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首页> 外文期刊>International journal of hydrogen energy >Multi-objective optimization of an ocean thermal energy conversion system for hydrogen production
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Multi-objective optimization of an ocean thermal energy conversion system for hydrogen production

机译:用于制氢的海洋热能转化系统的多目标优化

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摘要

Hydrogen can be produced in a relatively environmentally benign manner (depending on the source of the input energy) via splitting water by photocatalysis, thermochemical cycles and electrolysis, and hydrogen production by proton exchange membrane (PEM) electrolysis has numerous advantages. Ocean thermal energy conversion (OTEC) usually incorporates a low-temperature Rankine cycle which boils a working fluid such as ammonia to generate a vapor which drives a turbine to generate electricity, and is then condensed back to a liquid in a continuous process. Here, a comprehensive thermodynamic analysis and multi-objective optimization are reported of an OTEC system to produce hydrogen using electrolysis. A multi-objective optimization method based on a fast and elitist non-dominated sorting genetic algorithm (NSGA-II) is applied to determine the best design parameters for the system. The total cost rate of the system is minimized while the cycle exergy efficiency is maximized using an evolutionary algorithm. To provide additional insights, the Pareto frontier is shown for the multi-objective optimization. In addition, a closed form equation for the relationship between exergy efficiency and total cost rate is derived. A sensitivity analysis is performed to assess the effects of several design parameters on the system. Copyright (c) 2014, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:氢可以通过光催化,热化学循环和电解分解水以相对环境友好的方式生产(取决于输入能量的来源),并且通过质子交换膜(PEM)电解生产氢具有许多优势。海洋热能转换(OTEC)通常结合低温兰金循环,该循环使诸如氨之类的工作流体沸腾以产生蒸气,该蒸气驱动涡轮机发电,然后在连续过程中凝结回液体。在此,报道了使用电解法生产氢的OTEC系统的综合热力学分析和多目标优化。应用基于快速精英非支配排序遗传算法(NSGA-II)的多目标优化方法,确定系统的最佳设计参数。使用进化算法可最大程度地降低系统的总成本,同时最大程度地提高循环本能效率。为了提供更多的见解,显示了帕累托边界用于多目标优化。另外,推导出了一个有效形式与总成本率之间关系的封闭式方程。执行灵敏度分析以评估几个设计参数对系统的影响。 Hydrogen Energy Publications,LLC版权所有(c)2014。由Elsevier Ltd.出版。保留所有权利。

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