A space electric field generating system

Through the space electric field generation system controlled by a microcontroller, the electric field intensity and frequency are adjusted according to the cell heartbeat and temperature, and the problem of poor electric field adaptability in the prior art is solved, achieving accurate cell membrane potential stimulation.

CN119345600BActive Publication Date: 2025-08-19HUNAN XINGWANG WEIAI LIFE TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202411484203.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-10-23
Publication Date
2025-08-19
Estimated Expiration
2044-10-23

AI Technical Summary

Technical Problem

The existing space electric field technology cannot target the electric potential of different detection targets, and is poor in adaptability and cannot achieve accurate cell membrane potential stimulation.

Method used

A space electric field generation system controlled by a microcontroller includes a power supply module, an electric field regulation module, a detection module and an electric field emitter. By detecting the target state, the current frequency and power are adjusted to generate an electric field matching the metabolic efficiency of cells.

Benefits of technology

It realizes automatic adjustment of the electric field intensity and frequency according to the cell heartbeat and temperature, accurately stimulating the cell membrane potential of different cells, and improving the adaptability and accuracy of electric field regulation.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The present invention discloses a spatial electric field generation system. The electric field regulation module includes an electric field frequency regulation module and an electric field power regulation module. The power module outputs three-phase electricity. The electric field frequency regulation module receives the two-phase current output by the power module and adjusts the bidirectional current frequency according to the detection target state obtained by the detection module. The spatial electric field generator boosts the bidirectional current after the frequency adjustment, wherein one phase current is connected to the feedback module to increase the output current of the other phase current, and the output current of the other phase current is connected to the electric field power regulation module to adjust the output power of the single-phase current. The electric field transmitter generates a spatial electric field after receiving the single-phase current after the power adjustment, and applies an electric potential to the detection target. The present invention can upload the heartbeat and temperature of the target body to the single-chip microcomputer based on the detection data of the detection module. According to the heartbeat and temperature values, the system automatically adjusts different electric field intensities to match the power and voltage of the corresponding electric field to match the metabolic efficiency of the appropriate cells.
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Description

Technical Field

[0001] The present invention relates to the technical field of space electric field, in particular to a space electric field generating system. Background Art

[0002] Modern physics shows that charged particles become more active in higher electric fields; low-potential electric fields are amplified in higher-potential electric fields, similar to how mobile phone batteries charge. Therefore, the activity of charged particles varies under electric fields of varying power intensities. With the continuous advancement of biomedical technology, cell membrane potential, a key indicator of cellular activity, has attracted widespread attention for its regulation. Cell membrane potential consists of two types: resting potential and action potential. Resting potential is the potential difference between the two sides of a tissue cell membrane when it is at rest. Action potential is the change in potential above the resting potential that occurs when a cell is stimulated.

[0003] Existing space electric field potential regulation technology uses electromagnetic waves or fixed-frequency space electric fields to stimulate and regulate the space electric potential. This technology typically uses a two-phase transformer to boost the voltage from low to high. The neutral line is then boosted and connected back to the input to recover energy. The live line is then boosted and fed into the electric field transmitter as single-phase DC power. When a fixed-intensity electric field is used in different scenarios, applying an electric potential to a target within the normal space electric field zone will cause changes in the electric field lines. However, a single-frequency space electric field cannot apply a specific electric potential to different targets, resulting in poor adaptability. Summary of the Invention

[0004] In order to overcome the above-mentioned shortcomings of the prior art, the purpose of the present invention is to provide a spatial electric field generating system to solve the problems raised by the above-mentioned background technology.

[0005] The technical solution adopted by the present invention to solve the technical problem is: a space electric field generating system, including a single chip microcomputer, a power module, a space electric field generator, an electric field regulating module, a detection module and an electric field transmitter;

[0006] The electric field regulation module includes an electric field frequency regulation module and an electric field power regulation module. The power supply module outputs three-phase electricity. The electric field frequency regulation module receives the two-phase current output by the power supply module, obtains the detection target state according to the detection module, and adjusts the bidirectional current frequency.

[0007] The spatial electric field generator boosts the bidirectional current after frequency adjustment, wherein one phase current is connected to the feedback module to increase the output current of the other phase current, and the output current of the other phase current is connected to the electric field power regulation module to adjust the output power of the single-phase current;

[0008] The electric field transmitter generates a spatial electric field after receiving the single-phase electricity with adjusted power, and applies an electric potential to the detection target.

