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Multi-criteria design optimization and thermodynamic analysis of a novel multi-generation energy system for hydrogen, cooling, heating, power, and freshwater

机译:新型多代能源系统的多标准设计优化和热力学分析,用于氢气,冷却,加热,电力和淡水

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The main focus of this paper is to present thermodynamic and economic analyses and multi-objective optimization of a novel geothermal-solar multigeneration system. The system aims to produce hydrogen, freshwater, electricity, cooling load, and hot water and designed based on geothermal and solar energy. After modeling and thermodynamic and economic analysis, exergy destruction rate, exergy efficiency and, cost rate were calculated for each component of the system. The results showed that the highest amount of exergy destruction was related to parabolic trough collectors (PTCs) and absorption chillers. To select the geothermal fluid of the organic Rankine cycle (ORC), several different fluids were investigated, among which isobutene was selected. By using the Group method of data handling (GMDH) neural network, a mathematical relationship was obtained between the inputs and outputs of the problem and were given as inputs to the non-dominated sorting genetic algorithm II (NSGAII)alg. The final optimal point was obtained applying the tech- nique for order of preference by similarity to ideal solution (TOPSIS) decision criterion at which the exergy efficiency and cost rate were calculated to be 21.63% and 63.89 $/h, respectively. The meteorological data of the Zanjan, Isfahan, and Bandar Abbas cities were used to calculate the performance accurately at the TOPSIS selection point. To provide a comparison between different cities, the performance of the system was evaluated on September 17 as a sample day. On this day, the proposed system produces 26.38 kg of hydrogen and 373.8 m(3) of freshwater in Isfahan. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:本文的主要焦点是目前新型地热太阳能多发性系统的热力学和经济分析和多目标优化。该系统旨在生产氢气,淡水,电力,冷却负荷和热水,并根据地热和太阳能设计。在建模和热力学和经济分析后,为系统的每个部件计算出漏洞的破坏率,漏洞效率,以及成本率。结果表明,最高量的销毁销毁量与抛物线收集器(PTC)和吸收冷却器有关。为了选择有机朗肯循环(ORC)的地热流体,研究了几种不同的流体,其中选择了异丁烯。通过使用数据处理(GMDH)神经网络的组方法,在问题的输入和输出之间获得数学关系,并作为非主导分类遗传算法II(NSGaii)ALG的输入给出。获得了最终最佳点,以便通过相似性与理想解决方案(TOPSIS)决策标准的优先顺序应用了技术,分别计算出高效率和成本率分别为21.63%和63.89美元/小时。 Zanjan,Isfahan和Bandar ABBAS城市的气象数据用于在Topsis选择点准确计算性能。为了提供不同城市之间的比较,系统的性能是在9月17日评估的作为样本日。在这一天,所提出的系统产生26.38千克氢和373.8米(3)伊斯法罕的淡水。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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