Magnetic power driven maglev generator device and application method thereof
By introducing an adjustable magnetic power mechanism into the magnetic levitation power generation device, and using a combination of a starter motor and magnetic power to drive the magnetic levitation generator, the problem of high energy consumption of high-power motor drives is solved, and energy-saving effect is achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- JIANGSU HUJIANG MEDICAL HEALTH TECHNOLOGY CO LTD
- Filing Date
- 2022-12-12
- Publication Date
- 2026-06-02
AI Technical Summary
Existing magnetic levitation power generation devices require high-power motors for driving, resulting in significant energy consumption.
An adjustable magnetic power mechanism is adopted, which drives the magnetic levitation generator through the dual action of starting motor and magnetic power, reducing the dependence on motor.
This reduces the power requirements for motor drive and saves energy.
Smart Images

Figure CN115833458B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of generator technology, and in particular to a magnetically driven magnetic levitation generator device and its application method. Background Technology
[0002] Magnetic levitation power generation devices typically consist of a motor and a magnetic levitation generator. When an external power source is available, the motor drives the magnetic levitation generator to store kinetic energy. When electrical energy is needed, the kinetic energy of the magnetic levitation generator is converted into electrical energy by the motor for output. This technology has a wide range of applications. Currently, existing magnetic levitation power generation devices generally use a motor directly connected to the magnetic levitation generator, requiring significant motor power and consuming a large amount of energy. Summary of the Invention
[0003] The purpose of this invention is to solve the technical problems mentioned in the background section.
[0004] To achieve the above objectives, the present invention provides a magnetically driven magnetic levitation generator device, comprising a base, a control mechanism, an energy storage mechanism, a data monitoring mechanism, a starter motor, a transmission mechanism, a levitation generator, and an adjustable magnetic power mechanism. The adjustable magnetic power mechanism includes a magnetic field shell, a fixing plate, an adjusting screw, and a magnetic field coil. The magnetic field coil is disposed inside the magnetic field shell and is fixed to one side of the fixing plate. The other side of the fixing plate is fixedly connected to one end of the adjusting screw. The adjusting screw is threadedly connected to the top cover of the magnetic field shell. The magnetic field shell is mounted on the top of the transmission mechanism. The starter motor and the levitation generator are respectively connected to both sides of the transmission mechanism. The levitation generator is electrically connected to the energy storage mechanism. The data monitoring mechanism, the starter motor, and the adjustable magnetic power mechanism are all electrically connected to the control mechanism.
[0005] Preferably, the transmission mechanism includes a cooling oil tank, a crankshaft, and a piston. The piston includes a cylinder, a magnetic head, and a connecting rod. One end of the connecting rod is fixedly connected to the magnetic head, which is disposed in the cylinder. The other end of the connecting rod passes through the cooling oil tank and is hinged to the crankshaft. The crankshaft is disposed in the cooling oil tank, which is fixed to a base. Both ends of the crankshaft pass through the cooling oil tank and are respectively connected to the starter motor and the levitation generator.
[0006] Preferably, the data monitoring mechanism includes a distance sensor, a temperature sensor, and a speed sensor. The speed sensor is used to detect the rotor speed of the levitation generator. The temperature sensor is located on the outside of the levitation generator to detect the temperature of the levitation generator. The distance sensor is installed on the top of the cylinder and is positioned opposite the magnetic head to detect the position of the magnetic head. The levitation generator is equipped with a radiator and an output protection mechanism, which includes an overvoltage protector and an overcurrent protector.
[0007] Preferably, the control mechanism includes a data acquisition unit, a power supply, and a controller. The distance sensor, temperature sensor, and speed sensor are all electrically connected to the data acquisition unit. The data acquisition unit is electrically connected to the controller. Both the controller and the data acquisition unit are connected to the power supply.
[0008] Preferably, the controller is electrically connected to the magnetic field coil in the adjustable magnetic power mechanism to change the polarity of the magnetic field coil.
[0009] Preferably, the starter motor and the levitation generator are mounted on bases on both sides of the cooling oil tank, the input end of the levitation generator is fitted with an inertial flywheel, and both ends of the crankshaft are mounted on the base through bearing seats.
[0010] Preferably, the energy storage mechanism is a battery pack, which is mounted on a base.
