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Development of Wind Power Generation Model with DFIG for Varying Wind Speed and Frequency Control for Wind Diesel Power Plant

机译:风力发电机组风速和频率控制的DFIG风力发电模型开发

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The power generation with non-renewable energy sources has very harmful effects on the environment as well as these sources are depleting. On the other side the renewable energy sources are quite unpredictable source of power. The best trade-off is to use the combination of both kind of sources to make a hybrid system so that their individual power generation constraints can be overcome. The hybrid system taken for analysis in this work comprises of wind and diesel power generation systems. The complete modelling of the system has been done in MATLAB/SIMULINK environment. Doubly fed induction generator (DFIG) is used for power generation in wind power system. The modelling has been done considering the changing wind speed and varying load conditions. The mathematical models of DFIG and diesel power generator have been used to develop the simulink model which can be used for analysis of various performances of the system like frequency response and power sharing between different sources with load variation .The generating margin of DFIG is also simulated for the frequency support during varying load conditions .The generating margin is created by the control of active power output from DFIG. Also as the power demand rises the generating margin of DFIG keeps the balance between the power generation and load. Proportional Integral controller has been used for diesel generator plant for frequency control. The controller gains have been optimized with Particle Swarm Optimization technique. The proper selection of controller gains and wind power reserve help to achieve the enhanced frequency response of the hybrid system.
机译:使用不可再生能源发电会对环境造成非常有害的影响,而且这些能源正在消耗。另一方面,可再生能源是不可预测的能源。最好的权衡是使用两种电源的组合来构成一个混合系统,从而可以克服它们各自的发电限制。在这项工作中用于分析的混合动力系统包括风力和柴油发电系统。系统的完整建模已在MATLAB / SIMULINK环境中完成。双馈感应发电机(DFIG)用于风力发电系统中的发电。考虑到变化的风速和变化的负载条件进行了建模。利用DFIG和柴油发电机的数学模型来开发simulink模型,该模型可用于分析系统的各种性能,例如频率响应和负载变化时不同电源之间的功率共享。还模拟了DFIG的发电裕度发电机裕量是由DFIG输出的有功功率控制产生的。同样,随着功率需求的增加,DFIG的发电余量保持了发电和负载之间的平衡。比例积分控制器已用于柴油发电机组以进行频率控制。控制器增益已通过粒子群优化技术进行了优化。的控制器增益和风力发电储备帮助适当地选择,以实现混合动力系统的增强的频率响应。

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