Method and device for driving movement of target object by means of gravitational field generated by varying electromagnetic field

By generating a time-varying electromagnetic field and combining it with a feedback system to adjust the electromagnetic field parameters, the problem that traditional electromagnetic technology is difficult to drive non-magnetic and non-conductive materials has been solved, achieving high-precision material motion control and expanding the application fields of electromagnetic technology.

WO2026157422A1PCT designated stage Publication Date: 2026-07-30ZHANG XIANGQIAN LLC +1
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Patent Information

Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
ZHANG XIANGQIAN LLC
Filing Date
2025-11-04
Publication Date
2026-07-30

AI Technical Summary

Technical Problem

Traditional electromagnetic technology struggles to simulate the motion of various objects driven by gravitational fields, especially non-magnetic and non-conductive materials, and existing technologies cannot achieve precise control.

Method used

A time-varying electromagnetic field is generated by a variable electromagnetic field generator, and the frequency, amplitude and phase are adjusted. Combined with a feedback system, the electromagnetic field parameters are monitored and adjusted in real time to drive the target object to move along a predetermined trajectory or direction.

Benefits of technology

It achieves high-precision and flexible motion control of various materials, broadens the application scope of electromagnetic force drive technology, and is applicable to fields such as micro-nano technology, biomedicine, aerospace and industrial automation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to the technical field of physics, and provides a method and device for driving the movement of a target object by means of a gravitational field generated by a varying electromagnetic field. The method comprises: generating, by means of a variable electromagnetic field generator, a time-varying electromagnetic field in a space where a target is located; adjusting the frequency, amplitude and phase of the time-varying electromagnetic field to generate an effect of a varying magnetic field in the space; and generating, on the basis of the time-varying electromagnetic field, an acting force on a target object to drive the target object to move along a predetermined trajectory or direction. The present application aims to utilize varying characteristics of an electromagnetic field to simulate an acting force similar to that of a gravitational field, and generate an effect similar to that of a gravitational field by means of a varying electromagnetic field, thereby driving the movement of all objects including non-magnetic substances and non-conductive substances, and achieving accurate control of the movement of the substances. By adjusting variations in the electromagnetic field to produce a gravity-like effect, the movement of all substances including the non-magnetic substances and the non-conductive substances are driven.
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Description

Method and apparatus for generating a gravitational field from a changing electromagnetic field to drive the motion of a target object

[0001] Cross-reference of related applications

[0002] This application claims priority to Chinese Patent Application No. 202510096105.X, filed on January 21, 2025, entitled “Method and Apparatus for Generating a Gravitational Field by Changing Electromagnetic Field to Drive the Motion of a Target Object”, the entire contents of which are incorporated herein by reference. Technical Field

[0003] This application relates to the field of physics technology, specifically to a method and apparatus for generating a gravitational field by changing an electromagnetic field to drive the motion of a target object. Background Technology

[0004] Currently, most traditional material-driven devices rely on common mechanical principles such as direct mechanical force and electromagnetic force. For example, an electric motor drives a rotor to perform mechanical motion by using the magnetic field generated by the electric current, while electromagnetic levitation technology utilizes the interaction of magnetic fields to levitate or propel objects. However, these technologies are limited in that they are only applicable to specific materials or types of matter. Within the current scientific framework, magnetic fields and gravitational fields are fundamentally different, and the effect of electromagnetic force on matter is generally unrelated to gravity. Therefore, it is difficult to use traditional electromagnetic technology to simulate gravitational fields and drive the motion of various objects. Summary of the Invention

[0005] One or more embodiments of this application provide a method for generating a gravitational field by changing an electromagnetic field to drive the motion of a target object, comprising the following steps:

[0006] A time-varying electromagnetic field is generated in the space where the target is located by a variable electromagnetic field generator;

[0007] By adjusting the frequency, amplitude, and phase of a time-varying electromagnetic field, a changing magnetic field effect can be generated in space.

[0008] The time-varying electromagnetic field exerts a force on the target object, driving the target object to move along a predetermined trajectory or direction.

[0009] In one or more embodiments, the variable electromagnetic field generator includes a high-voltage DC power supply, a frequency converter, and an electromagnetic coil, wherein the power supply provides an adjustable current to the electromagnetic coil, and the frequency converter is configured to adjust the frequency and waveform of the current to generate a varying electromagnetic field.

[0010] In one or more embodiments, the time-varying electromagnetic field is an electromagnetic field generated by a changing pulsed direct current.

[0011] In one or more embodiments, the target object is any material including magnetic materials, non-magnetic materials, or non-conductive materials.

