly, an isolation block is arranged in the center of the bottom shell assembly, the vibration motor is horizontally installed below the sole supporting device, an eccentric block is arranged on the upper portion of the motor, and an eccentric distance exists between the mass center of the eccentric block and the rotating center of the motor.
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Description

Technical Field

[0001] The present invention belongs to the technical field of rehabilitation physiotherapy equipment, and particularly relates to an intelligent rhythmic radio frequency bioenergy instrument. Background Art

[0002] With the changes in modern work and lifestyle, people's demand for health care products is increasing day by day, especially for foot care equipment for fatigue relief and blood circulation promotion. However, although there are various types of foot massage devices on the market, they each have some deficiencies. Existing foot massage devices are mainly divided into several categories: mechanical foot massagers, heated foot baths, and vibrating massagers. Mechanical foot massagers usually use rollers or airbags to squeeze for massage. Although they can simulate the effect of manual pressing, due to the lack of personalized adjustment ability, they often easily cause problems such as excessive local pressure or inaccurate acupoint coverage. The airbag massager has improved comfort, but has limited massage effect on hard areas such as the arch and heel of the foot. The heated foot bath mainly provides a constant temperature foot soaking function, lacking a dynamic massage and pressure feedback mechanism, and cannot meet the need for deep muscle relaxation. Although the vibrating massager partially combines the heating function, due to its design limitations, such as the heavy device and single vibration direction (vertical rhythm), etc., it results in large vibration energy loss, weak vibration feeling, and relatively high noise.

[0003] For example, Patent CN201920498652.0 proposed a graphene foot massager, which adopted a mechanical up-and-down vibrating plate scheme, but also faced the above-mentioned noise problems and technical limitations brought by the rigid connection of the vibrating motor. These problems not only affect the user experience, but also limit the functionality and effectiveness of the device. Summary of the Invention

[0004] In order to overcome the deficiencies of the prior art, the purpose of the present invention is to provide an intelligent rhythmic radio frequency bioenergy instrument to solve the deficiencies existing in the existing foot massage devices. By introducing a technology combining horizontal rhythm and radio frequency pulse electromagnetic stimulation, and adopting a flexible connection structure to reduce the impact of vibration on the device shell, a more efficient and comfortable whole-body health care experience can be achieved.

[0005] To solve the above problems, the technical solution adopted by the present invention is as follows: An intelligent rhythmic radio frequency bioenergy instrument, comprising:

[0006] A radio frequency rhythm component, the radio frequency rhythm component includes an electrode plate, a heating device, and a foot sole support device. The heating device is located between the electrode plate and the foot sole support device. The outside of the foot sole support is provided with a vibration isolation bracket, and the side of the vibration isolation bracket is provided with a reverse buckle bump; the user's feet can be in direct contact with the electrode plate;

[0007] Upper shell assembly, an accommodation groove is provided inside the upper shell assembly, a clamping groove is provided on the side of the accommodation groove, and the reverse buckling bump can be clamped in the clamping groove so that the radio frequency rhythm component is fixed in the accommodation groove;

[0008] Bottom shell assembly, the bottom shell assembly is fixed to the lower part of the upper shell assembly, an isolation block is provided in the center of the bottom shell assembly, a cavity is formed between the centers of the upper shell assembly and the bottom shell assembly, a vibration motor is located inside the cavity, the vibration motor is horizontally installed under the foot support device, an eccentric block is provided on the upper part of the motor, there is an eccentricity between the center of mass of the eccentric block and the rotation center of the motor, a fixing plate is provided between the upper end face of the motor and the eccentric block, and the fixing plate is fixed to the lower end face of the foot support device by a first fastener.

[0009] Compared with the prior art, the beneficial effects of the present invention are as follows: The user's feet can directly contact the electrode plates, and the radio frequency electromagnetic stimulation can be started without complex operations. By adopting the radio frequency pulse electromagnetic stimulation technology, it deeply acts on human tissues to stimulate cell vitality. Moreover, the horizontal installation design of the motor cooperates with the eccentric block structure to generate stable horizontal vibration waves, which has a higher conduction efficiency for muscle tissues, is beneficial to promoting blood circulation throughout the body, and avoids discomfort caused by excessive local pressure. At the same time, the cooperation relationship between the reverse buckling bump of the vibration isolation bracket and the clamping groove of the upper shell assembly ensures a stable but non-rigid connection between the radio frequency rhythm component and the outer shell. This flexible connection not only effectively isolates the impact of the vibration source on the external structure, reduces the noise transmission during operation, but also improves the anti-seismic performance and service life of the whole machine.