[0009] As a further improvement of the present invention: the detection module obtains the heartbeat and temperature of the target body, uploads the heartbeat and temperature of the target body to the microcontroller, and mobilizes the electric field power adjustment module according to the heartbeat and temperature values with a preset program to adjust multiple electric field intensities.

[0010] As a further improvement of the present invention: the electric field frequency adjustment module calculates the spatial electric field frequency output according to the average value of the target potential change period of the detection target, and outputs the spatial electric field frequency to the target of the detection target.

[0011] As a further improvement of the present invention: the circuit of the electric field frequency adjustment module specifically includes a transformer, and the transformer adjusts the transformer output strength according to a preset program to adjust multiple electric field intensities.

[0012] As a further improvement of the present invention, the spatial electric field generating system further includes a feedback module electrically coupled to the ground wire and the voltage conversion circuit and configured to output a feedback voltage of the converted voltage.

[0013] As a further improvement of the present invention, the circuit of the feedback module specifically includes a capacitor C1 and a capacitor C2 connected in series, and the capacitor C1 is connected to one end of the secondary coil of the transformer.

[0014] As a further improvement of the present invention: the electric field power regulation module is connected in series to the output end of the space electric field generator, the electric field power regulation module is set to a variable resistance regulation module of 0M-50MΩ, the variable resistance regulation module is connected to the single-chip microcomputer, and the variable resistance regulation module adjusts the resistance according to the data of the detection module to adjust the voltage value of the space electric field.

[0015] As a further improvement of the present invention: the circuit of the electric field power regulation module is specifically: the electric field power regulation module is set to a variable resistance regulation module of 0M-50MΩ, the variable resistance regulation module is connected to the single-chip microcomputer, and the variable resistance regulation module adjusts the resistance according to the data of the detection module to adjust the voltage value of the spatial electric field.

[0016] As a further improvement of the present invention: the space electric field generator has a built-in boost module, and the 3-220V voltage of the power module is boosted to 1000-3000V through the boost module.

[0017] As a further improvement of the present invention: the ratio of the primary coil to the secondary coil of the transformer is 1:2-10.

[0018] Compared with the prior art, the present invention has the following beneficial effects:

[0019] The present invention can upload the heartbeat and temperature of the target body to the single-chip microcomputer based on the detection data of the detection module, and automatically adjust different electric field intensities according to the heartbeat and temperature values to match the power and voltage of the corresponding electric field to match the metabolic efficiency of appropriate cells. In addition, an electric field frequency adjustment module is also used to design a variety of corresponding cell membrane potential adjustment frequencies according to the cell membrane potential action cycles of different cells, so as to achieve precise stimulation of the cell membrane potential of different cells. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 It is a structural schematic diagram of the present invention.

[0021] Figure 2 It is a structural schematic diagram of the present invention.

[0022] Figure 3 Schematic diagram of the circuit of the present invention. DETAILED DESCRIPTION

[0023] To make the objectives, technical solutions, and advantages of the present invention more clear, the technical solutions of the present invention will be clearly and completely described below in conjunction with specific embodiments of the present invention and corresponding drawings. Obviously, the embodiments described are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0024] Cell membrane potential consists of two types: resting potential and action potential. The resting potential is the potential difference between the two sides of the cell membrane when the cell is at rest. The action potential is the change in potential from the resting potential that occurs when the cell is stimulated. (Appendix 1: Diagram of the five phases of the action potential in myocardial cells)

[0025] When a cell is at rest, positive charges reside on the outside of the membrane (positive external potential) and negative charges reside on the inside (negative internal potential). This state is called polarization. If the potential difference between the inside and outside of the membrane increases, that is, the resting potential changes toward a more negative value inside the membrane, this is called hyperpolarization. Conversely, if the potential difference between the inside and outside of the membrane decreases, that is, the internal potential changes toward a less negative value, this is called depolarization or depolarization. The resting potential of a typical nerve fiber is -70 to -90 mV, with the outside potential as zero. This resting potential is caused by the flow of K+ out of the cell membrane, resulting in a negative charge inside the membrane and a positive charge outside the membrane.

[0026] Now combined with the attached Figure 1-3The description and embodiments further illustrate the present invention: a space electric field generating system, including a single-chip microcomputer, a power supply module, a space electric field generator, an electric field regulation module, a detection module and an electric field transmitter; the electric field regulation module includes an electric field frequency regulation module and an electric field power regulation module, the power supply module outputs three-phase electricity, the electric field frequency regulation module receives the two-phase current output by the power supply module, and obtains the detection target state according to the detection module to adjust the bidirectional current frequency; the space electric field generator boosts the bidirectional current after adjusting the frequency, wherein one phase current is connected to the feedback module to boost the output current of the other phase current, and the output current of the other phase current is connected to the electric field power regulation module to adjust the output power of the single-phase electricity; the electric field transmitter generates a space electric field after receiving the single-phase electricity after adjusting the power, and applies an electric potential to the detection target.

