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Hydromethane generation through SOE (solid oxide electrolyser): Advantages of H2O-CO2 co-electrolysis

机译:通过SOE(固体氧化物电解槽)生成甲烷:H2O-CO2共电解的优势

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摘要

This paper aims to investigate a system based on SOE (Solid Oxide Electrolyser) and multistage methanation unit for "hydromethane" production. The presented solution can contribute to mitigate environmental issues related to CO2 reuse and critical issues linked to RES (renewable energy sources) plants interconnection to the grid, beyond that to limit their curtailment. The produced gas mixture, a blend of CH4 and H-2, is considered particularly suitable for transportation applications and it can be seen as an interesting energy storage solution. An accurate model of SOE-methanation integrated system was developed in Aspen Plus environment. It allowed to deeply analyse system performance, including the cases of co-electrolysis/steam electrolysis, relative to SOE, and methanation from CO/CO2. A sensitivity analysis, varying the amount of CO2 sent to SOE and methanator, has allowed to determine the most convenient operation mode and the related optimized plant layout, leading to the maximization of advantages. In particular, up to contextual 60.2% and 21.9 MJ/Sm-3 of overall efficiency and hydromethane LHV (low heating value) are obtainable by applying SUE technology, in co-electrolysis mode, for hydromethane generation from RES. These impacts are particularly relevant in consideration of the possible hydromethane exploitation in the transport sector. (C) 2015 Elsevier Ltd. All rights reserved.
机译:本文旨在研究基于SOE(固体氧化物电解器)和多级甲烷化装置的“甲烷”生产系统。提出的解决方案可以减轻与CO2再利用有关的环境问题以及与RES(可再生能源)工厂与电网互连相关的关键问题,除此之外还可以限制其削减。产生的气体混合物(CH4和H-2的混合物)被认为特别适合于运输应用,可以看作是一种有趣的储能解决方案。在Aspen Plus环境中开发了一个精确的SOE-甲烷化集成系统模型。它允许深入分析系统性能,包括相对于SOE的共电解/蒸汽电解的情况以及由CO / CO2甲烷化的情况。通过进行敏感性分析,改变发送到SOE和甲烷化炉的CO2量,可以确定最方便的操作模式和相关的优化工厂布局,从而实现优势最大化。特别是,通过在共电解模式下应用SUE技术从RES生成甲烷,可获得高达60.2%和21.9 MJ / Sm-3的总效率和甲烷LHV(低热值)。考虑到运输部门可能开采甲烷,这些影响尤其重要。 (C)2015 Elsevier Ltd.保留所有权利。

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