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Exergoeconomic analysis and multi-objective optimization of a novel continuous solar-driven hydrogen production system assisted by phase change material thermal storage system

机译:相变材料蓄热系统辅助的新型连续太阳驱动制氢系统的能效经济分析和多目标优化

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摘要

The main focus of this article is to perform an exergoeconomic analysis and multi-objective optimization of a novel solar-driven integrated system to produce electricity, hydrogen, and cooling. One of the critical deficiencies of solar systems is the unavailability of the sun at nights. To obviate this problem, the phase change materials (PCMs) are utilized. In this system, a gas turbine (GT) is devised to provide the electricity of the grid. Although waste heat of the GT cycle can be recovered by the integration with the ORC, the remained heat have the adequate potential to run a thermoelectric generator (TEG). The produced electricity would be transferred to the proton exchange membrane electrolyzer (PEME) to produce hydrogen. Additionally, the absorption refrigeration cycle (ARC) is chosen to integrate with the ORC cycle to provide the domestic user's cooling. Exergoeconomic results indicate that this system can continuously produce 8.65 kg/h hydrogen with the overall exergy efficiency of 15.28% and the total cost rate of 28.67 $/GJ. Multi-objective optimization also revealed the optimum values of the design parameters to reach the highest efficiency and reducing the costs.
机译:本文的主要重点是对新型太阳能驱动的集成系统进行发电经济分析和多目标优化,以产生电,氢和冷却。太阳能系统的关键缺陷之一是夜间无法利用太阳。为了解决这个问题,利用了相变材料(PCM)。在该系统中,设计了燃气轮机(GT)提供电网电力。尽管可以通过与ORC集成来回收GT循环的废热,但是剩余的热量具有运行热电发电机(TEG)的足够潜力。产生的电将转移到质子交换膜电解器(PEME)中以产生氢。此外,选择吸收式制冷循环(ARC)与ORC循环集成以提供家用用户的制冷效果。能效经济结果表明,该系统可以连续生产8.65 kg / h的氢气,总火用效率为15.28%,总成本率为28.67 $ / GJ。多目标优化还揭示了设计参数的最佳值,以达到最高效率并降低成本。

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