Electric control type magnetic energy power generation equipment
By designing an electronically controlled magnetic energy power generation device, and utilizing a special layout of the dynamic permanent magnet and magnetic coil, as well as a magnetic levitation vacuum structure, the problems of low conversion efficiency, complex structure, and high cost of magnetic energy power generation devices are solved. This achieves efficient, stable, and low-noise power output, making it suitable for various scenarios.
Patent Information
- Application Number
- CN202520127965.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-20
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2035-01-20
AI Technical Summary
Existing magnetic energy power generation equipment suffers from drawbacks such as low conversion efficiency, complex structure, and high cost.
An electrically controlled magnetic energy generation device was designed, which adopts a special layout of a dynamic permanent magnet and a magnetic coil, combined with magnetic levitation and vacuum structure. The magnetic poles of the dynamic permanent magnet and the magnetic coil are arranged alternately. The control power supply is used to regulate the current and the power generation frequency, and the conductive mechanism ensures stable electrical connection.
It achieves efficient conversion of magnetic energy into electrical energy. The equipment has a simple structure, low cost, stable and noiseless operation, and is suitable for various scenarios, including chemical production and disaster relief. It can also be used safely in flammable and explosive environments.
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Figure CN223785932U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the field of power generation equipment, especially the field of magnetic energy power generation. BACKGROUND
[0002] Power generation equipment is a device that converts other forms of energy into electric energy for use by electrical equipment. The current power generation forms are mainly thermal power generation, hydropower generation, nuclear power generation, solar power generation and wind power generation; these power generation methods often need to build a special power generation site. Thermal power generation will discharge CO2 and other pollutants into the air. Although hydropower generation does not cause environmental pollution, it needs to build dams, is greatly affected by seasonal climates, and also relies on long-distance transmission of transmission lines, which is not conducive to the direct and flexible use of electric energy. Nuclear power generation also needs to build a special power generation building, and there are risks of nuclear radiation and difficulties in nuclear waste disposal, which is also not conducive to the direct and flexible use of electric energy. Although solar power generation and wind power generation are green new energy power generation, they are affected by natural environment and climate.
[0003] Magnetic energy power generation is a new green energy power generation mode that mainly uses the magnetic energy of permanent magnets to generate electricity, which does not pollute the environment and provides a new mode for electric power storage, and can be directly and flexibly used. However, the current magnetic energy power generation equipment has the disadvantages of low conversion efficiency, complex structure and high cost. UTILITY MODEL CONTENT
[0004] To solve the above-mentioned problems of the current magnetic energy power generation equipment, such as low conversion efficiency, complex structure and high cost, the utility model provides a technical solution.
[0005] An electric control type magnetic energy power generation equipment comprises a base (1), a rotating frame (3), a power permanent magnet (5), a magnetic coil (4) and a control power supply (6). The rotating frame (3) is rotatably arranged on the base (1) and connected with a power generation rotor. The magnetic coil (4) is arranged on the rotating frame (3) and electrically connected with the control power supply (6). The power permanent magnet (5) is arranged on the base (1). The magnetic coil (4) and the power permanent magnet (5) are uniformly distributed around the rotation center line of the rotating frame (3), and the magnetic poles of each power permanent magnet (5) in the same direction are oppositely arranged. The power permanent magnet (5) is arranged with four or more than four pieces, and the number is double. The corresponding magnetic coil (4) is arranged with three or more than three pieces, and the number is single. The number of the power permanent magnet (5) and the number of the magnetic coil (4) are not integer multiples. The magnetic poles of the magnetic coil (4) in the same direction are oppositely arranged in the adjacent interval of the power permanent magnet (5).
[0006] Another scheme, the magnetic coil (4) is arranged on the base (1), and the power permanent magnet (5) is arranged on the rotating frame (3).
[0007] Preferably, the magnetic pole interface of the power permanent magnet (5) is parallel to the magnetic pole interface of the magnetic force coil (4).
