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首页> 外文期刊>IEEE Transactions on Industry Applications >Low-Voltage Ride-Through of a Synchronous Generator-Based Variable Speed Grid-Interfaced Wind Energy Conversion System
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Low-Voltage Ride-Through of a Synchronous Generator-Based Variable Speed Grid-Interfaced Wind Energy Conversion System

机译:基于同步发电机的变速并网风能转换系统的低压穿越

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摘要

Wind energy conversion systems (WECSs) based on synchronous generators devoid of rotor windings, such as permanent magnet synchronous generators and synchronous reluctance generators, have become popular due to their maintenance-free operation. As per grid codes, WECSs ought to stay connected, at least for a short while, to ensure reliability and stability, even if there is a fault in the grid. There are various techniques proposed in the literature, for implementing low-voltage ride-through (LVRT). This article explores a few methods for achieving LVRT for a synchronous machine-based WECS connected to the grid through a back-to-back connected full-rated converter. The machine-side converter is controlled by field-oriented control methodology to drive the generator at an optimum speed to harvest maximum power from the wind turbine. The grid-side converter makes use of the grid-voltage-oriented control algorithm to achieve decoupled control of real and reactive powers. The LVRT capability of the system is attained using four different control techniques, namely modulation index (MI) control, deloading, crow-bar protection, and interchanging the roles of the two converters to arrest the rise in dc-link voltage. These methods have been simulated in Simulink/MATLAB environment, and the results obtained show that these techniques work very effectively for realizing LVRT in a synchronous machine-based WECS. Finally, experimental results are presented to demonstrate the successful working of the maximum power point tracking algorithm and LVRT capability on a laboratory prototype; a comparison of LVRT techniques is presented to enable the users to make an informed choice.
机译:基于无转子绕组的同步发电机的风能转换系统(WECS),例如永磁同步发电机和同步磁阻发电机,由于其免维护运行而广受欢迎。根据电网规范,即使电网出现故障,WECS也应至少保持一小段时间保持连接,以确保可靠性和稳定性。文献中提出了用于实现低压穿越(LVRT)的各种技术。本文探讨了通过背靠背连接的全速率转换器连接到电网的基于同步机器的WECS来实现LVRT的几种方法。机器侧变流器由磁场定向控制方法控制,以最佳速度驱动发电机,以从风力涡轮机中获取最大功率。电网侧转换器利用面向电网电压的控制算法来实现对有功功率和无功功率的解耦控制。该系统的LVRT功能是使用四种不同的控制技术获得的,即调制指数(MI)控制,卸载,撬棒保护,以及互换两个转换器的作用以阻止直流母线电压的上升。这些方法已经在Simulink / MATLAB环境中进行了仿真,获得的结果表明,这些技术对于在基于同步机器的WECS中实现LVRT十分有效。最后,提供实验结果以证明最大功率点跟踪算法和LVRT功能在实验室原型上的成功运行;提出了LVRT技术的比较,以使用户能够做出明智的选择。

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