Polymer blends in a contraction-expansion flow.

No === We have probed the coupling between flow and concentration fluctuations in polymer blends using small-angle neutron scattering. We utilized a recirculating cell with a slot die, enabling us to measure the behavior at the entrance, within and at the exit of a contraction-expansion flow. While,...

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Main Authors: Clarke, N.C., De Luca, E., Bent, J., Buxton, G., Gough, Timothy D., Grillo, I., Hutchings, L.R.
Language:en
Published: 2009
Subjects:
Online Access:http://hdl.handle.net/10454/3643
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spelling ndltd-BRADFORD-oai-bradscholars.brad.ac.uk-10454-36432019-08-31T03:02:22Z Polymer blends in a contraction-expansion flow. Clarke, N.C. De Luca, E. Bent, J. Buxton, G. Gough, Timothy D. Grillo, I. Hutchings, L.R. Experimental study Modeling Lateral distribution Longitudinal distribution Interaction parameter Flow field Structure factor Concentration fluctuation Sudden contraction Flow(fluid) Styrene(alpha-methyl) polymer Polymer blends No We have probed the coupling between flow and concentration fluctuations in polymer blends using small-angle neutron scattering. We utilized a recirculating cell with a slot die, enabling us to measure the behavior at the entrance, within and at the exit of a contraction-expansion flow. While, as expected, anisotropy was observed in all nonquiescent experiments, the correlation lengths associated with the concentration fluctuations are found to be "stretched" more in the direction perpendicular to the flow at all positions along the centerline of the flow, except at the slot die exit. To gain insight into the observations, we present calculations of the scattering based on a multiscale approach, which bridges the gap between macroscopic Newtonian fluid dynamics and the convection of nanoscale concentration fluctuations. However, we find that this model contains insufficient physics to correctly describe our observations. Consequently, we argue that the deformation of the correlation length is primarily due to the coupling between weakly non-Newtonian stresses and thermodynamics 2009-10-12T14:11:09Z 2009-10-12T14:11:09Z 2006 Article No full-text available in the repository Clarke, N.C., De Luca, E., Bent, J., Buxton, G. and Gough, T.D. et al. (2006). Polymer blends in a contraction-expansion flow. Macromolecules. Vol. 39, No. 22, pp. 7607-7616. http://hdl.handle.net/10454/3643 en http://dx.doi.org/10.1021/ma0610966
collection NDLTD
language en
sources NDLTD
topic Experimental study
Modeling
Lateral distribution
Longitudinal distribution
Interaction parameter
Flow field
Structure factor
Concentration fluctuation
Sudden contraction
Flow(fluid)
Styrene(alpha-methyl) polymer
Polymer blends
spellingShingle Experimental study
Modeling
Lateral distribution
Longitudinal distribution
Interaction parameter
Flow field
Structure factor
Concentration fluctuation
Sudden contraction
Flow(fluid)
Styrene(alpha-methyl) polymer
Polymer blends
Clarke, N.C.
De Luca, E.
Bent, J.
Buxton, G.
Gough, Timothy D.
Grillo, I.
Hutchings, L.R.
Polymer blends in a contraction-expansion flow.
description No === We have probed the coupling between flow and concentration fluctuations in polymer blends using small-angle neutron scattering. We utilized a recirculating cell with a slot die, enabling us to measure the behavior at the entrance, within and at the exit of a contraction-expansion flow. While, as expected, anisotropy was observed in all nonquiescent experiments, the correlation lengths associated with the concentration fluctuations are found to be "stretched" more in the direction perpendicular to the flow at all positions along the centerline of the flow, except at the slot die exit. To gain insight into the observations, we present calculations of the scattering based on a multiscale approach, which bridges the gap between macroscopic Newtonian fluid dynamics and the convection of nanoscale concentration fluctuations. However, we find that this model contains insufficient physics to correctly describe our observations. Consequently, we argue that the deformation of the correlation length is primarily due to the coupling between weakly non-Newtonian stresses and thermodynamics
author Clarke, N.C.
De Luca, E.
Bent, J.
Buxton, G.
Gough, Timothy D.
Grillo, I.
Hutchings, L.R.
author_facet Clarke, N.C.
De Luca, E.
Bent, J.
Buxton, G.
Gough, Timothy D.
Grillo, I.
Hutchings, L.R.
author_sort Clarke, N.C.
title Polymer blends in a contraction-expansion flow.
title_short Polymer blends in a contraction-expansion flow.
title_full Polymer blends in a contraction-expansion flow.
title_fullStr Polymer blends in a contraction-expansion flow.
title_full_unstemmed Polymer blends in a contraction-expansion flow.
title_sort polymer blends in a contraction-expansion flow.
publishDate 2009
url http://hdl.handle.net/10454/3643
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AT goughtimothyd polymerblendsinacontractionexpansionflow
AT grilloi polymerblendsinacontractionexpansionflow
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