[0008] Preferably, the magnetic pole interface of the power permanent magnet (5) and the magnetic pole interface of the magnetic force coil (4) are both parallel to the rotation center line of the rotating frame (3).
[0009] Preferably, the power permanent magnet (5) is divided into two groups, one group corresponding to the N pole of the magnetic force coil (4), and the other group corresponding to the S pole of the magnetic force coil (4); each group has four or more, and the number is even.
[0010] Preferably, the rotating frame (3) and the generator rotor connected thereto are a magnetic suspension structure suspended on the base (1), forming a structure relationship that the rotating frame (3) and the generator rotor connected thereto are suspended on the base (1) rotating.
[0011] Preferably, the magnetic suspension structure further comprises a magnetic shielding shell (2-1), a magnetic suspension tubular permanent magnet (2-2), and a magnetic suspension columnar permanent magnet (3-1); the magnetic suspension tubular permanent magnet (2-2) is sleeved in the magnetic shielding shell (2-1), and the magnetic suspension columnar permanent magnet (3-1) is sleeved in the magnetic suspension tubular permanent magnet (2-2); one end of the magnetic suspension columnar permanent magnet (3-1) is connected with the generator rotor, and the other end is connected with the rotating frame (3).
[0012] Preferably, the control power supply (6) is also electrically connected with the generator rotor of the generator (7).
[0013] Preferably, it further comprises a shell (10), which forms a vacuum chamber (8-1) after being matched with the base (1); the rotating frame (3), the magnetic force coil (4), the power permanent magnet (5), and the generator (7) are arranged in the vacuum chamber (8-1).
[0014] Preferably, it further comprises a conductive mechanism (9), which is electrically connected with the control power supply (6) and the magnetic force coil (4), respectively, forming a connection relationship that the magnetic force coil (4) is electrically connected with the control power supply (6) when the rotating frame (3) rotates; the conductive mechanism (9) comprises a conductive ring (9-1) and a pantograph (9-2); the pantograph (9-2) is a T-shaped structure; one side of the T-shaped pantograph is arc-shaped and in contact with the conductive ring (9-1), and the other side is a sleeve, a guide column and a spring, forming a connection relationship that the arc-shaped contact side of the pantograph (9-2) is limited in direction by the guide column and forms an elastic contact with the conductive ring (9-1) under the action of the spring force.
[0015] Beneficial effects: the utility model discloses a kind of electric control formula magnetic energy power generation equipment, the magnetic field generated by power permanent magnet (5) and the magnetic field generated by after energization magnetic force coil (4) interact to form the rotation force of driving rotating frame (3) rotation. Since rotating frame (3) is connected with power generation rotor, so the kinetic energy of rotating frame (3) will be directly converted into electric energy, without other transmission structure or conversion structure. Therefore the magnetic energy power generation equipment structure is simple, and the production and manufacture of each component of power generation equipment have no special requirements, so production and manufacture are easy, and cost is low. Again because the structure of the magnetic energy power generation equipment is simple, easy to manufacture, and rotating frame (3) and power generation rotor can rotate smoothly under the action of magnetic field;So the magnetic energy power generation equipment whole operation is stable, noiseless or noiseless.
[0016] Power permanent magnet (5) same orientation magnetic pole is different polarity interval arrangement;Power permanent magnet (5) is provided with four and four above, and the number is double;Corresponding magnetic force coil (4) is provided with three and three above, and the number is odd. That is, no matter when there will be magnetic force coil (4) magnetic pole and power permanent magnet (5) magnetic pole will not be directly opposite, to avoid the situation that rotating frame (3) is locked and cannot start due to magnetic pole direct opposite.
