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  5. Dynamics of polymeric solutions in complex kinematics bulk and free surface flows: Multiscale/Continuum simulations and experimental studies
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Dynamics of polymeric solutions in complex kinematics bulk and free surface flows: Multiscale/Continuum simulations and experimental studies

Date Issued
August 1, 2011
Author(s)
Abedijaberi, Arash
Advisor(s)
Bamin Khomami
Additional Advisor(s)
Brian J. Edwards
Shanfeng Wang
Ramki Kalyanaraman
Permanent URI
https://trace.tennessee.edu/handle/20.500.14382/18612
Abstract

While rheological and microstructural complexities have posed tremendous challenges to researchers in developing first principles models and simulation techniques that can accurately and robustly predict the dynamical behaviour of polymeric flows, the past two decades have offered several significant advances towards accomplishing this goal. These accomplishments include: (1). Stable and accurate formulation of continuum-level viscoelastic constitutive models and their efficient implementation using operator splitting methods to explore steady and transient flows in complex geometries, (2). Prediction of rheology of polymer solutions and melts based on micromechanical models as well as highly parallel self-consistent multiscale simulations of non-homogeneous flows. The main objective of this study is to leverage and build upon the aforementioned advances to develop a quantitative understanding of the flow-micro-structure coupling mechanisms in viscoelastic polymeric fluids and in turn predict, consistent with experiments, their essential macroscopic flow properties e.g. frictional drag, interface shape, etc. To this end, we have performed extensive continuum and multiscale flow simulations in several industrially relevant bulk and free surface flows. The primary motivation for the selection of the specific flow problems is based on their ability to represent different deformation types, and the ability to experimentally verify the simulation results as well as their scientific and industrial significance.

Subjects

Complex fluids

Multiscale and Contin...

Disciplines
Complex Fluids
Transport Phenomena
Degree
Doctor of Philosophy
Major
Chemical Engineering
Embargo Date
December 1, 2011
File(s)
Thumbnail Image
Name

Arash_Abedijaberi_PhD_Thesis.pdf

Size

28.62 MB

Format

Adobe PDF

Checksum (MD5)

b187cd231592bc8a15391de80416d085


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