Healthcare Devices
The healthcare device enhances low-frequency wave intensity to increase EPCs and decrease CECs, addressing the limitations of existing devices and improving cardiovascular health through resonant cavity and negative ion generation.
Patent Information
- Application Number
- JP2025002977U
- Authority / Receiving Office
- JP · JP
- Patent Type
- Utility models
- Current Assignee / Owner
- Priority Date
- 2024-10-21
- Filing Date
- 2025-08-29
- Publication Date
- 2025-10-24
- Estimated Expiration
- 2034-12-26
AI Technical Summary
Existing healthcare devices generating low-frequency waves lack sufficient intensity, limiting their effectiveness in increasing endothelial progenitor cells (EPCs) and reducing circulating endothelial cells (CECs).
A healthcare device comprising a box, power supply, speed controller, rotation mechanism, linkage mechanism, tapping tool, and conical table, which generates low-frequency waves at 1.18 to 1.81 Hz, enhanced by a resonant cavity structure and negative ion generators, to increase EPCs and decrease CECs.
The device significantly increases EPCs and decreases CECs, thereby reducing the risk of cardiovascular events, with additional benefits from negative ions such as blood purification and enhanced self-healing.
Smart Images

Figure 0003253402000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to a healthcare device having a tapping tool for generating low frequency waves. [Background technology]
[0002] Endothelial progenitor cells (EPCs) are known to be precursors of vascular endothelial cells and play an important role in angiogenesis and endothelial repair. Therefore, increasing the number of EPCs can prevent cardiovascular diseases and slow the progression of related diseases. Conversely, circulating endothelial cells (CECs) are an indicator of vascular damage. They facilitate adhesion of platelets and white blood cells to the vessel walls, leading to inflammation, fat accumulation, gradual hardening of the blood vessels, and a gradual reduction in the vessel diameter. Ultimately, this leads to the formation of blood clots and the development of lesions such as atherosclerosis. Therefore, reducing the number of CECs can reduce the risk of cardiovascular adverse events.
[0003] According to Chinese medicine theory, there is a Shenque point at the navel, where the Ren, Du, Dai, and Chong meridians pass. Therefore, stimulating the Shenque point, which connects the meridians to the five internal organs, can regulate the whole body. According to Western medical theory, the navel is the part of the human abdominal region where the epidermal stratum corneum is thinnest, and there is no adipose tissue below the navel, making it the area with the weakest barrier function. In addition to the microcirculatory vessels found in ordinary skin, the navel skin also has a rich venous network and branches of the inferior epigastric artery. Therefore, it only affects or changes the blood in the microcirculatory vessels of the navel skin, and these effects or changes permeate the blood circulation system of the human body. Similarly, the spine of the human body is only covered with a thin epidermis, and it also has blood vessels and capillaries within it, so that by simply inducing an effect or change in the blood within the blood vessels or capillaries within the spine, the effect or change will permeate the blood circulation system of the human body.
[0004] It has also been known that organs in the human body have their own inherent vibration frequencies; for example, the head has a frequency of 8 to 12 Hz (Hertz), the thoracic cavity has a frequency of 4 to 6 Hz, the heart has a frequency of 5 Hz, the abdominal cavity has a frequency of 6 to 9 Hz, the blood flow frequency is 1.2 Hz, and bone tissue has a frequency of 1.8 Hz. When a certain part of the human body is exposed to a waveband of 0-20 Hz, for example, low-frequency sound or infrasound (whereas anything above 20 kHz is called ultrasound), and the sound pressure level (unit: dB) reaches a certain threshold, the elastic outer wall of the corresponding tissue organ in this part will first vibrate, and then this vibration will be conducted to the inside of the tissue organ.
[0005] In particular, when the frequency of low-frequency sound is synchronized with the natural vibration frequency of the tissue organ, resonance occurs, and the stimulation received by the tissue organ is maximized. When the resonance caused by low-frequency sound acts on the tissue organ, it also acts on the cellular structure of the tissue organ, for example, on the mitochondria of the cells. Mitochondria are the primary site of oxidative phosphorylation and adenosine triphosphate (ATP) synthesis within cells, providing chemical energy for cellular activity and also known as the "power plants of the cell." When the resonance caused by the aforementioned low-frequency sound acts on mitochondria, it also affects the binding state and activity of several enzymes and cell membranes.
