WO2023136254A1 - 磁気治療装置 - Google Patents
磁気治療装置 Download PDFInfo
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- WO2023136254A1 WO2023136254A1 PCT/JP2023/000402 JP2023000402W WO2023136254A1 WO 2023136254 A1 WO2023136254 A1 WO 2023136254A1 JP 2023000402 W JP2023000402 W JP 2023000402W WO 2023136254 A1 WO2023136254 A1 WO 2023136254A1
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- frequency
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- biostimulation
- coil
- signal wave
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Classifications
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- A—HUMAN NECESSITIES
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- A61N2/00—Magnetotherapy
- A61N2/02—Magnetotherapy using magnetic fields produced by coils, including single turn loops or electromagnets
Definitions
- the present invention relates to an apparatus for treating pain in an affected area by generating a biostimulation signal wave and irradiating the affected area with a magnetic field generated by a coil using the signal wave to stimulate the cells and nerves of the affected area.
- Patent Document 1 As a device for treating pain in a diseased part by irradiating the diseased part of a living body with a magnetic field to stimulate the cells and nerves of the diseased part, for example, the device described in Patent Document 1 is conventionally known.
- a spiral high-frequency coil and a low-frequency coil are arranged side by side in the housing, or a loop-shaped high-frequency coil and a low-frequency coil are arranged side by side in the housing, and those coils are used as a transmission circuit and It is configured to be portable by accommodating it in a housing together with a battery.
- a high frequency signal and a low frequency signal of a constant frequency output from a transmission circuit generate a magnetic field in the high frequency coil and the low frequency coil, respectively, and the body is applied to the affected part of the living body to generate the magnetic field.
- the affected area is irradiated with radiation to stimulate cells and nerves in the affected area, and the stimulation activates the self-repair function of the affected area to repair the cells and tissues, thereby treating pain in the affected area.
- a magnetic therapy device that uses a high-frequency current to flow through a coil and heal muscle fatigue with the magnetic field generated from the coil uses a dynamic magnetic field due to high-frequency waves, as opposed to a magnetic therapy device that uses a static magnetic field using a permanent magnet. Therefore, it is said that the effect is great because the body does not get used to it.
- the magnetic therapy device since the magnetic therapy device is used along the affected part of the body, compact size and flexible deformability are required. In particular, miniaturization and flexibility are important issues in a magnetic therapy apparatus that requires a high-frequency current generator.
- Patent Document 2 discloses a high-frequency magnetic therapy device in which a coil is formed on one side of a flexible printed circuit board, and a high-frequency oscillation integrated circuit section that supplies high-frequency current to the coil is provided on the printed circuit board.
- Patent Document 3 discloses a high-frequency magnetic therapy device in which the number of turns of the coil is increased, the coil portion is housed in a case, and the surface of the case other than the surface in contact with the body is made of a paramagnetic material.
- the coil is housed in a rigid case made of aluminum or iron in order to eliminate the interference of high-frequency leakage electromagnetic waves caused by increasing the number of turns of the coil. I had a problem that I could't.
- the present invention has been made in view of such circumstances, and an object of the present invention is to provide a magnetic therapy device that has a high magnetic therapeutic effect and can be appropriately applied to an affected area.
- a magnetic therapy apparatus which advantageously solves the above problems, generates a signal wave for biostimulation, and irradiates an affected part of a living body with a magnetic field for stimulating an affected area generated in a coil by the signal wave for biostimulation.
- the probe formed separately from the main body of the device, the probe having a high-frequency output coil connected to the output section with a signal cable and supplied with the high-frequency signal for biostimulation output from the signal wave output section;
- a high-frequency current of 100 MHz or more is passed through the high-frequency output coil, the high-frequency output coil is formed as a planar body on both sides of an insulating flexible thin plate, and the magnetic field centers of the coils on both sides are aligned. It is characterized by matching
- the signal wave output unit of the apparatus main body generates and outputs the biostimulation high-frequency signal
- the high-frequency output coil of the probe formed separately from the apparatus main body generates the signal. It is connected to the wave output section by a signal cable and supplied with the biostimulation high-frequency signal output from the signal wave generation section, and the biostimulation high-frequency signal generates the affected area stimulation high-frequency alternating magnetic field.