[0010] For the above energy instrument, the radio frequency rhythm component further includes a plurality of shock pads and a pressing plate. A plurality of first screw holes are provided on the end face of the foot support device, a plurality of second screw holes are provided in the accommodation groove, the positions of the plurality of first screw holes and the plurality of second screw holes correspond one by one, and a second fastener can sequentially pass through the first screw hole, the second screw hole and the shock pad to fix the radio frequency rhythm component to the upper shell assembly and fix the shock pad under the upper shell assembly, and the vibration isolation bracket is fixed to the foot support device through the pressing plate.

[0011] For the above energy instrument, the fixing plate includes a first support surface and a second support surface. The first support surface is attached to the lower end face of the foot support device, the second support surface is attached to the upper end face of the motor, and there is a height difference between the first support surface and the second support surface.

[0012] For the above energy instrument, a through groove is provided in the center of the accommodation groove, and the motor can pass through the through groove to be connected to the radio frequency rhythm component.

[0013] For the above-mentioned energy instrument, an electronic display system is provided on the upper end surface of the upper shell assembly, and a switch, a display screen and buttons are provided on the electronic display system.

[0014] For the above-mentioned energy instrument, a negative ion generator is provided at the bottom of the upper shell assembly.

[0015] For the above-mentioned energy instrument, a groove is provided on the upper end surface of the foot sole support device, and the heating device can be fixed in the groove.

[0016] For the above-mentioned energy instrument, the number of the accommodation grooves is multiple, an isolation part is provided between the multiple accommodation grooves, and two adjacent accommodation grooves are symmetrically distributed with respect to the isolation part.

[0017] For the above-mentioned energy instrument, the vibration isolation bracket is made of a flexible material.

[0018] For the above-mentioned energy instrument, the heating device is a graphene heating sheet. Description of the Drawings

[0019] Figure 1 is an exploded view of the structure of the energy instrument according to an embodiment of the present invention;

[0020] Figure 2 is a schematic exploded view of the structure of the radio frequency rhythm component according to an embodiment of the present invention;

[0021] Figure 3 is a schematic diagram of the structure of the vibration motor of the lining according to an embodiment of the present invention;

[0022] Figure 4 is a schematic diagram of the structure of the upper shell assembly according to an embodiment of the present invention;

[0023] Figure 5 is a schematic diagram of the structure of the energy instrument according to an embodiment of the present invention Figure 1 ;

[0024] Figure 6 is a schematic diagram of the structure of the energy instrument according to an embodiment of the present invention Figure 2 ;

[0025] Explanation of the reference numerals in the drawings: 100 radio frequency rhythm component, 110 electrode plate, 120 heating device, 130 foot sole support device, 131 first screw hole, 132 groove, 140 vibration isolation bracket, 141 reverse buckle bump, 150 vibration motor, 151 eccentric block, 152 fixing plate, 1521 first support surface, 1522 second support surface, 160 shock pad, 170 pressing plate, 200 upper shell assembly, 210 accommodation groove, 211 clamping groove, 212 second screw hole, 213 through groove, 220 electronic display system, 230 negative ion generator, 231 bracket, 240 isolation part, 300 bottom shell assembly, 310 isolation block, 320 cavity. Detailed Embodiments

