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Many-Objective Robust Optimization for Dynamic VAR Planning to Enhance Voltage Stability of a Wind-Energy Power System

机译:用于动态VAR规划以提高风能电力系统电压稳定性的多目标鲁棒优化

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摘要

Growing integration of wind power and increasing use of induction motor loads dramatically affect a power system's dynamic performance. To address the challenges, this paper proposes a robust dynamic VAR planning method to enhance the voltage stability of wind energy power systems under uncertainty. Firstly, two indices are developed to evaluate the steady-state and the short-term voltage stability of the system. Then, a robustness index is proposed to quantitatively evaluate the robust optimality of the solutions, considering the uncertainties from wind power output and STATCOMs initial state before a contingency. Four objectives are optimized simultaneously: 1) total planning cost, 2) short-term voltage stability index, 3) steady-state voltage stability index, and 4) robustness of the solutions. Finally, an Adaptive Non-dominated Sorting Genetic Algorithm-III based on Latin Hypercube Sampling (A-NSGA-III-LHS)is designed to solve this many-objective optimization problem with 3 improvements over the standard NSGA-III: 1) adaptive mutation rate, 2) Differential Evolution operator, 3) Latin Hypercube Sampling based initial population generation. The proposed method is tested on the New England 39-bus system with an industry-standard complex load model, showing high robust optimality and computational efficiency over conventional methods.
机译:不断增长的风力电力和越来越多的感应电机负载的融合显着影响电力系统的动态性能。为了解决挑战,本文提出了一种强大的动态VAR规划方法,以提高不确定度风能电力系统的电压稳定性。首先,开发了两个指数以评估系统的稳态和短期电压稳定性。然后,提出了一种稳健性指数来定量评估解决方案的稳健最优性,考虑到在应急前的风电输出和Statcoms初始状态的不确定性。四个目标同时优化:1)总规划成本,2)短期电压稳定性指数,3)稳态电压稳定性指标,4)解决方案的鲁棒性。最后,基于拉丁超立体采样(A-NSGA-III-LHS)的自适应非主导分类遗传算法-III旨在解决与标准NSGA-III:1)自适应突变的3种改进的这种多目标优化问题速率,2)差分演进运营商,3)基于初始群体的拉丁超立方体采样。该方法在新英格兰39总线系统上进行了具有行业标准复合负载模型的测试,并通过传统方法显示出高强大的最优性和计算效率。

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