[0017] The magnetic energy of power permanent magnet (5) and the magnetic energy of magnetic force coil (4) after energization are converted into the kinetic energy of rotating frame (3), and in addition to the energy consumed to overcome the rotation resistance of rotating frame (3), the rest is all converted into electric energy;Therefore, the efficiency of the magnetic energy power generation equipment is very high. When rotating frame (3) and the power generation rotor connected therewith are provided as magnetic levitation structure, and the rotating power generation part of the magnetic energy power generation equipment is provided as vacuum structure, the rotation resistance of rotating frame (3) is only the interaction force between the magnetic field formed by the current generated by the power generation rotor of generator (7) cutting magnetic induction line and the magnetic field of power generation stator. The resistance generated by this interaction force is very small, so almost all the magnetic energy is converted into electric energy. At this time, the efficiency of converting magnetic energy into electric energy is the highest. The setting of magnetic levitation structure and vacuum structure will make the operation of the magnetic energy power generation equipment not produce noise (i.e. achieve the effect of silence);Because there is no movement friction and air resistance, the equipment will not vibrate and will not form sound wave. Even if sound wave is generated, vacuum environment has no medium to propagate sound wave.
[0018] The magnetic pole interface of the power permanent magnet (5) is parallel to the magnetic pole interface of the magnetic force coil (4), which is conducive to the compact structure of the magnetic energy power generation device and the efficient conversion of magnetic energy. The magnetic force coil (4) is arranged on the mounting frame (1), and the power permanent magnet (5) is arranged on the rotating frame (3), which makes the mechanical structure of the magnetic energy power generation device simpler and the magnetic energy conversion efficiency higher. Because the control power supply (5) is arranged on the mounting frame (1), if the magnetic force coil (4) is arranged on the rotating frame (3), an electrically conductive mechanism (9) is needed to electrically connect the rotating magnetic force coil (4) and the control power supply (6). This electrically conductive mechanism, whether mechanical or inductive, will cause energy loss. If the control power supply (6) and the magnetic force coil (4) are both arranged on the rotating frame (3), the weight of the rotating frame (3) will increase, which will cause the consumption of kinetic energy and also lead to low conversion efficiency of magnetic energy.
[0019] The power permanent magnet (5) is divided into two groups, one group corresponding to the N pole of the magnetic force coil (4), and the other group corresponding to the S pole of the magnetic force coil (4); each group has four or more than four, and the number is double. Such a setting can make full use of the volume of the magnetic energy device and the magnetic energy of the magnetic force coil (4), that is, in almost the same volume, the number of power permanent magnets (5) is doubled, and both poles of the magnetic force coil (4) can be fully utilized. In this way, high efficiency conversion of magnetic energy and electric energy can also be achieved.
[0020] The environment of the vacuum chamber (8-1) avoids the damage of corrosive substances such as moisture in the air to the coil and other parts, prolonging the service life of the magnetic energy power generation device. The setting of the control power supply (6) can control the current size, direction, and on-off function parameters and actions of the magnetic force coil (4). Further control the rotating speed of the rotating frame (3) to achieve the purpose of controlling the function parameters such as the power generation frequency of the magnetic energy power generation device. The control power supply (6) is also electrically connected to the power generation rotor of the generator (7), which can store the electric energy generated by the magnetic energy power generation device into the control power supply (6) to supplement the electric energy consumed by the control power supply (6). That is, the control power supply (6) only needs to store the electric energy to start the power generation device once, so the volume of the control power supply (6) will be very small, which is conducive to the compact structure of the magnetic energy power generation device. Because the control power supply (6) stores less electric energy, there is no risk of power fire and explosion. Therefore, the magnetic energy power generation device can also be applied to scenes that are flammable, explosive, and need to consume electric energy continuously; such as chemical production, rescue and disaster relief, etc. Because the magnetic energy power generation device has a compact structure, safety and explosion prevention, and does not need a fixed installation site, it can be applied to industrial production and daily life. For example, it can charge mobile phones and other devices, replace power banks and solve the problem of limiting the use of power banks on airplanes and transportation. It can also be used as an emergency power supply for the home or an outdoor activity power supply.