- the magnetic therapy apparatus of the present invention by applying a probe separate from the main body of the apparatus to the affected area of the living body, the affected area is irradiated with the high-frequency alternating magnetic field generated by the high-frequency output coil, thereby irradiating cells and nerves of the affected area.
- the affected area is irradiated with the high-frequency alternating magnetic field generated by the high-frequency output coil, thereby irradiating cells and nerves of the affected area.
- a high-frequency current of 100 MHz or more is passed through the high-frequency output coil, and the high-frequency output coil is formed as a planar body on both sides of the insulating flexible thin plate, Since the magnetic field centers of the coils on both sides are aligned, the probe can be placed appropriately on the affected area, and the affected area can be irradiated with a strong high-frequency alternating magnetic field, so the cells and nerves in the affected area can be stimulated. It can be expected to promote the production of neurotrophic factors in the cells of the cells, promote the repair, growth, differentiation, and proliferation of the cells, and treat pain in the affected area.
- the high-frequency output coil is made of a conductor having a thickness of 2 times or more and 70 ⁇ m or less of the skin thickness di of the current calculated from the frequency of the high-frequency current. This is preferable because it is possible to achieve both the prevention of heat generation by reducing the electric resistance of the coil and the flexibility of the probe. Moreover, if the conductor is a metal foil, it is preferable because it can be manufactured economically.
- the signal wave output section also generates and outputs a low-frequency biostimulation signal
- the probe is connected to the signal wave output section with a signal cable to output the signal. It may also have a low-frequency output coil to which the biostimulation low-frequency signal output from the wave output section is supplied.
- the stimulation applied to the affected area by irradiating the affected area with the low-frequency alternating magnetic field for stimulating the affected area generated by the low-frequency output coil based on the low-frequency biostimulation signal is transmitted through sensory nerves (A ⁇ fibers: tactile sensation). Since it reaches the brain (sensory area) from the dorsal horn of the spinal cord, it can be expected that the brain recognizes the pleasure of touch and activates the descending antinociceptive system to bring about analgesic and relaxing effects.
- FIG. 1 is an overall conceptual diagram of a magnetic therapy device according to an embodiment of the present invention
- FIG. FIG. 2 is a schematic diagram showing the probe of the magnetic therapy apparatus according to the above embodiment, where (a) represents a top view, (b) represents a rear view, and (c) represents a cross-sectional view along AA.
- It is a printed wiring diagram showing the coil arrangement of the magnetic therapy apparatus according to the above embodiment, wherein (a) represents a top view and (b) represents a bottom view.
- FIG. 3B is a cross-sectional view taken along line BB of FIG. 3A for explaining the skin effect of high-frequency current;
- FIG. 1 An overall conceptual diagram of a magnetic therapy apparatus according to one embodiment of the present invention is shown in FIG. 1 as a perspective view.
- reference numeral 1 indicates the main body of the magnetic therapy apparatus of this embodiment
- reference numeral 11 indicates a probe
- reference numeral 21 indicates a signal cable.
- a power cable (not shown) that is detachably inserted into the apparatus main body 1 is provided.
- the apparatus body 1 of the magnetic therapy apparatus of this embodiment includes a casing 2 made of resin, and a touch panel display 3 that is housed in the front portion of the casing 2 so as to face obliquely upward and is exposed from the opening on the front surface of the casing 2. , a signal wave output section accommodated in the upper part of the rear part in the casing 2 and a power supply part accommodated in the lower part of the rear part in the casing 2 . An alarm stop button and a power switch button are provided on the left and right sides of the opening on the front surface of the casing 2 of the apparatus main body 1 . Further below these buttons, three sockets for plugging the signal cables 21 are provided side by side in order to enable connection of the three probes 11 to the device main body 1 .
