G'/> Importance of spinel reaction kinetics in packed-bed chemical looping combustion using a CuO/Al <ce:inf loc='post'>2</ce:inf>O <ce:inf loc='post'>3</ce:inf> oxygen carrier
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Importance of spinel reaction kinetics in packed-bed chemical looping combustion using a CuO/Al 2O 3 oxygen carrier

机译:使用CUO / AL O 3 氧气载体

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Graphical abstractDisplay OmittedHighlights?This work addresses the importance of the formation and reduction kinetics of spinel compounds.?A pseudo-homogeneous packed-bed reactor model has been validated with experiments at labscale.?The reaction kinetics of both spinel compounds has been included in a particle model.?The experimental results are well described by the packed bed reactor model.AbstractChemical looping combustion is especially competitive for electrical power generation with integrated CO2capture when it is operated at high temperatures (1000–1200?°C) and high pressures (15?bar or higher). For these demanding conditions, dynamically operated packed bed reactors have been proposed, providing a good alternative to fluidized bed technology. This work addresses the importance of including the formation and reduction kinetics of spinel compounds to proper predict the packed bed reactor performance by validating a pseudo-homogeneous packed-bed reactor model to describe the redox kinetics of a CuO/Al2O3oxygen carrier with experiments in a lab-scale packed bed reactor setup. A grain model describing the reaction kinetics of all solid species, including both spinel compounds (CuAl2O4and CuAlO2), was included in a particle model and used to develop correlations for the effectiveness factor as a function of the particle conversion in order to account for internal solids concentration profiles and mass transfer limitations. The particle effectiveness factors were subsequently included in the source terms of the component mass balances of the reactor model accounting for all the reactions of the spinel compounds. Cyclic experiments (oxidation with air and reduction with a H2-N2mixture) have been carried out in a lab-scale packed bed reactor with a 12.5?wt% CuO/Al2O3oxygen carrier at different temperatures ranging from 600 to 1000?°C. The experimental results are well described by the packed bed reactor model, only when including the developed particle effectiveness factors to fully account for the kinetics of the formation and reduction of the spinel compounds. The results confirm that it is neccesary to include a detailed description of the redox kinetics at the particle level to be able to accurately estimate the breakthrough time, cycle time, final amount of Cu present in the bed and the
机译:<![cdata [ 图形摘要 显示省略 突出显示 < CE:简单段ID =“SP0010”View =“全部”> 这项工作解决了尖晶石化合物的形成和减少动力学的重要性。 伪均匀包装床反应堆模型已通过LabScale进行实验验证。 两种尖晶石化合物的反应动力学已包括在粒子模型中。 实验结果由包装床反应器模型很好地描述。 抽象 化学循环燃烧对于具有集成CO 2 捕获时的电力发电尤其竞争,当它在高温下(1000-1200?° c)和高pres sures(15?酒吧或更高)。对于这些要求苛刻的条件,提出了动态操作的填充床反应器,为流化床技术提供了良好的替代方案。这项工作解决了包括尖晶石化合物的形成和减少动力学来正确预测包装床反应器性能,通过验证伪均匀的填充床反应器模型来描述CUO / AL 2> 2 O 3 氧气载体,实验在实验室规模的填充床反应器设置中。一种描述所有固体物种的反应动力学的晶粒模型,包括尖晶石化合物(Cual 2 O 4 和cualo 2 ),被包括在粒子模型中,用于开发有效性因子的相关性,因为粒子转换才能解释用于内部固体浓度分布和传质限制。随后将颗粒效能因素包括在反应器模型的组分质量余额的源术语中,用于尖晶石化合物的所有反应。循环实验(用空气氧化和用H 2 -N 2 混合物)具有在实验室规模的填充床反应堆中进行了12.5?wt%cuo / al 2 o 3 < / Ce:inf>在不同温度下的氧载体范围为600至1000Ω·℃。实验结果仅由包装床反应器模型描述,只有在包括发达的颗粒效果因素,以完全占尖晶石化合物的形成和减少的动力学。结果证实它是必要的,包括在粒子水平上的氧化还原动力学的详细描述能够精确地估计突破时间,循环时间,床中存在的铜的最终量。

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