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Correlation effects between turbulence and the conversion rate of pulverized char particles

机译:湍流与煤焦粉转化率的相关效应

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The effect of turbulence on heterogeneous reactions on the surface of char particles embedded in a turbulent oxidizer, consisting of oxygen and carbon-dioxide, is in this work studied numerically. It is shown that for a small Damkohler number (Da), which is the ratio between a turbulent and a chemical time scale, the char conversion rates are somewhat increased by the turbulence. This is found to be due to the increased mass transfer rate to the char particle surface that is caused by the turbulence-induced relative velocity between the char and the oxidizer. For large DamkOhler numbers, however, the char conversion rate is strongly reduced due to particle clustering. This reduction is explained by the fact that when particles are clustered in densely populated particle clusters, the transfer of oxygen to the particles in the centre of the clusters is reduced since the oxygen is consumed by the particles closer to the external surface of the cluster. At the same time, high concentrations of oxygen exist in the voids between the particle clusters. This oxygen cannot take part in the conversion of the char until it is transported to the char surface. The effects of turbulence on the heterogeneous reaction rates are furthermore modelled based on Direct Numerical Simulation (DNS) data for a simplified reacting gas particle system. (C) 2017 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:在这项工作中,对湍流对嵌入由氧气和二氧化碳构成的湍流氧化剂中的炭颗粒表面上的异质反应的影响进行了数值研究。结果表明,对于较小的达姆霍勒数(Da),即湍流和化学时间标度之间的比率,湍流会使焦炭转化率有所提高。发现这是由于由炭和氧化剂之间的湍流引起的相对速度引起的向炭颗粒表面的传质速率增加。但是,对于较大的DamkOhler数,由于颗粒聚类,炭转化率大大降低。这种减少可以通过以下事实来解释:当颗粒聚集在人口稠密的颗粒簇中时,由于向靠近簇外表面的颗粒消耗了氧气,减少了氧向簇中心的颗粒的转移。同时,在颗粒簇之间的空隙中存在高浓度的氧气。该氧气在输送到炭表面之前无法参与炭的转化。湍流对非均相反应速率的影响还基于直接数值模拟(DNS)数据进行了建模,以简化反应气体颗粒系统。 (C)2017燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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