[0026] Embodiments of the present invention will be described in detail below with reference to Figures 1 to 6 , embodiments of the present invention provide an intelligent rhythmic radio frequency bioenergy instrument, including: a radio frequency rhythm component 100, an upper shell component 200, and a bottom shell component 300. The radio frequency rhythm component 100 includes an electrode plate 110, a heating device 120, and a foot sole support device 130. The heating device 120 is located between the electrode plate 110 and the foot sole support device 130. An anti-vibration bracket 140 is provided outside the foot sole support. An anti-clamping convex point 141 is provided at the edge of the anti-vibration bracket 140; the user's feet can directly contact the electrode plate 110; an accommodation groove 210 is provided inside the upper shell component 200, and a clamping groove 211 is provided on the side of the accommodation groove 210. The anti-clamping convex point 141 can be clamped in the clamping groove 211 to fix the radio frequency rhythm component 100 in the accommodation groove 210; the bottom shell component is fixed to the lower part of the upper shell component 200. An isolation block 310 is provided in the center of the bottom shell component 300. A cavity 320 is formed between the center of the upper shell component 200 and the bottom shell component 300. A vibration motor 150 is located inside the cavity 320. The vibration motor 150 is horizontally installed under the foot sole support device 130. An eccentric block 151 is provided on the upper part of the motor. There is an eccentricity between the center of mass of the eccentric block 151 and the rotation center of the motor. A fixing plate 152 is provided between the upper end face of the motor and the eccentric block 151. The fixing plate 152 is fixed to the lower end face of the foot sole support device 130 by a first fastener. The energy instrument provided by the present invention enables the user's feet to directly contact the electrode plate 110, and the radio frequency electromagnetic stimulation can be started without complex operations. By adopting the radio frequency pulse electromagnetic stimulation technology, it deeply acts on human tissues to stimulate cell vitality. Moreover, the horizontal installation design of the motor cooperates with the eccentric block 151 structure to generate a stable horizontal vibration wave, which has a higher conduction efficiency for muscle tissues, is beneficial to promoting blood circulation throughout the body, and avoids discomfort caused by excessive local pressure. At the same time, the cooperation relationship between the anti-clamping convex point 141 of the anti-vibration bracket 140 and the clamping groove 211 of the upper shell component 200 ensures a stable but non-rigid connection between the radio frequency rhythm component 100 and the outer shell. This flexible connection not only effectively isolates the impact of the vibration source on the external structure, reduces the noise transmission during operation, but also improves the anti-seismic performance and service life of the whole machine.

[0027] Furthermore, after the energy meter device proposed by the present invention is started, the radio frequency electromagnetic stimulation module starts to work, transmits radio frequency energy to human tissues through the electrode plate 110, generates thermal and non-thermal effects, and activates cell metabolism. At the same time, the vibration motor 150 is horizontally installed below the sole support device 130, and the motor drives the eccentric block 151 to rotate, generating a periodic excitation force in the horizontal direction. This force is transmitted to the sole support device 130 through the fixing plate 152, causing the entire platform to generate regular vibrations in the horizontal direction, thereby stimulating the sole acupoints and promoting microcirculation. The heating device 120 uses a graphene heating sheet, which is embedded in the groove 132 on the upper end surface of the sole support device 130. After being powered on, it quickly heats up and releases far-infrared rays, penetrating into the subcutaneous tissue and enhancing blood circulation. The vibration isolation bracket 140 is made of a flexible material, and anti-clasping convex points 141 are provided at the edges, which cooperate with the clamping grooves 211 of the upper shell assembly 200 to achieve quick installation and stable fixation. More importantly, the design of the anti-clasping convex points 141 can limit the up-and-down and horizontal movement of the vibration isolation bracket 140, avoiding the reduction of the service life and structural failure of the vibration isolation bracket caused by repeated friction. At the same time, referring to Figure 2 , the radio frequency rhythm component 100 further includes a pressing plate 170, and the vibration isolation bracket 140 is fixed to the sole support device 130 through the pressing plate 170. The presence of the pressing plate 170 not only enhances the fixing strength of the vibration isolation bracket 140, but also prevents any form of displacement or deformation during the operation of the device, thus ensuring the overall structural integrity of the device and the stable output of vibration energy. In addition, the design of the pressing plate 170 also facilitates quick disassembly and assembly. When it is necessary to clean or repair the vibration isolation bracket 140, simply loosen the pressing plate 170 to easily complete the operation, greatly improving the maintenance efficiency. This structural form is particularly suitable for health care devices with high-frequency use, which can effectively extend their service life and reduce maintenance costs. Of course, the present application does not limit the specific structure of the pressing plate. Preferably, fixing blocks are provided at the edges of the pressing plate 170, and block holes are provided at the edges of the vibration isolation bracket 140 and the sole support device 130. The fixing blocks fix the vibration isolation bracket 140 to the sole support device 130 by being clamped into the block holes. At the same time, the center of the pressing plate 170 is hollow to facilitate the accommodation of shock-absorbing components and other components.

