Energy signal transmitting and receiving device
The RL filter circuit of the resistance combination unit receives and filters the wireless signal and outputs a resonant signal, which solves the problems of large size and high cost of existing devices and realizes convenient energy signal transmission.
Patent Information
- Application Number
- CN202410297209.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-03-15
- Publication Date
- 2025-09-16
AI Technical Summary
Existing energy signal analog transmission devices are large in size and high in cost, and it is difficult to conveniently set and transmit energy signals of a specific frequency.
A resistance combination unit is used, including resistors and connecting wires. The resistors and inductor wires form an RL filter circuit to receive and filter wireless signals to output resonant signals. Users can adjust the frequency and waveform by adjusting the resistance value.
A compact, low-cost energy signal transceiver is realized, and the user can easily adjust the output signal characteristics, which is suitable for simulating energy transmission at a specific frequency.
Smart Images

Figure CN120658282A_ABST
Abstract
Description
Technical Field
[0001] The present invention is an energy signal transceiver device that can filter the received energy and output it as a resonant signal. Background Art
[0002] When wanting to generate an energy waveform combination at a specific frequency point or within a specific frequency band, the traditional approach is to generate electromagnetic waves of arbitrary waveforms through an arbitrary waveform generator. The above-mentioned arbitrary waveform generator is a signal generator that can generate various radio wave forms on signals within a wide frequency range, and can set the frequency range or directly input the waveform digital file to be generated. However, setting the frequency range can only emit specific types of waveforms, and if a composite waveform is to be emitted, a specially customized waveform digital file must be directly input. The steps for customizing the waveform digital file are complicated, and the arbitrary waveform generator has a large volume and a high procurement cost, so it is inconvenient for general users to use.
[0003] Please refer to the MORA bioenergy resonance instrument of German company Med-Tronik GmbH. The MORA instrument can store up to about 15,000 electronic frequency signals of digitized matter waves, including herbal plants, bacteria, viruses, environmental toxins, foods, drugs, allergens, nutritional health foods, homeopathic therapies, pathological preparations, organ preparations, etc. These electronic frequency signals of digitized matter waves are stored in the memory of the instrument after Med-Tronik GmbH records the matter wave signals of the above substances and then digitizes them. When the MORA instrument detects which matter wave frequency the subject resonates with, the MORA will play these matter wave signal files on the computer to detect the subject. After using the MORA to understand which matter wave frequency signals the subject resonates with, the doctor can accurately measure and formulate a suitable homeopathic therapy preparation for each subject. However, even though the MORA instrument has outstanding performance and can play a very large number of signals, the MORA instrument still has a large volume and a high procurement cost, so it is inconvenient for general users to use (https: / / mmchwellness.com / health promotion / mora / ).
[0004] The Rayonex Bioenergetic Resonance System, another German company, Rayonex Biomedical GmbH, incorporates the ingenious discoveries of company founder Paul Schmidt. It utilizes a dipole antenna system to generate a harmonic decimal frequency spectrum, stimulating harmony and balance in humans or animals without consuming electricity. This device features a unique mother-and-child design: it automatically scans 200 fundamental frequencies throughout the body, measures individual heart rate parameters, and customizes the desired harmonic frequency in just 12-16 minutes. The mother unit, the Rayonex PS1000, then downloads a file containing all the desired harmonic frequencies onto a memory card. This card is then inserted directly into the daughter unit, the PS10, to play the desired harmonic frequency signals for a personalized physiological conditioning program. While Rayonex devices can also play a variety of frequency signals, they are still bulky and expensive, making them inconvenient for the average user (https: / / www.rayonex.tw / homepage-about.html).
[0005] In summary, a good energy signal transceiver for simulating energy signal transmission must be able to easily allow the user to set the frequency and energy characteristics of the electromagnetic energy signal emitted by the energy transmitter and transmit it. However, energy signal simulation transmission devices must be equipped with numerous electronic components, such as receiving antennas, transmitting antennas, and filters, to accurately simulate the user-set energy frequency. The installation of these electronic components results in high manufacturing costs and a considerable size for energy signal simulation devices. Therefore, existing energy signal simulation transmission methods are not user-friendly, and a better solution is clearly needed to address this situation. Summary of the Invention
[0006] In view of the above problems, the present invention provides an energy signal transceiver device. The energy signal transceiver device has a small size and is capable of receiving an energy signal, filtering it, and transmitting it to simulate an energy signal of a specific frequency.
