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Analysis and performance assessment of a combined geothermal power-based hydrogen production and liquefaction system

机译:基于地热发电的联合制氢和液化系统的分析和性能评估

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In this paper, the thermodynamic study of a combined geothermal power-based hydrogen generation and liquefaction system is investigated for performance assessment. Because hydrogen is the energy of future, the purpose of this study is to produce hydrogen in a clear way. The results of study can be helpful for decision makers in terms of the integrated system efficiency. The presented integrated hydrogen production and liquefaction system consists of a combined geothermal power system, a PEM electrolyzer, and a hydrogen liquefaction and storage system. The exergy destruction rates, exergy destruction ratios and exergetic performance values of presented integrated system and its subsystems are determined by using the balance equations for mass, energy, entropy, energy and exergy and evaluated their performances by means of energetic and exergetic efficiencies. In this regard, the impact of some design parameters and operating conditions on the hydrogen production and liquefaction and its exergy destruction rates and exergetic performances are investigated parametrically. According to these parametric analysis results, the most influential parameter affecting system exergy efficiency is found to be geothermal source temperature in such a way that as geothermal fluid temperature increases from 130 degrees C to 200 degrees C which results in an increase of exergy efficiency from 38% to 64%. Results also show that, PEM electrolyzer temperature is more effective than reference temperature. As PEM electrolyzer temperature increases from 60 degrees C to 85 degrees C, the hydrogen production efficiency increases from nearly 39% to 44%. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:本文研究了地热发电-液化联合系统的热力学研究,以进行性能评估。因为氢是未来的能源,所以本研究的目的是清楚地生产氢。研究结果对于集成系统效率方面的决策者可能是有帮助的。提出的集成氢气生产和液化系统由组合的地热发电系统,PEM电解器和氢气液化和存储系统组成。通过使用质量,能量,熵,能量和火用的平衡方程来确定所提出的集成系统及其子系统的火用破坏率,火用破坏比和火用性能值,并通过火用和火用效率评估其性能。在这方面,参数地研究了一些设计参数和操作条件对氢气产生和液化的影响,以及它的火用破坏率和火用性能。根据这些参数分析结果,发现影响系统火用效率最有影响力的参数是地热源温度,使得地热流体温度从130摄氏度增加到200摄氏度,这将使火用效率从38升高。 %至64%。结果还表明,PEM电解槽温度比参考温度更有效。随着PEM电解器温度从60摄氏度增加到85摄氏度,制氢效率从近39%增加到44%。 (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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