Effect of particle size on the rising behavior of particle-laden bubbles
File(s)Wang et al accepted - proof edits.pdf (1.38 MB)
Accepted version
Author(s)
Wang, Peipei
Cilliers, Jan J
Neethling, Stephen J
Brito-Parada, Pablo R
Type
Journal Article
Abstract
The rising behavior of bubbles, initially half and fully coated with glass beads of various sizes, was investigated. The bubble velocity, aspect ratio, and oscillation periods were determined using high-speed photography and image analysis. In addition, the acting forces, drag modification factor, and modified drag coefficient were calculated and interpreted. Results show that the aspect ratio oscillation of the rising bubbles is similar, irrespective of the attached particle size. As the particle size is increased, the rising bubbles have a lower velocity and aspect ratio amplitude, with the time from release to each aspect ratio peak increasing. Higher particle coverage is shown to decrease the bubble velocity and dampen the oscillations, reducing the number of aspect ratio peaks observed. The highest rise velocities correspond to the lowest aspect ratios and vice versa, whereas a constant aspect ratio yields a constant rise velocity, independent of the particle size. Force analysis shows that the particle drag modification factor increases with the increased particle size and is greatest for fully laden bubbles. The modified drag coefficient of particle-laden bubbles increases with the increased particle size, although it decreases with the increased Reynolds number independent of the particle size. The drag force exerted by the particles plays a more dominant role in decreasing bubble velocities as the particle size increases. The results and interpretation produced a quantitative description of the behavior of rising particle-laden bubbles and the development of correlations will enhance the modeling of industrial applications.
Date Issued
2019-03-12
Date Acceptance
2019-02-01
Citation
Langmuir, 2019, 35 (10), pp.3680-3687
ISSN
0743-7463
Publisher
American Chemical Society
Start Page
3680
End Page
3687
Journal / Book Title
Langmuir
Volume
35
Issue
10
Copyright Statement
© 2019 American Chemical Society. This document is the Accepted Manuscript version of a Published Work that appeared in final form in [Langmuir], after peer review and technical editing by the publisher. To access the final edited and published work see [https://doi.org/10.1021/acs.langmuir.8b04112].
Identifier
https://www.ncbi.nlm.nih.gov/pubmed/30785756
Subjects
Science & Technology
Physical Sciences
Technology
Chemistry, Multidisciplinary
Chemistry, Physical
Materials Science, Multidisciplinary
Chemistry
Materials Science
DRAG COEFFICIENT
SINGLE BUBBLE
AIR BUBBLES
SHAPE
RISE
FLOTATION
FROTHER
DETACHMENT
VELOCITY
MD Multidisciplinary
Chemical Physics
Publication Status
Published
Coverage Spatial
United States
Date Publish Online
2019-02-20