Power saving material
By irradiating aluminum, stainless steel, or ferrite with resonant electromagnetic waves, these materials become oscillators, addressing the limitations of conventional energy-saving methods and achieving substantial power savings by reducing electron noise and heat loss.
Patent Information
- Application Number
- JP2024019842
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-01-26
- Publication Date
- 2025-08-07
AI Technical Summary
Conventional energy-saving methods using magnets, far-infrared emitting materials, capacitors, and inverters face issues with sustainability, stability, and versatility, while those using capacitors and inverters are large and costly.
Irradiating aluminum, stainless steel metal tape, or ferrite with resonant electromagnetic waves of 32 to 38 terahertz for 2 to 12 hours at 20°C to 90°C causes these materials to become oscillators, emitting resonant electromagnetic waves that reduce noise and heat loss in electrical conductors.
The materials effectively eliminate noise and reduce heat loss in electrical conductors, achieving significant power savings of up to 35% by reducing electron noise and heat loss.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention provides an energy-saving material in which aluminum, stainless steel metal tape, paint, or ferrite is irradiated with resonant electromagnetic waves of 32 to 38 terahertz, causing the material to function as an oscillator of the resonant electromagnetic waves. [Background technology]
[0002] Conventionally, in order to save electricity, a method has been proposed in which insulation is improved by attaching a substance or magnet that emits far infrared rays to the outside of covered electric wires or wiring devices.
[0003] Methods of saving electricity by using capacitors and inverters have also been proposed. [Patent Document 1] Patent Publication No. 2006-202777 [Patent Document 2] Patent Publication No. 2006-314193 [Patent Document 3] Patent Publication No. 2010-197037 [Patent Document 4] Patent Publication No. 2000-58338 Summary of the Invention [Problem to be solved by the invention]
[0004] Most conventional power-saving devices aim to reduce unnecessary losses by improving insulation, but there are problems with the frequency of far-infrared rays and the strength of magnetic force, making them ineffective.
[0005] In addition, power-saving devices using capacitors and inverters have been developed, but these devices tend to be large and have problems with versatility and cost. [Means for solving the problem]
[0006] In order to solve these problems, the inventor discovered that by irradiating aluminum, stainless steel metal tape, paint, or ferrite with resonant electromagnetic waves of 32 to 38 terahertz for 2 to 12 hours at temperatures of 20°C to 90°C, the material itself becomes a transfer medium for the resonant electromagnetic waves and also becomes a projector for the resonant electromagnetic waves, leading to the invention.
[0007] That is, in the present invention, a substance that emits resonant electromagnetic waves of 32 to 38 terahertz is placed in close proximity to aluminum, stainless steel metal tape, paint, or ferrite, and left at a temperature of 20°C to 90°C for 2 to 12 hours, whereby the electromagnetic waves emitted from the radiator of the resonant electromagnetic waves are transferred to the material, and the material itself becomes a radiator of the resonant electromagnetic waves due to the resonance effect.
[0008] By using aluminum, stainless steel metal tape, paint, or ferrite itself as a radiator of resonant electromagnetic waves, the resonant electromagnetic waves can be irradiated onto conductive parts without directly contacting the conductive parts by simply attaching the material to the outside of a distribution board, switchboard, or wiring device.
[0009] In addition, by setting the frequency of the resonant electromagnetic waves emitted from aluminum, stainless steel metal tape, paint, and ferrite to 32 to 38 terahertz, it is possible to eliminate or reduce noise caused by the vibration of tiny electrons in the current flowing through the electrical wire. [Effects of the Invention]
[0010] According to the present invention, it is possible to provide aluminum or stainless steel metal tapes, paints, and ferrites that emit resonant electromagnetic waves of 32 to 38 terahertz, which have clear and long-lasting effects, in a simple manner at low cost.
[0011] The resonant electromagnetic waves of 32 to 38 terahertz emitted from the energy-saving material of the present invention are repeatedly transmitted through or transferred to a plastic or metal container, and are irradiated onto the current flowing in the conductor inside.
[0012] The electromagnetic waves eliminate or reduce noise from electrons traveling in a current, which is the flow of electrons.
[0013] Fine noise carried on the current increases electrical resistance and heat loss, so by eliminating or reducing this noise, heat loss can be suppressed, resulting in power savings. DETAILED DESCRIPTION OF THE INVENTION
[0014] Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings. Figure 1 shows a cross section of the concept of a device for irradiating resonant electromagnetic waves onto aluminum, stainless steel metal tape, paint, and ferrite. Figure 2 shows the view from arrow A in Figure 1. FIG. 3 shows a vertical cross section of the method for attaching the energy-saving material of the present invention.
[0015] As shown in Figures 1 and 2, a resonant electromagnetic wave oscillator 1 is placed in close contact with aluminum, stainless steel metal tape, paint, or ferrite, and the resonant electromagnetic waves 3 of 32 to 38 terahertz emitted from the oscillator 1 are irradiated onto the metal material 2 for 2 to 12 hours.
[0016] Heaters 4 capable of adjusting the temperature between 20°C and 90°C are provided above and / or below the resonant electromagnetic wave oscillator 1, and resonant electromagnetic waves 3 of 32 to 38 terahertz can be efficiently emitted to the material.
[0017] When the material 2 is irradiated with the electromagnetic waves 3 under specified temperature conditions for a specified time, the electrons orbiting the molecules that make up the material 2 are resonantly excited, and the material itself becomes an oscillation source of the resonant electromagnetic waves 3, becoming an energy-saving material 12 that exhibits various resonant electromagnetic wave effects.
[0018] When the material 12 is attached to the coating 13 of the electric wire 11, the resonant electromagnetic waves 14 emitted from the energy-saving material 12 eliminate or reduce the fine electronic noise carried on the current flowing through the electric wire 11.
[0019] The minute noise of electrons carried in the current increases electrical resistance and heat loss, so by eliminating or reducing this noise, heat loss due to current flow can be suppressed, resulting in power savings. [Example]
[0020] Tests were conducted in April, May, and October when there was no heating or cooling load and electricity usage was relatively stable, by wrapping the energy-saving material of the present invention around the input wires of the main distribution panel. When the results were compared with the electricity usage in the same month one year earlier, an energy saving effect of approximately 35% was confirmed in each month. The following effects have been confirmed throughout the study:
[0021] The present invention can be applied not only to power users such as homes, offices, stores and factories, but also to power transmission lines to reduce transmission losses, thereby contributing to power conservation throughout the power industry. [Brief explanation of the drawings]
[0022] [Figure 1] shows a cross-section of a concept for a device that irradiates resonant electromagnetic waves onto aluminum, stainless steel metal tapes, paint, and ferrite. [Figure 2] indicates the view from arrow A in Figure 1. [Figure 3] 1 shows a longitudinal section of a method for attaching the energy-saving material of the present invention to an electric wire covering material. [Explanation of symbols]
[0023] 1 Resonant electromagnetic wave oscillator 2 Aluminum, stainless steel, metal tape and paint, ferrite 3 Resonant electromagnetic waves 4 Heater 11 Electric wire 12 Energy-saving tape 13 Covering 14 Resonant electromagnetic waves
Claims
[Claim 1] This energy-saving material is characterized by the fact that, when a vapor-deposited aluminum reflective sheet coated with silica-based powder such as zirconium or black silica is irradiated with 32 to 38 terahertz resonant electromagnetic waves capable of eliminating electron vibration noise at a temperature of 20 to 90°C for 2 to 12 hours, the material becomes a transfer body for resonant electromagnetic waves of a specific frequency, and radiates the resonant electromagnetic waves of the specific frequency to the outside.