[0028] Furthermore, the radio frequency rhythm component 100 is also connected to the upper shell assembly 200 through shock pads 160 and a plurality of screw holes, further enhancing the seismic performance and service life of the device. The radio frequency rhythm component 100 further includes a plurality of shock pads 160. A plurality of first screw holes 131 are provided on the end face of the sole support device 130, and a plurality of second screw holes 212 are provided in the accommodation groove 210. The positions of the plurality of first screw holes 131 and the plurality of second screw holes 212 correspond one by one. The second fastener can sequentially pass through the first screw hole 131, the second screw hole 212, and the shock pad 160 to fix the radio frequency rhythm instrument to the upper shell assembly 200 and fix the shock pad 160 below the upper shell assembly 200. Referring toFigure 1 and Figure 2 , by providing a plurality of screw holes in the sole support device 130 and the receiving groove 210, and fixing the shock-absorbing pad 160 below the radio frequency rhythm component 100 and the upper shell component 200 through screws, the structural stability between the radio frequency rhythm component 100 and the upper shell component 200 can be effectively enhanced, preventing loosening or even detachment due to vibration during long-term operation, thereby improving the safety and reliability of the device. Moreover, the introduction of the shock-absorbing pad 160 further enhances the shock-absorbing performance of the system. Since the shock-absorbing pad 160 itself has certain elasticity and buffering ability, it plays a role of "soft connection" in the vibration transmission path, not only absorbing part of the high-frequency vibration energy, but also reducing the conduction of vibration to the external structure and lowering the noise level during the operation of the whole machine. Of course, the present application does not limit the specific material of the vibration isolation bracket 140. Preferably, the vibration isolation bracket 140 is made of a flexible material, such as silicone. At the same time, there is a certain interference fit between the edge of the vibration isolation bracket 140 and the upper shell component 200, and the elastic thin-wall structure designed according to the characteristics of silicone makes the edge of the bracket fit tightly with the upper shell component 200. The vibration of the motor can be buffered and absorbed by the elastic wall structure, avoiding direct impact on the upper shell. In addition, the vibration isolation bracket 140 is closely attached to the upper shell, which can also play a role in sealing, waterproofing, and dustproofing. Of course, the present application does not limit the specific material and structure of the shock-absorbing pad 160. Preferably, the shock-absorbing pad 160 is made of a flexible material, and a screw hole for the screw to pass through is provided in the center of the shock-absorbing pad 160.

[0029] Further, referring to Figure 3 , the fixing plate 152 includes a first support surface 1521 and a second support surface 1522. The first support surface 1521 is in contact with the lower end surface of the sole support device 130, and the second support surface 1522 is in contact with the upper end surface of the motor. There is a height difference between the first support surface 1521 and the second support surface 1522. The stepped support surface structure can effectively adapt to the installation height difference between the sole support device 130 and the motor, enabling the fixing plate 152 to closely fit and firmly connect the two parts of the structure, thereby improving the overall assembly accuracy and stability. Secondly, the design of the height difference also helps to achieve a reasonable distribution of forces, enabling the vibration energy from the motor to be evenly transmitted to the sole support device 130, reducing energy loss or local stress concentration caused by structural asymmetry. Further, referring to Figure 1 and Figure 4, a through groove 213 is provided in the center of the accommodation groove 210, and the motor 150 can pass through the through groove 213 to be connected to the radio frequency rhythm component 100. The existence of the through groove 213 enables the vibration motor 150 to be directly installed under the sole support device 130 and directly achieve physical connection and energy transfer with the radio frequency rhythm component 100 through the through groove 213, avoiding complex intermediate transition structures, simplifying the overall mechanical structure, and reducing the manufacturing cost. Secondly, this direct connection method helps to reduce energy loss and improve vibration transfer efficiency, ensuring that the vibration energy can be transmitted to the user's foot with the smallest attenuation, thereby enhancing the massage effect. In addition, the design of the through groove 213 also provides better ventilation and heat dissipation conditions inside the device, which is conducive to maintaining the operating temperature of the vibration motor within a reasonable range and extending its service life. Especially in the case of long-term continuous operation, good heat dissipation performance is crucial for ensuring the stable operation of the device. Finally, from the perspective of maintenance, the design of the through groove 213 also facilitates the inspection, repair, or replacement of the vibration motor without disassembling too many external components, improving the maintenance convenience.