[0012] In one or more embodiments, based on the time-varying electromagnetic field exerting a force on the target object, when driving the target object to move along a predetermined trajectory or direction, the frequency, amplitude, and phase parameters of the electromagnetic field are controlled to adjust the force exerted by the electromagnetic field on the target object; so that the change of the electromagnetic field produces an effect similar to a gravitational field, affecting the position of the target object in space and driving the matter to move along a predetermined trajectory.

[0013] In one or more embodiments, the method for generating a gravitational field from a changing electromagnetic field to drive the target object to move further includes: monitoring the motion state of the target object in real time through a feedback system, and adjusting and controlling the changing characteristics of the electromagnetic field based on the feedback.

[0014] In one or more embodiments, the feedback system includes a position sensor, a velocity sensor, and an acceleration sensor, configured to monitor the motion state of the object's position, velocity, and acceleration in real time.

[0015] One or more embodiments of this application also provide a device for generating a gravitational field effect by changing an electromagnetic field to drive the motion of a target object, comprising:

[0016] A variable electromagnetic field generator is configured to generate a time-varying electromagnetic field. The variable electromagnetic field generator includes a high-voltage DC power supply, a frequency converter, and an electromagnetic coil.

[0017] The control unit is configured to adjust the operating state of the variable electromagnetic field generator and control the frequency, amplitude, and phase of the electromagnetic field;

[0018] A material support platform is configured to support and position a target object, and the platform can adjust the relative position of the target object.

[0019] The feedback system is configured to monitor the motion state of the target object in real time and adjust the parameters of the electromagnetic field based on the monitoring data.

[0020] In one or more embodiments, the variable electromagnetic field generator includes:

[0021] A vacuum chamber, inside which a small ball is suspended by a fine cotton thread. The ball is made of any material and can rotate in a vacuum environment.

[0022] Two coils are set on the upper and lower sides of the vacuum tank, with the upper coil connected to a high-voltage DC pulse power supply and the lower coil grounded;

[0023] The coils are wound with silicone wires, and the wires of each coil are copper wires. The wires between the coils are broken and arranged in a staggered manner in space.

[0024] In one or more embodiments, the break point between the two coils is not insulated, forming an open break point; as a further embodiment of the invention, the ball is suspended by a thin cotton thread, one end of which is fixed inside the vacuum tank, and is configured to rotate freely under the action of an electromagnetic field.

[0025] In one or more embodiments, the vacuum tank has a diameter of 10 cm, and the coil above it is connected to the output terminal of a high-voltage DC generator with a voltage range of 50,000 volts and a current of one ten-thousandth of an ampere.

[0026] In one or more embodiments, the internal pressure of the vacuum tank is adjusted to a vacuum state, and the variable electromagnetic field generator can generate a gravitational-like effect in a vacuum environment, driving the rotation or movement of all materials.

[0027] In one or more embodiments, the feedback system includes a position sensor, a velocity sensor, and an acceleration sensor, configured to monitor the motion state of the target object.

[0028] In one or more embodiments, the variable electromagnetic field generator is capable of generating variable pulsed direct current.

[0029] In one or more embodiments, the control unit adjusts the electromagnetic field parameters through a real-time data processing algorithm to ensure that the target object moves along a predetermined trajectory.

[0030] In one or more embodiments, the material support platform can be configured with different support forms to adapt to the movement requirements of different types of materials. Attached Figure Description

[0031] To more clearly illustrate the technical solutions in the embodiments of this application or related technologies, the accompanying drawings used in the description of the exemplary embodiments or related technologies will be briefly introduced below. The drawings are used to provide a further understanding of this application and constitute a part of the specification. They are used together with the embodiments of this application to explain this application and do not constitute a limitation on this application. In the drawings:

[0032] Figure 1 is a flowchart of a method for generating a gravitational field by changing an electromagnetic field to drive the motion of a target object according to an embodiment of this application.

[0033] Figure 2 is a structural diagram of a device for generating a gravitational field effect by changing an electromagnetic field to drive the motion of a target object according to an embodiment of this application.

[0034] Figure 3 is a schematic diagram of the variable electromagnetic field generating device in a method and apparatus for generating a gravitational field to drive the motion of a target object using a variable electromagnetic field, according to an embodiment of this application.

[0035] Figure 4 is a schematic diagram of a method and apparatus for generating a gravitational field by changing an electromagnetic field to drive the motion of a target object according to an embodiment of this application, in which the wires between the coils are disconnected and arranged in a staggered manner in space.

[0036] Explanation of reference numerals in the attached diagram: 1. High-voltage DC generator; 2. Upper coil; 3. Fine cotton thread; 4. Vacuum tank; 5. Small ball; 6. Lower coil; 7. Ground wire; 10. Variable electromagnetic field generator; 20. Control unit; 30. Material support platform; 40. Feedback system. Detailed Implementation

[0037] The present application will now be further described in conjunction with the accompanying drawings and specific embodiments. It should be noted that, without conflict, the various embodiments or technical features described below can be arbitrarily combined to form new embodiments.

