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Planning Energy and Environmental Systems Associated with Air Pollutants Mitigation under Uncertainty

机译:在不确定性下规划与缓解空气污染物有关的能源和环境系统

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Air pollution has been one of the world's worst pollution problems. This study aims to present a two-stage stochastic fuzzy programming (TSFP) method for air pollutants mitigation within energy and environmental systems. In TSFP model, fuzzy possibilistic programming (FPP) is introduced into a two-stage stochastic programming (TSP) framework, which could tackle uncertainties reflected by possibilistic distributions and fuzzy membership functions associated with energy process and optimization solutions. The proposed TSFP is applied to air quality management within energy and environmental systems to clarify its applicability under different scenarios. The results of case study are beneficial for decision-maker to achieve rational energy resource distribution and identify desired policies for pollutants mitigation through cost-environment tradeoff.
机译:空气污染一直是世界上最严重的污染问题之一。本研究旨在提出一种两阶段随机模糊规划(TSFP)方法,用于缓解能源和环境系统中的空气污染物。在TSFP模型中,将模糊可能性规划(FPP)引入到两阶段随机规划(TSP)框架中,该框架可以解决与能源过程和优化解决方案相关的可能性分布和模糊隶属函数所反映的不确定性。拟议的TSFP应用于能源和环境系统内的空气质量管理,以阐明其在不同情况下的适用性。案例研究的结果有助于决策者实现合理的能源分配,并通过成本与环境之间的权衡来确定减少污染物的理想政策。

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