[0006] At the same time, when low-frequency sound of a certain intensity is applied, the wave energy is converted into thermal energy, biochemical energy, and bioelectric energy, which directly acts on the tissue organs, and the damaged tissue can be repaired through the stimulation of low-frequency sound and restore normal function. The use of healthcare devices capable of generating low frequency sounds can prevent the risk of excessive energy and injury caused by high frequency microwave generators.
[0007] As described above, conventional healthcare devices having low-frequency generators are used to emit low-frequency waves of a specific frequency to a site that is a predetermined distance from the user's navel, thereby achieving healthcare effects. As prior art, for example, Patent Documents 1, 2 and 3 each disclose a "healthcare device." Each uses a low-frequency generator to emit low-frequency waves of a specific frequency at the navel of the human body, thereby increasing the content of activated T cells and B cells in the blood and enhancing the ability of NK cell lines to kill cancer and tumor cell lines (K562). Furthermore, for example, Patent Documents 4 and 5 state that negative ions have effects on the human body, such as purifying blood, restoring cells, strengthening resistance and self-healing abilities, and regulating the autonomic nervous system. [Prior art documents] [Patent documents]
[0008] [Patent Document 1] Taiwan Patent Application Publication No. 202339822A [Patent Document 2] Taiwan Patent Application Publication No. 202415360A [Patent Document 3] Taiwan Patent Application Publication No. 112113480A [Patent Document 4] Taiwan Registered Utility Model No. 112209745 [Patent Document 5] Taiwan Registered Utility Model No. 657714 Summary of the Invention [Problem to be solved by the invention]
[0009] However, the above-mentioned healthcare devices that use a low-frequency generator to emit low-frequency waves still have room for improvement in the intensity of the generated low-frequency waves.
[0010] The problem to be solved by the present invention is to provide a healthcare device that generates a high intensity low frequency wave, thereby increasing the number of EPCs and simultaneously reducing the number of CECs. [Means for solving the problem]
[0011] The healthcare device of the present invention comprises a box, a power supply installed in the box, a speed controller, a rotation mechanism, a linkage mechanism, a tapping tool, and a conical table. The power supply is electrically connected to the speed controller to output power. The speed controller is electrically connected to the rotation mechanism and controls the rotation mechanism to rotate at a predetermined speed. The rotation mechanism is connected to the tapping tool via the linkage mechanism. By rotating at the predetermined speed, the tapping tool drives the tapping tool to tap the flat surface of the conical table. The tapping tool taps the conical table at a tapping frequency ranging from 24 times per minute to 64 times per minute. The tapping tool generates a low-frequency wave at a predetermined frequency, the predetermined frequency being in the range of 1.18 to 1.81 Hz, and the conical table transmits the low-frequency wave.
[0012] In addition, the healthcare device of the present invention further comprises a block and at least one negative ion generator, the block is installed on the at least one negative ion generator, the negative ion generator is electrically connected to the power supply, one side of the block is connected to the metal back plate of the box, and the block faces the tip of the conical table.
[0013] In addition, in the healthcare device of the present invention, the conical table is a wooden cone.
[0014] In addition, in the healthcare device of the present invention, the rotation mechanism includes a motor and a cam, the cam is installed on one side of the motor and connected to the linkage mechanism, the linkage mechanism includes a linkage, the tapping tool includes a cylinder and a cone, one end of the cylinder is connected to the linkage and the other end of the cylinder is connected to the cone, the cylinder is a wooden circular cylinder, the cone is a wooden cone, and the cylinder and the cone are molded as a single unit.
[0015] In addition, in the healthcare device of the present invention, the tapping tool further comprises a vibrating member, which is installed on the surface of the cylinder or the cone, and which is electrically connected to the power source, and which vibrates in the thickness direction to generate the low-frequency sound of the predetermined frequency.
[0016] In the healthcare device according to the present invention, the block is a wooden block.
[0017] In addition, in the healthcare device of the present invention, at least one surface of the at least one negative ion generator is exposed to the outside of the box.
