Electromagnetic wave modulation module

The electromagnetic modulation module using a semiconductor chip generates longitudinal waves efficiently, addressing size and cost limitations of existing generators, enabling wearable devices that enhance biological functions and health promotion.

WO2026059228A1PCT designated stage Publication Date: 2026-03-19JUVENTA SCIENCE CO LTD +3
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Patent Information

Application Number
PCT/KR2025/013737
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-09-11
Filing Date
2025-09-05
Publication Date
2026-03-19

AI Technical Summary

Technical Problem

Existing longitudinal wave generators are limited by large size, high cost, and restricted application fields due to their configuration using coils or plasma, hindering mass production and marketability.

Method used

An electromagnetic modulation module utilizing a semiconductor chip-based electrical signal oscillator to generate longitudinal waves with a simple configuration, comprising an input terminal, metal pattern, and electromagnetic wave adjustment circuit.

Benefits of technology

Enables compact, affordable, and versatile bio-function activation devices that promote health by stimulating biological functions with modulated electromagnetic waves, improving physical conditions such as reducing fatigue and enhancing blood flow.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to an electromagnetic wave modulation module for modulating electromagnetic waves generated by an electrical signal. According to one embodiment of the present invention, the electromagnetic wave modulation module is provided, the module comprising: an input terminal into which an electrical signal of a specific frequency is input; a metal pattern for modulating, into longitudinal waves, electromagnetic waves generated by the input electrical signal of the specific frequency; an electromagnetic wave adjustment circuit for adjusting the intensity and energy characteristics of the modulated longitudinal waves; and an output terminal for outputting an electrical signal that generates the longitudinal waves modulated and adjusted by the metal pattern and the electromagnetic wave adjustment circuit. According to the present invention, the electromagnetic wave modulation module capable of generating longitudinal waves with a simple configuration by using an electrical signal oscillator manufactured with a semiconductor chip is provided, thereby enabling limitations with respect to conventional mass production, price, marketability, usability, application fields and the like to be solved.
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Description

Electromagnetic modulation module

[0001] The present invention relates to an electromagnetic wave modulation module for modulating electromagnetic waves generated by an electrical signal.

[0002] Biofunctional activation technology is conceptually a technique that evaluates an organism's health status and activates metabolism by enhancing bodily homeostasis. This technology is classified into pharmacological and energy-based approaches. Among these, the pharmacological physical approach investigates how substances interact to induce functional changes in organisms; generally, pharmacological substances target natural products and contribute to disease treatment or metabolic activation through pharmacological mechanisms. On the other hand, energy-based technology activates biological functions by normalizing the body's energy imbalance; this is being researched in traditional Eastern medicine or, in the West, as energy medicine, a category of alternative and complementary medicine.

[0003] Recently, research on energy medicine is actively underway, moving beyond the stage of viewing the human body solely as a mechanical and material entity to regard it as an energetic being that diagnoses and treats through energy fields. In this context, energy sources include electric fields, magnetic fields, electromagnetic waves, and longitudinal waves (scalar energy).

[0004] In particular, scalar energy is a technology that provides many clues for the development of energy medicine, and therapeutic devices utilizing scalar energy are continuously being developed overseas.

[0005] However, the method of generating longitudinal waves has not been able to move beyond the early methods using coils or plasma. For example, there are methods of generating longitudinal waves (scalar energy) that use special coils to cancel out electromagnetic waves by using two strands of coils wound in opposite directions or by canceling them out in a geometric shape to emit scalar energy, and methods of generating longitudinal waves by generating resonant waves.

[0006] Longitudinal wave generators configured in this manner have limitations in terms of mass production, price, marketability, usability, and application fields due to their large size.

[0007] The present invention aims to solve the problems of the aforementioned prior art by providing an electromagnetic modulation module capable of generating longitudinal waves with a simple configuration by using an electrical signal oscillator manufactured as a semiconductor chip.

[0008] To achieve the above-mentioned purpose, according to one embodiment of the present invention, an electromagnetic wave modulation module is provided, comprising: an input terminal into which an electrical signal of a specific frequency is input; a metal pattern for modulating an electromagnetic wave generated by the input electrical signal of the specific frequency into a longitudinal wave; an electromagnetic wave adjustment circuit for adjusting the intensity and energy characteristics of the modulated longitudinal wave; and an output terminal for outputting an electrical signal that generates a longitudinal wave modulated and adjusted by the metal pattern and the electromagnetic wave adjustment circuit.