[0030] Furthermore, an electronic display system 220 is provided on the upper end surface of the upper shell assembly 200 of the present application, and a switch, a display screen, and buttons are provided on the electronic display system 220. By providing the electronic display system 220 on the upper shell assembly 200, the user can directly view key parameters such as the current working mode, vibration intensity, heating temperature, etc. through the display screen without guessing the actual operating state of the device. In addition, the design of the buttons enables the user to easily switch different function modes or adjust settings, such as selecting the frequency range of radio frequency pulse electromagnetic stimulation, adjusting the temperature level of the graphene heating sheet 120, etc. Moreover, the display screen of the energy meter proposed in the present application can real-time monitor and display the user's physiological data (such as heart rate, blood oxygen saturation), so as to automatically adjust the massage intensity or heating temperature according to the individual's health condition. This intelligent control not only improves the functionality and adaptability of the device, but also enhances the sense of security and comfort of the user experience. Of course, the present invention does not limit the specific structure of the electronic display system 220. Preferably, the buttons are distributed on one side of the display screen, and the number of the display screen and the buttons is multiple. Further, referring to Figure 2, a groove 132 is provided on the upper end surface of the sole support device 130, and the heating device 120 can be fixed in the groove 132. This embedded design not only ensures the precise positioning of the heating device 120, enabling it to be evenly distributed in the sole contact area, but also avoids problems such as local overheating or uneven cooling, thereby improving the user's comfort and treatment effect. Moreover, the structure of the groove 132 provides additional protection for the heating device 120, reducing the risk of damage caused by external factors such as moisture intrusion or other physical damage, and extending the service life of the heating device 120. In addition, the groove design helps to optimize space utilization, making the entire device more compact and aesthetically pleasing, and enhancing the overall texture of the product. Of course, the present application does not limit the specific material and shape of the heating device 120. Preferably, the heating device 120 is a graphene heating sheet. The graphene heating sheet is embedded into the groove 132. Further, referring to Figure 6 , a negative ion generator 230 is provided at the bottom of the upper shell assembly 200. The negative ion generator 230 can release a large amount of negative ions (also known as anions), and these negative ions can combine with tiny particles such as dust, bacteria, and viruses in the air, making them charged and settling down, thereby effectively purifying the air. Especially when used in an indoor environment, the negative ion generator 230 helps to remove pollutants in the air, improve air quality, and provide a fresher and healthier use environment for users. This is particularly important for people who stay in a closed space for a long time, especially those who are sensitive to air quality or have respiratory problems. Of course, the present application does not limit the specific connection method between the negative ion generator 230 and the upper shell assembly 200. Preferably, a reserved cavity is provided at the bottom of the upper shell assembly 200, and the negative ion generator 230 can be fixed into the reserved cavity through fasteners. At the same time, a bracket 231 is provided on one side of the negative ion generator 230, and the bracket 231 is also fixed to the bottom surface of the upper shell assembly 200 through fasteners. On the one hand, the bracket 231 is used to provide physical support to ensure the stable installation of the negative ion generator 230 inside the device and prevent damage due to vibration or movement. On the other hand, for safety reasons, especially for electronic components such as the negative ion generator 230, the bracket 231 is designed to have certain insulation properties to avoid electrical short circuits or other safety hazards. When the energy meter is working, the user can sit or stand with both feet stepping on the electrode plate 110, and the radio frequency pulse electromagnetic stimulation, motor horizontal rhythm, graphene auxiliary heating, and negative ion function modules work simultaneously. Through the synergistic effect of the thermal effect of the radio frequency and the horizontal rhythm function, it can effectively act on the user's whole body, promote blood circulation, and improve human metabolism; the graphene auxiliary heating on the sole further improves the blood circulation state of the lower limbs and relieves fatigue.

[0031] Further, referring to Figure 1 and Figure 5, the number of the accommodation grooves 210 is multiple, and a partition 240 is provided between the multiple accommodation grooves 210. Two adjacent accommodation grooves 210 are symmetrically distributed with respect to the partition 240. The radio frequency rhythm component 100 is fixed to the bottom surface of the accommodation groove 210, and the accommodation groove 210 is used for the user to place both feet. Of course, the present application does not limit the specific number of the accommodation grooves 210 on the energy instrument. Preferably, the number of the accommodation grooves 210 is two. Of course, the present application does not limit the specific shape of the accommodation groove 210. Preferably, the accommodation groove 210 enables feet of different sizes to be stably placed therein, avoiding the problem of poor massage effect caused by foot sliding. The accommodation groove 210 is not just a recessed area, but is actually designed to better cooperate with the various functions of the device. For example, when performing horizontal rhythm or radio frequency pulsed electromagnetic stimulation, good contact between the sole of the foot and the electrode plate 110 is the key to ensuring the effectiveness of these functions.

[0032] It should be noted that in the description of the present invention, if there is any reference to the description of directions, such as the directions or positional relationships indicated by up, down, front, back, left, right, etc., they are all based on the directions or positional relationships shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific direction, be constructed or operated in a specific direction, and should not be construed as a limitation to the present invention.

