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首页> 外文期刊>International journal of hydrogen energy >Solar thermochemical H_2 production via MnSCV MnO water splitting cycle: Thermodynamic equilibrium and efficiency analysis
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Solar thermochemical H_2 production via MnSCV MnO water splitting cycle: Thermodynamic equilibrium and efficiency analysis

机译:通过MnSCV MnO分水循环生产太阳能热化学法H_2:热力学平衡和效率分析

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In this paper, a detailed thermodynamic equilibrium and efficiency analysis of the MnSO4/MnO water splitting (WS) cycle is carried out using HSC Chemistry software. By drifting the molar flow rate of inert Ar (<(n)over dot>(Ar)) and thermal reduction temperature (T-H), the thermodynamic compositions related to both thermal reduction (TR) and WS steps are identified. Moreover, the consequence of T-H, <(n)ver dot>(Ar), and WS temperature (T-L) on the process parameters associated with the cycle is also inspected. The obtained results denote that this cycle can attain a solar-to-fuel energy conversion efficiency () up to 45.3% if the TR and WS steps are conducted at 1573 K and 550 K, respectively. By employing heat recuperation up to 10, 30, and 50%, the eta(solar-to-fuel) of the MnSO4/MnO WS cycle can be increased up to 47.6%, 53.1%, and 60.0%, correspondingly. Based on the eta(solar-to-fuel) = 45.3%, the performance of the MnSO4/MnO WS cycle appears to be better than the formerly probed metal oxide based WS cycles. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在本文中,使用HSC Chemistry软件对MnSO4 / MnO水分解(WS)循环进行了详细的热力学平衡和效率分析。通过漂移惰性Ar的摩尔流量(点(Ar))和热还原温度(T-H),可以确定与热还原(TR)和WS步骤相关的热力学组成。此外,还检查了T-H,<(n)ver点>(Ar)和WS温度(T-L)对与循环相关的工艺参数的影响。获得的结果表明,如果分别在1573 K和550 K进行TR和WS步骤,则该循环可以获得高达45.3%的太阳能转化效率。通过采用高达10%,30%和50%的热回收率,MnSO4 / MnO WS循环的eta(太阳能到燃料)可以分别增加到47.6%,53.1%和60.0%。基于η(太阳能比燃料)= 45.3%,MnSO4 / MnO WS循环的性能似乎好于以前探测的基于金属氧化物的WS循环。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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