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Design and financial parametric assessment and optimization of a novel solar-driven freshwater and hydrogen cogeneration system with thermal energy storage

机译:具有热能储存的新型太阳能淡水和氢气热电联产系统的设计与财务参数评估和优化

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The simultaneous production of electricity (semi-finished product), freshwater, and hydrogen uprooted from seawater has been proposed in this study through a brainchild setup based on solar energy and scrutinized from exergy and exergoeconomic perspectives. The solar subsystem consists of parabolic trough solar collectors in arrangement with thermal storage tanks capable of driving other subsystems in three different solar radiation modes (low, high, and no radiation) in the course of a day. An organic Rankine cycle is utilized to generate electricity which is consumed in a low-temperature electrolyzer to produce hydrogen. Furthermore, the cycle's heat loss is employed to produce freshwater via a desalination unit, part of which is used as the electrolyzer feed and the rest for other purposes. The parametric study and multi-criteria optimization are conducted. It is concluded that the system's cost per unit exergy increases by increasing current density and reduces by decreasing electrolyzer temperature and desalination top temperature. In the multi-criteria optimization case, the exergy efficiency of the system is acquired for the above-mentioned modes as 5.39%, 2.52%, and 3.61%, respectively. Moreover, the cost per unit exergy of these modes is found to be 80 $/GJ, 60.3 $/GJ, and 81.4 $/GJ, individually.
机译:本研究通过基于太阳能的Brainchild设置提出了从海水中提出的电力(半成品),淡水和氢气的同时生产,并从Acergy和Exergo经济角度审查。太阳能子系统由抛物面槽太阳能收集器组成,其具有在一天中以三种不同的太阳辐射模式(低,高,没有辐射)驱动其他子系统的热储罐。有机朗肯循环用于产生在低温电解槽中消耗的电力以产生氢气。此外,使用循环的热损失来通过海水淡化单元生产淡水,其一部分用作电解槽饲料和其余用于其他目的。进行参数研究和多标准优化。结论是,通过增加电解温度和脱盐顶部温度,通过增加电流密度并降低,系统的每单位的成本随着电流密度增加,降低。在多标准优化案例中,将系统的漏极效率分别为5.39%,2.52%和3.61%。此外,每个模式的每单位漏洞的成本都被发现为80美元/ GJ,60.3美元/ GJ和81.4美元/ GJ,单独。

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