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Using Improved Power Electronics Modeling and Turbine Control to Improve Wind Turbine Reliability

机译:使用改进的电力电子建模和涡轮控制来提高风力涡轮机的可靠性

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摘要

Improving offshore wind turbine reliability is a key industry goal to improve the availability of this renewable energy generation source. The semiconductor devices in the wind turbine power converter are traditionally considered as the most sensitive and important components to achieve this and managing their thermomechanical stressing is vital, since this is one of their principal long-term aging mechanisms. Conventional deterministic reliability prediction methods used in industrial applications are not suitable for wind turbine applications, due to the stochastic nature of the wind speed. This paper develops an electrothermal model of the power devices, which is integrated with a wind turbine system model for the investigation of power converter thermal cycling under various operating conditions. The model has been developed to eliminate the problems of pulse width modulation switching, substantially reducing simulation time. The model is used to improve the current controller tuning method to reduce thermal stresses suffered by the converter during a grid fault. The model is finally used to design a control method to alleviate a key problem of the doubly fed induction generator—severe thermal cycling caused during operation near synchronous speed.
机译:改善海上风力涡轮机的可靠性是提高该可再生能源的可用性的关键行业目标。传统上,将风力涡轮机功率转换器中的半导体器件视为实现这一目标的最敏感和最重要的组件,并且管理其热机械应力至关重要,因为这是其主要的长期老化机制之一。由于风速的随机性,工业应用中使用的常规确定性可靠性预测方法不适合风力涡轮机应用。本文开发了功率器件的电热模型,该模型与风力涡轮机系统模型集成在一起,用于研究各种工况下的功率转换器热循环。该模型的开发消除了脉冲宽度调制切换的问题,从而大大减少了仿真时间。该模型用于改进电流控制器的调整方法,以减少在电网故障期间转换器遭受的热应力。该模型最终用于设计一种控制方法,以缓解双馈感应发电机的关键问题-在接近同步速度的运行过程中引起的严重热循环。

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