- FIG. 2 is a top view (a), a rear view (b), and a cross-sectional view (c) along AA of the probe 11 of the magnetic therapy apparatus of this embodiment.
- the probe 11 has a substantially quadrilateral outer sheath 12 made of a flexible material, and a circuit section 13 which is shaped like a truncated pyramid for the purpose of protecting electric circuits and the like.
- a signal cable 21 is pulled out from the back of the circuit section.
- the probe 11 accommodates a flexible thin plate 14, which is a printed circuit board on which coils and electric circuits are arranged, inside an exterior 12 made of soft resin such as elastomer or rubber material.
- the probe 11 can be manufactured by resin molding such as injection molding or RIM molding. Since resin molding involves self-heating, it is preferable to perform resin molding on the circuit portion 13 in advance for the purpose of protecting the electric circuit and the like.
- FIG. 3 is a printed wiring diagram showing the coil arrangement of the magnetic therapy device of this embodiment, showing a top view (a) and a bottom view (b).
- a circuit section 13 a high frequency output coil 15 , a magnetic field strength detection coil 16 , a low frequency output coil 17 and the like are arranged on a printed circuit board 14 .
- the high-frequency output coil 15 is formed as an annular disk on the upper surface of the printed circuit board 14, and the magnetic field strength detection coil 16 is arranged as an annular disk on the outside thereof.
- a spiral low-frequency output coil 17 may be arranged inside the high-frequency output coil 15 .
- the high-frequency output coil 15 and the low-frequency output coil 17 are also arranged on the lower surface of the printed circuit board 14, and are configured symmetrically so that the high-frequency current and the low-frequency current flow in the same direction on both upper and lower surfaces. are placed. By doing so, the centers of the magnetic fields generated by the upper and lower coils can be aligned.
- a slit portion 18 is provided between the high-frequency output coil 15 and the low-frequency output coil 17 of the printed circuit board 14 so that the printed circuit board 14 can easily follow the deformation of the probe 11 .
- a plurality of locations on the circumference of the slit portion are connected by a bridge portion 19, so that when the printed circuit board is covered with resin molding, it can be stably molded.
- the high-frequency output coil may be replaced by a ring-shaped disc to form a rectangular shape.
- the flexible thin plate 14 is a film-like printed circuit board, and preferably has a base layer made of a flexible insulating material film and, if necessary, an adhesive layer.
- a base layer made of a flexible insulating material film and, if necessary, an adhesive layer.
- Polyimide resin, polyester resin, polyamide paper-based epoxy resin, glass cloth-based epoxy resin, glass-based BT resin, or the like can be used for the base layer.
- Each coil may be a conductor printed or etched onto printed circuit board 14, such as a metal foil.
- the thickness of the printed circuit board 14 is preferably about 0.1 mm.
- FIG. 4 shows a cross-sectional view taken along the line BB of FIG. 3(a).
- the high-frequency output coil 15 of this embodiment is configured as, for example, copper foil 31 on both the upper surface 33 and the lower surface 34 of the printed circuit board 14 .
- a high-frequency current concentrates on the skin portion 32 of the conductor due to the so-called skin effect.
- FIGS. 3 and 4 by arranging the high-frequency output coil 15 with its magnetic field center aligned on both upper and lower surfaces, the surface area of the conductor through which the high-frequency current flows is increased, contributing to miniaturization of the probe 11. .
- the skin depth d i of the high-frequency current is calculated by Equation 1 below.
- Equation 1 ⁇ is the electric resistivity of the conductor
- ⁇ is the angular frequency of the current
- ⁇ is the absolute permeability of the conductor.
- the skin depth d i of a high frequency current with a frequency of 100 MHz is calculated to be about 6 ⁇ m from Equation 1 above. If the thickness of the high-frequency output coil 15 is less than twice the skin thickness d i , the heat generated by the coil due to electrical resistance may become too large. , there is a risk of peeling off from the printed circuit board or disconnection.