[0038] To make the objectives, technical solutions, and advantages of this application clearer, the embodiments of this application are further described in detail below with reference to specific examples and accompanying drawings. It should be understood that the specific embodiments described herein are merely illustrative and are not intended to limit the scope of this application.

[0039] It should be noted that all uses of "first" and "second" in the embodiments of this application are for the purpose of distinguishing two different entities or different parameters with the same name. Therefore, "first" and "second" are merely for convenience of expression and should not be construed as limiting the embodiments of this application. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion, such as other steps or units inherent in a process, method, system, product, or device that includes a series of steps or units.

[0040] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this application. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0041] The flowchart shown in the attached diagram is for illustrative purposes only and does not necessarily include all content and operations / steps, nor does it necessarily have to be performed in the order described. For example, some operations / steps can be broken down, combined, or partially merged, so the actual execution order may change depending on the actual situation.

[0042] The following detailed description of some embodiments of this application is provided in conjunction with the accompanying drawings. Unless otherwise specified, the following embodiments and features can be combined with each other.

[0043] Since traditional matter-driven devices mostly rely on common mechanical principles such as direct mechanical force and electromagnetic force, and given the fundamental differences between magnetic and gravitational fields within the current scientific framework, and the fact that the influence of electromagnetic force on matter is generally unrelated to gravity, it is difficult to use traditional electromagnetic technology to simulate gravitational fields and drive the motion of various objects. In view of this, this application proposes a method and apparatus for generating a gravitational field by changing an electromagnetic field to drive the motion of a target object. The aim is to utilize the changing characteristics of the electromagnetic field to simulate a force similar to a gravitational field, generating an effect similar to a gravitational field through a changing electromagnetic field, thereby driving the motion of all objects, including non-magnetic and non-conductive materials, and achieving precise control over the motion of matter. This method does not rely on traditional electromagnetic force or mechanical propulsion, but rather generates a gravitational-like effect by adjusting changes in the electromagnetic field, thus driving the motion of all materials, including non-magnetic and non-conductive materials.

[0044] Referring to Figure 1, an embodiment of this application provides a method for generating a gravitational field by changing an electromagnetic field to drive the motion of a target object. The method includes the following steps:

[0045] Step S10: Generate a time-varying electromagnetic field in the space where the target is located using a variable electromagnetic field generator.

[0046] In this step, the variable electromagnetic field generating device includes a high-voltage DC power supply, a frequency converter, and an electromagnetic coil. The power supply provides an adjustable current to the electromagnetic coil, and the frequency converter is used to adjust the frequency and waveform of the current to generate a changing electromagnetic field.

[0047] In this embodiment, the variable electromagnetic field generator uses a high-voltage DC power supply, a frequency converter, and an electromagnetic coil to generate a changing electromagnetic field. The specific process is as follows:

[0048] (1) High-voltage DC power supply: Provides current and generates a basic electromagnetic field through an electromagnetic coil. The current value of the DC power supply can be adjusted, allowing the intensity of the electromagnetic field to change at any time.

[0049] (2) Frequency converter: By adjusting the frequency and waveform of the current (such as sine wave, square wave, pulse wave, etc.), a time-varying electromagnetic field is generated. Frequency adjustment causes the electromagnetic field to change periodically, thereby generating a dynamic magnetic field effect.

[0050] (3) Electromagnetic coil: The coil generates a time-varying electromagnetic field by the current supplied by a high-voltage DC power supply. The frequency and waveform of the current affect the way the magnetic field changes (e.g., the frequency, amplitude, phase, etc. of the change).

[0051] Among them, the time-varying electromagnetic field type can be: an alternating current electromagnetic field (AC), that is, the direction and intensity of the current change periodically; a pulse electromagnetic field, where the current is switched on and off rapidly; or an adjustable electromagnetic field, where the current changes with time, and different forms of electromagnetic fields can be generated as needed.

[0052] Step S20: Adjust the frequency, amplitude and phase of the time-varying electromagnetic field to generate the effect of a changing magnetic field in space.

[0053] In this step, the magnetic field effect is further optimized by controlling the parameters of the time-varying electromagnetic field, thereby generating a specific force on the target object. This step includes:

[0054] 1. Frequency Adjustment: By adjusting the frequency of the current, the period of magnetic field changes is altered. High-frequency electromagnetic fields produce rapidly changing magnetic fields, while low-frequency fields produce slower changes. This adjustment helps in the precise control of the trajectory and speed of a target object.