[0009] According to the present invention, by using an electric signal oscillator manufactured as a semiconductor chip, an electromagnetic modulation module capable of generating longitudinal waves with a simple configuration is provided, thereby resolving the limitations of existing systems in terms of mass production, price, marketability, usability, and application fields.

[0010] In addition, according to the present invention, by providing each individual with a wearable bio-function activation device manufactured in a compact size, each individual can activate bio-functions, maintain a positive physical condition, and have the effect of promoting health.

[0011] FIG. 1 is a block diagram showing the schematic configuration of a bio-function activation device including an electromagnetic wave modulation module according to one embodiment of the present invention.

[0012] Figure 2 is a photograph showing an actual product of a bio-function activation device including an electromagnetic wave modulation module according to the present invention.

[0013] FIG. 3 is a diagram schematically showing the configuration of an electromagnetic wave modulation module according to the present invention.

[0014] FIG. 4 is a flowchart showing a method for activating bio-functions to change a user's physical condition to a specific state using an electromagnetic modulation module according to the present invention.

[0015] The present invention is capable of various modifications and may have various embodiments, and specific embodiments are illustrated in the drawings and described in detail in the detailed description. However, this is not intended to limit the invention to specific embodiments, and it should be understood that the invention includes all modifications, equivalents, and substitutions that fall within the spirit and scope of the invention.

[0016] The terms used herein are merely for describing specific embodiments and are not intended to limit the invention. Singular expressions include plural expressions unless the context clearly indicates otherwise. In this specification, terms such as “comprising” or “having” are intended to indicate the presence of the features, numbers, steps, actions, components, parts, or combinations thereof described in the specification, and should be understood as not precluding the existence or addition of one or more other features, numbers, steps, actions, components, parts, or combinations thereof.

[0017] Furthermore, the components of the embodiments described with reference to each drawing are not limited to the respective embodiments and may be implemented to be included in other embodiments within the scope of maintaining the technical spirit of the present invention. It is also obvious that multiple embodiments may be re-implemented as a single embodiment that integrates multiple embodiments, even if a separate description is omitted.

[0018] Furthermore, in the description referring to the attached drawings, identical components are assigned the same or related reference numerals regardless of drawing symbols, and redundant descriptions thereof are omitted. In describing the present invention, if it is determined that a detailed description of related prior art could unnecessarily obscure the essence of the present invention, such detailed description is omitted.

[0019]

[0020] Maxwell, who established the foundations of electromagnetism, initially proposed as many as 20 equations. About 20 years later, Oliver Heaviside consolidated these into four, during which the longitudinal electric wave and electric potential terms disappeared. This resulted in the completion of the Maxwell equations (or Maxwell-Heaviside equations), with the equation for the electric field E and the equation for the magnetic field B as the core concepts. These are Gauss's Law, Gauss's Law of Magnetism, Faraday's Law, and Ampere's Law.

[0021] However, despite Maxwell's equations being an empirical theory that forms the foundation of modern science, they face many challenges today. Professor Konstantin Myles of Germany pointed out that many parts of the fundamental equations of modern electromagnetism have been omitted and simplified, making them less universal equations applicable only in specific situations. Extending this idea, Professor Myles noted that electromagnetic waves propagating through space include longitudinal waves in addition to transverse waves.

[0022] In other words, electromagnetic waves include Hertz’s transverse waves and Tesla’s longitudinal waves; specifically, these are Hertz’s electromagnetic wave (transverse wave), the electric scalar wave (longitudinal wave) proposed by Tesla, and the magnetic scalar wave (longitudinal wave) proposed by Konstantin Miles. A longitudinal wave is formed when either an electric field or a magnetic field is formed in the same direction as propagation. For example, in the case of an antenna forming an electric dipole, it radiates electromagnetic waves containing longitudinal elements, which are also referred to as a field vortex. Furthermore, in situations where electromagnetic waves are radiated, a longitudinal wave may be formed in the form of a near field within half a wavelength or one wavelength.