[0007] The energy signal transceiver of the present invention comprises:
[0008] At least one resistance combination unit, including a plurality of resistors and a connecting wire;
[0009] Each resistor has a resistor body and an antenna conductor and an inductor conductor located at opposite ends of the resistor body. One end of the antenna conductor of the resistor is open-circuited, and the other end of the antenna conductor of the resistor is connected to each resistor body. The inductor conductor of the resistor is electrically connected between the resistor body and the connecting conductor.
[0010] When each resistor receives a wireless signal from the antenna wire, the wireless signal passes through the resistor and the inductor wire to form a plurality of filtered signals, and the inductor wire outputs the filtered signals to the connecting wire;
[0011] The connecting wire receives the filtered signal to generate a resonance signal.
[0012] The antenna wire of each resistor of the present invention is equivalent to an antenna, and the inductor wire of each resistor is equivalent to an inductor. Therefore, the resistor body of each resistor and the inductor wire are connected to form an RL filter circuit. When the antenna wire of the resistor receives the wireless signal, the wireless signal forms a plurality of filter signals through the resistor and the inductor wire, and the filter signals are output from the inductor wire to the connecting wire. The plurality of filter signals output to the connecting wire merge into the resonant state signal output by the connecting wire. A user of the present invention can simply adjust the resistance value of each resistor body by replacing the resistor body, thereby adjusting the filter signal output by each inductor wire, that is, adjusting the frequency and waveform characteristics of the resonant state signal output by the connecting wire. The user uses the resonant state signal output by the present invention as an energy frequency signal simulating the energy transmitter. Since the resistor combination unit of the present invention only comprises the resistor and the connecting wire, the resistor combination unit is extremely compact and has a low manufacturing cost, thereby improving the problems of the prior art. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Figure 1 FIG. 4 is a schematic diagram of an energy signal transceiver device according to the present invention.
[0014] Figure 2 FIG. 4 is another schematic diagram of the energy signal transceiver of the present invention. FIG.
[0015] Figure 3 FIG. 4 is another schematic diagram of the energy signal transceiver of the present invention. FIG. DETAILED DESCRIPTION
[0016] See also Figure 1As shown, the present invention provides an energy signal transceiver device, which includes at least one group of resistor combination units. In one embodiment, the energy signal transceiver device includes a first resistor combination unit 100. The first resistor combination unit 100 includes a plurality of resistors 110 and a connecting wire 120. Each resistor 110 further has a resistor body 111 and an antenna wire 112 and an inductor wire 113 located at opposite ends of the resistor body 111. One end of the antenna wire 112 of the resistor 110 is open-circuited, and the other end of the antenna wire 112 of the resistor 110 is respectively connected to each resistor body 111. The inductor wire 113 of the resistor 110 is electrically connected between the resistor body 111 and the connecting wire 120.
[0017] In one embodiment, the inductor wire 113 of each resistor 110 is a wire circuit with an inductive effect in a circuit, and thus the inductor wire 113 can be considered an inductor. The antenna wire 112 of each resistor 110 of the present invention is equivalent to an antenna, and the resistor body 111 and the inductor wire 113 of each resistor 110 are equivalent to an RL filter circuit.
[0018] When each resistor 110 receives an electromagnetic energy wave 10 from the antenna wire 112, the electromagnetic energy wave 10 is filtered into a filtered signal by the resistor body 111 and the inductor wire 113, which is equivalent to an RL filter circuit, and the inductor wire 113 transmits the filtered signal to the connecting wire 120, so that the connecting wire 120 receives the filtered signal and generates a resonant state signal and outputs the resonant state signal.
[0019] The present invention combines the filtered signal output from the inductor wire 113 into the resonant signal output by the connecting wire 120. A user of the present invention can simply adjust the resistance value of each resistor body 111 by replacing the resistor body 111, thereby adjusting the filtered signal output by each inductor wire 113, that is, adjusting the frequency and waveform characteristics of the resonant signal output by the connecting wire 120. The user uses the resonant signal output by the present invention as an energy frequency signal emitted by a simulated energy transmitter. Since the first resistor combination unit 100 of the present invention only has the resistor 110 and the connecting wire 120, the first resistor combination unit 100 is extremely small in size and has a low manufacturing cost, thereby improving the problems of the prior art.