[0021] Since the power permanent magnet (5) can be magnetized by the induction coil, the power permanent magnet can store the electric energy in the power grid during the off-peak period by magnetic energy, and then convert the magnetic energy into electric energy by the high-efficiency magnetic energy power generation device to deliver to the power grid during the peak period. Since the induction coil has high energy conversion efficiency for magnetizing the power permanent magnet, and the high-efficiency magnetic energy power generation device of the utility model will make the magnetic energy storage more economical than pumped storage or battery storage. Because the permanent magnet can store more electric energy than the battery in the same volume, the manufacturing cost of the permanent magnet is cheaper than the battery, and the magnetic energy of the permanent magnet will not decay under normal circumstances. Moreover, the permanent magnet storage does not need to build large dams and reservoirs in a special place like pumped storage. BRIEF DESCRIPTION OF DRAWINGS
[0022] Figure 1 is the overall structure diagram of the electric control type magnetic energy power generation device.
[0023] Figure 2 is the exploded view of the electric control type magnetic energy power generation device.
[0024] Figure 3 is the rotating part structure diagram of the electric control type magnetic energy power generation device.
[0025] Figure 4 is the sectional view of the electric control type magnetic energy power generation device.
[0026] Figure 5 is the magnetic suspension structure diagram of the electric control type magnetic energy power generation device.
[0027] Figure 6 is the electric conduction mechanism diagram of the electric control type magnetic energy power generation device.
[0028] In the figure, 1 is the base, 2 is the suspension mechanism, 2-1 is the magnetic shielding shell, 2-2 is the magnetic suspension pipe type permanent magnet, 3 is the rotating frame, 3-1 is the magnetic suspension column type permanent magnet, 4 is the magnetic coil, 5 is the power permanent magnet, 6 is the control power supply, 7 is the generator, 8 is the vacuum pump, 8-1 is the vacuum chamber, 9 is the electric conduction mechanism, 9-1 is the electric conduction ring, 9-2 is the pantograph, and 10 is the shell. DETAILED DESCRIPTION
[0029] The technical scheme of the electric control type magnetic energy power generation device of the utility model will be described in detail below in combination with the preferred embodiments of the utility model.
[0030] As Figures 1 to 6As shown, a kind of electrically controlled magnetic energy power generation equipment includes base 1, rotating frame 3, power permanent magnet 5, magnetic coil 4 and control power supply 6.Control power supply 6 is installed at shell 10.Rotating frame 3 can be rotatably arranged in base 1, and is connected with the power generation rotor of generator 7.Rotating frame 3 and the connection of base can be as Figure 5 The magnetic suspension structure shown;It can also be that the rotating shaft sleeve of rotating frame 3 is arranged in bearing, and the bearing sleeve is arranged in the cylinder extending to power frame 3 on the side of the center position of base 1 towards power frame 3.It is just that the magnetic suspension structure is replaced by bearing.Rotating frame 3 and the power generation rotor of generator 7 can be fused or bonded, can also be connected by the interference connection of nesting structure or by connecting piece.
[0031] Magnetic coil 4 is installed in the through hole of the end of the cantilever of rotating frame 3 close to power permanent magnet 5.Magnetic coil 4 is three, and the corresponding cantilever is also three and is evenly distributed around the rotation center line of rotating frame 3 (i.e.magnetic coil 4 is evenly arranged).Magnetic coil 4 is electrically connected with control power supply 6 through conductive mechanism 9 as shown.Control power supply 6 provides current for the rotation of rotating frame 3 to magnetic coil 4.
[0032] Power permanent magnet 5 is installed in base 1.Power permanent magnet 5 is evenly distributed around the rotation center line of rotating frame 3, and is located on the same cylindrical surface.And the same direction of each power permanent magnet 5 is different in polarity and is arranged at intervals;That is, the magnetic pole of one piece of power permanent magnet 5 facing magnetic coil 4 is N pole, and the magnetic pole of another piece of power permanent magnet 4 adjacent to it facing magnetic coil 4 is S pole.Power permanent magnet 5 is four as shown. Figure 3 As shown, the same direction of magnetic pole of magnetic coil 4 is different in polarity and is arranged at intervals in the adjacent interval of power permanent magnet 5.
[0033] Another scheme, the magnetic coil 4 is installed in base 1, and the power permanent magnet 5 is installed in rotating frame 3.
