The present invention relates to a wind power excitation synchronous generation system and a control method thereof, and more particularly, to a control method for driving the generator at a constant speed, stable voltage, frequency, and a phase equal to the utility grid by using a motor servo control and an excitation current control of the excitation synchronous generator.
Generally, in a wind power generation system with a permanent magnet generator or an induction generator, the energy of a power source is transmitted by using a transmission mechanism to transmit a rotational energy to a generator. A rotation speed and a torque of the generator are determined according to the magnitude of the power source. Therefore, the rotation speed thereof is required to be limited for ensuring that the rotation speed varies in a specific range. When the energy of the power source is higher or lower than a standard range, the generator is turned off until the energy of the power source is in the standard range. In this passive power generation system, an AC-to-DC converter and a DC-to-AC converter are required to output the energy of the power source. However, this converting method will result in a power loss of the energy conversion, hence deteriorating an energy conversion efficiency and increasing the cost of the generation equipment.
Besides, in the induction wind generator, when the inputted power source is altered, or when the load of the utility grid is raised, the induction generator can not control the excitation current thereof. Thus, when the energy required for a load terminal is increased, a voltage from an output terminal of the generator can not be constant, resulting in a reduction of an output energy quality.
Therefore, an aspect of the present invention is to provide a control method of an excitation synchronous generator for maximum power tracking. With use of a motor servo control and an excitation current control of the excitation synchronous generator, a rotation speed of a transmission mechanism can be adjusted. When an input rotation speed is too high or low due to a variation of a power source, such as wind power source, the motor servo control is used, so as to allow the transmission mechanism to rotate at a constant rotation speed, and to control the phase thereof. Therefore, the excitation synchronous generator can be rotated at a constant speed for stably outputting energy with a frequency and a phase. Moreover, a maximum power determining unit can integrate an energy input power and a motor fine tuning power for determining a power command, and can feed back an output power of the synchronous generator for generating an excitation current command to control an output voltage and a current of the excitation synchronous generator, so as to allow the excitation synchronous generator to obtain the maximum power.
In the present invention, with use of the motor servo control for frequency stabilization and an excitation current control of the excitation synchronous generator for maximum power tracking, when the input of the power source of the power generation system varies, the output of the transmission mechanism can be stabilized for controlling the voltage, frequency and phase thereof. Furthermore, by using a power feedback and an excitation current control, the power generation system can generate the maximum power to a utility grid load.
According to a preferred embodiment of the present invention, the control method of the wind power excitation synchronous generation system comprises the following steps: detecting an output voltage, a current and a power of the excitation synchronous generator; controlling an excitation current of the excitation synchronous generator according to the output voltage, the current and the power, so as to allow the excitation synchronous generator to output a maximum power to a utility grid load; and performing a servo control of a motor according to an information of an encoder, so as to allow a transmission mechanism to drive the excitation synchronous generator at a predetermined speed, thereby generating a three-phase alternating-current (AC) power supply with a phase equal to the utility grid load, wherein the three-phase AC power supply is allowed to be connected to the utility grid load in parallel.
In one embodiment of the present invention, the control method further comprises the following steps: when the energy of the power source decreases, raising a duty cycle of the motor according to the information of the encoder, so as to drive the motor to follow a position command based on a utility grid phase, and providing a fine tuning power to maintain the excitation synchronous generator at a constant rotation speed, and simultaneously adjusting an excitation current of an excitation controlling unit for reducing the excitation current of the excitation synchronous generator, hence reducing the fine tuning power which is used to drive the excitation synchronous generator by the motor and outputting the maximum power to the utility grid load.
In one embodiment of the present invention, the control method further comprises the following steps: when the energy of the power source increases, reducing a duty cycle of the motor according to the information of the encoder, so as to drive the motor to follow a position command based on a utility grid phase for maintaining the excitation synchronous generator at a constant rotation speed, and simultaneously adjusting an excitation current of an excitation controlling unit for raising the excitation current of the excitation synchronous generator and outputting the maximum power to the utility grid load.
According to another embodiment of the present invention, the wind power excitation synchronous generation system comprises: a wind power source; an excitation synchronous generator; a transmission mechanism configured to use a wind energy of the wind power source to drive the excitation synchronous generator; an excitation controlling unit configured to provide an excitation current signal to the excitation synchronous generator, so as to allow the excitation synchronous generator to output an electric energy to the utility grid load; a motor configured to control the driving of the transmission mechanism; a digital signal processing controller configured to determine a duty cycle width of a pulse width modulation (PWM) controlling unit according to a phase information of the utility grid and a position information of an armature of the excitation synchronous generator; and a power driving inverter configured to receive a power switch timing transmitted form the PWM controlling unit for driving the motor.
The foregoing aspects and many of the attendant advantages of this invention will become more readily appreciated as the same becomes better understood by reference to the following detailed description, when taken in conjunction with the accompanying drawings, wherein:
In order to make the illustration of the present invention more explicit and complete, the following description is stated with reference to
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As is understood by a person skilled in the art, the foregoing embodiments of the present invention are strengths of the present invention rather than limiting of the present invention. It is intended to cover various modifications and similar arrangements included within the spirit and scope of the appended claims, the scope of which should be accorded the broadest interpretation so as to encompass all such modifications and similar structures.
Number | Date | Country | Kind |
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100127128 | Jul 2011 | TW | national |