[0018] In the healthcare device of the present invention, the predetermined frequency is 1.45 Hz. [Effects of the Invention]
[0019] According to the present invention, a box and a tapping tool capable of generating low frequencies within the box are provided. The resonant cavity structure created by the box creates a resonant effect of the low frequencies generated by the tapping tool, thereby enhancing the strength of the low frequencies, increasing the number of endothelial progenitor cells (EPCs), decreasing the number of circulating endothelial cells (CECs), and reducing the risk of adverse cardiovascular events.
[0020] In addition, the block generates vibrations and resonance from the low frequency waves transmitted from the tip of the conical table, enhancing the resonance phenomenon of the box. Also, the negative ions generated by the negative ion generator exposed on the outside of the box have the effects of purifying blood, restoring cells, strengthening resistance, and improving self-healing power. [Brief explanation of the drawings]
[0021] [Figure 1] 1 is a schematic diagram of a healthcare device according to a first embodiment of the present invention; [Figure 2] 1 is a schematic diagram of a healthcare device according to a second embodiment of the present invention; [Figure 3] 10 is a schematic diagram illustrating an example of use of the healthcare device according to the second embodiment of the present invention. [Figure 4] 10 is a schematic diagram illustrating another application example of the healthcare device according to the second embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0022] (First Example) FIG. 1 is a schematic diagram of a healthcare device according to a first embodiment of the present invention. The healthcare device 2 according to the first embodiment of the present invention comprises a box 21, a power supply 22 installed in the box 21, a speed controller 23, a rotation mechanism 24, a linkage mechanism 25, a tapping tool 26, and a conical table 27.
[0023] In this embodiment, the power supply 22 is electrically connected to the speed controller 23 so as to output power to the speed controller 23 . The speed controller 23 is electrically connected to the rotation mechanism 24 and controls the rotation mechanism 24 to rotate at a predetermined speed. The rotation mechanism 24 is connected to the tapping tool 26 via a linkage mechanism 25, and the tapping tool 26 generates a low-frequency wave W of a predetermined frequency, thereby driving the tapping tool 26 to tap the flat surface 271 of the conical table 27, and the conical table 27 transmits the low-frequency wave W of the predetermined frequency. The tapping frequency at which the tapping tool 26 taps the conical table 27 at the predetermined speed ranges from 24 times / minute to 64 times / minute.
[0024] In this embodiment, the power supply 22 may be, for example, a lithium iron phosphate battery. The speed controller 23 may be a device that controls the output speed of the motor 241, for example, by adjusting the voltage or power. The box 21 includes at least one metal backplate 211 .
[0025] In this embodiment, the rotation mechanism 24 includes a motor 241 and a cam 242 . The cam 242 is installed on one side of the motor 241 and is connected to the linkage mechanism 25 . The motor 241 according to this embodiment may be, for example, a reciprocating motor mechanism.
[0026] In this embodiment, the reciprocating motor mechanism rotates in opposite directions to drive the linkage mechanism 25 so that it reciprocates up and down, and the tapping tool 26 taps the flat surface 271 of the conical table 27 in a reciprocating manner.
[0027] In this embodiment, the linkage mechanism 25 includes a linkage 251 . The tapping tool 26 includes a cylinder 261 and a cone 262. One end of the cylinder 261 is connected to the linkage 251, and the other end of the cylinder 261 is connected to the cone 262. The tapping tool 26 further includes a vibrating member 263. The vibrating member 263 is mounted on the surface of the cylinder 261 or the cone 262 and is electrically connected to the power source 22. The vibrating member 263 is a disc-shaped piezoelectric ceramic transducer made of a piezoelectric material that is polarized in the thickness direction. The power supply 22 supplies power to the vibrating member 263, causing the vibrating member 263 to vibrate in the thickness direction, thereby generating low-frequency sound of the predetermined frequency. The predetermined frequency is equal to or greater than 1.81 Hz and equal to or less than 1.18 Hz, that is, in the range of 1.18 to 1.81 Hz, and preferably, the predetermined frequency is 1.45 Hz.
[0028] In other words, in this embodiment, the low frequency W is the low frequency sound. That is, the predetermined frequency of the low frequency W transmitted when the tapping tool 26 taps the conical table 27 is in the range of 1.18 to 1.81 Hz (Hertz). Preferably, the predetermined frequency of the low frequency W transmitted when the tapping tool 26 taps the conical table 27 is 1.45 Hz.
