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拓扑与电路 ★ 5.0

外逼近法求解离散交流最优潮流

Outer Approximation Method for Discrete AC Optimal Power Flow

作者
期刊 IEEE Transactions on Power Systems
出版日期 2025年1月
技术分类 拓扑与电路
相关度评分 ★★★★★ 5.0 / 5.0
关键词 外逼近法 离散交流最优潮流问题 混合整数二阶锥规划 非线性规划 全局解
语言:

中文摘要

本文介绍了一种用于求解考虑开关决策的离散交流最优潮流(OPF)问题的外逼近(OA)方法。OPF问题通过扩展二次锥形式进行建模,其中包括选择发电机进行调度以及控制开关型电容器/电感器组。OA方法基于将非线性等式约束松弛为带有惩罚松弛变量的锥不等式和线性不等式。由此得到的混合整数二阶锥规划(MISOCP)解与一个连续变量非线性规划(NLP)求解器进行迭代,该NLP求解器将离散决策固定在其最新的MISOCP值上。OA方法可以利用多面体逼近,并且可扩展到求解节点数超过3000的测试算例。本文报告了与近期文献中全局最优离散交流OPF结果的对比情况,以及与一个利用动态外逼近、分段线性逼近和空间分支的非凸混合整数非线性规划(MINLP)商业求解器的对比情况。对比分析表明,所提出的OA方法能为先前研究过的测试算例提供全局解,同时显著提高求解速度。此外,该方法还适用于其他方法无法计算出可行解的大型测试网络。

English Abstract

This paper introduces an Outer Approximation (OA) method for solving discrete AC Optimal Power Flow (OPF) problems that account for switching decisions. The OPF problem is formulated via the extended conic quadratic format. It includes selecting generators for dispatch and controlling switched-type capacitor/inductor banks. The OA method is based on relaxing nonlinear equality constraints into conic and linear inequalities with penalty slack variables. The resulting Mixed-Integer Second-Order Cone Programming (MISOCP) solution is iterated with a continuous variable Nonlinear Programming (NLP) solver that holds the discrete decisions constant at their most recent MISOCP values. The OA method can utilize polyhedral approximations and is scalable to test instances with more than 3000 nodes. Comparisons are reported with globally optimal discrete AC OPF results from the recent literature and a commercial solver for nonconvex Mixed-Integer Nonlinear Programming (MINLP) utilizing dynamic outer approximation and piecewise linear approximation with spatial branching. Comparative analysis shows that the proposed OA method provides global solutions for previously studied test instances while offering significant speed-up. It also applies to larger test networks where the other methods fail to calculate a feasible solution.
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SunView 深度解读

该离散交流最优潮流算法对阳光电源PowerTitan储能系统和iSolarCloud智能运维平台具有重要应用价值。在大型储能电站中,该外逼近方法可优化ST系列储能变流器的开关操作决策,实现多台设备的协调控制与经济调度。通过求解混合整数非线性规划模型,可精确处理储能系统充放电切换、变压器分接头调节等离散决策,同时满足非线性潮流约束。该算法的高计算效率和收敛性保证,可集成至iSolarCloud平台实现实时优化调度,提升储能电站运行经济性。对于光储一体化项目,该方法可协同优化SG逆变器和ST储能的离散控制策略,降低系统损耗,提高电网友好性。