- the frequency of the high-frequency current passed through the high-frequency output coil is about 100 MHz to 400 MHz, and the frequency is changed continuously or at predetermined time intervals to prevent the affected area from getting used to the stimulation signal. Preferably it is in the range of 200 MHz to 300 MHz.
- the frequency of the low-frequency current flowing through the low-frequency output coil is about 1 kHz to 3 kHz. It is preferable that the center of the magnetic field generated by the high-frequency output coil and the center of the magnetic field generated by the low-frequency output coil coincide. By doing so, it becomes possible to supply a low-frequency magnetic field superimposed on the high-frequency magnetic field to the affected area, thereby enhancing the effect of magnetic therapy.
- the apparatus body 1 functionally has a signal wave output section, a screen control section, and a power supply section.
- the signal wave output section in this embodiment has a circuit configuration using a plurality of central processing units (CPUs).
- CPUs central processing units
- a high-frequency signal for example, with a center frequency of 250 MHz, within a range of ⁇ 10% from 225 MHz to 275 MHz, while excluding the frequency band used in the aircraft lifesaving radio, for example, 0 as a certain time Moderately shifted (fluctuation) every .00014 seconds (that is, about 7000 times/second), and the shifted basic high frequency signal is output to the basic high frequency signal frequency modulation unit.
- the signal wave output unit also uses the magnetic signal pattern reading unit to read a magnetic signal pattern including a sound source signal such as music recorded in advance in an external storage device such as an SD card inserted in a card slot or the like or a built-in storage device. It is read from the SD card or the like and supplied to the biostimulation low-frequency signal generation unit, and the biostimulation low-frequency signal generation unit uses the frequency information (for example, 1 kHz or more and 3 kHz or less) of the magnetic signal pattern to generate the biostimulation low-frequency signal. and outputs the biostimulation low-frequency signal to the basic high-frequency signal frequency modulation unit.
- the basic high-frequency signal frequency modulation section generates a basic high-frequency signal of, for example, 250 MHz ⁇ 10%, which is generated by the basic high-frequency signal generating section and frequency-shifted by the basic high-frequency signal shifting section, by the low-frequency signal generating section for biological stimulation.
- the generated low-frequency biostimulation signal of, for example, 1 kHz or more and 3 kHz or less is frequency-modulated and supplied to the biostimulation high-frequency signal output unit, and the biostimulation high-frequency signal output unit outputs the frequency-modulated biostimulation high-frequency signal. Amplify and output.
- the biostimulation high-frequency signal output unit may amplitude-modulate the frequency-modulated biostimulation high-frequency signal with the biostimulation low-frequency signal, and then amplify and output the amplified biostimulation high-frequency signal.
- the biostimulation low-frequency signal output section may amplify and output the biostimulation low-frequency signal of 1 kHz or more and 3 kHz or less, for example, generated by the biostimulation low-frequency signal generation section. These operations in the signal wave output section are controlled by the operation state control section.
- the probe 11 in this embodiment accommodates a flexible printed wiring board, and on the flexible printed wiring board, a high frequency output coil 15 is formed on the outside and a low frequency output coil is formed on the inside by printed wiring. 17 is formed. In addition, a magnetic field strength detection coil 16 is formed outside the high frequency output coil 15 . Furthermore, an operation state detection section is configured by using a CPU and a temperature detection element mounted on the flexible printed circuit board.
- the high-frequency output coil 15 generates a high-frequency alternating magnetic field for stimulating an affected part with a high-frequency signal for biostimulation supplied from a high-frequency signal output unit for biostimulation through a signal cable 21 .
- the low-frequency output coil 17 may generate a low-frequency alternating magnetic field for stimulating the affected part with a low-frequency signal for biostimulation supplied from the low-frequency signal output unit for biostimulation through the signal cable 21 .