[0029] In this embodiment, the cone 262 is a wooden cone. The cylinder 261 is a circular wooden cylinder, and the cylinder 261 and the cone 262 are integrally formed. The cone table 27 is also a wooden cone.
[0030] Wood is an elastic material, and it is understood that it vibrates and resonates in response to low-frequency sounds. When the wooden conical table 27 is tapped by the tapping tool 26 to transmit low-frequency sounds W, it resonates due to its own resonance or natural frequency, and the vibrations cause low-frequency sounds to be emitted into the surrounding air, generating a series of low-frequency sounds. In this way, the box 21 is a resonant cavity structure, and the generated low frequency wave W generates a resonance effect, thereby enhancing the intensity of the low frequency wave W. Preferably, the box 21 is a wooden box.
[0031] In this embodiment, low frequency W is generated by a series of operations of components installed in the box 21, such as a power supply 22, a speed controller 23, a rotation mechanism 24, a linkage mechanism 25, a tapping tool 26, and a conical table 27. Additionally, the resonance effect generated by the resonant cavity structure of the box 21 enhances the intensity of the low frequency waves W, enhancing the beneficial effects of the low frequency waves W on the human body.
[0032] (Second Example) FIG. 2 is a schematic diagram of a healthcare device 2' according to a second embodiment of the present invention. The healthcare device 2' according to the second embodiment of the present invention includes a box 21', a power supply 22' installed in the box 21', a speed controller 23', a rotation mechanism 24', a linkage mechanism 25', a tapping tool 26', a conical table 27', a block 29, and two negative ion generators 30.
[0033] In this embodiment, the power supply 22' is electrically connected to the speed controller 23' so as to output power to the speed controller 23'. The speed controller 23' is electrically connected to the rotation mechanism 24' and controls the rotation mechanism 24' to rotate at a predetermined speed. The rotation mechanism 24' is connected to the tapping tool 26' via a linkage mechanism 25' and drives the tapping tool 26' to tap the flat surface 271' of the conical table 27', thereby generating a low-frequency wave W of a predetermined frequency by the tapping tool 26', thereby enabling the conical table 27' to transmit the low-frequency wave W of the predetermined frequency.
[0034] In this embodiment, the healthcare device 2' further comprises a block 29 and two negative ion generators 30, which are electrically connected to the power supply 22'. The block 29 is mounted on two negative ion generators 30, one side of the block 29 is connected to the metal back plate 211' of the box 21', and the block 29 faces the tip 272' of the conical table 27'.
[0035] In this embodiment, the number of negative ion generators is two, but the present invention is not limited to this and the number of negative ion generators may be one, three, or more than three.
[0036] In this embodiment, the power supply 22' is, for example, a lithium iron phosphate battery. The speed controller 23' is a device that controls the output speed of the motor 241', for example, by adjusting the voltage or power. The box 21' comprises at least one metal backplate 211' and the block 29 is a wooden block.
[0037] In this embodiment, at least one surface V of each of the two negative ion generators 30 is exposed to the outside of the box 21'.
[0038] In this embodiment, the rotation mechanism 24' includes a motor 241' and a cam 242'. The cam 242' is installed on one side of the motor 241' and is connected to a linkage mechanism 25'.
[0039] In this embodiment, the motor 241' is, for example, a reciprocating motor mechanism. The reciprocating motor mechanism rotates in opposite directions to drive the linkage mechanism 25' to reciprocate up and down, causing the tapping tool 26' to reciprocate and tap the flat surface 271' of the conical table 27'.
[0040] In this embodiment, the linkage mechanism 25' comprises a linkage 251'. The tapping tool 26' includes a cylinder 261' and a cone 262'. One end of the cylinder 261' is connected to the linkage 251' and the other end of the cylinder 261' is connected to the cone 262'. The tapping tool 26' further includes a vibrating member 263'. The vibrating member 263' is mounted on the surface of the cylinder 261' or the cone 262' and is electrically connected to the power source 22'. The vibrating member 263' is a disc-shaped piezoelectric ceramic transducer made of a piezoelectric material that is polarized in the thickness direction. The power supply 22' supplies power to the vibrating member 263', causing the vibrating member 263' to vibrate in the thickness direction, generating low-frequency sound of the predetermined frequency. The predetermined frequency is in the range of 1.18 to 1.81 Hz, not more than 1.81 Hz, and not less than 1.18 Hz, and preferably is 1.45 Hz.
