采用永磁同步发电机的大型风能转换系统

H. Ahuja, Arika Singh, Arvind Sharma
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引用次数: 7

摘要

由于化石资源的枯竭、燃料价格的上涨以及对气候变化和全球变暖的担忧,可再生能源越来越受到研究人员的关注。在像印度这样海岸线很长的国家,海上风力发电场是一个有吸引力的选择。在过去的二十年中,风力发电进入电网的速度非常快,因此现在要求风电场通过适当的发电控制积极参与电网运行。使用永磁同步发电机用于风能转换系统的优点是,与其他变速WT配置相比,其效率更高,其满量程转换器允许完全可控性,齿轮箱可以通过使用更高数量的PMSG极点而省略。本文从电能质量、可承受风速范围和不同风速条件下的功率平衡等方面,对基于PMSG的wcs进行了完整的建模、仿真和分析。发电机与电网之间串级连接的变流器均采用矢量控制策略。在部分负荷和全负荷两种工况下,对wcs进行了分析。发电机控制用于风速小于额定风速时的功率优化,螺距控制用于风速大于额定风速但低于截止速度时的功率优化。
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Large scale wind energy conversion system using permanent magnet synchronous generator
Renewable energy resources are getting increased attention from researchers because of depleting fossil resources, increasing fuel prices and the concern of climate change and global warming. In a country like India where long coastal line is available, offshore wind farms are one of the attractive options. Over last two decades the wind power penetration in to the grid is increasing at a very fast rate and therefore the wind farms are now required to participate actively in grid operation by an appropriate generation control. The advantage of using a Permanent Magnet Synchronous Generator for wind energy conversion systems is that its efficiency is higher compared to other variable speed WT configurations, its full scale converter allows full controllability, gearbox can be omitted by using higher number of poles of PMSG. This paper proposes the complete modeling and simulation, and analysis of a PMSG based WECS in terms of its power quality, range of wind speed that it can handle and the power balance when the machine is operating under varying wind velocity conditions. Vector control strategy is employed for both the converters connected, in cascade, between generator and the power grid. The WECS is analyzed under both partial and full-load regime. Generator control is applied for power optimization when wind speed is less than rated speed and pitch control is applied for speeds higher than rated speed but below cut-out speed.
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