[0027] According to the space electric field generating system of the present application, the present application is mainly composed of a single-chip microcomputer, a power supply module, a space electric field generator, an electric field regulation module, a detection module and an electric field transmitter, wherein the electric field regulation module includes an electric field frequency regulation module and an electric field power regulation module. The present application can upload the heartbeat and temperature of the target body to the single-chip microcomputer based on the detection data of the detection module, and automatically adjust different electric field intensities according to the heartbeat and temperature values, to match the power and voltage of the corresponding electric field to match the metabolic efficiency of suitable cells. In addition, the electric field frequency regulation module is also used to design a variety of corresponding cell membrane potential regulation frequencies according to the cell membrane potential action cycles of different cells, so as to achieve precise stimulation of the cell membrane potential of different cells.

[0028] In one embodiment of the present application: the detection module obtains the heartbeat and temperature of the target body, uploads the heartbeat and temperature of the target body to the single-chip microcomputer, and according to the heartbeat and temperature values, mobilizes the electric field power adjustment module with a preset program to adjust multiple electric field intensities, match the power and voltage of the corresponding electric field, and match the metabolic efficiency of the appropriate cells.

[0029] In one embodiment of the present application, the electric field frequency adjustment module calculates the spatial electric field frequency output based on the average value of the target potential change cycle of the detection target, and outputs the spatial electric field frequency to the detection target. In this embodiment, a variety of corresponding cell membrane potential adjustment frequencies are designed based on the cell membrane potential action cycle of different cells, thereby achieving precise stimulation of the cell membrane potential of different cells.

[0030] In this application, the electric field strength and frequency are adjusted according to the membrane potential operating frequency of different cells. The electric field power is targeted at different cell states, and the corresponding power intensity is applied to regulate the cell membrane potential. This application uses a closed-loop feedback regulation method, which automatically adjusts the regulation parameters to achieve the preset potential value by monitoring the temperature and heart rate of the target organism in real time. This method has the advantages of fast regulation speed and high precision, and can achieve stable regulation of cell membrane potential.

[0031] In one embodiment of the present application, the circuit of the electric field frequency adjustment module specifically includes a transformer, and the transformer adjusts the transformer output strength according to a preset program to adjust multiple electric field intensities.

[0032] In one embodiment of the present application, the spatial electric field generating system further includes a feedback module electrically coupled to a ground wire and a voltage conversion circuit and configured to output a feedback voltage of a converted voltage.

[0033] In one embodiment of the present application, the feedback module circuit specifically includes a capacitor C1 and a capacitor C2 connected in series, wherein the capacitor C1 is connected to one end of the transformer secondary winding, and one end of the capacitor C2 is connected to the ground line. In this embodiment, the capacitors C1 and C2 are set to be greater than the boost winding voltage.

[0034] In one embodiment of the present application, the electric field power regulation module is connected in series to the output of the spatial electric field generator. The electric field power regulation module is configured as a variable resistance regulation module with a range of 0M-50MΩ. The variable resistance regulation module is connected to a single-chip microcomputer. The variable resistance regulation module adjusts the resistance based on the data from the detection module to adjust the voltage value of the spatial electric field. This embodiment automatically adjusts the electric field strength based on the detection data of the detection module and the heartbeat and temperature of the target organism to the single-chip microcomputer, matching the power and voltage of the corresponding electric field to the metabolic efficiency of the appropriate cells.

[0035] In one embodiment of the present application: the circuit of the electric field power regulation module is specifically: the electric field power regulation module is set to a variable resistance regulation module of 0M-50MΩ, the variable resistance regulation module is connected to the single-chip microcomputer, and the variable resistance regulation module adjusts the resistance according to the data of the detection module to adjust the voltage value of the spatial electric field.

[0036] In one embodiment of the present application, the spatial electric field generator has a built-in boost module, which boosts the 3-220V voltage of the power module to 1000-3000V. In this embodiment, the boost module adjusts the potential intensity according to the high and low levels of the cell's action potential.

[0037] In one embodiment of the present application: the ratio of the primary coil to the secondary coil of the transformer is 1:2-10.