[0023] Longitudinal waves are waves in which the direction of wave propagation and the direction of vibration of the medium are parallel; unlike transverse waves, which have adverse effects on living organisms, longitudinal waves can have a positive effect on them. Various research results have demonstrated that longitudinal waves have a positive impact on living organisms. For example, it has been revealed that longitudinal electromagnetic waves can cause an increase in energy (measured by an increase in ATP) in plant mitochondria (Heide Schnabl, Hermann Schnable, Konstantin Meyl, Anti-Aging by longitudinal magnetic waves: A new approach by modulating ATP-Levels, OAT(Open Access Text), 2019). Mitochondria exist not only in plant cells but also in animal and human cells, and their product, ATP, is identical and an indispensable component in all life processes.

[0024]

[0025] The present invention relates to an electromagnetic wave modulation module capable of modulating an electromagnetic wave generated by an input electrical signal into a longitudinal wave by using a metal pattern and an electromagnetic wave adjustment circuit.

[0026] The electromagnetic wave modulation module according to the present invention can be used in healthcare products such as bio-function activation devices. For example, a bio-function activation device includes an oscillator that outputs an electrical signal of a specific frequency, and modulates electromagnetic waves according to the electrical signal of the specific frequency to output a longitudinal wave corresponding to the specific frequency. In this case, the specific frequency is a frequency determined based on the body rhythm when the user's physical condition is in a specific state in order to change the user's physical condition to a specific state.

[0027] Here, the user's physical state being in a specific state may be, for example, a state where muscle cells are activated, a state where blood flow in the body increases, or a state where stress or fatigue is relieved. This specific state may be a physical state that the user wishes to reach from their current physical state. For example, if the user is currently under a lot of stress or has high levels of fatigue, they may desire a state where stress or fatigue is low.

[0028] Furthermore, the body rhythm when the user's physical state is in a specific state refers to the rhythm of electromagnetic energy emitted from the body when the human body is in a specific state, or the rhythm of physical, electromagnetic, or acoustic stimuli applied to the human body to switch the human body state to a specific state.

[0029] Unlike other longitudinal wave generators, the present invention allows for a smaller and simpler device configuration by using an electrical signal oscillator manufactured as a semiconductor chip.

[0030]

[0031] FIG. 1 is a block diagram showing the schematic configuration of a bio-function activation device including an electromagnetic wave modulation module according to one embodiment of the present invention.

[0032] Referring to FIG. 1, the bio-function activation device (100) according to the present invention includes a battery (110), an oscillator (120), an electromagnetic modulation module (130), and an output module (140).

[0033] First, the battery (110) supplies power. The power supplied by the battery (110) may be a DC (direct current) power source.

[0034] The oscillator (120) is electrically connected to the battery (110) and outputs an electrical signal of a specific frequency when power is supplied from the battery (110). Here, the electrical signal output by the oscillator (120) is an AC (alternating current) signal, and it is particularly preferable that it be a square wave of positive voltage. In addition, the specific frequency of the electrical signal may be a frequency that is preset before the user uses the bio-function activation device (100).

[0035] The electromagnetic wave modulation module (130) is electrically connected to the oscillator (120) to receive an electrical signal of a specific frequency output from the oscillator (120), modulates the electromagnetic wave generated by the electrical signal of the specific frequency, and outputs an electrical signal in which the electromagnetic wave is modulated.

[0036] The electromagnetic wave modulation module (130) modulates the electromagnetic waves generated by the electric signal by changing the spin of electrons moving within the wiring. Generally, the electromagnetic waves generated by the electric signal output from the oscillator (120) are transverse waves, and the electromagnetic wave modulation module (130) modulates these electromagnetic waves into longitudinal waves and can output an electric signal in which the electromagnetic waves are modulated.

[0037] The electromagnetic waves produced by the electric signal output from the electromagnetic wave modulation module (130), the electric signal passing through the wiring between the electromagnetic wave modulation module (130) and the output module (140), and the electric signal transmitted to the output module (140) are electromagnetic waves modulated by the electromagnetic wave modulation module (130), and the electromagnetic waves produced by the electric signal output from the electromagnetic wave modulation module (130), the electric signal passing through the wiring between the electromagnetic wave modulation module (130) and the output module (140), and the electric signal transmitted to the output module (140) are output to an external space, so that a user using the bio-function activation device (100) may be exposed to these electromagnetic waves.

