山东清洁电力转型的机会约束双目标分式规划

M. N. Li, G. Huang, X. Y. Zhang, J. Chen
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摘要

本文建立了不确定条件下山东电力系统可持续管理的不精确混合整数区间随机分数模型(IMSFP)。山东的化石燃料发电比例很高,这导致了大量的温室气体排放。未来是能源结构转型的关键时期。所开发的IMSFP可以有效地解决双目标、以输出/投入比表示的系统效率以及约束和目标中以区间值和概率分布描述的不确定性。结果表明,清洁电力转型和扩容方案对不同的约束违规风险水平较为敏感。得到的区间解可以为多种复杂情况下的资源分配和能力扩展提供灵活的策略。建立了以系统成本最小为目标的经济单目标模型。对比结果表明,IMSFP模型通过优化清洁能源利用与系统成本之间的比例,可以更好地表征现实电力系统问题。生物质能和风能将是未来主要发展的电力形式,太阳能具有很大的发展潜力。总之,所提出的IMSFP模型有利于平衡相互冲突的双重目标,反映系统效率、经济成本、系统可靠性和约束违反场景之间复杂的相互作用。
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Development of a Chance-Constrained Dual-Objective Fractional Programming for Shandong’s Clean Power Transition
In this study, an inexact mixed-integer interval stochastic fractional model (IMSFP) is developed for Shandong’s sustainable power system management under uncertainties. Shandong has a high proportion of fossil-fuel power, which has resulted in significant greenhouse gas emissions. Future is an essential period for energy structure transition. Developed IMSFP can effectively tackle dual objective, system efficiency represented as output/input ratios, as well as uncertainties described as interval values and probability distributions in the constraints and objectives. The results indicate that the clean power transition and capacity expansion scheme are sensitive to different constraint-violation risk levels. Obtained interval solutions can provide flexible strategies for resource allocation and expansion capacities under multiple complexities. An economic single objective model (IMCLP) is also developed, which aims at minimizing the system cost. The comparative results illustrate that the IMSFP model can better characterize the real-world power system problems through optimizing a ratio between clean energy utilization and system cost. Biomass and wind power would be major developed electricity forms in the future, and solar energy has great development potential. In short, the proposed IMSFP model is advantageous in balancing conflicting dual objectives and reflecting complicated interactions among system efficiency, economic cost, system reliability, and constraint-violation scenarios.
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