[0055] 2. Adjustment Amplitude: By changing the amplitude of the current (i.e., the intensity of the current), the strength of the magnetic field can be adjusted, thus affecting the magnitude of the force. A stronger magnetic field generates a larger driving force, suitable for scenarios requiring stronger thrust; a weaker magnetic field generates a smaller thrust, suitable for precision control.

[0056] 3. Phase Adjustment: By changing the phase of the electromagnetic field, directional control of different target objects can be achieved. Through phase control, the force of the magnetic field can be oriented or adjusted to more precisely guide matter to move along a specific direction or trajectory.

[0057] Step S30: Based on the time-varying electromagnetic field, a force is generated on the target object, driving the target object to move along a predetermined trajectory or direction.

[0058] In this step, the target object can be any material, including magnetic, non-magnetic, or non-conductive substances. For magnetic materials, changes in the time-varying electromagnetic field will excite interaction forces within the magnetic field, driving the material's motion. For example, objects made of permanent magnets or soft magnetic materials will generate a strong driving force in a changing magnetic field. For non-magnetic materials (such as plastics, glass, and wood), changes in the time-varying electromagnetic field can still exert a force on the object; this effect stems from the changing electromagnetic field. Especially under the influence of rapidly changing pulsed direct current, non-magnetic materials can also be propelled by a force, achieving directional motion.

[0059] In this embodiment, when the time-varying electromagnetic field exerts a force on the target object and drives the target object to move along a predetermined trajectory or direction, the frequency, amplitude, and phase parameters of the electromagnetic field are controlled to adjust the force exerted by the electromagnetic field on the target object. This causes the change in the electromagnetic field to produce an effect similar to a gravitational field, which affects the position of the target object in space and drives the matter to move along a predetermined trajectory.

[0060] The method of generating a gravitational field by changing an electromagnetic field to drive the motion of a target object in this application drives the motion of the target object by changing an electromagnetic field (time-varying electromagnetic field). In principle, it simulates the gravitational field effect, so that the target object (whether it is a magnetic, non-magnetic or non-conductive material) moves in space along a predetermined trajectory or direction.

[0061] This method has broad application potential, especially in the manipulation of tiny objects, control of precision instruments, contactless actuation, and material control in special environments.

[0062] In some embodiments, the method for generating a gravitational field from a changing electromagnetic field to drive the target object to move further includes: monitoring the motion state of the target object in real time through a feedback system, and adjusting and controlling the changing characteristics of the electromagnetic field according to the feedback.

[0063] In this embodiment, the feedback system can monitor the motion state (position, velocity, acceleration, etc.) of the target object in real time and automatically adjust the changing characteristics of the electromagnetic field based on the monitored data, thereby achieving more precise motion control. This feedback control system ensures that the target object moves along a predetermined trajectory or direction and can effectively cope with environmental changes or fluctuations in the state of matter, possessing broad application potential, especially in the fields of precision control and micro / nano manipulation.

[0064] This feedback system includes a position sensor, a velocity sensor, and an acceleration sensor, used to monitor the motion state of the target object in real time, including its position, velocity, and acceleration. The specific process is as follows:

[0065] Position sensor: Detects changes in the position of the target object in real time. Using the position data, the system can accurately determine whether the target object is on the predetermined trajectory and calculate the required adjustment.

[0066] Speed ​​sensor: Detects the instantaneous velocity of the target object to determine if its motion meets expectations. If the target object's velocity exceeds a predetermined range, the system can adjust the strength or frequency of the electromagnetic field accordingly to prevent the object from moving too fast or too slow.

[0067] Accelerometer: Detects the acceleration of the target object, further optimizing the smoothness and stability of the motion. If the acceleration of the target object is too high or too low, the feedback system can adjust the changing characteristics of the electromagnetic field to avoid violent fluctuations or jitters during the object's motion.

[0068] In this embodiment, the feedback system automatically adjusts the changing characteristics of the electromagnetic field based on real-time monitoring data. Specific adjustment methods include:

[0069] Adjusting the electromagnetic field frequency: Based on the target object's motion state, change the frequency of the electromagnetic field so that the target object's motion conforms to the expected trajectory. For example, if the object is moving too fast, decrease the electromagnetic field frequency; if the object's speed is insufficient, increase the electromagnetic field frequency.

[0070] Adjusting the electromagnetic field amplitude: Adjust the electromagnetic field strength according to the acceleration or velocity of the target object. If greater thrust is needed, the amplitude of the electromagnetic field can be increased; conversely, the amplitude of the electromagnetic field can be decreased to precisely control the velocity of the matter.

[0071] Adjusting the phase of the electromagnetic field: Based on the real-time position and direction of motion of the target object, the phase of the electromagnetic field is adjusted so that the force always points in the correct direction, thereby precisely controlling the movement of matter.