[0038] The output module (140) is electrically connected to the electromagnetic modulation module (130) to receive an electrical signal output from the electromagnetic modulation module (130) and outputs an electromagnetic wave according to the received electrical signal to an external space.

[0039] Ultimately, when power is applied to the oscillator (120), the oscillator (120) outputs an electrical signal of a specific frequency, and the output electrical signal is modulated by an electromagnetic wave modulation module (130) and the modulated electromagnetic wave is output to an external space through an output module (140).

[0040] Modulated electromagnetic waves are incident on a user wearing a bio-function activation device (100), and the incident electromagnetic waves stimulate the cells constituting the user's body within the user's body, particularly centered around the location where the bio-function activation device (100) is worn, and if the user is continuously exposed to the stimulation of electromagnetic waves, the user's body changes into a physical state different from before wearing the bio-function activation device (100).

[0041]

[0042] Meanwhile, when the electromagnetic wave modulation module (130) modulates the electromagnetic wave from a transverse wave to a longitudinal wave based on an electric signal, the frequency of the transverse wave based on the electric signal or the longitudinal wave output from the electromagnetic wave modulation module (130) is determined by the frequency of the electric signal input to the electromagnetic wave modulation module (130), and this is ultimately determined by the frequency of the electric signal output from the oscillator (120).

[0043] The bio-function activation device (100) is intended to stimulate the body's cells to change the user's physical condition to a specific state, and it is preferable that the specific frequency of the electrical signal output from the oscillator (120) be a low frequency corresponding to the human body rhythm. For example, the frequency range in which humans can feel vibration phenomena is approximately 0.1 to 500 Hz, and among these, the frequency range that can affect the human body is approximately 1 to 90 Hz. In addition, human brainwaves are known to be approximately 10 Hz for an average adult. On the other hand, high-frequency electromagnetic waves mostly act as noise and are more likely to have an adverse effect on the body.

[0044] Furthermore, according to the study by Lipkova and Cechak, humans emit electromagnetic energy in the frequency range of 0.5–30 Hz, and in particular, there are harmonic components at frequencies of 2 Hz, 3 Hz, 4.2 Hz, 16.8 Hz, and 21.3 Hz associated with human heart, respiratory, and brain functions. (Lipkova, J. and Cechak, J. Human electromagnetic emission in the ELF band, Measurement Science Review. 5, 29-32, 2005)

[0045] When the harmonic components of the electromagnetic energy emitted from the human body resonate with the electromagnetic waves incident from the outside, the cells, tissues, and organs constituting the human body can resonate, thereby activating biological functions. Accordingly, the specific frequency of the electrical signal output from the oscillator (120) may include at least one of 2 Hz, 3 Hz, 4.2 Hz, 16.8 Hz, and 21.3 Hz.

[0046]

[0047] Meanwhile, the output module (140) may be composed of at least one of an antenna, an LED (light emitting diode), and a speaker, for example, the output module (140) may be composed of a single antenna or may be composed including an antenna and an LED.

[0048] When the output module (140) is configured as an antenna, the antenna may be configured as a spiral metal pattern, wherein the direction in which the spiral metal pattern rotates is preferably corresponding to the spin direction of the electron generating the longitudinal wave, for example, the spiral metal pattern may be configured as a pattern that expands while rotating clockwise from the center of the metal pattern.

[0049] The electromagnetic waves output from the output module (140) are longitudinal waves and may have a low frequency. For example, the frequency of the longitudinal waves output from the output module (140) may include at least one of 2 Hz, 3 Hz, 4.2 Hz, 16.8 Hz, and 21.3 Hz.

[0050] When the output module (140) includes an LED, the LED is more effective in activating bodily functions when it is a blue LED or an orange LED.

[0051]

[0052] Figure 2 is a photograph showing an actual product of a bio-function activation device including an electromagnetic wave modulation module according to the present invention.

[0053] Referring to Fig. 2, the bio-function activation device can be made very small and light, so that users can wear it easily without any burden.