[0041] That is, in this embodiment, the low frequency is the low frequency sound. The predetermined frequency of the low frequency W transmitted when the tapping tool 26' taps the conical table 27' is in the range of 1.18 to 1.81 Hz (Hertz). Preferably, the predetermined frequency of the low frequency W transmitted when the tapping tool 26' taps the conical table 27' is 1.45 Hz.
[0042] In this embodiment, the cone 262' is a wooden cone. The cylinder 261' is a circular wooden cylinder, and the cylinder 261' and the cone 262' are integrally molded. The cone table 27' is also a wooden cone. Wood is an elastic material and is understood to vibrate and resonate in response to low frequency sounds. When the wooden conical table 27' is tapped by the tapping tool 26' to transmit low frequency waves W, it will resonate with its own resonance or natural frequency, and the vibrations will launch low frequency sounds into the surrounding air, generating a series of low frequency sounds. In this way, the box 21' has a resonant cavity structure, and can generate a resonance effect on the generated low frequency wave W, thereby increasing the intensity of the low frequency wave W. Preferably, the box 21' is a wooden box.
[0043] In this embodiment, the conical table 27' is conically shaped such that the flat surface 271' of the conical table 27' is wide and narrows toward the tip 272'. Therefore, the energy of the low-frequency wave W is concentrated as it propagates toward the apex of the conical table tip 272'. When the low-frequency wave W is transmitted to the tip 272', which is the apex of the conical table 27', the energy of the low-frequency wave W is concentrated to its maximum. Similar to the principle of "corona discharge" in electricity, the energy of the low-frequency wave W is concentrated and released from the apex and transmitted toward the wooden block 29. In this manner, the low-frequency wave W transmitted from the tip 272' of the conical table 27' generates vibrations and resonance in the wooden block 29. Since one side of the wooden block 29 is connected to the metal back plate 211', a more favorable box resonance phenomenon is generated. By setting the tap frequency, intermittent low frequency W generates vibration and resonance on the wooden block 29, preventing continuous vibration and resonance from occurring, thereby preventing injury to the user.
[0044] In addition, in this embodiment, the negative ions N generated by the negative ion generator 30 exposed outside the box 21' have effects on the human body such as purifying blood, restoring cells, improving resistance, and strengthening self-healing ability.
[0045] <Usage and effects> FIG. 3 is a schematic diagram showing an example of use of the healthcare device of the second embodiment. The healthcare device 2' is positioned at a predetermined position U close to the upper part of the spine 11 on the back of the user 1, at a predetermined distance D from the spine 11, one end of the negative ion generator 30 of the healthcare device 2' is directed toward the spine 11 on the back of the user 1, and each component of the healthcare device 2 is activated, causing the healthcare device 2' to transmit low-frequency waves W and negative ions N of a predetermined frequency to the spine 11. The predetermined distance D is in the range of 0 to 8 cm, and the predetermined distance D is 5 cm or less, but is not limited to this. The predetermined frequency is in the range of 1.18 to 1.81 Hz, and preferably, the predetermined frequency is 1.45 Hz.
[0046] The effectiveness of the healthcare device of the present invention was verified under the following conditions. The healthcare device 2' performed the healthcare process and transmitted low frequency waves W and negative ions N to the spinal regions of the backs of the users 1, namely, person P, person Q, and person Q'. The predetermined distance D is 0 cm, ie the healthcare device 2' is in contact with the spine. The predetermined frequency is 1.45 Hz, and the low frequency is an infrasound. The negative ion N had 35,000 negative ions per ml, the tap frequency was 24 times / min, and each run lasted 2 hours.
[0047] Person P is a woman aged 75. Person Q is a woman aged 72. Person Q' is a man aged 76. Before carrying out the healthcare process, blood samples were taken from person P, person Q, and person Q' and sent to a medical laboratory for immunological testing to examine the number of endothelial progenitor cells (EPCs) in each 2 ml of blood. Within 48 hours after the 80-hour healthcare process, blood samples were similarly collected from Person P, Person Q, and Person Q' and sent to a medical laboratory for immunological testing to examine the number of endothelial progenitor cells in each 2 ml of blood. The results are listed in Table 1.