[0011] A method for applying a magnetically driven magnetic levitation generator device includes the following specific steps:
[0012] Initial stage: The starting electrical system is powered by an external circuit. The controller controls the starter motor to run. The starter motor drives the crankshaft to rotate, which in turn causes the connecting rod to reciprocate and the flywheel to rotate, thus causing the magnetic levitation generator to rotate. When the connecting rod moves the magnetic head to the set position, the controller controls the magnetic field coil to change the polarity, so that the magnetic head is pushed downward, which further pushes the crankshaft to rotate, thereby driving the magnetic levitation generator to rotate and output electrical energy to the outside world.
[0013] Energy storage phase: When the speed sensor detects the current speed, the controller controls the starter motor to reach the current speed, and then the magnetic levitation generator charges the battery pack.
[0014] Preferably, temperature data is collected in both the initial stage and the energy storage stage. The temperature data is transmitted to the controller through a data acquisition device. The controller compares the temperature with the set temperature value. When the actual temperature is higher than the set value, the radiator is activated. At the same time, the output terminal of the levitation generator is equipped with an overvoltage protector and an overcurrent protector for overvoltage and overcurrent protection.
[0015] Therefore, the present invention employs the above-mentioned magnetic power driven magnetic levitation generator device and its application method, which has the following beneficial effects: an adjustable magnetic power mechanism is added to the transmission mechanism between the starter motor and the levitation generator, and the drive is carried out under the dual action of the starter motor and magnetic power, which greatly reduces the required motor drive power and saves energy.
[0016] The technical solution of the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the structure of a magnetically driven magnetic levitation generator device according to the present invention.
[0018] Figure Labels
[0019] 1. Base; 2. Control mechanism; 3. Energy storage mechanism; 4. Data monitoring mechanism; 41. Temperature sensor; 42. Speed sensor; 43. Distance sensor; 5. Starter motor; 6. Transmission mechanism; 61. Cooling oil tank; 62. Crankshaft; 63. Piston; 631. Cylinder block; 632. Magnetic head; 633. Connecting rod; 7. Suspension generator; 8. Adjustable magnetic power mechanism; 81. Magnetic field shell; 82. Fixing plate; 83. Adjusting screw; 84. Magnetic field coil; 9. Inertia flywheel; 10. Radiator. Detailed Implementation
[0020] Example
[0021] In the description of this invention, it should be noted that the terms "upper," "lower," "inner," "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship in which the product of this invention is usually placed when in use. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limiting this invention.
[0022] In the description of this invention, it should also be noted that, unless otherwise explicitly specified and limited, the terms "set," "install," and "connect" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.
[0023] The embodiments of the present invention will now be described in detail with reference to the accompanying drawings.
[0024] refer to Figure 1 A magnetically driven levitation generator 7 device includes a base 1, a control mechanism 2, an energy storage mechanism 3, a data monitoring mechanism 4, a starter motor 5, a transmission mechanism 6, a levitation generator 7, and an adjustable magnetic power mechanism 8. The starter motor 5 and the levitation generator 7 are mounted on the base 1 on both sides of a cooling oil tank 61, and an inertial flywheel 9 is fitted onto the input end of the levitation generator 7.
[0025] The adjustable magnetic power mechanism 8 includes a magnetic field housing 81, a fixed plate 82, an adjusting screw 83, and a magnetic field coil 84. The magnetic field coil 84 is installed inside the magnetic field housing 81 and is fixed to one side of the fixed plate 82. The other side of the fixed plate 82 is fixedly connected to one end of the adjusting screw 83. The adjusting screw 83 is threadedly connected to the top cover of the magnetic field housing 81. The magnetic field housing 81 is installed on the top of the transmission mechanism 6.
