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A Hybrid Transmission Grid Architecture Enabling Efficient Optimal Power Flow

机译:实现高效最优潮流的混合传输网格架构

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摘要

The recent rise of electricity generation based on renewable energy sources increases the demand for transmission capacity. Capacity expansion via the upgrade of transmission line capacity, e.g., by conversion to a high-voltage direct current (HVDC) line, is an attractive option. In this paper, it is shown that if the upgrade to HVDC is applied systematically to selected transmission lines across the grid, a hybrid architecture is obtained that enables an efficient and globally optimal solution of the optimal power flow (OPF) problem. More precisely, for conventional meshed AC transmission grids the OPF problem is nonconvex and in general NP-hard, rendering it hard to solve. We prove that after the upgrade to the proposed hybrid architecture, the same mesh topology facilitates an exact convex relaxation of the OPF problem, enabling its globally optimal solution with efficient polynomial time algorithms. This OPF method is then employed in simulations, which demonstrate that the hybrid architecture can increase the effective transmission capacity and substantially reduce the generation costs, even compared to the AC grid with optimal transmission switching.
机译:最近基于可再生能源的发电量增加,对输电能力的需求增加。通过传输线容量的升级(例如通过转换为高压直流(HVDC)线)来扩展容量是一种有吸引力的选择。在本文中,可以证明,如果将HVDC的升级系统地应用于选定的跨电网输电线路,则将获得一种混合体系结构,该体系结构可以为最优潮流(OPF)问题提供高效且全局最优的解决方案。更准确地说,对于传统的网状交流输电网格,OPF问题是非凸的,并且通常是NP难的,因此很难解决。我们证明,在升级到提出的混合体系结构之后,相同的网格拓扑可促进OPF问题的精确凸松弛,从而通过有效的多项式时间算法实现其全局最优解。该OPF方法随后用于仿真中,证明与采用最佳传输切换的AC电网相比,混合架构可以提高有效传输容量并显着降低发电成本。

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