20,518 research outputs found
Phase Coexistence of Complex Fluids in Shear Flow
We present some results of recent calculations of rigid rod-like particles in
shear flow, based on the Doi model. This is an ideal model system for
exhibiting the generic behavior of shear-thinning fluids (polymer solutions,
wormlike micelles, surfactant solutions, liquid crystals) in shear flow. We
present calculations of phase coexistence under shear among weakly-aligned
(paranematic) and strongly-aligned phases, including alignment in the shear
plane and in the vorticity direction (log-rolling). Phase coexistence is
possible, in principle, under conditions of both common shear stress and common
strain rate, corresponding to different orientations of the interface between
phases. We discuss arguments for resolving this degeneracy. Calculation of
phase coexistence relies on the presence of inhomogeneous terms in the
dynamical equations of motion, which select the appropriate pair of coexisting
states. We cast this condition in terms of an equivalent dynamical system, and
explore some aspects of how this differs from equilibrium phase coexistence.Comment: 16 pages, 10 figures, submitted to Faraday Discussion
A W-String Realization of the Bosonic String
It has recently been shown that the ordinary bosonic string can be
represented by a special background of N=1 or N=2 strings. In this paper, it
will be shown that the bosonic string can also be represented by a special
background of -strings.Comment: 8 pages plain Tex, KCL-TH-93-1
Nonequilibrium Structure of Colloidal Dumbbells under Oscillatory Shear
We investigate the nonequilibrium behavior of dense, plastic-crystalline
suspensions of mildly anisotropic colloidal hard dumbbells under the action of
an oscillatory shear field by employing Brownian dynamics computer simulations.
In particular, we extend previous investigations, where we uncovered novel
nonequilibrium phase transitions, to other aspect ratios and to a larger
nonequilibrium parameter space, that is, a wider range of strains and shear
frequencies. We compare and discuss selected results in the context of novel
scattering and rheological experiments. Both simulations and experiments
demonstrate that the previously found transitions from the plastic crystal
phase with increasing shear strain also occur at other aspect ratios. We
explore the transition behavior in the strain-frequency phase and summarize it
in a nonequilibrium phase diagram. Additionally, the experimental rheology
results hint at a slowing down of the colloidal dynamics with higher aspect
ratio
Building Gaussian Cluster States by Linear Optics
The linear optical creation of Gaussian cluster states, a potential resource
for universal quantum computation, is investigated. We show that for any
Gaussian cluster state, the canonical generation scheme in terms of QND-type
interactions, can be entirely replaced by off-line squeezers and beam
splitters. Moreover, we find that, in terms of squeezing resources, the
canonical states are rather wasteful and we propose a systematic way to create
cheaper states. As an application, we consider Gaussian cluster computation in
multiple-rail encoding. This encoding may reduce errors due to finite
squeezing, even when the extra rails are achieved through off-line squeezing
and linear optics.Comment: 5 Pages, 3 figure
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