[0033] In the description of the present invention, the meaning of "several" is one or more, the meaning of "multiple" is two or more, "greater than", "less than", "exceeding", etc. are understood as not including the present number, "above", "below", "within", etc. are understood as including the present number. If there is a description of "first" or "second", etc., it is only for the purpose of distinguishing technical features and cannot be understood as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features or implicitly indicating the sequence relationship of the indicated technical features.

[0034] In the description of the present invention, unless otherwise clearly defined, words such as "set", "installed", "connected", etc. should be understood in a broad sense, and those skilled in the art can reasonably determine the specific meanings of the above words in the present invention in combination with the specific content of the technical solution.

[0035] The above embodiments are only the preferred embodiments of the present invention, and the scope of protection of the present invention cannot be limited thereby. Any non-substantial changes and substitutions made by those skilled in the art based on the present invention belong to the scope of protection required by the present invention.

Claims

1. An intelligent rhythmic radio frequency bioenergy instrument, characterized in that, Comprising: A radio frequency rhythm component (100), the radio frequency rhythm component (100) includes an electrode plate (110), a heating device (120), and a foot sole support device (130). The heating device (120) is located between the electrode plate (110) and the foot sole support device (130). An anti-vibration bracket (140) is provided outside the foot sole support, and an anti-clasp bump (141) is provided on the side of the anti-vibration bracket (140); the user's feet can directly contact the electrode plate (110). An upper shell component (200), an accommodation groove (210) is provided inside the upper shell component (200), and a clamping groove (211) is provided on the side of the accommodation groove (210). The anti-clasp bump (141) can be clamped in the clamping groove (211) so that the radio frequency rhythm component (100) is fixed in the accommodation groove (210). A bottom shell component (300), the bottom shell component (300) is fixed to the lower part of the upper shell component (200). An isolation block (310) is provided in the center of the bottom shell component (300). A cavity (320) is formed between the center of the upper shell component (200) and the bottom shell component (300). A vibration motor (150) is located inside the cavity (320). The vibration motor (150) is horizontally installed under the foot sole support device (130). An eccentric block (151) is provided on the upper part of the vibration motor (150). There is an eccentricity between the centroid of the eccentric block (151) and the rotation center of the motor. A fixing plate (152) is provided between the upper end face of the motor and the eccentric block (151). The fixing plate (152) is fixed to the lower end face of the foot sole support device (130) by a first fastener.

2. The energy meter according to claim 1, characterized in that The radio frequency rhythm component (100) further includes a plurality of shock pads (160) and a pressing plate (170). A plurality of first screw holes (131) are provided on the end face of the foot sole support device (130), and a plurality of second screw holes (212) are provided in the accommodation groove (210). The positions of the plurality of first screw holes (131) and the plurality of second screw holes (212) correspond one by one. A second fastener can sequentially pass through the first screw hole (131), the second screw hole (212), and the shock pad (160) to fix the radio frequency rhythm component (100) to the upper shell component (200), and fix the shock pad (160) below the upper shell component (200). The anti-vibration bracket (140) is fixed to the foot sole support device (130) by the pressing plate (170).

3. The energy meter according to claim 1, wherein The fixing plate (152) includes a first support surface (1521) and a second support surface (1522). The first support surface (1521) is attached to the lower end face of the foot sole support device (130), and the second support surface (1522) is attached to the upper end face of the motor. There is a height difference between the first support surface (1521) and the second support surface (1522).

4. The energy meter according to claim 1, characterized in that, A through slot (213) is provided in the center of the accommodation groove (210), and the motor (150) can pass through the through slot (213) to be connected to the radio frequency rhythm component (100).

5. The energy meter according to claim 1, characterized in that, An electronic display system (220) is provided on the upper end surface of the upper shell assembly (200), and a switch, a display screen and buttons are provided on the electronic display system (220).

6. The energy meter according to claim 1, characterized in that, A negative ion generator (230) is provided at the bottom of the upper shell assembly (200), and the negative ion generator (230) is connected to the upper shell assembly (200) through a bracket (231).

7. The energy meter according to claim 1, characterized in that, A groove (132) is provided on the upper end surface of the foot sole support device (130), and the heating device (120) can be fixed in the groove (132).

8. The energy meter according to claim 1, wherein The number of the accommodation grooves (210) is multiple, an isolation part (240) is provided between the multiple accommodation grooves (210), and two adjacent accommodation grooves (210) are symmetrically distributed with respect to the isolation part (240).

9. The energy meter according to claim 1, wherein The vibration isolation bracket (140) is made of a flexible material.

10. The energy meter according to claim 1, characterized in that, The heating device (120) is a graphene heating sheet.

Citation Information

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