Powder Technology 2018-03-27

An investigation of CFD simulations capability in treating non-spherical particle dynamics in a rotary drum

Wanessa Mendonça Benedito, Claudio Roberto Duarte, Marcos Antonio de Souza Barrozo, Dyrney Araújo dos Santos

Index: 10.1016/j.powtec.2018.03.067

Full Text: HTML

Abstract

A systematic study upon the Eulerian approach capability in predicting irregular particle (non-spherical) dynamics inside an unbaffled rotary drum was carried out through the investigation of different particle-particle interaction models and wall boundary conditions. The drum length effect on particle dynamics was also analyzed. The frictional viscosity, the wall movement method, and the particle boundary condition at the wall were shown to be of fundamental importance for irregular particles modelling in rotary drums. The moving mesh method did not represent well the experimental observation, regardless of the solid boundary condition used at the drum wall. The moving wall method combined with a no-slip boundary condition for the solid phase at the drum wall, and the frictional viscosity model using a critical particle concentration (αsc) of 0.4, satisfactory agreed with experiments. For the end-caps analyses, the higher the ratio L/ds, the lower the bed material surface slope and the lower the particle velocity values in the active region. From L/ds of 40.7 no differences were observed in particle dynamics behavior anymore.

Latest Articles:

Molecular dynamics simulations of nonylphenol ethoxylate on the Hatcher model of subbituminous coal surface

2018-04-04

[10.1016/j.powtec.2018.04.004]

Pressure drop in horizontal multi-tube liquid–solid circulating fluidized bed

2018-04-04

[10.1016/j.powtec.2018.04.003]

Particle sizing from Fraunhofer diffraction pattern using a digital micro-mirror device and a single photodiode

2018-04-04

[10.1016/j.powtec.2018.04.007]

Numerical investigation of the maximum erosion zone in elbows for liquid-particle flow

2018-04-03

[10.1016/j.powtec.2018.04.001]

Experimental investigation of the heat transfer performance of an oscillating heat pipe with graphene nanofluids

2018-04-02

[10.1016/j.powtec.2018.02.048]

More Articles...