首页> 外文期刊>Chemical Engineering Research & Design: Transactions of the Institution of Chemical Engineers >Multiphase CFD simulations of catalytic wet oxidation of phenol-like compounds in high-pressure trickle-bed reactors: Reactive flow and temperature behaviour
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Multiphase CFD simulations of catalytic wet oxidation of phenol-like compounds in high-pressure trickle-bed reactors: Reactive flow and temperature behaviour

机译:高压滴流床反应器中酚类化合物催化湿式氧化的多相CFD模拟:反应流和温度行为

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摘要

A multiphase CFD code was investigated to promote the design and optimization of existent environmental technologies on the decontamination of aqueous streams. First, our case study encompassed the development of the CFD framework to be examined systematically on the prediction of the dynamic behaviour of a pilot trickle-bed reactor (TBR). As long as trickle-bed reactors are determined by the flow environment coupled with chemical kinetics, following the optimization of prominent numerical solution parameters, the theoretical model was validated with experimental data taken from a TBR specifically designed for the catalytic wet oxidation of phenolic wastewaters. Second, several computational runs were carried out at unsteady-state operation to evaluate the dynamic performance addressing the total organic carbon concentration and temperature profiles. CFD computations of total organic carbon conversion were found to agree better with experimental data at lower temperatures. Additionally, the inhomogeneous distribution of gas-liquid was identified through the computational mappings representative of interstitial multiphase flow. The heterogeneous behaviour of liquid phase spatial distribution may be attributed to the local effects near the catalyst particle surface. Finally, gas-liquid channels were associated with different local liquid-catalyst contacting profiles, which indeed affected the organic matter decontamination rates and temperature mappings within the trickle-bed reactor.
机译:研究了多相CFD代码以促进对水流净化的现有环境技术的设计和优化。首先,我们的案例研究涵盖了CFD框架的开发,该系统将在试验性滴流床反应器(TBR)的动态行为预测上进行系统地检查。只要滴流床反应器是由流动环境和化学动力学共同决定的,那么在优化了重要的数值求解参数之后,理论模型便得到了由专门为酚类废水的催化湿式氧化设计的TBR的实验数据进行验证。其次,在非稳态操作下进行了几次计算,以评估解决总有机碳浓度和温度曲线的动态性能。发现在较低温度下,总有机碳转化率的CFD计算与实验数据更好地吻合。另外,通过代表间质多相流的计算映射确定了气液的不均匀分布。液相空间分布的非均相行为可归因于催化剂颗粒表面附近的局部效应。最后,气液通道与不同的局部液体催化剂接触曲线有关,这确实影响了滴流床反应器内有机物的去污率和温度分布。

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