The Frequency Regulation Strategy for Grid-Forming Wind Turbine Generator and Energy Storage System Hybrid System in Grid-Connected and Stand-Alone Modes

IF 1.9 4区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Han Jiang, Zhengchun Du, Xiaotian Yuan, Jinlong Han, Yaohui Dai, Rui Yang
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Abstract

This paper proposes a coordinated frequency regulation strategy for grid-forming (GFM) type-4 wind turbine (WT) and energy storage system (ESS) controlled by DC voltage synchronous control (DVSC), where the ESS consists of a battery array, enabling the power balance of WT and ESS hybrid system in both grid-connected (GC) and stand-alone (SA) modes. The newly developed GFM framework, i.e., DVSC, is adopted in both WT and ESS, which utilizes DC voltage dynamics for synchronization purposes. In this paper, the GC mode and SA mode are transferred by changing the status of the series-connected switch, and it is necessary to meet the grid connection conditions when the system is transferred to the GC mode, namely, voltage, frequency, and phase sequence. For the GC mode, the inertia response from WT can be realized using the reserved energy of the DC capacitor, while the ESS serves to eliminate the steady-state frequency deviation and reduce the DC voltage fluctuation of WT using the designed secondary frequency regulation scheme. For the SA mode, the proposed strategy can keep the power balance without external power sources. The small-signal model of the WT and ESS hybrid system is derived. The stability analysis in both GC and SA modes is fully conducted utilizing the modal analysis method, where the impacts of control parameters on stability are assessed. The performance of the proposed strategy in a weak system is evaluated. Simulation studies are carried out under various power system contingencies to verify the effectiveness of the proposed strategy and validate the correctness of the theoretical analysis.

Abstract Image

并网型风力涡轮发电机和储能系统混合系统在并网和独立模式下的频率调节策略
本文提出了一种由直流电压同步控制(DVSC)控制的并网(GFM)型-4 风力涡轮机(WT)和储能系统(ESS)的协调频率调节策略,其中ESS 由电池阵列组成,可在并网(GC)和独立(SA)模式下实现风力涡轮机和ESS 混合系统的功率平衡。WT 和 ESS 均采用了新开发的 GFM 框架(即 DVSC),该框架利用直流电压动态实现同步。本文通过改变串联开关的状态来转换 GC 模式和 SA 模式,当系统转换到 GC 模式时,必须满足并网条件,即电压、频率和相序。在 GC 模式下,WT 的惯性响应可利用直流电容器的预留能量来实现,而 ESS 的作用是消除稳态频率偏差,并利用所设计的二次频率调节方案减少 WT 的直流电压波动。对于 SA 模式,所提出的策略可以在没有外部电源的情况下保持功率平衡。推导了 WT 和 ESS 混合系统的小信号模型。利用模态分析方法对 GC 和 SA 模式进行了全面的稳定性分析,评估了控制参数对稳定性的影响。对所提出的策略在弱系统中的性能进行了评估。在各种电力系统突发事件下进行了仿真研究,以验证所提策略的有效性,并验证理论分析的正确性。
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来源期刊
International Transactions on Electrical Energy Systems
International Transactions on Electrical Energy Systems ENGINEERING, ELECTRICAL & ELECTRONIC-
CiteScore
6.70
自引率
8.70%
发文量
342
期刊介绍: International Transactions on Electrical Energy Systems publishes original research results on key advances in the generation, transmission, and distribution of electrical energy systems. Of particular interest are submissions concerning the modeling, analysis, optimization and control of advanced electric power systems. Manuscripts on topics of economics, finance, policies, insulation materials, low-voltage power electronics, plasmas, and magnetics will generally not be considered for review.
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