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首页> 外文期刊>International journal of hydrogen energy >Model development and analysis of a novel high-temperature electrolyser for gas phase electrolysis of hydrogen chloride for hydrogen production
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Model development and analysis of a novel high-temperature electrolyser for gas phase electrolysis of hydrogen chloride for hydrogen production

机译:新型用于氯化氢气相电解制氢的高温电解槽的模型开发和分析

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In this study, a high temperature electrolyser for the gas phase electrolysis of hydrogen chloride for hydrogen production is proposed and assessed. A detailed electrochemical model is developed to study the J-E characteristics for the proposed electrolyser (a solid oxide electrolyser based on a proton conducting electrolyte). The developed model accounts for all major losses, namely activation, concentration and ohmic. Energy and exergy analyses are carried out, and the energy and exergy efficiencies of the proposed electrolyser are determined to be 41.1% and 39.0%, respectively. The simulation results show that at T = 1073 K, P = 100.325 kPa and J = 1000 A/m(2), 1.6 V is required to produce 1 mol of hydrogen. This is approximately 0.3 V less than the voltage required by a high temperature steam electrolyser (based on a proton conducting electrolyte) operating at same condition (T = 1073 K, P = 101.325 kPa and J = 1000 A/m(2)), suggesting that the proposed electrolyser offers a new option for high temperature electrolysis for hydrogen production, potentially with a low electrical energy requirement. The proposed electrolyser may be incorporated into thermochemical cycles for hydrogen production, like Cu-Cl or chlorine cycles. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在这项研究中,提出并评估了一种用于氯化氢气相电解制氢的高温电解槽。开发了详细的电化学模型来研究拟议的电解器(基于质子传导电解质的固体氧化物电解器)的J-E特性。所开发的模型解决了所有主要损失,即活化,浓度和欧姆损耗。进行了能量和火用分析,确定该电解槽的能量和火用效率分别为41.1%和39.0%。仿真结果表明,在T = 1073 K,P = 100.325 kPa和J = 1000 A / m(2)时,需要1.6 V的电压才能产生1 mol的氢气。这比在相同条件下工作的高温蒸汽电解器(基于质子传导电解质)所需的电压低约0.3 V(T = 1073 K,P = 101.325 kPa和J = 1000 A / m(2)),这表明所提出的电解槽为高温电解制氢提供了新的选择,可能需要较低的电能。所提出的电解槽可以结合到用于产生氢气的热化学循环中,例如Cu-Cl或氯循环。 (C)2018氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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