[0026] The transmission mechanism 6 is connected to a starter motor 5 and a levitation generator 7 on both sides. The levitation generator 7 is electrically connected to the energy storage mechanism 3. The data monitoring mechanism 4, the starter motor 5, and the adjustable magnetic power mechanism 8 are all electrically connected to the control mechanism 2. The transmission mechanism 6 includes a cooling oil tank 61, a crankshaft 62, and a piston 63. The piston 63 includes a cylinder 631, a magnetic head 632, and a connecting rod 633. One end of the connecting rod 633 is fixedly connected to the magnetic head 632. The magnetic head 632 is located inside the cylinder 631 and is positioned opposite to the magnetic field coil 8484. The other end of the connecting rod 633 passes through the cooling oil tank 61 and is hinged to the crankshaft 62. The crankshaft 62 is located inside the cooling oil tank 61, which is fixed to the base 1. Both ends of the crankshaft 62 pass through the cooling oil tank 61 and are connected to the starter motor 5 and the levitation generator 7, respectively. Both ends of the crankshaft 62 are mounted on the base 1 through bearing seats.
[0027] The data monitoring mechanism 4 includes a distance sensor 43, a temperature sensor 41, and a speed sensor 42. The speed sensor 42 is used to detect the rotor speed of the levitation generator 7. The temperature sensor 41 is set on the outside of the levitation generator 7 to detect the temperature of the levitation generator 7. The distance sensor 43 is installed on the top of the cylinder 631 and is set opposite to the magnetic head 632 to detect the position of the magnetic head 632. The levitation generator 7 is equipped with a radiator 10 and an output protection mechanism, which includes an overvoltage protector and an overcurrent protector.
[0028] The control mechanism 2 includes a data acquisition unit, a power supply, and a controller. Distance sensor 43, temperature sensor 41, and speed sensor 42 are all electrically connected to the data acquisition unit, which is also electrically connected to the controller. Both the controller and the data acquisition unit are connected to the power supply. The controller is electrically connected to the magnetic field coil 84 in the adjustable magnetic power mechanism 8, and is used to change the polarity of the magnetic field coil 84. The polarity of the magnetic field coil 84 is changed according to the position of the magnetic head 632, causing the transmission mechanism 6 to operate under the combined action of the starter motor 5 and the adjustable magnetic power mechanism 8. That is, when the starter motor 5 drives the magnetic head 632 upward, the polarity of the magnetic coil is opposite to that of the magnetic head 632, causing the magnetic head 632 to experience an upward pulling force. When the magnetic head 632 moves to the top, the polarity of the magnetic coil is changed so that it is the same as the polarity of the magnetic head 632, causing the magnetic head 632 to experience a downward pushing force.
[0029] The energy storage mechanism 3 is a battery pack, which is installed on the base 1.
[0030] A method for applying a magnetically driven magnetic levitation generator 7 device includes the following specific steps:
[0031] Initial stage: The starting power is supplied by an external circuit. The controller controls the starter motor 5 to run. The starter motor 5 drives the crankshaft 62 to rotate, which causes the connecting rod 633 to reciprocate and the flywheel to rotate, causing the magnetic levitation generator 7 to rotate. When the connecting rod 633 drives the magnetic head 632 to the set position, the controller controls the magnetic field coil 84 to change the polarity, so that the magnetic head 632 is pushed downward, further pushing the crankshaft 62 to rotate, thereby driving the magnetic levitation generator 7 to rotate and output electrical energy to the outside world.
[0032] Energy storage stage: When the speed sensor 42 detects the current speed, the controller controls the starting motor 5 to reach the current speed, and then the magnetic levitation generator 7 charges the battery pack.
[0033] Temperature data is collected during both the initial and energy storage phases. The temperature data is transmitted to the controller via a data acquisition unit. The controller compares the temperature with the set temperature value. When the actual temperature is higher than the set value, the radiator 10 is activated. At the same time, the output terminal of the levitation generator 7 is equipped with overvoltage and overcurrent protectors for overvoltage and overcurrent protection.
[0034] When the detection speed is 1450-1500 rpm, the controller starts motor 5 to automatically track and maintain a constant speed. If the output current and voltage exceed the normal values by 10%, operation will automatically stop.
[0035] Therefore, the present invention adopts the above-mentioned magnetic power driven magnetic levitation generator 7 device and its application method, which has the following beneficial effects: an adjustable magnetic power mechanism 8 is added to the transmission mechanism 6 between the starter motor 5 and the levitation generator 7, and the drive is carried out under the dual action of the starter motor 5 and the magnetic power, which greatly reduces the required motor drive power and saves energy.
[0036] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and not to limit them. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can still be made to the technical solutions of the present invention, and these modifications or equivalent substitutions cannot cause the modified technical solutions to deviate from the spirit and scope of the technical solutions of the present invention.