[0054]

[0055] FIG. 3 is a diagram schematically showing the configuration of an electromagnetic wave modulation module according to the present invention.

[0056] According to FIG. 3, the electromagnetic wave modulation module (130) according to the present invention includes an input terminal (not shown) into which an electrical signal of a specific frequency is input, a metal pattern (310, 320, 330) for modulating an electromagnetic wave generated by the input electrical signal of a specific frequency, and an output terminal (not shown) for outputting an electrical signal that generates an electromagnetic wave modulated by the metal pattern (310, 320, 330). Here, the electromagnetic wave modulated by the metal pattern (310, 320, 330) may be a longitudinal wave.

[0057] The electrical signal passing through the electromagnetic wave modulation module (130) is modulated according to the magnetic properties of the metal pattern (310, 320, 330), wherein the magnetic properties of the metal pattern (310, 320, 330) are based on magnetic information recorded in the metal pattern, which may be information stored in advance by magnetizing the metal pattern (310, 320, 330). At this time, the magnetic information recorded in the metal pattern (310, 320, 330) may be information regarding the spin direction of electrons.

[0058] Additionally, the metal pattern (310, 320, 330) is formed in a predetermined shape (shape, size, and position). This is intended to adjust the characteristics of the electromagnetic wave modulated by the metal pattern (310, 320, 330), for example, the intensity or energy characteristics of the electromagnetic wave output from the output module (140) can be adjusted according to the shape of the metal pattern (310, 320, 330).

[0059] Since a user of the bio-function activation device (100) may be exposed to electromagnetic waves output from the bio-function activation device (100) for a long time, it is necessary to adjust the energy applied to the body by said electromagnetic waves to an appropriate level. For example, if the intensity of the electromagnetic waves output from the output module (140) is strong, it may activate the user's bio-function in the short term, but it may cause side effects to the user's body in the long term. Therefore, the intensity and energy characteristics of the electromagnetic waves output from the output module (140) must be adjusted so that the user's bio-function can be appropriately adjusted without burdening the user's body even with long-term use. At this time, it is desirable that the intensity of the electromagnetic waves output from the output module (140) be at a level similar to the intensity of electromagnetic waves emitted from the human body, and it is desirable that the energy of the electromagnetic waves have the characteristic of being uniformly distributed.

[0060] To this end, metal patterns (310, 320, 330) are formed differently on one side and the other side of the electromagnetic modulation module (130). The metal pattern (310) is formed in the center of one side of the electromagnetic modulation module (130), and the metal patterns (320, 330) are formed on the other side of the electromagnetic modulation module (130) at a distance from each other and are smaller in size than the metal pattern (310). The metal patterns (320, 330) formed on the other side of the electromagnetic modulation module (130) may be formed at a position corresponding to the positions of the input electrode and the output electrode of the electromagnetic modulation module (130). Here, the position corresponding to the positions of the input electrode and the output electrode may be the same position as the position of the input electrode and the output electrode, a position close to the input electrode and the output electrode, or a position corresponding to the opposite side of the surface where the input electrode and the output electrode are formed.

[0061] Additionally, a plurality of metal patterns (320, 330) formed on the other side of the electromagnetic wave modulation module (130) may be arranged at a certain distance from the center of the electromagnetic wave modulation module (130). As the metal patterns (310, 320, 330) are formed in this manner, the energy of the electromagnetic waves output from the output module (140) may have the characteristic of being uniformly distributed.

[0062] Here, the metal patterns (310, 320, 330) allow the electrical signal passing through the electromagnetic modulation module (130) to pass directly or in close proximity. If the electrical signal passes directly through the metal patterns (310, 320, 330), the metal patterns (310, 320, 330) may be directly connected to the wiring through which the electrical signal passes within the electromagnetic modulation module (130). If the electrical signal passes in close proximity to the metal patterns (310, 320, 330), the wiring through which the electrical signal passes within the electromagnetic modulation module (130) may be placed in close proximity to the metal patterns (310, 320, 330). Additionally, the metal patterns (310, 320, 330) each allow the electrical signal passing through the electromagnetic modulation module (130) to pass directly or in close proximity. For example, a metal pattern (310) formed on one side of the electromagnetic wave modulation module (130) can be arranged so that an electrical signal passes through in close proximity, while a metal pattern (320, 330) formed on the other side can be arranged so that an electrical signal passes through directly. Conversely, a metal pattern (310) formed on one side of the electromagnetic wave modulation module (130) can be arranged so that an electrical signal passes through directly, while a metal pattern (320, 330) formed on the other side can be arranged so that an electrical signal passes through in close proximity.