[0020] Please also refer to Figure 2As shown, in one embodiment of the present invention, the energy signal transceiver device includes multiple resistor combination units, such as a first resistor combination unit 100, a second resistor combination unit 200, and a third resistor combination unit 300. The second resistor combination unit 200 and the third resistor combination unit 300 both have the same resistors 110 and connecting wires 120 as the first resistor combination unit 100. However, the number of resistors 110 in the second resistor combination unit 200 and the third resistor combination unit 300 can be different. For example, in this embodiment, the first resistor combination unit 100 has three resistors 110, the second resistor combination unit 200 has two resistors 110, and the third resistor combination unit 300 has four resistors 110. The number of resistors 110 in the first resistor combination unit 100, the second resistor combination unit 200, and the third resistor combination unit 300 can be arbitrarily combined as needed.
[0021] The first, second, and third resistor combination units 100, 200, and 300 are combined to form an energy signal transceiver module. In this energy signal transceiver module, the connecting wires 120 of the first, second, and third resistor combination units 100, 200, and 300 transmit signals along the same first axis, X. Furthermore, the antenna wires 112 of each resistor 110 in the first, second, and third resistor combination units 100, 200, and 300 extend along a second axis, Y, which is perpendicular to the first axis, X. When each connecting wire 120 outputs the resonant signal, it can be placed beneath the connecting wire 120 of another resistor combination unit, overlapping the waveforms and modes of the resonant signals to ultimately output a final resonant signal having a specific waveform, mode, and frequency.
[0022] In this embodiment, the resistors 110 of the first resistor combination unit 100, the second resistor combination unit 200, and the third resistor combination unit 300 have the same specifications. For example, the lengths of the inductor wires 113, the lengths of the resistor bodies 111, and the lengths of the antenna wires 112 of the resistors 110 are equal, so that electromagnetic waves of the same band can be received. For example, the lengths of the inductor wires 113, the lengths of the resistor bodies 111, and the lengths of the antenna wires 112 of the resistors 110 are 2 mm, 1 mm, and 3 mm, respectively. In other embodiments, the lengths of the inductor wires 113, the lengths of the resistor bodies 111, and the lengths of the antenna wires 112 of the resistors 110 can also be other values, so that the lengths of the inductor wires 113, the lengths of the resistor bodies 111, and the lengths of the antenna wires 112 are not limited to 2 mm, the lengths of the resistor bodies 111, and the lengths of the antenna wires 112 are not limited to 3 mm. For example, in one embodiment, the lengths of the inductor wire 113 of the resistor 110 of the same resistor combination unit are equal, the lengths of the resistor body 111 are equal, and the lengths of the antenna wire 112 are equal, while the lengths of the inductor wire 113, the lengths of the resistor body 111, and the lengths of the antenna wire 112 of any two different resistor combination units may be unequal.
[0023] In addition, the resistor body 111 of each resistor 110 has a resistance value, and the resistance values of the resistor bodies 111 of the first resistor combination unit 100, the second resistor combination unit 200, and the third resistor combination unit 300 can be different from each other to facilitate matching the different resistance values of each resistor 110, thereby forming a circuit in which multiple groups of RL circuits are connected in parallel and have the effect of filtering different frequencies.
[0024] At least one magnet 130 is disposed above the antenna conductor 112 of each resistor 110 along the second axis Y. Figure 2In the illustrated embodiment, a magnet 130 is mounted on a first support plate 140, and the first support plate 140 is spaced apart from the antenna conductor 112 of each resistor 110 by a distance. The magnet 130 has two opposing poles, which are arranged along the second axis Y. In one embodiment, the magnet 130 is provided with an auxiliary structure 131, which can be an iron wire, an iron sheet, or an elliptical iron ring made of the iron wire or the iron sheet. The iron wire, the iron sheet, or the elliptical iron ring is positioned below one of the two poles of each magnet 130. The iron wire or the iron sheet can also completely surround the two poles of the magnet 130 to increase the magnetic strength of the poles. Therefore, the iron wire, the iron sheet, or the elliptical iron ring can increase the magnetic strength sensed by each inductor conductor 113, thereby increasing the signal strength of the electromagnetic energy wave 10 sensed by each resistor combination unit. The iron sheet can be shaped as an elongated iron sheet. The aforementioned iron wire or iron sheet may be hollow and form a surrounding structure.
