An adaptive wind power smoothing method with energy storage system

Hanchen Xu, C. Wang, Chao Lu, Zhigang Lu
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引用次数: 5

Abstract

The random and intermittent nature of wind power (WP) makes the integration of large-scale wind farms into power system problematic. The energy storage system (ESS) is an effective means to smooth the WP. This paper presents a novel Kalman filter (KF) based adaptive wind power smoothing method to determine the power output of an ESS. ESS capacity can be significantly reduced by adjusting the parameters of KF adaptively according to the WP fluctuation. Meanwhile, a fuzzy logic controller is introduced to manage the remained energy level (REL) of the ESS. By considering the current WP fluctuation, the REL and the power output of the ESS together in the controller, the REL can be successfully managed to a reasonable range without deteriorating the WP fluctuation. A test case based on data from an actual wind farm validated the effectiveness of the proposed method.
一种带储能系统的风电自适应平滑方法
风力发电(WP)的随机性和间歇性使得大型风电场与电力系统的整合存在问题。储能系统(ESS)是实现WP平滑化的有效手段。提出了一种基于卡尔曼滤波(KF)的风电功率自适应平滑方法来确定ESS的输出功率。通过根据WP波动自适应调整KF参数,可以显著降低ESS容量。同时,引入模糊控制器对ESS的剩余能级进行管理。通过在控制器中同时考虑当前WP波动、REL和ESS的输出功率,可以在不恶化WP波动的情况下,成功地将REL控制在合理的范围内。基于实际风电场数据的测试用例验证了所提方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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