TY - JOUR
T1 - Modeling and numerical study of particle-bubble-liquid flows using a front-tracking and discrete-element method
AU - Xia, Huanxiong
AU - Zhang, Zhenyu
AU - Liu, Jianhua
AU - Ao, Xiaohui
AU - Lin, Shengxiang
AU - Yang, Ye
N1 - Publisher Copyright:
© 2022 Elsevier Inc.
PY - 2023/2
Y1 - 2023/2
N2 - Particle-bubble-liquid flows widely exist in industrial processes, such as fluidized beds, flotation cells, and bubble column reactors, but the high-fidelity simulation of these flows is a great challenge. This paper developed a dynamic model for this three-phase system using a front-tracking and discrete-element method, where the behaviors of collision, attachment, and detachment between the particles and bubbles are included. The convergence and accuracy of this model were validated, and then the model was applied to simulate the transport behaviors of particle-bubble-liquid flows. The collision and attachment probabilities and the effects of particle size and properties on the collision, attachment, and flow behaviors were numerically investigated. The particle-bubble interaction simulations show that the collision probability and contact time increase with the increase of the size ratio of particle to bubble; hydrophilic particles can promote the bubble rising speed and even faster than that in the pure liquid; the attachment behavior greatly impedes the bubble rising but enhances the particle transport intensity. The bubbling simulations show that the wake of the rising bubble can induce the following bubble to move along a wave-like trajectory; the particles driven by a higher bubbling frequency present a higher lifting height and a stronger dispersion effect.
AB - Particle-bubble-liquid flows widely exist in industrial processes, such as fluidized beds, flotation cells, and bubble column reactors, but the high-fidelity simulation of these flows is a great challenge. This paper developed a dynamic model for this three-phase system using a front-tracking and discrete-element method, where the behaviors of collision, attachment, and detachment between the particles and bubbles are included. The convergence and accuracy of this model were validated, and then the model was applied to simulate the transport behaviors of particle-bubble-liquid flows. The collision and attachment probabilities and the effects of particle size and properties on the collision, attachment, and flow behaviors were numerically investigated. The particle-bubble interaction simulations show that the collision probability and contact time increase with the increase of the size ratio of particle to bubble; hydrophilic particles can promote the bubble rising speed and even faster than that in the pure liquid; the attachment behavior greatly impedes the bubble rising but enhances the particle transport intensity. The bubbling simulations show that the wake of the rising bubble can induce the following bubble to move along a wave-like trajectory; the particles driven by a higher bubbling frequency present a higher lifting height and a stronger dispersion effect.
KW - Bubble wake
KW - Bubbling
KW - Discrete-element method
KW - Front-tracking method
KW - Particle-bubble-liquid flow
UR - http://www.scopus.com/inward/record.url?scp=85140051227&partnerID=8YFLogxK
U2 - 10.1016/j.apm.2022.10.022
DO - 10.1016/j.apm.2022.10.022
M3 - Article
AN - SCOPUS:85140051227
SN - 0307-904X
VL - 114
SP - 525
EP - 543
JO - Applied Mathematical Modelling
JF - Applied Mathematical Modelling
ER -