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Three-dimensional numerical simulation of pressure drop and liquid holdup for high-pressure trickle-bed reactor

机译:高压滴流床反应器压降和持液量的三维数值模拟

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摘要

This study aims to investigate the hydrodynamic behaviour of a trickle-bed reactor (TBR) at high pressure (30 bar) in terms of pressure drop and liquid holdup after the development of a multiphase model by means of computational fluid dynamics (CFD) codes. Taking into account transport phenomena expressed as interphase coupling terms in the momentum transfer between the gas, liquid and solid phases, an Euler-Euler model was developed resulting from the volume averaging of the continuity and momentum equations and solved for a 3D representation of the catalytic bed. The CFD calculations were validated with experimental data from the literature and different mesh sizes were evaluated for a grid-independent CFD solution of multiphase flow in the packed bed. During grid optimization, coarse and fine physical mesh domains were applied in the hydrodynamic prediction of trickle-bed reactor. After the grid adjustment in terms of number of cells, several spherical particle diameters were tested to study its effect on hydrodynamics and it was found that pressure drop is strongly influenced by the packing size. The Eulerian mutiphase model was then used in the computation of pressure drop and liquid holdup and over a wide range for the calculated flow regime as a function of gas and liquid flow rates, the CFD theoretical predictions were in good agreement for both hydrodynamic parameters.
机译:这项研究旨在通过计算流体动力学(CFD)程序研究多相模型开发后,在压力(30 bar)下,滴流床反应器(TBR)在高压(30 bar)下的流体力学行为。考虑到在气相,液相和固相之间的动量传递中表示为相间耦合项的传输现象,通过连续性和动量方程的体积平均得出了Euler-Euler模型,并求解了催化的3D表示床。使用来自文献的实验数据验证了CFD计算,并针对填充床中多相流的网格独立CFD解决方案评估了不同的网格尺寸。在网格优化过程中,将粗糙和精细的物理网格域应用于滴流床反应堆的水动力预测中。在对网格数量进行网格调整后,测试了几种球形粒径,以研究其对流体动力学的影响,发现压降受填料尺寸的强烈影响。然后将欧拉多相模型用于压降和液体滞留率的计算,并在很宽的范围内将所计算的流量形式作为气体和液体流速的函数,CFD的理论预测在两个流体动力学参数上都非常吻合。

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