[0072] This embodiment uses a time-varying electromagnetic field to drive the target object's motion, and combined with a feedback control system, it can monitor and adjust the object's motion state in real time. By precisely controlling the frequency, amplitude, and phase of the electromagnetic field, a directional force is generated, driving the target object to move along a specific trajectory or direction.

[0073] In this method, position, velocity, and acceleration sensors monitor the state of the target object in real time and adjust the characteristics of the electromagnetic field based on the monitoring data to ensure that the target object moves precisely along the predetermined trajectory, avoiding error accumulation and deviation from the trajectory. Because it can manipulate various types of materials, including magnetic, non-magnetic, and non-conductive materials, this method is applicable to various precision control tasks, such as micro / nano object manipulation, intelligent robot control, unmanned driving systems, and spacecraft trajectory control.

[0074] This application's method, based on traditional time-varying electromagnetic field control technology, incorporates a real-time feedback control system. Through feedback from position, velocity, and acceleration sensors, it achieves dynamic adjustment of the target object's motion. This method not only precisely controls the target object's trajectory but also operates stably in uncertain environments. It has broad applicability in fields such as micro / nano material control, robotics, and spacecraft control, demonstrating enormous application potential.

[0075] The accompanying drawings are intended to illustrate the processes included in the methods according to exemplary embodiments of this application, and are not for limiting purposes. It is readily understood that the processes shown in the drawings do not indicate or limit the temporal order of these processes. Furthermore, it is readily understood that these processes may be executed synchronously or asynchronously, for example, in multiple modules.

[0076] It should be understood that although the above description follows a certain order, these steps are not necessarily executed in that order. Unless otherwise expressly stated herein, there is no strict order restriction on the execution of these steps, and they can be executed in other orders. Moreover, some steps in this embodiment may include multiple steps or multiple stages, which are not necessarily completed at the same time, but may be executed at different times. The execution order of these steps or stages is not necessarily sequential, but may be performed alternately or in turn with other steps or at least a portion of steps or stages in other steps.

[0077] Referring to Figure 2, this application also provides a device for generating a gravitational field effect by changing an electromagnetic field to drive the motion of a target object, comprising:

[0078] The variable electromagnetic field generator 10 is used to generate a time-varying electromagnetic field. The variable electromagnetic field generator includes a high-voltage DC power supply, a frequency converter, and an electromagnetic coil.

[0079] Control unit 20 is used to adjust the working state of the variable electromagnetic field generator and control the frequency, amplitude and phase of the electromagnetic field;

[0080] Material support platform 30 is used to support and position the target object, and the platform can adjust the relative position of the target object;

[0081] Feedback system 40 is used to monitor the motion state of the target object in real time and adjust the parameters of the electromagnetic field based on the monitoring data.

[0082] In one or more embodiments, the feedback system includes a position sensor, a velocity sensor, and an acceleration sensor for monitoring the motion state of the target object.

[0083] In one or more embodiments, the variable electromagnetic field generator is capable of generating variable pulsed direct current.

[0084] In one or more embodiments, the control unit adjusts the electromagnetic field parameters through a real-time data processing algorithm to ensure that the target object moves along a predetermined trajectory.

[0085] In one or more embodiments, the material support platform can be configured with different support forms to adapt to the movement requirements of different types of materials.

[0086] This application can generate a gravitational-like effect by adjusting the time-varying characteristics of the electromagnetic field, which can not only drive various types of matter, but also achieve high-precision and flexible control of matter motion.

[0087] This innovation broadens the application scope of electromagnetic force-driven technology. The electromagnetic device of this application can generate a gravitational effect, capable of driving substances of all kinds, not only magnetic materials but also non-magnetic, non-conductive, and even liquids and gases. It can also manipulate the internal structure of substances. This characteristic makes this technology potentially valuable in many areas where traditional electromagnetic technologies are inapplicable, such as in micro-nanotechnology, precise manipulation of non-magnetic materials, and certain biomedical applications.

[0088] In this embodiment, referring to Figures 3 and 4, the variable electromagnetic field generator includes:

[0089] A vacuum container 4 contains a small ball 5 (the target object) suspended inside by a thin cotton thread. The ball 5 is made of a non-magnetic material and can rotate in a vacuum environment.

[0090] Two coils are set on the upper and lower sides of the vacuum tank 4, with the upper coil 2 connected to the high-voltage DC pulse power supply 1 and the lower coil 6 grounded and connected to the ground wire 7.

[0091] As shown in Figures 3 and 4, the coil is wound with silicone wire, and the wire of each coil is copper wire. The wires between the coils are broken and arranged in a staggered manner in space.

[0092] In one or more embodiments, the diameter of the silicone wire of the coil is 10 mm, the diameter of the copper wire in the center of the silicone wire is 1.5 mm, and the break point between the two coils is not insulated, forming an open break point.

