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Evaluation of iron based chemical looping for hydrogen and electricity co-production by gasification process with carbon capture and storage

机译:通过气化过程与碳捕获和存储来联产氢和电的铁基化学环的评估

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Integrated Gasification Combined Cycle (IGCC) is one of power generation technologies having the highest potential for carbon capture with low penalties in efficiency and cost. Syngas produced by gasification can be decarbonised using chemical looping methods in which an oxygen carrier (usually a metallic oxide) is recycled between the syngas oxidation reactor (fuel reactor) and the chemical agent oxidation reactor (steam reactor). In this way, the resulted carbon dioxide is inherently separated from the other products of combustion and the syngas energy is transferred to an almost pure hydrogen stream suitable to be used not only for power generation but also for transport sector (PEM fuel cells).rnThis paper evaluates in details a chemical looping system, using iron oxides as an oxygen carrier, in conjunction with a co-gasification process of coal and biomass with Carbon Capture and Storage (CCS). The paper assesses from technical point of view the potential application of chemical looping technique for gasification process to generate decarbonised energy vectors (power, hydrogen). Investigated plant concepts with syngas based chemical looping method evaluated in the paper will produce a flexible ratio of power and hydrogen in the range of 400 MW net electricity and 0-200 MW hydrogen.rnThe paper presents in details the plant concept and the methodology used to evaluate the plant performances using critical design factors like: gasifier feeding system (slurry feed vs. transport gas), selection of gasification reactor, heat and power integration analysis, potential ways to increase the overall plant energy efficiency (e.g. integration of air separation unit with gas turbine compressor, steam integration of chemical looping unit into the combined cycle), hydrogen and electricity flexibility analysis, hydrogen and carbon dioxide quality specifications considering the use of hydrogen in transport sector (fuel cells) and carbon dioxide storage in geological formation or using for Enhanced Oil Recovery (EOR).
机译:整体气化联合循环(IGCC)是一种发电技术,具有最高的碳捕获潜力,但效率和成本却较低。气化产生的合成气可以使用化学循环方法脱碳,其中氧气载体(通常是金属氧化物)在合成气氧化反应器(燃料反应器)和化学试剂氧化反应器(蒸汽反应器)之间循环。这样,生成的二氧化碳便会与其他燃烧产物固有地分离,合成气的能量会转移到几乎纯净的氢气流中,该氢气流不仅可用于发电,还可用于运输部门(PEM燃料电池)。这篇论文详细评估了一种化学循环系统,该系统使用氧化铁作为氧气载体,并结合碳捕集与封存(CCS)对煤和生物质进行共气化过程。本文从技术角度评估了化学循环技术在气化过程中产生脱碳能量矢量(功率,氢)的潜在应用。本文评估了以合成气为基础的化学循环方法研究的电厂概念,将产生在400 MW净电和0-200 MW氢气范围内的灵活的功率和氢气比率.rn本文详细介绍了用于解决问题的电厂概念和方法使用关键的设计因素评估工厂的性能,例如:气化炉进料系统(浆液进料与运输气体),气化反应器的选择,热和功率集成分析,提高整体工厂能源效率的潜在方法(例如将空气分离装置与燃气轮机压缩机,将化学循环装置集成到联合循环中的蒸汽),氢气和电力的灵活性分析,氢气和二氧化碳的质量规格(考虑在运输部门(燃料电池)中使用氢气以及在地质构造中使用二氧化碳或将二氧化碳用于增强采油率(EOR)。

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