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The Role of Stochastic Time-Variations in Turbulent Stresses When Predicting Drop Breakup—A Review of Modelling Approaches

Håkansson, Andreas LU (2021) In Processes 9(11).
Abstract
Many industrially relevant emulsification devices are of the high-energy type, where drop deformation and subsequent breakup, take place due to intense turbulent fluid–drop interactions. This includes high-pressure homogenizers as well as rotor-stator mixers (also known as high-shear mixers) of various designs. The stress acting on a drop in a turbulent flow field varies over time, occasionally reaching values far exceeding its time-averaged value, but only during limited stretches of time, after which it decreases down to low values again. This it is one factor separating turbulent from laminar emulsification. This contribution reviews attempts to take this intermittently time-varying stress into account in models predicting the... (More)
Many industrially relevant emulsification devices are of the high-energy type, where drop deformation and subsequent breakup, take place due to intense turbulent fluid–drop interactions. This includes high-pressure homogenizers as well as rotor-stator mixers (also known as high-shear mixers) of various designs. The stress acting on a drop in a turbulent flow field varies over time, occasionally reaching values far exceeding its time-averaged value, but only during limited stretches of time, after which it decreases down to low values again. This it is one factor separating turbulent from laminar emulsification. This contribution reviews attempts to take this intermittently time-varying stress into account in models predicting the characteristic drop diameter resulting from emulsification experiments, focusing on industrially applicable emulsification devices. Two main frameworks are discussed: the Kolmogorov–Hinze framework and the oscillatory resonance framework. Modelling suggestions are critically discussed and compared, with the intention to answer how critical it is to correctly capture this time-varying stress in emulsification modelling. The review is concluded by a list of suggestions for future investigations. (Less)
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author
organization
publishing date
type
Contribution to journal
publication status
published
subject
keywords
emulsification, turbulent drop breakup, emulsion, turbulence, intermittency, high-pressure homogenizer, rotor-stator mixer, high-shear mixer
in
Processes
volume
9
issue
11
article number
1904
pages
25 pages
publisher
MDPI AG
external identifiers
  • scopus:85118361872
ISSN
2227-9717
DOI
10.3390/pr9111904
language
English
LU publication?
yes
id
f11d64cb-0bdf-47ab-9644-6a925ee8bb30
date added to LUP
2021-11-04 20:00:19
date last changed
2023-12-07 20:46:28
@article{f11d64cb-0bdf-47ab-9644-6a925ee8bb30,
  abstract     = {{Many industrially relevant emulsification devices are of the high-energy type, where drop deformation and subsequent breakup, take place due to intense turbulent fluid–drop interactions. This includes high-pressure homogenizers as well as rotor-stator mixers (also known as high-shear mixers) of various designs. The stress acting on a drop in a turbulent flow field varies over time, occasionally reaching values far exceeding its time-averaged value, but only during limited stretches of time, after which it decreases down to low values again. This it is one factor separating turbulent from laminar emulsification. This contribution reviews attempts to take this intermittently time-varying stress into account in models predicting the characteristic drop diameter resulting from emulsification experiments, focusing on industrially applicable emulsification devices. Two main frameworks are discussed: the Kolmogorov–Hinze framework and the oscillatory resonance framework. Modelling suggestions are critically discussed and compared, with the intention to answer how critical it is to correctly capture this time-varying stress in emulsification modelling. The review is concluded by a list of suggestions for future investigations.}},
  author       = {{Håkansson, Andreas}},
  issn         = {{2227-9717}},
  keywords     = {{emulsification; turbulent drop breakup; emulsion; turbulence; intermittency; high-pressure homogenizer; rotor-stator mixer; high-shear mixer}},
  language     = {{eng}},
  number       = {{11}},
  publisher    = {{MDPI AG}},
  series       = {{Processes}},
  title        = {{The Role of Stochastic Time-Variations in Turbulent Stresses When Predicting Drop Breakup—A Review of Modelling Approaches}},
  url          = {{http://dx.doi.org/10.3390/pr9111904}},
  doi          = {{10.3390/pr9111904}},
  volume       = {{9}},
  year         = {{2021}},
}