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Frequency regulation of an isolated hybrid power system with Superconducting Magnetic Energy Storage

机译:超导磁能存储隔离混合动力系统的频率调节

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Super conducting magnetic energy storage (SMES) may improve the Frequency stability of a system, because of its fast response time in charging and discharging energy. This paper proposed the modelling and control of a hybrid solar photo voltaic, wind energy, Diesel-Engine Generator (DEG) and Superconducting Magnetic Energy Storage systems connected to an isolated power system. Due to random variations of wind speed, output power of wind generator fluctuates randomly. Also solar irradiance and temperature variation causes the variation of solar PV output power. This causes fluctuations of power system frequency and thus affects the stability of the system. Due to the intermittent nature of power output from renewable sources, they are integrated along with different energy storage systems. In this project SMES is proposed for minimization of frequency fluctuations of hybrid system. The control scheme of SMES is based on a sinusoidal pulse width-modulation voltage-source converter and a two-quadrant dc-dc chopper using an insulated-gate bipolar transistor. This project analyses the effect of superconducting magnetic energy storage (SMES) to improve the stability of an isolated hybrid system under varying atmospheric conditions. Simulation results indicate that SMES system can contribute to frequency stability when supply demand imbalance occurs.
机译:超级导电磁能存储(SME)可以提高系统的频率稳定性,因为其充电和放电能量的快速响应时间。本文提出了一种混合型太阳能光伏,风能,柴油机发电机(DEG)和超导磁能存储系统的建模和控制连接到隔离电力系统。由于风速随机变化,风力发生器的输出功率随机波动。 Solar辐照度和温度变化也导致太阳能光伏输出功率的变化。这导致电力系统频率的波动,从而影响系统的稳定性。由于可再生源的功率输出的间歇性,它们与不同的能量存储系统一起集成。在该项目中,建议最小化混合动力系统的频率波动。 SME的控制方案基于正弦脉冲宽度调制电压 - 源转换器和使用绝缘栅双极晶体管的双象限DC-DC斩波器。该项目分析超导磁能存储(SME)的效果,提高不同大气条件下分离的混合系统的稳定性。仿真结果表明,当发生供应需求不平衡时,SMES系统可以促进频率稳定性。

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