[0025] Please also refer to Figure 3 As shown, in another embodiment, the energy signal transceiver device also includes a fourth resistor combination unit 400. The first resistor combination unit 100, the second resistor combination unit 200, the third resistor combination unit 300, and the fourth resistor combination unit 400 have the same number of resistors 110. The connecting wire 120 of the fourth resistor combination unit 400 also transmits signals along the first axis X along with the other aforementioned connecting wires 120. Furthermore, a plurality of magnets 130 are disposed on the first support plate 140, and the positions of the magnets 130 along the first axis X correspond to the positions of the first resistor combination unit 100, the second resistor combination unit 200, the third resistor combination unit 300, and the fourth resistor combination unit 400 along the first axis X. Furthermore, the auxiliary structure 131, namely the aforementioned iron wire, iron sheet, or elliptical iron ring, is positioned below the magnet 130. The phrase "below the magnet 130" refers to the region between the at least one resistor combination unit and the magnet 130.
[0026] Furthermore, each of the first resistor combination unit 100, the second resistor combination unit 200, the third resistor combination unit 300, and the fourth resistor combination unit 400 includes a wire base 150, and the connecting wires 120 are disposed in and extend from the corresponding wire bases 150. The resistors 110 are inserted into the corresponding wire bases 150 to electrically connect to the connecting wires 120 in the wire bases 150. The wire bases 150 of the first resistor combination unit 100 and the wire bases 150 of the fourth resistor combination unit 400 are offset in position along the first axial direction X. As such, the resistors 110 of the fourth resistor combination unit 400, which is offset from the first resistor combination unit 100, are distributed along the first axial direction X between the resistors 110 of the first resistor combination unit 100. In one embodiment, the wire bases 150 may be disposed on the same plane. In another embodiment, the wire bases 150 may be disposed on different planes.
[0027] In this embodiment, the wire bases 150 are all rectangular parallelepipeds, and the magnets 130 can have different specifications. For example, one of the magnets 130 can be larger and have stronger magnetism, providing magnetism to both the first resistor assembly unit 100 and the fourth resistor assembly unit 400. In other embodiments, even without the wire base 150, the resistor assembly units of the present invention can still operate and generate signals. In other embodiments, the wire base 150 can also have other shapes.
[0028] In addition, the present invention also has an output unit electrically connected to the terminal of the connecting wire 120 to convert the resonance state signal output by the connecting wire 120 into other forms of energy signals. For example, the output unit can be an acoustic or ultrasonic transducer.
[0029] The present invention also includes a processing unit. In this embodiment, the processing module is aligned with the connecting wires 120 of each of the first resistor combination unit 100, the second resistor combination unit 200, the third resistor combination unit 300, and the fourth resistor combination unit 400 along the first axis X, and is configured to receive signals transmitted by all of the connecting wires 120 of the first resistor combination unit 100, the second resistor combination unit 200, the third resistor combination unit 300, and the fourth resistor combination unit 400. When the processing unit receives the final resonant state signal from the connecting wires 120, the processing unit analyzes the final resonant state signal generated by superimposing the multiple resonant state signals output by the connecting wires 120 to generate a waveform analysis result. For example, the processing unit can be a computer or an oscilloscope. After the processing unit generates the waveform analysis results, the waveform analysis results can be directly or indirectly displayed for the user's reference, so that the user can immediately understand the status of the energy signal transceiver receiving and filtering the electromagnetic energy wave 10, as well as the status of the final resonant state signal emitted by the energy signal transceiver of the present invention. The user of the present invention can further utilize the final resonant state signal output by the present invention to simulate the energy wave of the energy transmitter with a specific waveform, mode and frequency to make more subsequent applications. The energy transmitter, for example, can be a drug.