[0063] Additionally, the electromagnetic wave modulation module (130) may further include an electromagnetic wave adjustment circuit (not shown) capable of adjusting the intensity and energy characteristics of the electromagnetic waves modulated by the metal patterns (310, 320, 330). The electromagnetic wave adjustment circuit may be composed of a resistor (R) and a capacitor (C), and the intensity and energy characteristics of the electromagnetic waves modulated by the metal patterns (310, 320, 330) can be adjusted by adjusting the resistance value of the circuit and the capacitance of the capacitor.

[0064]

[0065] FIG. 4 is a flowchart showing a method for activating bio-functions to change a user's physical condition to a specific state using an electromagnetic modulation module according to the present invention.

[0066] Referring to FIG. 4, the bio-function activation method first determines the frequency of an electrical signal based on the body rhythm when the user's physical condition is in a specific state in step 410.

[0067] When the frequency of the oscillator (120) is set according to the frequency of the determined electrical signal, in step 420, the oscillator (120) outputs an electrical signal of a specific frequency according to the determined frequency. At this time, it is preferable that the electrical signal be a square wave of positive voltage.

[0068] In step 430, the electromagnetic modulation module (130) receives an electrical signal output from the oscillator (120) and modulates the electromagnetic wave generated by this electrical signal into a longitudinal wave.

[0069] In step 440, the electromagnetic modulation module (130) outputs an electrical signal in which the electromagnetic wave is modulated into a longitudinal wave, and the output module (140) receives the electrical signal output from the electromagnetic modulation module (130) and outputs the modulated longitudinal wave according to the received electrical signal to an external space.

[0070] Here, the frequency of the electromagnetic wave generated by the electrical signal output from the oscillator (120) and the modulated longitudinal wave output to the external space is determined by the frequency determined in step 410.

[0071] In addition, step 430, which modulates the electromagnetic waves generated by the output electrical signal into longitudinal waves, allows the intensity and energy characteristics of the longitudinal waves to be adjusted by a metal pattern (310, 320, 330) formed in a predetermined shape for modulating the electromagnetic waves according to the electrical signal.

[0072]

[0073] The bio-functional activation effect of the modulated electromagnetic waves according to the present invention was demonstrated through various experiments. Physical fatigue, ocular potential, and blood flow activity were tested.

[0074] Ten physically healthy male and female subjects who had a history of head nervous system diseases were instructed to use a bio-function activation device including an electromagnetic modulation module according to the present invention while watching digital content through an electronic device. Content viewing was conducted for 30 minutes, and physical fatigue, electrooculograms, and blood flow activity were measured before and after use. Specifically, physical fatigue was measured using a Flicker, eye blinking was measured using an electrooculogram, and blood flow activity at the corners of the eyes and the tip of the nose was measured using a thermal imaging camera. The Flicker is a physiological measurement method used to objectively evaluate central nervous system fatigue. The electrooculogram can record potential changes caused by eye blinking by utilizing the potential difference between the cornea and the retina. Facial skin temperature can be evaluated by measuring changes in blood flow activity resulting from the activation of the autonomic nervous system.

[0075] Table 1 shows the change in physical fatigue levels due to the use of the bio-function activation device. As a result of measuring physical fatigue, the difference in physical fatigue levels showed a tendency to decrease by an average of 1.44% after using the bio-function activation device.

[0076]

[0077] Category Content Paired Difference st PMean Std. Deviation Without Bio-activation Device Before / After Viewing - 0.400 1.635 - 1.09 40.288 With Bio-activation Device Before / After Viewing - 0.300 2.431 - 0.57 30.573

[0078]

[0079] Table 2 shows the change in the difference in ocular potential according to the use of the bio-function activation device. As a result of the ocular potential measurement, the difference in blinking showed a tendency to decrease by an average of 17.3% after using the bio-function activation device.

