Apparent viscosity of p-methoxybenzylidene-p'-n-butylaniline in the presence of electrohydrodynamic convection.

Phys Rev E Stat Nonlin Soft Matter Phys

Department of Electrical and Electronic Engineering, Faculty of Engineering, Oita University, Oita 870-1192, Japan.

Published: January 2013

AI Article Synopsis

  • The study examines how the shear viscosity of p-methoxybenzylidene-p'-n-butylaniline changes under electrohydrodynamic convection (EHC), highlighting different behaviors in low and high voltage scenarios.
  • In low-voltage conditions, viscosity increases due to disruptions in flow-aligned director configurations, while in high-voltage conditions, viscosity decreases as the system enters a dynamic scattering mode 2 (DSM2) state.
  • This decrease in viscosity at high voltage is explained using the Ericksen-Leslie theory, which attributes it to the negative impact of electric stress arising from the anisotropy in the director distribution caused by shear flow.

Article Abstract

The apparent shear viscosity of p-methoxybenzylidene-p'-n-butylaniline in the presence of electrohydrodynamic convection (EHC) is investigated experimentally. In the absence of an electric field, directors are almost aligned along the flow direction such that the viscosity is close to the minimum of the Miesowicz viscosities. Since EHC disturbs the flow-aligned director configuration, the viscosity increases as the applied voltage is increased in the low-voltage regime. In the high-voltage regime, however, further increasing the voltage leads to a decrease in viscosity. Microscope observations using a rheometer reveal that the decrease in viscosity occurs in the dynamic scattering mode 2 (DSM2) state, whose spatial director distribution is anisotropic due to the shear flow. By adopting the Ericksen-Leslie theory for the shear flow under the electric field, we find that the viscosity decrease can be attributed to the negative contribution of the electric stress caused by the anisotropic director distribution of the DSM2 state.

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Source
http://dx.doi.org/10.1103/PhysRevE.87.012501DOI Listing

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