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Fault ride-through enhancement of wind energy conversion system adopting a mechanical controller

机译:通过机械控制器的风能转换系统进行故障驾驶

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In recent years, wind has become the fastest growing energy source in the electrical power generation. A large amount of electric power is generated from wind, has a great significance in the electric power generation. On the occurrence of any disturbance leads to power imbalance as well as rotor over speeding, consequence is the disconnection of the wind energy conversion system (WECS). This disconnection degrades the voltage restoration and violates the entire stability of the system. The Current grid codes, demand the wind energy system to ensure fault ride through (FRT) ability and contributing network stability. This paper proposed a novel control algorithm to satisfy the grid code requirement. The Proposed controller, forces the WECS to operate away from maximum power point (MPP) during fault condition to reduce the percentage of extracted mechanical power. This reduction in mechanical power assists the stability improvement and suppresses wind generator acceleration. During the normal operating condition, control algorithm forces the gearbox controller to operate at maximum power point to enhance the efficacy of system. This technique is more practical, highly feasible and economically attractive solution compared to other fault ride through technique. The effectiveness of the proposed algorithm is verified by taking different wind speed and gearbox ratio (GB) for squirrel cage based fixed speed induction generator(FSIG). Simulations are carried out using MATLAB/Simulink environment.
机译:近年来,风已经成为电力发电中最快的增长能源。从风中产生大量的电力,对发电具有重要意义。在任何干扰发生的情况下,导致功率不平衡以及转子超速超速,结果是风能转换系统(WECs)的断开。该断开连接会降低电压恢复并违反系统的整个稳定性。电流电网代码,要求风能系统确保过滤通过(FRT)能力和有助于网络稳定性。本文提出了一种满足网格代码要求的新型控制算法。所提出的控制器,迫使WECS在故障条件下远离最大功率点(MPP),以减少提取的机械功率的百分比。这种机械功率的降低辅助稳定性改进并抑制风力发电机加速度。在正常操作条件期间,控制算法强制齿轮箱控制器以最大功率点运行,以增强系统的功效。与其他故障骑行相比,这种技术更实用,高度可行和经济吸引力的解决方案。通过基于鼠笼式的固定速度感应发生器(FSIG)采用不同的风速和齿轮箱比(GB)来验证所提出的算法的有效性。使用MATLAB / SIMULINK环境进行仿真。

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