- the operating state detector outputs a signal wave from the temperature of the high-frequency output coil 15 and the low-frequency output coil 17 detected by the temperature detection element and the high-frequency or low-frequency magnetic field strength detected by the magnetic field strength detection coil 16.
- the operating state of the unit is detected, and a signal indicating the operating state is input to the operating state monitoring unit of the signal wave output unit via the signal cable 21 .
- the operating state monitoring unit monitors the operation of the signal wave output unit such as signal wave generation and output, and the level of the alternating magnetic field generated by the high-frequency output coil 15 and the low-frequency output coil 17.
- the alarm control unit When an abnormality is detected, the alarm control unit outputs an alarm signal (for example, an alarm sound is generated by a speaker (not shown) incorporated in the apparatus main body 1, an alarm message is displayed on the display 3, or the like). The sounding of this alarm sound is stopped by operating the alarm stop button on the front surface of the casing of the main body 1 of the apparatus.
- the operation state control unit supplies the biostimulation high-frequency signal from the high-frequency signal output unit to the high-frequency output coil 15 and the biostimulation low-frequency signal to ensure the safety of the user of the magnetic therapy apparatus. The supply of the biostimulation low-frequency signal from the frequency signal output section to the low-frequency output coil 17 is stopped.
- the screen control unit in this embodiment has a circuit configuration using a graphic processing unit (GPU) or the like.
- Screen information such as instruction buttons to be displayed on the liquid crystal display (LCD) of the display 3 is read from an SD card or the like and displayed on the LCD or the like.
- the position where the finger of the user of the magnetic therapy device touches the touch panel of the touch input type display 3 is detected from the change in static electricity at that position, etc., and the LCD etc. corresponding to the touch position
- a signal indicating an instruction input by the displayed operation button is sent to the operating state control unit.
- the operation state control section instructs the user to operate the signal wave output section to generate and output the signal wave, and furthermore to instruct the alternating magnetic field generated by the high-frequency output coil 15 and the low-frequency output coil 17. control accordingly.
- the screen control unit also creates a log that records the instruction input to the instruction input unit by the operation button displayed on the LCD or the like and the operating state of the signal wave output unit at that time.
- a clock function that saves data in a USB memory (not shown) that is removably attached to the USB memory slot in the projecting part on the lower side of the rear part of 2, and displays the clock on an LCD or the like in the image display part.
- the clock function is maintained by a button battery attached to the battery holder.
- the power supply unit in this embodiment is circuit-configured by a CPU and two AC-DC converters (not shown). Then, the 100 V commercial AC power supplied via a power cable (not shown) is obtained by the two AC-DC converters to obtain a predetermined DC power supply, and the DC power supplies are connected in series to obtain the charging voltage of the battery. While charging the battery, a predetermined DC power source that is stepped down from these DC power sources by a switching power source and a linear regulator is sent to the signal wave output unit and screen control unit of the device main body 1 and the operating state detection unit of the probe 11 , are supplied as DC power supplies with the required voltages.
- the power supply unit supplies DC power from the battery to the signal wave output unit and screen control unit of the apparatus main body 1 and the operating state detection unit of the probe 11. , a switching power supply and a linear regulator to step down and supply the required DC voltage, so that the magnetic therapy apparatus can be carried and used.
- the basic high-frequency signal generation section, the basic high-frequency signal shift section, and the basic high-frequency signal frequency modulation section of the signal wave output section of the device main body 1 generate the biostimulation high-frequency signal.
- a biostimulation high-frequency signal output section outputs, and a high-frequency output coil 15 included in a probe 11 formed separately from the apparatus body 1 is connected to the biostimulation high-frequency signal output section of the signal wave output section with a signal cable 21.
- a biostimulation high-frequency signal output from the biostimulation high-frequency signal output unit for example, having a center frequency of 250 MHz is supplied, and the biostimulation high-frequency signal generates a high-frequency alternating magnetic field for stimulation of the affected area.
