Modeling and experiments of polydisperse particle clouds

被引:0
作者
Adrian C. H. Lai
Ruo-Qian Wang
Adrian Wing-Keung Law
E. Eric Adams
机构
[1] Center for Environmental Sensing and Modeling,Department of Civil and Environmental Engineering
[2] Singapore-MIT Alliance for Research and Technology Centre,School of Civil and Environmental Engineering
[3] University of California,Department of Civil and Environmental Engineering
[4] Nanyang Technological University,undefined
[5] Massachusetts Institute of Technology,undefined
来源
Environmental Fluid Mechanics | 2016年 / 16卷
关键词
Two-phase flows; Polydisperse; Buoyant vortex ring; Thermals; Particle clouds; Integral models;
D O I
暂无
中图分类号
学科分类号
摘要
A model for polydisperse particle clouds has been developed in this study. We extended the monodisperse particle cloud model of Lai et al. (Environ Fluid Mech 13(5):435–463, 2013) to the case of polydisperse particles. The particle cloud is first considered to be a thermal or buoyant vortex ring, with the thermal induced velocity field modeled by an expanding spherical Hill’s vortex. The buoyancy of the composite thermal is assumed to be the sum of buoyancy contributed by the all particles inside the thermal. Individual particles (of different particle properties) in the cloud are then tracked by the particle tracking equation using the computed induced velocity field. The turbulent dispersion effect is also accounted for by using a random walk model. Experiments of polydisperse particle clouds were carried out to validate the model. The agreement between model predictions and experiments was reasonable. We further validate our model by comparing it with the LES study of Wang et al. (J Hydraul Eng ASCE 141(7):06015006, 2014). The limitations of our model are then discussed with reference to the comparison. Overall, although some flow details are not captured by our model, the simplicity and generality of the model makes it useful in engineering applications.
引用
收藏
页码:875 / 898
页数:23
相关论文
共 70 条
[1]  
Bourouiba L(2014)Violent expiratory events: on coughing and sneezing J Fluid Mech 745 537-563
[2]  
Dehandschoewercker E(2003)Particle clouds in homogeneous and stratified environments J Fluid Mech 489 29-54
[3]  
Bush JWM(2004)The settling and dispersion of small dense particles by spherical vortices J Fluid Mech 498 183-203
[4]  
Bush JWM(2013)Dynamics of particle clouds in ambient currents with application to open water sediment disposal J Hydraul Eng ASCE 139 114-123
[5]  
Thurber BA(2004)Modeling instantaneous discharge of unsorted particle cloud in ambient water by an Eulerian-Lagrangian method J Hydraul Res 42 399-405
[6]  
Blanchette F(2008)Experimental study on instantaneous discharge of unsorted particle cloud in cross-flow J Hydrodyn 20 10-16
[7]  
Eames I(2013)Two-phase flow LES of the sedimentation process of a particle cloud J Hydraul Res 51 186-194
[8]  
Gilbertson MA(1894)On a spherical vortex Philos Trans R Soc Lond Ser A 185 213-245
[9]  
Gensheimer RJ(2001)Virtual origin correction for lazy turbulent plumes J Fluid Mech 435 377-396
[10]  
Adams EE(1994)Particle-tracking equations for the solution of the advection-dispersion equation with variable coefficients Water Resour Res 30 3225-3227