[0093] In one or more embodiments, the diameter of the vacuum tank 4 is 10 cm, and the upper coil 2 is connected to the output terminal of the high voltage DC generator 1, with a voltage range of 50,000 volts and a current of one ten-thousandth of an ampere.

[0094] In one or more embodiments, the ball 5 is suspended by a thin cotton thread 3, which is fixed at one end inside the vacuum tank 1, and is used to rotate freely under the action of an electromagnetic field.

[0095] In one or more embodiments, the high-voltage DC generator is a 2GF-200KV / 5mA model, which can adjust the output voltage and current to control the rotation speed of the ball.

[0096] In one or more embodiments, the internal pressure of the vacuum tank 4 is adjusted to a near-vacuum state to avoid interference from the electrostatic motor effect and ion wind effect on the movement of matter. The variable electromagnetic field generator can generate an effect similar to gravity in a vacuum environment, driving the rotation or movement of small balls of all materials, including non-magnetic materials (such as polyethylene, plastic, etc.). The time-varying electromagnetic field generated by the high-voltage DC power supply 1 can precisely control the rotation trajectory and speed of the small ball 5, which is suitable for the fields of micro-robots, precision instruments and material manipulation.

[0097] This application provides a method and apparatus for simulating gravitational field effects and driving the motion of matter by changing an electromagnetic field. By precisely controlling the changes in the electromagnetic field, various types of matter can be driven, particularly non-magnetic and non-conductive materials. This application has broad application potential in multiple fields, including micro-nano technology, medicine, aerospace, and industrial automation, providing a novel material manipulation technology.

[0098] The embodiments of this application achieve high-precision control of material motion by precisely adjusting parameters such as the frequency, amplitude, and phase of the electromagnetic field. Real-time feedback from the control system and dynamic adjustment of the electromagnetic field parameters allow for precise regulation of the material's motion state, achieving the desired speed, trajectory, and direction. This high-precision control characteristic provides a more reliable solution for fields such as industrial automation, material handling, and micro-robotics.

[0099] In summary, this application generates or simulates gravitational effects through the time-varying characteristics of electromagnetic fields, enabling not only the driving of various types of matter but also high-precision and flexible control of matter motion. This technology has enormous application potential and can be widely applied in micro-nano technology, biomedicine, aerospace, industrial automation, and other fields, possessing significant technological advantages and economic value.

[0100] Through the detailed steps described above, the apparatus of this application for generating a gravitational field effect by changing an electromagnetic field to drive the motion of a target object is used to execute the steps of the method for generating a gravitational field by changing an electromagnetic field to drive the motion of a target object in the above embodiments, and will not be repeated here.

[0101] This application provides a method and apparatus for simulating gravitational field effects and driving the motion of matter by changing an electromagnetic field. By precisely controlling the changes in the electromagnetic field, various types of matter can be driven, particularly non-magnetic and non-conductive materials. This application has broad application potential in multiple fields, including micro-nano technology, medicine, aerospace, and industrial automation, providing a novel material manipulation technology.

[0102] Compared with the prior art, the method and apparatus for generating a gravitational field by changing an electromagnetic field to drive the motion of a target object according to the embodiments of this application have the following beneficial effects:

[0103] 1. Since traditional electromagnetic fields primarily act on materials with magnetic or conductive properties, this application, by adjusting the time-varying characteristics of the electromagnetic field, can produce an effect similar to gravity. This not only drives various types of materials but also enables high-precision and flexible control of material movement. This innovation broadens the application scope of electromagnetic force-driven technology.

[0104] 2. The electromagnetic device of this application can generate a gravitational effect, capable of driving substances of all kinds, not only magnetic materials, but also non-magnetic materials, non-conductive materials, and even liquids and gases. It can also manipulate the interior of substances. This characteristic makes this technology potentially valuable in many areas where traditional electromagnetic technologies cannot be applied, such as in micro-nano technology, precise manipulation of non-magnetic materials, and certain biomedical applications.

[0105] 3. This application achieves high-precision control of material motion by precisely adjusting parameters such as the frequency, amplitude, and phase of the electromagnetic field. Real-time feedback from the control system and dynamic adjustment of the electromagnetic field parameters allow for precise regulation of the material's motion state, achieving the desired speed, trajectory, and direction. This high-precision control characteristic provides a more reliable solution for fields such as industrial automation, material handling, and micro-robotics.

[0106] 4. This application describes a time-varying electromagnetic field device capable of generating or simulating gravitational effects by adjusting its characteristics, exhibiting high energy conversion efficiency when driving matter. Compared to traditional electromagnetic driving methods, this application achieves a stronger matter driving effect with lower power consumption, boasts higher energy utilization, and is easier for humans to control, particularly for computer programs. The technology of this application can be applied to multiple fields, including but not limited to:

[0107] Micro-nano technology: In the manipulation of micro-objects or nanoscale matter, it enables extremely precise material positioning and actuation, providing new ideas for the development of micro-robots, sensors and other micro-nano devices.