- the affected area is irradiated with the high-frequency alternating magnetic field generated by the high-frequency output coil 15. It can be expected to stimulate the cells and nerves of the affected area, for example, by activating damaged sensory cells in the affected area, inducing neurotrophic factors, and alleviating neuropathy in the affected area. Since it has a strong effect of activating damaged sensory cells and inducing neurotrophic factors, it can be expected to increase the effect of alleviating neuropathy in the affected area.
- the biostimulation low-frequency signal generation unit of the signal wave output unit of the device main body 1 uses the frequency information (for example, 1 KHz or more and 3 KHz or less) of the magnetic signal pattern for biostimulation.
- a low-frequency signal is generated, the biostimulation low-frequency signal output section outputs the biostimulation low-frequency signal, and the low-frequency output coil 17 of the probe 11 outputs the biostimulation low-frequency signal of the signal wave output section. Since the low-frequency signal for biostimulation is supplied from the low-frequency signal output part for biostimulation which is connected to the signal output part by the signal cable 21, the low-frequency signal for biostimulation is generated by the low-frequency output coil 17.
- the stimulation given by irradiating the affected area with a low-frequency alternating magnetic field for stimulation of the affected area reaches the brain (sensory area) from the dorsal horn of the spinal cord through the sensory nerves (A ⁇ fibers: tactile sensation), so that the brain is stimulated by tactile sensation. It can also be expected to recognize pain and activate the descending antinociceptive system to bring about analgesic and relaxing effects.
- the basic high-frequency signal modulation unit of the signal wave output unit 13 included in the apparatus main body 1 converts the basic high-frequency signal into a low-frequency biostimulation signal generated by the signal wave output unit.
- a biostimulation high-frequency signal is generated by modulation, and the biostimulation high-frequency signal output unit supplies the frequency-modulated biostimulation high-frequency signal to the high-frequency output coil 15 of the probe 11.
- the signal wave output section of the device body 1 also generates and outputs a low-frequency biostimulation signal
- the probe 11 is connected to the signal wave output section with the signal cable 21. It also has a low-frequency output coil 17 to which a biostimulation low-frequency signal is supplied from the signal wave output section, and the signal wave output section frequency-modulates the basic high-frequency signal with the biostimulation low-frequency signal to perform biostimulation. Since the high-frequency signal for biostimulation is generated and output separately from the low-frequency signal for biostimulation, the low-frequency alternating magnetic field for stimulating the affected area generated by the low-frequency output coil 17 by the low-frequency signal for biostimulation has an analgesic effect.
- the high-frequency alternating magnetic field for stimulating the affected area generated by the high-frequency output coil 15 by the high-frequency biostimulating high-frequency signal obtained by frequency-modulating the basic high-frequency signal with the low-frequency biostimulating low-frequency signal further reduces nerve damage in the affected area. can be expected.
- the frequency of the biostimulation low-frequency signal is 1 kHz or more and 3 kHz or less, and the biostimulation low-frequency signal generates 1 kHz or more and Stimulation by a low-frequency alternating magnetic field of 3 kHz or less is particularly easy to conduct from the dorsal horn of the spinal cord to the brain through sensory nerves. .
- the high-frequency signal shifter may shift the basic high-frequency signal of 250 MHz within a range of 250 MHz ⁇ 20%, for example.
- the biostimulation low-frequency signal generation unit generates a biostimulation low-frequency signal in a frequency range different from 1 kHz to 3 kHz, for example, a frequency range of 200 Hz to 3 kHz with a center frequency of 1.6 kHz.
- the probe of the magnetic therapy apparatus can be miniaturized, the signal wave for biostimulation is generated, and the magnetic field generated by the signal wave in the coil is appropriately irradiated to the affected part of the living body to stimulate the cells and nerves of the affected part. It is industrially useful because the stimulus activates the self-repair function of damaged nerves and cells in the affected area, thereby reducing neuropathy in the affected area.
