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Multi-Objective Differential Evolution for Design of Cascade Hydropower Reservoir Systems

机译:级联水库系统多目标差分进化设计

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摘要

After Paris Agreement and obligation made by various countries to decrease greenhouse gases, generation of clean energy with low carbon was taken into consideration. Hydropower plant is considered as a clean, cheap and renewable energy source for generating electrical energy. Through the construction of the multipurpose dams and their optimal planning and management, we may decrease the potential losses sustained by aquatic ecosystem in addition to supplying the energy and fulfilling the industrial, agricultural and drinking water demands. In the present study, a multi-objective optimization model was proposed for determination of design parameters in cascade hydropower multi-purpose reservoir systems. Considering the significant number of constraints and decision variables and non-convex form of the objective functions and constraints, particularly in multi-reservoir systems, a multi-objective evolutionary algorithm (MOEA) known as non-dominated sorting differential evolution (NSDE) was developed to solve the problem and reduce the computational costs. Karkheh River basin was selected as a case study in order to make an assessment on the capabilities and strength of the model. This basin is capable of generating hydropower energy and agricultural development with high environmental considerations due to Hurolazim International Wetland. Based on the results, we may supply various demands such as environmental demands of the aquatic ecosystem with high reliability as well as generating firm hydropower energy through optimal design of cascade hydropower reservoirs.
机译:在《巴黎协定》和各国承担的减少温室气体的义务之后,考虑了低碳清洁能源的产生。水力发电厂被认为是产生电能的清洁,廉价和可再生能源。通过多用途水坝的建设及其最佳规划和管理,除了提供能源以及满足工业,农业和饮用水需求外,我们还可以减少水生生态系统遭受的潜在损失。在本研究中,提出了一种用于确定梯级水电多功能水库系统设计参数的多目标优化模型。考虑到大量的约束和决策变量以及目标函数和约束的非凸形式,特别是在多水库系统中,开发了一种称为非支配排序差分进化(NSDE)的多目标进化算法(MOEA)解决问题并降低计算成本。选择Karkheh流域作为案例研究,以评估该模型的功能和强度。由于哈罗拉齐姆国际湿地保护区的考虑,该流域能够产生水力发电和农业发展。根据结果​​,我们可以满足各种需求,例如对水生生态系统的环境要求具有很高的可靠性,以及通过梯级水库的优化设计来产生牢固的水电能源。

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