[0034] Another scheme, as shown in Figure 2 The magnetic pole boundary surface of power permanent magnet 5 and the magnetic pole boundary surface of magnetic coil 4 are parallel.
[0035] Another scheme, as shown in Figure 2 The magnetic pole boundary surface of power permanent magnet 5 and the magnetic pole boundary surface of magnetic coil 4 are parallel.
[0036] Another scheme, as shown in Figure 2 Power permanent magnet 5 is divided into two groups, each group is four, and is located at the two ends of magnetic coil.One group corresponds to the N pole of magnetic coil 4, and the other group corresponds to the S pole of magnetic coil 4.
[0037] Another scheme, as shown in Figure 5The rotating frame 3 and the generator rotor connected therewith are in a magnetic suspension structure (of course, other suspension structures such as liquid suspension, gas suspension are also possible) suspended from the base 1, forming a structure relationship that the rotating frame 3 and the generator rotor connected therewith are suspended and rotated from the base 1. The magnetic suspension structure comprises a magnetic shielding shell 2-1, a magnetic suspension pipe-shaped permanent magnet 2-2, and a magnetic suspension column-shaped permanent magnet 3-1. The magnetic suspension pipe-shaped permanent magnet 2-2 is sleeved in the magnetic shielding shell 2-1, and the magnetic suspension column-shaped permanent magnet 3-1 is sleeved in the magnetic suspension pipe-shaped permanent magnet 2-2. One end of the magnetic suspension column-shaped permanent magnet 3-1 is connected with the generator rotor, and the other end is connected with the rotating frame 3. Such a magnetic suspension structure can make the electrically controlled magnetic energy power generation device be suspended and stably rotated no matter how it is turned over or at any angle relative to the ground, thereby driving the generator rotor to generate electricity.
[0038] In another scheme, the control power supply 6 is also electrically connected with the generator rotor of the generator 7. That is, the electric energy generated by the electrically controlled magnetic energy power generation device is stored in the control power supply 6 to supplement the electric energy consumed by the control power supply 6.
[0039] In another scheme, as shown in the figure, Figure 4 The shell 10 cooperates with the base 1 to form a vacuum chamber 8-1. The rotating frame 3, the magnetic coil 4, the power permanent magnet 5, and the generator 7 are all located in the vacuum chamber 8-1.
[0040] In another scheme, as shown in the figure, Figure 6 The conductive mechanism 9 comprises a conductive ring 9-1 and a pantograph 9-2. The pantograph 9-2 has a T-shaped structure. One side of the T-shaped pantograph is arc-shaped and in contact with the conductive ring 9-1, and the other side is composed of a sleeve, a guide column, and a spring. The sleeve is sleeved on the guide column, and the spring is sleeved on the guide column and located between the sleeve and the guide column base; the arc-shaped contact side of the pantograph 9-2 can form an elastic contact connection with the conductive ring 9-1 in a limited direction under the action of the spring. The conductive ring 9-1 is divided into three parts, the first and third parts are conductive rings made of copper material, corresponding to the positive and negative poles of the control power supply 6 respectively. The conductive ring is provided with a notch at the position corresponding to the power permanent magnet 4 (i.e. the first part has four arc pieces, and the third part also has four arc pieces; and each arc piece of each part corresponds to the positive or negative pole of the control power supply 6); so that the pantograph 9-2 does not contact and conduct with the conductive ring 9-1 at the notch, thereby making the magnetic coil 4 and the power permanent magnet 5 lose magnetism when the magnetic poles are opposite. The positive and negative poles of the control power supply 6 corresponding to the conductive ring 9-1 in the interval between adjacent power permanent magnets 5 are different (for example, Figure 3The magnetic poles of the power coil 3 in the same direction are arranged at intervals in the adjacent sections of the power permanent magnet 4. For example, if the polarity of the power permanent magnet 5 in the section of the magnetic force coil 4 is N, the polarity of the power permanent magnet 5 in the next adjacent section of the magnetic force coil 4 is S. The second part of the conductive ring 9-1 is made of insulating material and is located between the first and third parts. The conductive ring 9-1 is installed on the base 1 and faces the magnetic force coil 4, and is located on the side of the base 1 facing the rotating frame 3. The pantograph 9-2 is installed on each cantilever and faces the base 1, and is also divided into three parts; the first and third parts are made of copper and have a T-shaped structure, corresponding to the two connection ends of the power coil 3. The second part of the conductive ring 9-1 is made of insulating material and is located between the first and third parts.