[0038] Power plant transmitter: Metal cables with a resistance of 0-1Ω per meter are evenly distributed on the space electric field emission pad at intervals of 1-10CM. The cores at both ends of the cable are butted together and insulated and sealed with the output end of the electric field generator.

[0039] In an application embodiment, as shown in the following table:

[0040]

[0041] The working principle of the present invention is mainly based on biological sign detection and potential adjustment technology. During the working process, the real-time data of human vital signs is first obtained through the detection module, and then transmitted to the single-chip microcomputer for data processing and analysis. The single-chip microcomputer calculates the adjustment amount according to the preset parameters and real-time data, and controls the electric field adjustment module to perform potential adjustment. During the adjustment process, the detection module continuously monitors the changes in cell membrane potential and feeds back the data to the control module in real time to achieve closed-loop feedback adjustment.

[0042] In the embodiments of the present invention, unless otherwise expressly specified or limited, terms such as "installed," "connected," "connect," and "fixed" should be interpreted broadly. For example, they may refer to fixed or detachable connections, or integration; mechanical or electrical connections; direct or indirect connections through an intermediary; and internal communication between two components or interaction between two components. Those skilled in the art will understand the specific meanings of these terms in the embodiments of the present invention based on specific circumstances.

[0043] In summary, after reading the present invention document, ordinary technicians in this field can make various other corresponding transformation schemes based on the technical solutions and technical concepts of the present invention without creative mental work, and all of them fall within the scope of protection of the present invention.

Claims

1. A space electric field generating system, characterized in that: It includes a single chip microcomputer, a power module, a space electric field generator, an electric field regulation module, a detection module and an electric field transmitter; The electric field regulation module includes an electric field frequency regulation module and an electric field power regulation module. The power supply module outputs three-phase electricity. The electric field frequency regulation module receives the two-phase current output by the power supply module, obtains the detection target state according to the detection module, and adjusts the bidirectional current frequency. The spatial electric field generator boosts the bidirectional current after frequency adjustment, wherein one phase current is connected to the feedback module to increase the output current of the other phase current, and the output current of the other phase current is connected to the electric field power regulation module to adjust the output power of the single-phase current; The electric field transmitter generates a spatial electric field after receiving the single-phase electricity with adjusted power, and applies an electric potential to the detection target; The detection module obtains the heartbeat and temperature of the target body, uploads the heartbeat and temperature of the target body to the single chip microcomputer, and mobilizes the electric field power adjustment module according to the heartbeat and temperature values with a preset program to adjust multiple electric field intensities.

2. A space electric field generating system according to claim 1, characterized in that: The electric field frequency adjustment module calculates the spatial electric field frequency output according to the average value of the target potential change period of the detection target, and outputs the spatial electric field frequency to the target of the detection target.

3. A space electric field generating system according to claim 2, characterized in that: The circuit of the electric field frequency adjustment module specifically includes a transformer, and the transformer adjusts the transformer output strength according to a preset program to adjust multiple electric field strengths.

4. A space electric field generating system according to claim 3, characterized in that: The spatial electric field generating system further includes a feedback module electrically coupled to a ground wire and a voltage conversion circuit and configured to output a feedback voltage of a converted voltage.

5. A space electric field generating system according to claim 4, characterized in that: The circuit of the feedback module specifically includes a capacitor C1 and a capacitor C2 connected in series, and the capacitor C1 is connected to one end of the secondary coil of the transformer.

6. A space electric field generating system according to claim 5, characterized in that: The electric field power regulation module is connected in series to the output end of the space electric field generator and is connected to the single chip microcomputer. The electric field power regulation module adjusts the resistance according to the data of the detection module to adjust the voltage value of the space electric field.

7. A space electric field generating system according to claim 6, characterized in that: The circuit of the electric field power regulation module is specifically as follows: the electric field power regulation module is set to a variable resistance regulation module of 0M-50MΩ, the variable resistance regulation module is connected to the single-chip microcomputer, and the variable resistance regulation module adjusts the resistance according to the data of the detection module to adjust the voltage value of the spatial electric field.

8. A space electric field generating system according to claim 7, characterized in that: The space electric field generator has a built-in boost module, and the 3-220V voltage of the power module is boosted to 1000~3000V through the boost module.

9. A space electric field generating system according to claim 8, characterized in that: The ratio of the primary coil to the secondary coil of the transformer is 1:2-10.

Citation Information

Patent Citations

  • Variable-frequency electric field generating system

    CN219517578U