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Hydrogen production from natural gas using an iron-based chemical looping technology: Thermodynamic simulations and process system analysis

机译:使用基于铁的化学循环技术从天然气生产氢气:热力学模拟和过程系统分析

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Hydrogen (H-2) is a secondary fuel derived from natural gas. Currently, H-2 serves as an important component in refining operations, fertilizer production, and is experiencing increased utilization in the transportation industry as a clean combustion fuel. In recent years, industry and academia have focused on developing technology that reduces carbon emissions. As a result, there has been an increase in the technological developments for producing H-2 from natural gas. These technologies aim to minimize the cost increment associated with clean energy production. The natural gas processing chemical looping technology, developed at The Ohio State University (OSU), employs an iron-based oxygen carrier and a novel gas-solid counter-current moving bed reactor for H-2 production. Specifically, this study examines the theoretical thermodynamic limits for full conversion of natural gas through iron-based oxygen carrier reactions with methane (CH4), by utilizing simulations generated with ASPEN modeling software. This study initially investigates the reducer and the oxidizer thermodynamic phase diagrams then derives an optimal auto-thermal operating condition for the complete loop simulation. This complete loop simulation is initially normalized for analysis on the basis of one mole of carbon input from natural gas. The H-2 production rate is then scaled to match that of the baseline study, using a full-scale ASPEN simulation for computing cooling loads, water requirements and net parasitic energy consumption. The full scale ASPEN simulation is used to analyze the thermal efficiency of multiple energy recovery schemes, for further validation of the chemical looping process. Resulting from this study, the chemical looping technology is found to produce a cold gas efficiency improvement of more than 5 percentage points and an effective thermal efficiency of more than 6 percentage points over the conventional steam methane reforming process, while producing H-2 from natural gas with greater than 90% carbon capture. (C) 2015 Elsevier Ltd. All rights reserved.
机译:氢(H-2)是一种来自天然气的二次燃料。目前,H-2在精炼操作,肥料生产中起着重要的作用,并且在运输行业中作为清洁燃烧燃料的利用率不断提高。近年来,工业界和学术界都致力于开发减少碳排放的技术。结果,从天然气生产H-2的技术发展增加了。这些技术旨在最小化与清洁能源生产相关的成本增加。俄亥俄州立大学(OSU)开发的天然气处理化学循环技术采用铁基氧气载体和新型气固逆流移动床反应器进行H-2生产。具体而言,本研究通过利用ASPEN建模软件生成的模拟,研究了天然气通过铁基氧气与甲烷(CH4)进行完全转化的理论热力学极限。这项研究首先研究了还原剂和氧化剂的热力学相图,然后得出了用于完整回路仿真的最佳自动热工况。最初,基于从天然气中输入的一摩尔碳,对完整的回路模拟进行标准化以进行分析。然后,使用全面的ASPEN模拟来计算冷却负荷,水需求和净寄生能量消耗,将H-2的生产率按比例调整以匹配基线研究。全面的ASPEN仿真用于分析多种能量回收方案的热效率,以进一步验证化学循环过程。这项研究的结果是,发现化学循环技术与传统的蒸汽甲烷重整工艺相比,可将冷气效率提高5个百分点以上,将有效热效率提高6个百分点以上,同时可从天然气中生产H-2碳捕获量大于90%的气体。 (C)2015 Elsevier Ltd.保留所有权利。

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