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Multi-objective complementary scheduling of hydro-thermal-RE power system via a multi-objective hybrid grey wolf optimizer

机译:通过多目标混合灰狼优化器对水火热发电系统进行多目标互补调度

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摘要

This paper presents a new short-term multi-objective complementary scheduling problem for hydrothermal-renewable power systems (HTRPSs). The economic/emission objectives, different from traditional economic/emission load dispatch problems, consider the on/off status of thermal power units as well as the dispatched load among engaged units as the optimization variables under various complicated nonlinear constraints. To solve the model with hybrid optimization variables, a multi-objective hybrid grey wolf optimization algorithm is proposed, in which continuous and discrete optimization variables are encoded and optimized synchronously. A daily scheduling simulation example of a hybrid power system consisting of cascade hydropower stations, thermal power units, and renewable energy (RE) power plants is studied to test the proposed model and algorithm. The results not only demonstrate that the proposed algorithm can achieve the best Pareto front for economic/emission bi-objectives compared to its competitors, but also confirm that the obtained scheduling schemes are completely within the feasible domain. Moreover, the impact of RE capacity on the power system is analyzed. Results indicate that the joint operation of RE and hydropower stations benefit both the economic and emission objectives, and the operational costs and pollution emissions decrease by 11.9% and 17.4%, respectively, when the RE capacity increases from 50% to 100% in the hybrid system. (C) 2018 Elsevier Ltd. All rights reserved.
机译:本文提出了一个新的短期多目标互补计划的热液可再生电力系统(HTRPSs)。经济/排放目标不同于传统的经济/排放负荷分配问题,在各种复杂的非线性约束下,将火电机组的开/关状态以及接合机组之间的分配负荷作为优化变量。为了用混合优化变量求解模型,提出了一种多目标混合灰狼优化算法,该算法对连续和离散优化变量进行编码和同步优化。研究了由梯级水电站,火力发电厂和可再生能源(RE)发电厂组成的混合动力系统的日常调度仿真示例,以测试所提出的模型和算法。结果不仅证明了与竞争者相比,该算法在经济/排放双目标方面可以达到最佳的帕累托前沿,而且还证实了所获得的调度方案完全在可行范围内。此外,分析了可再生能源发电能力对电力系统的影响。结果表明,将可再生能源发电量从50%提高到100%时,可再生能源与水力发电站的联合运营既有利于经济目标,也可实现排放目标,而运营成本和污染排放分别降低了11.9%和17.4%系统。 (C)2018 Elsevier Ltd.保留所有权利。

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