Claims
1. A magnetically driven magnetic levitation generator device, characterized in that: The system includes a base, a control mechanism, an energy storage mechanism, a data monitoring mechanism, a starter motor, a transmission mechanism, a levitation generator, and an adjustable magnetic power mechanism. The adjustable magnetic power mechanism includes a magnetic field housing, a fixing plate, an adjusting screw, and a magnetic field coil. The magnetic field coil is housed within the magnetic field housing and fixed to one side of the fixing plate. The other side of the fixing plate is fixedly connected to one end of the adjusting screw. The adjusting screw is threadedly connected to the top cover of the magnetic field housing. The magnetic field housing is mounted on top of the transmission mechanism. A starter motor and a levitation generator are connected to both sides of the transmission mechanism, respectively. The levitation generator is electrically connected to the energy storage mechanism. The data monitoring mechanism, the starter motor, and the adjustable magnetic power mechanism are all electrically connected to the control mechanism. The transmission mechanism includes a cooling oil tank, a crankshaft, and a piston. The piston includes a cylinder, a magnetic head, and a connecting rod. One end of the connecting rod is fixedly connected to the magnetic head, which is located inside the cylinder. The other end of the connecting rod passes through the cooling oil tank and is hinged to the crankshaft. The crankshaft is located inside the cooling oil tank, which is fixed to a base. Both ends of the crankshaft pass through the cooling oil tank and are respectively connected to the starter motor and the levitation generator.
2. The magnetically driven magnetic levitation generator device according to claim 1, characterized in that: The data monitoring mechanism includes a distance sensor, a temperature sensor, and a speed sensor. The speed sensor is used to detect the rotor speed of the levitation generator. The temperature sensor is located on the outside of the levitation generator to detect the temperature of the levitation generator. The distance sensor is installed on the top of the cylinder and is positioned opposite the magnetic head to detect the position of the magnetic head. The levitation generator is equipped with a radiator and an output protection mechanism, which includes an overvoltage protector and an overcurrent protector.
3. The magnetically driven magnetic levitation generator device according to claim 2, characterized in that: The control mechanism includes a data acquisition unit, a power supply, and a controller. The distance sensor, temperature sensor, and speed sensor are all electrically connected to the data acquisition unit. The data acquisition unit is electrically connected to the controller. Both the controller and the data acquisition unit are connected to the power supply.
4. The magnetically driven magnetic levitation generator device according to claim 3, characterized in that: The controller is electrically connected to the magnetic field coil in the adjustable magnetic power mechanism and is used to change the polarity of the magnetic field coil.
5. A magnetically driven magnetic levitation generator device according to claim 4, characterized in that: The starter motor and the levitation generator are mounted on bases on both sides of the cooling oil tank. An inertial flywheel is fitted at the input end of the levitation generator, and both ends of the crankshaft are mounted on the base through bearing seats.
6. The magnetically driven magnetic levitation generator device according to claim 5, characterized in that: The energy storage mechanism is a battery pack, which is mounted on a base.
7. The application method of the magnetically driven magnetic levitation generator device as described in claim 6, characterized in that, The specific steps are as follows: Initial stage: The starting electrical system is powered by an external circuit. The controller controls the starter motor to run. The starter motor drives the crankshaft to rotate, which in turn causes the connecting rod to reciprocate and the flywheel to rotate, thus causing the magnetic levitation generator to rotate. When the connecting rod moves the magnetic head to the set position, the controller controls the magnetic field coil to change the polarity, so that the magnetic head is pushed downward, which further pushes the crankshaft to rotate, thereby driving the magnetic levitation generator to rotate and output electrical energy to the outside world. Energy storage phase: When the speed sensor detects the current speed, the controller controls the starter motor to reach the current speed, and then the magnetic levitation generator charges the battery pack.
8. The application method of the magnetically driven magnetic levitation generator device according to claim 7, characterized in that: Temperature data is collected in both the initial stage and the energy storage stage. The temperature data is transmitted to the controller through the data acquisition device. The controller compares the temperature with the set temperature value. When the actual temperature is higher than the set value, the radiator is activated. At the same time, the output terminal of the levitation generator is equipped with overvoltage protectors and overcurrent protectors for overvoltage and overcurrent protection.