[0108] In the biomedical field, it enables precise manipulation of drugs, particles, and other substances within living organisms, driving advancements in targeted drug delivery and minimally invasive surgery.

[0109] Aerospace: Through precise material-driven technologies, it is possible to achieve precise positioning and control of materials in spacecraft or equipment, which has enormous value for aerospace exploration and research applications.

[0110] Industrial Automation: This application can be used for non-contact object handling, material conveying, and precision control of automated production lines, improving production efficiency and reliability.

[0111] This application allows for real-time adjustment of the electromagnetic field to meet the motion control requirements of different materials and environments, offering a high degree of flexibility. Whether targeting materials of different shapes or different working environments, the controllability and precision of material motion can be ensured by adjusting the parameters of the electromagnetic field.

[0112] 5. This application achieves the driving of matter through an electromagnetic field, eliminating the need for direct contact between matter and avoiding problems such as wear and heat loss caused by friction in traditional mechanical drives. This contactless driving method reduces friction and wear, improving system efficiency and extending equipment lifespan.

[0113] In summary, this application generates or simulates gravitational effects through the time-varying characteristics of electromagnetic fields, enabling not only the driving of various types of matter but also high-precision and flexible control of matter motion. This technology has enormous application potential and can be widely applied in micro-nano technology, biomedicine, aerospace, industrial automation, and other fields, possessing significant technological advantages and economic value.

[0114] The above are exemplary embodiments disclosed in this application. However, it should be noted that various changes and modifications can be made without departing from the scope of the embodiments disclosed in this application as defined by the claims. The functions, steps, and / or actions of the methods according to the disclosed embodiments described herein do not need to be performed in any particular order. Furthermore, although the elements disclosed in the embodiments of this application may be described or claimed individually, they may be understood as multiple unless explicitly limited to a singular number.

[0115] It should be understood that, as used herein, the singular form "a" is intended to include the plural form as well, unless the context clearly supports an exception. It should also be understood that, as used herein, "and / or" refers to any and all possible combinations of one or more of the associatedly listed items. The embodiment numbers disclosed above are for descriptive purposes only and do not represent the superiority or inferiority of the embodiments.

[0116] Those skilled in the art should understand that the discussion of any of the above embodiments is exemplary and is not intended to imply that the scope of the embodiments disclosed in this application (including the claims) is limited to these examples; within the framework of the embodiments of this application, the technical features of the above embodiments or different embodiments can also be combined, and there are many other variations of different aspects of the embodiments of this application as described above, which are not provided in detail for the sake of brevity. Therefore, any omissions, modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the embodiments of this application should be included within the protection scope of the embodiments of this application. Industrial applicability

[0117] This application proposes a method and apparatus for generating a gravitational field to drive the motion of a target object using a changing electromagnetic field. By adjusting the frequency, amplitude, and phase of the electromagnetic field, a time-varying electromagnetic field is generated to simulate gravitational effects, enabling non-contact driving of magnetic, non-magnetic, and non-conductive materials. It has broad application prospects in micro-nano manipulation, biomedical targeted delivery, spacecraft material handling, and industrial automated material handling. Its non-contact driving method avoids frictional losses, improves energy efficiency and equipment lifespan, and is easy to implement for precise programmable control. This technology possesses high adaptability, high precision, and high energy utilization, making it suitable for various industrial scenarios and demonstrating significant industrialization potential.

Claims

1. A method for generating a gravitational field by changing an electromagnetic field to drive the motion of a target object, characterized in that, The method includes the following steps: A time-varying electromagnetic field is generated in the space where the target is located by a variable electromagnetic field generator; By adjusting the frequency, amplitude, and phase of a time-varying electromagnetic field, a changing magnetic field effect can be generated in space. The time-varying electromagnetic field exerts a force on the target object, driving the target object to move along a predetermined trajectory or direction.

2. The method for generating a gravitational field from a changing electromagnetic field to drive the motion of a target object as described in claim 1, characterized in that, The variable electromagnetic field generator includes a high-voltage DC power supply, a frequency converter, and an electromagnetic coil. The power supply provides an adjustable current to the electromagnetic coil, and the frequency converter is configured to adjust the frequency and waveform of the current to generate a changing electromagnetic field.

3. The method for generating a gravitational field from a changing electromagnetic field to drive the motion of a target object as described in claim 2, characterized in that, The time-varying electromagnetic field is an electromagnetic field generated by a changing pulsed direct current.

