Multi-objective optimization of HESS control for optimal frequency regulation in a power system with RE penetration

Ousama M.T. Ajami , Rodney H.G. Tan , Mithulan Nadarajah , Farah Adilah Jamaludin , Adlan Bagus Pradana
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Abstract

Concerns over fossil fuel emissions and their hazardous effects have led to a shift away from conventional power plants and focus more on the expansion of renewable energy sources. This shift has resulted in reduced inertia and resulted in poor frequency control within electrical power systems. Hybrid Energy Storage Systems (HESS) have been proposed as an effective solution to enhance frequency stability and address the reduced inertia issue. This research evaluates three distinct control models for HESS, Incorporating Supercapacitor Energy Storage (SCES) and Battery Energy Storage Systems (BESS). To optimize the control parameters with the best objectives, all possible sets of objectives with four different optimization algorithms are studied. The three control models considered for the HESS incorporate Virtual Synchronous Generator (VSG) or Virtual Inertia (VI) control with independent or simultaneous optimization of control parameters. The performances of the three control models are evaluated based on three test scenarios incorporating uncertainties, reduced inertia, and uniform and random load disturbances. The findings indicate that the Independently Optimized Virtual Synchronous Generator HESS (IO VSG-HESS) achieves the best settling time post-contingency but offers the least improvement in frequency nadir with an average of 0.31 %. Conversely, the Simultaneously Optimized Virtual Inertia And Virtual Synchronous Generator Controlled HESS (SO VI-VSG-HESS) excel in mitigating small frequency fluctuations with an average improvement in frequency standard deviation of 87.65 %. The Simultaneously Optimized Virtual Synchronous Generator Controlled HESS (SO VSG-HESS) provides the best frequency nadir, with an average improvement of 0.63 %, but with a slight increase in settling time.

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多目标优化 HESS 控制,实现有可再生能源渗透的电力系统中的最佳频率调节
对化石燃料排放及其有害影响的担忧导致人们不再使用传统的发电厂,而是更加关注可再生能源的发展。这种转变导致惯性减小,造成电力系统频率控制不佳。混合储能系统(HESS)被认为是增强频率稳定性和解决惯性降低问题的有效解决方案。本研究评估了混合储能系统(HESS)、超级电容器储能系统(SCES)和电池储能系统(BESS)的三种不同控制模型。为了以最佳目标优化控制参数,使用四种不同的优化算法对所有可能的目标集进行了研究。为 HESS 考虑的三种控制模型包括虚拟同步发电机(VSG)或虚拟惯性(VI)控制,以及独立或同步的控制参数优化。根据包含不确定性、降低惯性以及均匀和随机负载干扰的三种测试场景,对三种控制模型的性能进行了评估。研究结果表明,独立优化的虚拟同步发电机 HESS(IO VSG-HESS)实现了最好的应急后稳定时间,但对频率低点的改善最小,平均为 0.31%。相反,同时优化的虚拟惯性和虚拟同步发电机控制 HESS(SO VI-VSG-HESS)在缓解小频率波动方面表现出色,频率标准偏差平均改善了 87.65%。同时优化的虚拟同步发电机控制 HESS(SO VSG-HESS)可提供最佳的频率低点,平均提高 0.63%,但沉降时间略有增加。
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