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Numerical simulation of gas-liquid-solid flows using a combined front tracking and discrete particle method

机译:结合前跟踪和离散粒子法的气液固两相流数值模拟

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摘要

In this paper a hybrid model is presented for the numerical simulation of gas-liquid-solid flows using a combined front tracking (FT) and discrete particle (DP) approach applied for, respectively, dispersed gas bubbles and solid particles present in the continuous liquid phase. The hard sphere DP model, originally developed by Hoomans et al. [1996. Chemical Engineering Science 51, 99-108] for dense gas-solid systems, has been extended to account for all additional forces acting on particles suspended in a viscous liquid and has been combined with the FT model presented recently by Deen et al. [2004a. CD-ROM Proceedings of Fifth International Conference on Multiphase Flow, ICMF'04, Yokohama, Japan, May 30-June 4, 2004; 2004b. Chemical Engineering Science 59, 1853-1861] for complex free surface flows. In this paper, the physical foundation of the combined FT-DP model will be presented together with illustrative computational results highlighting the capabilities of this hybrid model. The effect of bubble-induced particle mixing has been studied focusing on the effect of the volumetric particle concentration. In addition the retarding effect (drag modification) on the bubble rise velocity due to the presence of the suspended solid particles has been quantified. (c) 2005 Elsevier Ltd. All rights reserved.
机译:在本文中,提出了一种混合模型,该模型使用组合的前跟踪(FT)和离散粒子(DP)方法分别对连续液体中存在的分散气泡和固体颗粒进行气液固流动数值模拟相。硬球DP模型最初由Hoomans等人开发。 [1996。 [Chemical Engineering Science 51,99-108](针对致密气固系统)已经扩展,以解决作用于悬浮在粘性液体中的颗粒上的所有附加力,并且已与Deen等人最近提出的FT模型相结合。 [2004a。 2004年5月30日至6月4日在日本横滨举行的ICMF'04第五届多相流国际会议论文集; 2004b。化学工程科学59,1853-1861],用于复杂的自由表面流。在本文中,将介绍组合式FT-DP模型的物理基础以及说明性计算结果,突出显示此混合模型的功能。已经研究了气泡引起的颗粒混合的影响,着重于体积颗粒浓度的影响。另外,由于悬浮固体颗粒的存在,对气泡上升速度的阻滞作用(阻力改变)已经被量化。 (c)2005 Elsevier Ltd.保留所有权利。

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