4. The method for generating a gravitational field to drive the motion of a target object using a changing electromagnetic field as described in any one of claims 1-3, characterized in that, The target object can be any material, including magnetic, non-magnetic, or non-conductive substances.

5. The method for generating a gravitational field to drive the motion of a target object using a changing electromagnetic field as described in any one of claims 1-4, characterized in that, When the target object is driven to move along a predetermined trajectory or direction by the force exerted by the time-varying electromagnetic field, the frequency, amplitude and phase parameters of the electromagnetic field are controlled to adjust the force exerted by the electromagnetic field on the target object. This causes changes in the electromagnetic field to produce an effect similar to that of a gravitational field, influencing the position of the target object in space and driving the matter to move along a predetermined trajectory.

6. The method for generating a gravitational field to drive the motion of a target object using a changing electromagnetic field as described in any one of claims 1-5, characterized in that, The method for generating a gravitational field from a changing electromagnetic field to drive the target object to move further includes: monitoring the motion state of the target object in real time through a feedback system, and adjusting and controlling the changing characteristics of the electromagnetic field based on the feedback.

7. The method for generating a gravitational field from a changing electromagnetic field to drive the motion of a target object as described in claim 6, characterized in that, The feedback system includes a position sensor, a velocity sensor, and an acceleration sensor, and is configured to monitor the motion state of the target object's position, velocity, and acceleration in real time.

8. A device for generating a gravitational field effect by changing an electromagnetic field to drive the motion of a target object, characterized in that, The apparatus, configured to perform a method for generating a gravitational field from a varying electromagnetic field as described in any one of claims 1-7 to drive the motion of a target object, comprises: A variable electromagnetic field generator is configured to generate a time-varying electromagnetic field. The variable electromagnetic field generator includes a high-voltage DC power supply, a frequency converter, and an electromagnetic coil. The control unit is configured to adjust the operating state of the variable electromagnetic field generator and control the frequency, amplitude, and phase of the electromagnetic field; A material support platform is configured to support and position a target object, and the platform can adjust the relative position of the target object. The feedback system is configured to monitor the motion state of the target object in real time and adjust the parameters of the electromagnetic field based on the monitoring data.

9. The device for generating a gravitational field effect by a changing electromagnetic field to drive the motion of a target object as described in claim 8, characterized in that, The variable electromagnetic field generating device includes: A vacuum chamber, inside which a small ball is suspended by a fine cotton thread. The ball is made of any material and can rotate in a vacuum environment. Two coils are set on the upper and lower sides of the vacuum tank, with the upper coil connected to a high-voltage DC pulse power supply and the lower coil grounded; The coils are wound with silicone wires, and the wires of each coil are copper wires. The wires between the coils are broken and arranged in a staggered manner in space.

10. The device for generating a gravitational field effect from a changing electromagnetic field to drive the motion of a target object as described in claim 9, characterized in that, The break between the two coils is not insulated, forming an open break; the ball is suspended by a thin cotton thread, which is fixed at one end inside the vacuum tank and configured to rotate freely under the influence of the electromagnetic field.

11. The apparatus for generating a gravitational field effect from a changing electromagnetic field to drive the motion of a target object as described in any one of claims 9-10, characterized in that, The pressure inside the vacuum tank is adjusted to a vacuum state, and the variable electromagnetic field generator produces a gravitational effect in the vacuum environment, driving the rotation or movement of all materials.

12. The apparatus for generating a gravitational field effect from a changing electromagnetic field to drive the motion of a target object as described in any one of claims 9-11, characterized in that, The vacuum tank has a diameter of 10 centimeters, and the coil on top is connected to the output terminal of a high-voltage DC generator with a voltage range of 50,000 volts and a current of one ten-thousandth of an ampere.

13. The apparatus for generating a gravitational field effect from a changing electromagnetic field as described in any one of claims 8-12 to drive the motion of a target object, characterized in that, The feedback system includes a position sensor, a velocity sensor, and an acceleration sensor, and is configured to monitor the motion state of the target object.

14. The apparatus for generating a gravitational field effect from a changing electromagnetic field to drive the motion of a target object as described in any one of claims 8-13, characterized in that, The variable electromagnetic field generator is configured to generate variable pulsed direct current.

15. The apparatus for generating a gravitational field effect from a changing electromagnetic field as described in any one of claims 8-14 to drive the motion of a target object, characterized in that, The control unit adjusts the electromagnetic field parameters through a real-time data processing algorithm to ensure that the target object moves along a predetermined trajectory.

16. The apparatus for generating a gravitational field effect from a changing electromagnetic field as described in any one of claims 8-15 to drive the motion of a target object, characterized in that, The material support platform is configured with different support forms to adapt to the movement requirements of different types of materials.