含电池电力系统最优传输切换的智能并行调度方法

T. Lan, Garng M. Huang
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引用次数: 8

摘要

在现代电力系统中,可再生能源发电的日负荷变化和间歇性有时会造成输电拥塞。因此,廉价发电无法得到充分调度,在极端情况下,将被迫进行非自愿减载。本文提出了一种基于最优传输交换(OTS)和电池的智能并行调度方法,以缓解传输拥塞,从而降低运行成本。将OTS和电池嵌入到二元变量的交流最优潮流(ACOPF)中,将其表述为一个混合整数非线性规划(MINLP)问题。为了有效地解决多小时工况下的MINLP问题,提出了一种基于已有知识的两阶段优化方案。在第一阶段,首先计算一个多小时的情况,使OTS失效,以获得估计电池最优充放电策略的知识。然后,将多小时情况解耦成若干子问题,在并行计算中同时求解。在改进的IEEE-118总线系统上的仿真结果表明了所提出的智能并行调度方法的有效性。
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An intelligent parallel scheduling method for optimal transmission switching in power systems with batteries
Daily load variation and intermittence of renewable generation may sometime cause transmission congestion in modern power system. As a result, cheap generation cannot be fully dispatched and in extreme condition involuntary load shedding will be enforced. In this paper, an intelligent parallel scheduling method using optimal transmission switching (OTS) and batteries is proposed to mitigate transmission congestion and therefore reduce operational cost. OTS and batteries are embedded in AC optimal power flow (ACOPF) with binary variables used, which is formulated as a mixed integer nonlinear programming (MINLP) problem. To solve the MINLP problem efficiently for multi-hour case, a two-stage optimization scheme is proposed based on developed knowledge. A multi-hour case first is calculated in stage one with OTS disabled to obtain the knowledge of estimated the optimal charging/discharging strategy for batteries. Then, the multi-hour case is decoupled into several subproblems and solved simultaneously in parallel computing. Numerical results on modified IEEE-118 bus system shows the usefulness of the proposed intelligent parallel scheduling method.
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