[0048] TIFF0003253402000002.tif78152
[0049] As can be seen from Table 1, the number of endothelial progenitor cells in person P before the healthcare process was 3 in every 2 ml of blood (corresponding to a vascular age of 70 years), but after performing the healthcare process for 80 hours, this increased to 5 in every 2 ml of blood (corresponding to a vascular age of 60 years), i.e., the number of endothelial progenitor cells increased by 66%. Before performing the healthcare process, person Q had 3 endothelial progenitor cells in every 2 ml of blood (corresponding to a vascular age of 70 years), but after performing the healthcare process for 80 hours, this increased to 10 endothelial progenitor cells in every 2 ml of blood (corresponding to a vascular age of 50 years), i.e., the number of endothelial progenitor cells increased by 233%. Before performing the healthcare process, person Q's number of endothelial progenitor cells was 3 cells per 2 ml of blood (corresponding to a vascular age of 70 years), but after performing the healthcare process for 80 hours, this increased to 6 cells per 2 ml of blood (corresponding to a vascular age of 60 years), i.e., the number of endothelial progenitor cells increased by 100%. From the above, it was found that the healthcare device of the present invention can increase the number of vascular endothelial progenitor cells in the human body, and when it is run for 2 hours at a time, for a total of 80 hours, the number of vascular endothelial progenitor cells increases significantly.
[0050] Also, a healthcare process was performed by the healthcare device 2', and low frequency waves W and negative ions N were transmitted to the navels 12 of another group of persons R, S, and T (see FIG. 4). The predetermined distance D is 0 cm, ie, the healthcare device 2 ′ is in contact with the navel 12 . The predetermined frequency is 1.45 Hz, and the low frequency is an infrasound. The negative ion N had 35,000 negative ions per ml, the tap frequency was 24 times / min, and each run lasted 2 hours.
[0051] Person R is a 76-year-old man. Person S is a 72-year-old woman. Person T is a 44-year-old man. Before the healthcare process, blood samples were taken from Person R, Person S, and Person T and sent to a medical laboratory for immunological testing to examine the number of circulating endothelial cells (CECs) in each 4 ml of blood. Within 48 hours after carrying out the healthcare process for 60 hours, blood samples were similarly taken from Person R, Person S, and Person T and sent to a medical laboratory for immunological testing to examine the number of circulating endothelial cells in each 4 ml of blood, and the results are listed in Table 2.
[0052] TIFF0003253402000003.tif78160
[0053] As can be seen from Table 2, the number of circulating endothelial cells for person R before performing the healthcare process was 24 in each 4 ml of blood, but after performing the healthcare process for 60 hours, the number of circulating endothelial cells decreased to 7 in each 4 ml of blood, i.e., a 71% decrease in the number of circulating endothelial cells. Before performing the healthcare process, the number of circulating endothelial cells for person S was 41 in every 4 ml of blood, but after performing the healthcare process for 60 hours, the number decreased to 26 in every 4 ml of blood, i.e., a 37% decrease in circulating endothelial cells. Before performing the healthcare process, the number of circulating endothelial cells in person T was 34 in every 4 ml of blood, but after performing the healthcare process for 60 hours, the number decreased to 4 in every 4 ml of blood, i.e., an 88% decrease in circulating endothelial cells.
[0054] As shown in Tables 1 and 2, the healthcare device according to the embodiment of the present invention can increase the number of endothelial progenitor cells and simultaneously reduce the number of circulating endothelial cells. The above effects can be achieved after a total of 80 or 60 hours of healthcare process by simply running the healthcare process for 2 hours at a time. EPCs are precursors of vascular endothelial cells and play an important role in angiogenesis and endothelial repair. Therefore, increasing the number of EPCs can prevent the onset of cardiovascular diseases and delay the progression of related diseases. Meanwhile, ring endothelial cells are an indicator of vascular damage. They facilitate the adhesion of platelets and white blood cells to the vessel walls, leading to inflammation, fat accumulation, gradual hardening of the blood vessels, reduction in the vessel diameter, and ultimately the formation of blood clots and the development of atherosclerosis. Therefore, reducing the number of CECs can reduce the risk of cardiovascular adverse events.