[0030] Even in the aforementioned embodiment, with respect to a single resistor assembly unit, the conductor base 150 is disposed between the connecting conductor 120 and its corresponding resistor 110, and the magnet 130 correspondingly disposed on the first support plate 140 is disposed above the resistor 110. Referring to the aforementioned embodiment, the length of the inductor conductor 113, the length of the resistor body 111, and the length of the antenna conductor 112 total only 6 mm, which is on the order of millimeters or centimeters. The resistor 110, the connecting conductor 120, the magnet 130, the first support plate 140, and the conductor base 150 of the present invention are still significantly smaller than the dimensions of conventional MORA bioenergy resonance devices or Rayonex bioenergy resonance systems. Furthermore, the present invention's overall structure is simple, facilitating easy operation and component replacement for users to quickly modify desired output signal characteristics, such as setting the resonant frequency of the resonant signal or adjusting the waveform, mode, and frequency of the filtered resonant signal.
[0031] The above description is merely a preferred embodiment of the present invention and does not constitute any form of limitation to the present invention. Although the present invention has been disclosed as a preferred embodiment, it is not intended to limit the present invention. Any technician familiar with the present profession can make some changes or modifications to equivalent embodiments of the technical contents disclosed above without departing from the scope of the technical solution of the present invention. However, any simple modifications, equivalent changes and modifications made to the above embodiments based on the technical essence of the present invention without departing from the content of the technical solution of the present invention are still within the scope of the technical solution of the present invention.
Claims
1. An energy signal transceiver, characterized in that: include: At least one resistance combination unit, including a plurality of resistors and a connecting wire; Each resistor has a resistor body and an antenna conductor and an inductor conductor located at opposite ends of the resistor body. One end of the antenna conductor of the resistor is open-circuited, and the other end of the antenna conductor of the resistor is connected to each resistor body. The inductor conductor of the resistor is electrically connected between the resistor body and the connecting conductor. When each resistor receives a wireless signal from the antenna wire, the wireless signal passes through the resistor and the inductor wire to form a plurality of filtered signals, and the inductor wire outputs the filtered signals to the connecting wire; The connecting wire receives the filtered signal to generate a resonance signal.
2. The energy signal transceiver according to claim 1, wherein: The energy signal transceiver device includes a plurality of the resistor combination units, and the resistor combination units are combined to form an energy signal transceiver module; The connecting wires of the resistor combination unit of the energy signal transceiver module are arranged together toward a first axial direction.
3. The energy signal transceiver according to claim 2, wherein: The antenna wire of the resistor of the resistor combination unit of the energy signal transceiver module is extended along a second axis, and the second axis is perpendicular to the first axis.
4. The energy signal transceiver according to claim 1, wherein: Further including: an output unit electrically connected to a terminal of the connecting wire, and converting the resonant state signal output by the connecting wire into an energy signal in another form; a processing unit, aligning the connecting wires of the resistor combination unit; When the processing unit receives the resonance signal from the connecting wire of the resistance combination unit, the processing unit generates a waveform analysis result according to the resonance signal.
5. The energy signal transceiver according to claim 1, wherein: The antenna wire of the resistor is extended along a second axial direction, and at least one magnet is provided on the second axial direction. The two opposing poles of the at least one magnet are arranged along the second axial direction and are spaced apart from the antenna wire. An auxiliary structure is placed under one of the poles of the magnet. The auxiliary structure is an iron wire or an iron sheet.
6. The energy signal transceiver according to claim 5, wherein: The iron wire or the iron sheet of the auxiliary structure forms an elliptical iron ring.
7. The energy signal transceiver according to claim 1, wherein: The at least one resistance combination unit is a plurality of the resistance combination units; Among them, the lengths of the inductor wires of the resistors of the same resistor combination unit are equal, the lengths of the resistor bodies are equal, and the lengths of the antenna wires are equal, while the lengths of the inductor wires, the lengths of the resistor bodies, and the lengths of the antenna wires of two different resistor combination units are not equal.
8. The energy signal transceiver device according to claim 1, wherein: The resistor body of each resistor has a resistance value, and the resistance values of the resistor bodies are different from each other.
9. The energy signal transceiver according to claim 1, wherein: The resistor combination unit further includes a wire base. The connecting wire is arranged in the wire base and extends out from the wire base. The resistor is inserted into the wire base to be electrically connected to the connecting wire in the wire base.
10. The energy signal transceiver device according to claim 9, wherein: The conductor base is a rectangular parallelepiped.