Confined steady simple shear flow of polymeric liquids

Author:

Pak Myong Chol1ORCID,Giacomin A. J.2ORCID,Kanso M. A.34ORCID,Kim Chol-Song15ORCID,Pasquino R.6ORCID

Affiliation:

1. Department of Physics, Kim Il Sung University, Pyongyang 999093, Democratic People's Republic of Korea

2. Mechanical Engineering Department, University of Nevada 2 , Reno, Nevada 89557, USA

3. Chemical Engineering Department, Massachusetts Institute of Technology 3 , Cambridge, Massachusetts 02139, USA

4. Okinawa Institute of Science and Technology 4 , Tancha, Onna, Kunigami District, Okinawa 904-0495, Japan

5. Institute of Condensed Matter and Materials Physics, School of Physics, Peking University, Beijing 100871, China

6. Chemical, Materials and Industrial Production Engineering (DICMaPI) Department, University of Naples Federico II 6 , 80125 Napoli, Italy

Abstract

In a confined simple shear flow, the macromolecules of a polymeric liquid reorient near the walls so that the measured viscosity decreases. For instance, in a small-amplitude oscillatory shear flow, the real part of the complex viscosity decreases with confinement, and macromolecular orientation explains this. These effects in oscillation have been explained analytically for a rigid dumbbell suspension and, for a confined small-amplitude oscillatory shear flow, the summation coefficients have been determined. By contrast, for the confined steady shear flow, the summation coefficients are undetermined. In this paper, we determine these coefficients and use them to evaluate the steady shear (i) viscosity and (ii) normal stress coefficients for a rigid dumbbell suspension. We find that the zero-shear viscosity and the zero-shear first normal stress coefficients decrease with confinement. We further find that the dimensionless (i) steady shear viscosity curve increases with confinement and (ii) first normal stress coefficient first decreases with light confinement and then increases with greater confinement. We confirm our theory, at low confinement, by comparing with our new measurements of the confined zero-shear viscosity of a polystyrene solution.

Funder

National Program on Key Science Research of the Democratic People's Republic of Korea

Vanier Canada Research Scholarship

Mitacs Research Training Award

Publisher

AIP Publishing

Subject

Condensed Matter Physics,Fluid Flow and Transfer Processes,Mechanics of Materials,Computational Mechanics,Mechanical Engineering

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