[0041] Working principle and process: According to the theories of magnetism, electromagnetism and dynamics, and in combination with the above description, in the structure of the above-mentioned electrically controlled magnetic energy power generation device, the magnetic field of the power permanent magnet 5 interacts with the magnetic field of the magnetic force coil 4 after being energized, resulting in attractive force or repulsive force. Because the same poles of the magnets repel each other and the opposite poles attract each other. According to the magnetic force calculation formula, the attractive force or repulsive force between the power permanent magnet 5 and the magnetic force coil 4 after being energized can be calculated. In this electrically controlled magnetic energy power generation device, whether it is attractive force or repulsive force, it is finally converted into rotational force to drive the rotation of the rotating frame 3. The rotation of the rotating frame 3 forms kinetic energy. The kinetic energy of the rotating frame 3, except for the energy consumed to overcome the rotational resistance, is converted into electrical energy. Since the magnetic energy of the power permanent magnet 5 does not decay under normal circumstances, most of the magnetic energy of the power permanent magnet 5 is converted into kinetic energy of the rotating frame 3, and then into electrical energy. Therefore, the efficiency of the power permanent magnet 5 converting into electrical energy is high, and the magnetic energy power generation device can generate power stably and durably.
[0042] When the electrically controlled magnetic energy power generation device needs to be started, the start switch of the control power supply 6 can be pressed or touched. After starting, the control power supply 6 will provide current to the magnetic force coil 4, so that the magnetic force coil 4 generates a magnetic field, thereby driving the rotation of the rotating frame 3, and converting most of the magnetic energy of the power permanent magnet 5 and the magnetic force coil 4 into electrical energy. When the control power supply 6 detects that the magnetic energy power generation device generates current, it can provide appropriate current supply to the magnetic force coil 4 according to the set mode or set magnetic energy power generation power, so that the electrically controlled magnetic energy power generation device works continuously and stably according to the set mode or power generation power.
[0043] When the electrically controlled magnetic energy power generation device is to be stopped, the stop switch of the control power supply 6 is pressed or touched. Of course, the magnetic energy power generation device can also be stopped according to the set mode, such as the set working time, total power generation, etc. When the electrically controlled magnetic energy power generation device is started, if the control power supply 6 fails to detect the current generated by the electrically controlled magnetic energy power generation device within the set time (such as 2 seconds), the current direction of each magnetic coil 4 is changed in turn, i.e. the number of each magnetic coil is changed in turn according to the factory setting of the electrically controlled magnetic energy power generation device, such as changing the current direction of No. 1 magnetic coil to change the magnetic pole, if the generator still fails to generate current within the set time, the current direction of No. 1 magnetic coil is restored, then the current direction of No. 2 magnetic coil is changed, and so on until the control power supply 6 detects the current generated by the electrically controlled magnetic energy power generation device. Finally, the current direction of all magnetic coils is restored to the same direction to avoid the magnetic force locking of the rotating frame 3. Because the starting and stopping, power generation, etc. of the magnetic energy power generation device are controlled by the control power supply 6, the device is called the electrically controlled magnetic energy power generation device.
[0044] Obviously, the above embodiments are only examples for clearly illustrating the present application, and are not intended to limit the embodiments of the present application. Based on the above description, other different forms of changes or variations can be made by those skilled in the art. Here, all the embodiments cannot be enumerated. The changes or variations which are obviously extended from the spirit of the present application and do not require the creative labor of those skilled in the art still belong to the protection scope of the present application.