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Abstract
Description
2 ケーシング
3 ディスプレイ(タッチ入力式ディスプレイ)
11 磁気治療装置のプローブ
12 外装
13 回路部
14 可撓性薄板(プリント基板)
15 高周波出力用コイル
16 磁界強度検出用コイル
17 低周波出力用コイル
18 スリット部
19 ブリッジ部
21 信号ケーブル
31 銅箔
32 表皮部
33 上面
34 下面
Claims (4)
- 生体刺激用信号波を生成し、その生体刺激用信号波でコイルに発生させた患部刺激用の磁界を生体の患部に照射して患部および患部周辺の細胞および神経を刺激することで患部の疼痛を治療する磁気治療装置であって、
生体刺激用高周波信号を生成して出力する信号波出力部を有する装置本体と、
前記信号波出力部に信号ケーブルで接続されて、その信号波出力部から出力される前記生体刺激用高周波信号を供給される高周波出力用コイルを有する、前記装置本体と別体に形成されたプローブと、
を備え、
前記高周波出力用コイルには100MHz以上の高周波電流が流され、
前記高周波出力用コイルが、絶縁性の可撓性薄板の両面に面状体として形成され、両面のコイルの磁界中心が一致している、磁気治療装置。 - 前記高周波出力用コイルは、前記高周波電流の周波数から計算される電流の表皮厚さdiの2倍以上70μm以下の厚さの導体からなる、請求項1に記載の磁気治療装置。
- 前記導体が、金属箔である、請求項2に記載の磁気治療装置。
- 前記信号波出力部は、生体刺激用低周波信号も生成して出力し、
前記プローブは、さらに、前記信号波出力部に信号ケーブルで接続されて、その信号波出力部から前記生体刺激用低周波信号を供給される低周波出力用コイルを有する、請求項1ないし3のいずれか一項に記載の磁気治療装置。
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Citations (6)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPS63160677A (ja) | 1986-12-23 | 1988-07-04 | 松下電工株式会社 | 高周波磁気治療器 |
JPS63160676A (ja) | 1986-12-23 | 1988-07-04 | 松下電工株式会社 | 高周波磁気治療器 |
WO2006115119A1 (ja) * | 2005-04-19 | 2006-11-02 | Thoshin Co. Ltd. | 治療器 |
WO2008056414A1 (fr) | 2006-11-08 | 2008-05-15 | Medical Appliance Co., Ltd. | Appareil accélérant la production de facteur neurotrophique |
JP2019005142A (ja) * | 2017-06-23 | 2019-01-17 | ニプロ株式会社 | 生体刺激用信号波生成装置 |
JP2021112568A (ja) * | 2020-01-20 | 2021-08-05 | シュアン−フア, チウHsuan−Hua Chiu | 平面コイル構造付き磁気刺激装置 |
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2023
- 2023-01-11 JP JP2023574043A patent/JPWO2023136254A1/ja active Pending
- 2023-01-11 WO PCT/JP2023/000402 patent/WO2023136254A1/ja active Application Filing
Patent Citations (6)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPS63160677A (ja) | 1986-12-23 | 1988-07-04 | 松下電工株式会社 | 高周波磁気治療器 |
JPS63160676A (ja) | 1986-12-23 | 1988-07-04 | 松下電工株式会社 | 高周波磁気治療器 |
WO2006115119A1 (ja) * | 2005-04-19 | 2006-11-02 | Thoshin Co. Ltd. | 治療器 |
WO2008056414A1 (fr) | 2006-11-08 | 2008-05-15 | Medical Appliance Co., Ltd. | Appareil accélérant la production de facteur neurotrophique |
JP2019005142A (ja) * | 2017-06-23 | 2019-01-17 | ニプロ株式会社 | 生体刺激用信号波生成装置 |
JP2021112568A (ja) * | 2020-01-20 | 2021-08-05 | シュアン−フア, チウHsuan−Hua Chiu | 平面コイル構造付き磁気刺激装置 |
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