Computer simulation of shear flow in simple fluids
Abstract
Computer simulation of shear flow in fluids has become an important technique in our
understanding of the non-linear behaviour of fluids subjected to an external field. An
important method for studying fluids from the atomic or molecular level is Molecular
Dynamics. Conventional molecular dynamics simulations of shear flow have been
performed at constant shear rate and constant pressure. In this thesis we describe how to
perform simulations at constant shear stress or constant pressure, which are the usual
experimental conditions. The theory used in deriving the constant stress equations is
quite general and can be applied for fields other than shear flow, allowing one to simulate at
constant thermodynamic force or flux. The constant pressure simulations show clearly the
difference between shear thinning and shear dilatancy, a point that has caused confusion in
the rheological literature.
Efficient computational methods are important as some simulations can take hundreds
of hours of computer time. The arrival of a vector processor at the A.N.U. has necessitated
the experimentation with algorithms, with substantial performance gains over a standard
code. These increases in performance have allowed us to complete a thorough study of
shear flow at constant pressure for the soft sphere system, which complements a large body
of data at constant density from other workers. Also a thorough study of shear flow in two
dimensions has been completed. The two dimensional system shows a large dependence on
system size, and we have been able to show the transition from small system behaviour to
large system behaviour.
Description
Keywords
Citation
Collections
Source
Type
Book Title
Entity type
Access Statement
License Rights
Restricted until
Downloads
File
Description