[0055] FIG. 4 is a schematic diagram showing another example of use of the healthcare device 2' according to the second embodiment. In this usage example, the healthcare device 2' is placed on the frame 20, the user 1 lies on an examination table (not shown), the frame 20 is placed on the examination table, and the healthcare device 2' is positioned above the spine 11 or navel 12 of the user 1. This allows the user 1 to take an appropriate rest during the healthcare procedure.
[0056] It should be noted here that the above-mentioned low frequency sound is merely one example of low frequency waves, and is not limited to this, and low frequency waves may also be electromagnetic waves such as radio waves and light waves. Furthermore, the healthcare device 2 of the first embodiment can also be used to transmit low frequency waves to the user's spine or navel, as in the example of use shown in FIGS.
[0057] The above is merely intended to explain the technical ideas and features of the present invention, and is intended to enable those skilled in the art to understand and practice the content of the present invention, without limiting the scope of the invention. Therefore, any improvements or modifications that do not deviate from the gist of the present invention are deemed to be within the scope of the invention. [Explanation of symbols]
[0058] 1 user 11 Spine 12 Belly Button 2. Healthcare devices 2' Healthcare Devices 20 frames 21 Box 21' Box 211 Metal Backplate 211' Metal Backplate 22 Power supply 22' power supply 23 Speed Controller 23' Speed Controller 24 Rotation mechanism 24' Rotation Mechanism 241 Motor 241' Motor 242 Cam 242' Cam 25 Linkage mechanism 25' linkage mechanism 251 Linkage 251' Linkage 26 Tap Tool 26' tapping tool 261 cylinders 261' cylinder 262 Cone 262' cone 263 Vibration member 263' Vibration member 27 Conical Table 27' Conical Table 271 plane 271' plane 272' Conical Table Tip 29 blocks 30 Negative Ion Generator D. A specified distance N negative ions V surface U in place W low frequency
Claims
1. a power supply installed in the box, a speed controller, a rotation mechanism, a linkage mechanism, a tapping tool, and a conical table; wherein the power supply is electrically connected to the speed controller to output power; the speed controller is electrically connected to the rotation mechanism and controls the rotation mechanism to rotate at a predetermined speed; the rotation mechanism is connected to the tapping tool via the linkage mechanism and drives the tapping tool to tap a flat surface of the conical table by rotating at the predetermined speed; the tapping tool taps the conical table at a tapping frequency in the range of 24 taps / minute to 64 taps / minute; and the tapping tool generates a low-frequency wave at the predetermined frequency, the predetermined frequency being in the range of 1.18 to 1.81 Hz, and the conical table transmits the low-frequency wave.
2. 2. The healthcare device of claim 1, further comprising: a block and at least one negative ion generator, the block being installed on the at least one negative ion generator, the negative ion generator being electrically connected to the power source, one side of the block being connected to the metal back plate of the box, and the block facing the tip of the conical table.
3. 3. The healthcare device of claim 2, wherein the conical table is a wooden cone.
4. The healthcare device of claim 3, wherein the rotating mechanism comprises a motor and a cam, the cam is installed on one side of the motor and connected to the linkage mechanism, the linkage mechanism includes a linkage, the tapping tool comprises a cylinder and a cone, one end of the cylinder is connected to the linkage and the other end of the cylinder is connected to the cone, the cylinder is a wooden circular cylinder, the cone is a wooden cone, and the cylinder and the cone are integrally molded.
5. The healthcare device of claim 4, wherein the tapping tool further comprises a vibrating member, the vibrating member is installed on the surface of the cylinder or the cone, the vibrating member and the power source are electrically connected, and the low-frequency sound of the predetermined frequency is generated by the vibrating member vibrating in the thickness direction.
6. 6. The healthcare device of claim 5, wherein the block is a wooden block.
7. The healthcare device of claim 6, wherein at least one surface of the at least one negative ion generator is exposed outside the box.
8. The healthcare device of claim 7, wherein the predetermined frequency is 1.45 Hz.
Citation Information
Patent Citations
Health care device and health care method
TW202339822A
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TW202415360A
Health care device
TW202442266A
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