Dynamic Modeling of Prime Mover on Microgrid Testbed Using Induction Motor Inverter Drive

Desrita Pardi, F. D. Wijaya, A. Cahyadi
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引用次数: 1

Abstract

Microgrid testbed is a prototype of a large scale microgrid system. This paper discusses a microgrid testbed simulation consisting of one synchronous generator, two induction generators, three induction motors, busbar, and load. The induction motor is used as prime mover which controlled by inverter. The operation of microgrid testbed, both in stand-alone as well as parallel operation, can affect frequency. The speed of prime mover is used to maintain the frequency of the system at 50 Hz (±1 %). The method used to control the speed of prime mover is by changing the frequency of the power source. The best stand-alone operation frequency (50 Hz) of induction generator is achieved by setting the power source frequency to 46 Hz to get the motor speed of 0.85 pu, while synchronous generator operation achieved with setting the power source frequency to 45 Hz and the motor speed of 0.9 pu. The oscillation occurred shortly when induction generator 1 and 2 connected to the system in parallel operation. This happens because the induction generator not only acts as an active power supply, but also absorbs reactive power from the system, so it affects the changes of frequency. The synchronous generator as the primary generator can reduce oscillation because it acts as both active and reactive power supply to the system, so it can stabilize the frequency.
感应电机逆变驱动微电网试验台原动机动力学建模
微电网试验台是大型微电网系统的原型。本文讨论了一个由一台同步发电机、两台感应发电机、三台感应电动机、母线和负载组成的微电网仿真试验台。采用感应电动机作为原动机,由逆变器控制。微电网试验台的运行,无论是单机运行还是并联运行,都会对频率产生影响。原动机的速度用来维持系统的频率在50赫兹(±1%)。用来控制原动机速度的方法是通过改变电源的频率。感应发电机单机最佳运行频率为50 Hz,电源频率为46 Hz,电机转速为0.85 pu;同步发电机单机最佳运行频率为45 Hz,电机转速为0.9 pu。当1号和2号感应发电机与系统并联运行时,振荡很快发生。这是因为感应发电机既作为有功电源,又吸收系统的无功功率,所以影响频率的变化。同步发电机作为一次发电机,由于同时为系统提供有功和无功电源,可以减少振荡,从而稳定频率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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