[0080]

[0081] Category Content Paired Differences st PMean Std. Deviation Before / After viewing without bio-activation device 6.5347.2332.7100.027 Before / After viewing with bio-activation device 4.3225.1942.4970.037

[0082]

[0083] Table 3 shows the change in the difference in blood flow activity according to the use of the bio-function activation device. As a result of measuring blood flow activity, the difference in blood flow activity decreased by an average of 0.45% after using the bio-function activation device, and in the case of the tip of the nose, a tendency was observed for the difference in blood flow activity to decrease by an average of 1.63%.

[0084]

[0085] Category Content Paired Differences st PMean St. Deviation Without bio-activation device (corner of eye) Before / After viewing - 0.40 50.68 3 - 2.65 10.016 With bio-activation device (corner of eye) Before / After viewing - 0.24 52.43 1 - 2.05 70.054 Without bio-activation device (tip of nose) Before / After viewing - 1.37 1.02 6 - 4.22 10.002 With bio-activation device (tip of nose) Before / After viewing - 0.82 00.84 4 - 3.07 10.013

[0086]

[0087] In conclusion, it was confirmed that when the modulated electromagnetic waves according to the present invention are used, physical fatigue, ocular potential, and blood flow activity are improved. In other words, it was confirmed that biological functions are activated.

[0088]

[0089] The embodiments of the present invention described above are disclosed for illustrative purposes only, and those skilled in the art with ordinary knowledge of the present invention may make various modifications, changes, and additions within the spirit and scope of the present invention, and such modifications, changes, and additions should be considered to fall within the scope of the following claims.

Claims

1. An input terminal into which an electrical signal of a specific frequency is input; A metal pattern for modulating electromagnetic waves generated by an electrical signal of a specific frequency input above into longitudinal waves; and An output terminal that outputs an electrical signal generating a longitudinal wave modulated by the metal pattern above. An electromagnetic modulation module including 2. In Paragraph 1, The above metal pattern is formed in a predetermined shape for modulating electromagnetic waves, but, The metal pattern is directly connected to the wiring through which the electrical signal passes or is positioned in close proximity to the wiring. An electromagnetic wave modulation module characterized by 3. In Paragraph 2, A metal pattern is formed in the center of one side, and On the other side, a plurality of metal patterns are formed spaced apart from each other, having a size smaller than that of the metal pattern formed in the center of the above-mentioned one side. An electromagnetic wave modulation module characterized by 4. In Paragraph 3, A plurality of metal patterns formed on the above-mentioned surface are formed at positions corresponding to the positions of the input electrode and the output electrode. An electromagnetic wave modulation module characterized by 5. In Paragraph 3, The plurality of metal patterns formed on the other surface are arranged at a certain distance from the center of the other surface. An electromagnetic wave modulation module characterized by 6. In Paragraph 3, A metal pattern formed in the center of the above-mentioned surface is positioned in close proximity to the wiring through which the electrical signal passes, and A plurality of metal patterns formed on the above-mentioned surface are directly connected to the wiring through which the electrical signal passes. An electromagnetic wave modulation module characterized by 7. In Paragraph 1, The intensity and energy characteristics of the longitudinal wave modulated by the metal pattern are adjusted according to the shape in which the metal pattern is formed. An electromagnetic wave modulation module characterized by 8. In Paragraph 1, The electromagnetic waves generated by the input electrical signal of a specific frequency are modulated according to the magnetic properties of the metal pattern, and The magnetic properties of the above metal pattern are determined by the magnetic information recorded in the above metal pattern. An electromagnetic wave modulation module characterized by 9. In Paragraph 1, Further including an electromagnetic wave modulation circuit capable of adjusting the intensity and energy characteristics of a longitudinal wave modulated by the metal pattern above. An electromagnetic wave modulation module characterized by 10. In Paragraph 1, The electrical signal of a specific frequency input above is a square wave of positive voltage. An electromagnetic wave modulation module characterized by 11. In Paragraph 1, The electrical signal of a specific frequency output from the above oscillator is, It is intended to change the user's physical condition to a specific state, The frequency is determined based on the body rhythm when the user's physical condition is in a specific state. An electromagnetic wave modulation module characterized by

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