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Concept, design, and energy analysis of an integrated power-to-methanol process utilizing a tubular proton-conducting solid oxide electrolysis cell

机译:利用管状质子传导固体氧化物电解槽的一体化制取甲醇工艺的概念,设计和能量分析

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An alternative power-to-methanol process based on an integration of a tubular proton-conducting solid oxide electrolysis cell into a methanol synthesis unit is explained, energetically evaluated and technically presented. Being currently developed in the joint research project DELTA, the novel process has the potential for a significant increase in system efficiency, if the heat from the exothermic synthesis reaction can be utilized and/or kinetic advantages can be achieved.For the experimental proof of the concept and a comprehensive characterization of the process, a test platform is currently under construction. The design of the flexible test facility with the complex technical integration of both processes (electrolysis and synthesis) is described briefly. The chemical reactor, where electrolysis and synthesis are taking place, allows for an operation at temperatures (for electrolysis) up to 700 degrees C, pressures of 10 MPa and a current (across the electrolysis cell) of up to 100 A. Moreover, a precise pressure balancing system between both gas volumes, an axial temperature measurement and the possibility of regulating both processes inside the pressure vessel are pivotal properties of the test facility. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:介绍了一种将管状质子传导固体氧化物电解槽集成到甲醇合成装置中的替代性制动力甲醇工艺,并进行了大力评估和技术介绍。如果可以利用放热合成反应产生的热量和/或获得动力学优势,则该新方法目前正在联合研究项目DELTA中开发,该新方法具有显着提高系统效率的潜力。概念和过程的全面表征,目前正在建设一个测试平台。简要介绍了灵活的测试设施的设计,该过程具有两个过程(电解和合成)的复杂技术集成。进行电解和合成的化学反应器允许在最高700℃的温度(用于电解),10 MPa的压力和最高100 A的电流(穿过电解池)下运行。两种气体之间的精确压力平衡系统,轴向温度测量以及调节压力容器内两个过程的可能性都是测试设备的关键特性。 (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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