Claims
1. An electrically controlled magnetic energy generation device, comprising a base (1), a rotating frame (3), and a power permanent magnet (5), characterized in that: It also includes a magnetic coil (4) and a control power supply (6). The rotating frame (3) is rotatably mounted on the base (1) and connected to the generator rotor. The magnetic coil (4) is mounted on the rotating frame (3) and electrically connected to the control power supply (6). The permanent magnet (5) is mounted on the base (1). The magnetic coil (4) and the permanent magnet (5) are evenly distributed around the rotation center line of the rotating frame (3), and the magnetic poles of each permanent magnet (5) in the same direction are spaced apart with different polarities. There are four or more permanent magnets (5), and the number is even. The corresponding magnetic coils (4) are three or more, and the number is odd. The number of permanent magnets (5) is not an integer multiple of the number of magnetic coils (4). The magnetic poles of the magnetic coils (4) in the same direction are spaced apart in the adjacent intervals of the permanent magnets (5).
2. The electrically controlled magnetic energy generation device according to claim 1, characterized in that: The magnetic pole interface of the permanent magnet (5) is parallel to the magnetic pole interface of the magnetic coil (4).
3. An electrically controlled magnetic energy generation device according to claim 1 or 2, characterized in that: The magnetic coil (4) is disposed on the base (1), and the power permanent magnet (5) is disposed on the rotating frame (3).
4. The electrically controlled magnetic energy generation device according to claim 3, characterized in that: The magnetic pole interface of the permanent magnet (5) and the magnetic pole interface of the magnetic coil (4) are both parallel to the rotation center line of the rotating frame (3).
5. The electrically controlled magnetic energy generation device according to claim 4, characterized in that: The permanent magnets (5) are divided into two groups, one group corresponds to the N pole of the magnetic coil (4), and the other group corresponds to the S pole of the magnetic coil (4); each group has four or more pieces, and the number is even.
6. The electrically controlled magnetic energy generation device according to claim 5, characterized in that: The rotating frame (3) and the power generation rotor connected thereto are magnetically levitated structures suspended on the base (1), forming a structural relationship in which the rotating frame (3) and the power generation rotor connected thereto are suspended on the base (1) and rotate.
7. The electrically controlled magnetic energy generation device according to claim 6, characterized in that: The magnetic levitation structure also includes a magnetic shield (2-1), a magnetic levitation tubular permanent magnet (2-2), and a magnetic levitation column permanent magnet (3-1); the magnetic levitation tubular permanent magnet (2-2) is fitted inside the magnetic shield (2-1), and the magnetic levitation column permanent magnet (3-1) is fitted inside the magnetic levitation tubular permanent magnet (2-2); one end of the magnetic levitation column permanent magnet (3-1) is connected to the power generation rotor, and the other end is connected to the rotating frame (3).
8. The electrically controlled magnetic energy generation device according to claim 7, characterized in that: The control power supply (6) is also electrically connected to the generator rotor of the generator (7).
9. An electrically controlled magnetic energy generation device according to claim 8, characterized in that: It also includes a housing (10), which forms a vacuum chamber (8-1) after being fitted with a base (1); a rotating frame (3), a magnetic coil (4), a power permanent magnet (5) and a generator (7) are installed in the vacuum chamber (8-1).
10. An electrically controlled magnetic energy generation device according to claim 9, characterized in that: It also includes a conductive mechanism (9), which is electrically connected to the control power supply (6) and the magnetic coil (4) respectively, forming a connection relationship in which the magnetic coil (4) is electrically connected to the control power supply (6) when it rotates with the rotating frame (3); the conductive mechanism (9) includes a conductive ring (9-1) and a pantograph (9-2); the pantograph (9-2) is a T-shaped structure; one side of the T-shaped pantograph is an arc shape that contacts and cooperates with the conductive ring (9-1), and the other side is composed of a sleeve, a guide post and a spring, forming a connection relationship in which the arc-shaped contact edge of the pantograph (9-2) forms an elastic contact with the conductive ring (9-1) under the action of the spring force along the direction defined by the guide post.