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Intelligent optimization of renewable resource mixes incorporating the effect of fuel risk, fuel cost and CO_2 emission

机译:结合燃料风险,燃料成本和CO_2排放的影响,对可再生资源混合物进行智能优化

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摘要

Power system planning is a capital intensive investment-decision problem. The majority of the conventional planning conducted since the last half a century has been based on the least cost approach, keeping in view the optimization of cost and reliability of power supply. Recently, renewable energy sources have found a niche in power system planning owing to concerns arising from fast depletion of fossil fuels, fuel price volatility as well as global climatic changes. Thus, power system planning is under-going a paradigm shift to incorporate such recent technologies. This paper assesses the impact of renewable sources using the portfolio theory to incorporate the effects of fuel price volatility as well as CO_2 emissions. An optimization framework using a robust multi-objective evolutionary algorithm, namely NSGA-Ⅱ, is developed to obtain Pareto optimal solutions. The performance of the proposed approach is assessed and illustrated using the Indian power system considering real-time design practices. The case study for Indian power system validates the efficacy of the proposed methodology as developing countries are also increasing the investment in green energy to increase awareness about clean energy technologies.
机译:电力系统规划是资本密集型投资决策问题。自上半个世纪以来进行的大多数常规计划都是基于最低成本的方法,同时考虑到了成本和电源可靠性的优化。最近,由于对化石燃料的快速消耗,燃料价格波动以及全球气候变化的担忧,可再生能源在电力系统规划中找到了一个利基。因此,电力系统规划正在经历范式转变,以结合这种最新技术。本文使用投资组合理论来评估燃料价格波动以及CO_2排放的影响,从而评估可再生能源的影响。建立了使用鲁棒的多目标进化算法NSGA-Ⅱ的优化框架,以获得帕累托最优解。考虑到实时设计实践,使用印度电力系统对提出的方法的性能进行了评估和说明。印度电力系统的案例研究验证了所提出方法的有效性,因为发展中国家也在增加对绿色能源的投资,以提高人们对清洁能源技术的认识。

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