A constant-contour-length reptation model without independent alignment or consistent averaging approximations for chain retraction
Author:
Publisher
Springer Science and Business Media LLC
Subject
Condensed Matter Physics,General Materials Science
Link
http://link.springer.com/content/pdf/10.1007/BF00368132.pdf
Reference22 articles.
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2. Bird RB, Stewart WE, Lightfoot E (1960) Transport Phenomena. John Wiley, New York
3. Bird RB, Ottinger HC (1992) Transport properties of polymeric liquids. Ann Rev Phys Chem 43:371?406
4. Brown EF, Burghardt WR (1996) First and second normal stress difference relaxation in reversing double-step strain flows. J Rheol 40:37?54
5. Doi M (1980) Stress relaxation of polymeric liquids after double step strain. J Polym Sci Polym Phys Ed 18:1891?1901
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1. Finite cohesion due to chain entanglement in polymer melts;Soft Matter;2016
2. Probability Distribution Function of the Polymer End-to-End Molecule Vector after Retraction and its Application to Step Deformation;Macromolecular Theory and Simulations;2010-03-04
3. Investigations on several empirical rules for entangled polymers based on a self-consistent full-chain reptation theory;The Journal of Chemical Physics;2000-05-08
4. Thermodynamically admissible reptation models with anisotropic tube cross sections and convective constraint release;Journal of Non-Newtonian Fluid Mechanics;2000-02
5. Segment connectivity, chain-length breathing, segmental stretch, and constraint release in reptation models. II. Double-step strain predictions;The Journal of Chemical Physics;1998-12-08
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