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Phase distribution and stepwise kinetics of iron oxides reduction during chemical looping hydrogen generation in a packed bed reactor

机译:填充床反应器中化学循环制氢过程中铁氧化物还原的相分布和逐步动力学

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The reduction performance greatly impacts the efficiency of chemical looping hydrogen generation (CLHG) using iron oxides. This work studied the feature of packed bed technology for CLHG. First, a prevention strategy of fuel breakthrough was applied to simulate an industrial process. 25% solid conversion and 2000 mu mol H-2/g Fe2O3 hydrogen production were achieved. Then, a novel idea to directly investigate the reduced particle bed using sub-layers was performed to characterize the reactor. Fe, FeO and Fe3O4 distributed in an orderly manner due to the plug flow gas-solid contact pattern in the reactor. The quantitative calculation showed that the area of Fe3O4 -> FeO took up 80% space of the bed. The kinetic reason for this phenomenon was explored by means of a thermodynamically controlled method. The continuous reduction of iron oxides was successfully decoupled into three independent reactions and the step of Fe3O4 -> FeO was found as the limiting step with a maximum reaction rate of 0.0008 s(-1). Copyright (C) 2015, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:还原性能极大地影响了使用氧化铁的化学循环产氢(CLHG)的效率。这项工作研究了CLHG填充床技术的特点。首先,将燃料突破的预防策略应用于模拟工业过程。达到25%的固体转化率和2000μmol H-2 / g Fe2O3产氢。然后,进行了直接研究使用子层还原颗粒床的新想法来表征反应器。 Fe,FeO和Fe3O4由于反应器中的活塞流气固接触方式而有序分布。定量计算表明,Fe3O4→FeO的面积占床层空间的80%。通过热力学控制的方法探讨了该现象的动力学原因。氧化铁的连续还原成功地解耦为三个独立的反应,并且发现Fe3O4-> FeO的步骤是极限步骤,最大反应速率为0.0008 s(-1)。 Hydrogen Energy Publications,LLC版权所有(C)2015。由Elsevier Ltd.出版。保留所有权利。

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