Issue 10, 2013

Structure evolution in electrorheological fluids flowing through microchannels

Abstract

Enhanced knowledge of the transient behavior and characteristics of electrorheological (ER) fluids subject to time dependent electric fields offers the potential to advance the design of fast actuated hydraulic devices. In this study, the dynamic response of electrorheological fluid flows in rectilinear microchannels was investigated experimentally. Using high-speed microscopic imaging, the evolution of particle aggregates in ER fluids subjected to temporally stepwise electric fields was visualized. Nonuniform growth of the particle structures in the channel was observed and correlated to field strength and flow rate. Two competing time scales for structure growth were identified. Guided by experimental observations, we developed a phenomenological model to quantitatively describe and predict the evolution of microscale structures and the concomitant induced pressure gradient.

Graphical abstract: Structure evolution in electrorheological fluids flowing through microchannels

Supplementary files

Article information

Article type
Paper
Submitted
01 Sep 2012
Accepted
04 Jan 2013
First published
28 Jan 2013

Soft Matter, 2013,9, 2889-2898

Structure evolution in electrorheological fluids flowing through microchannels

B. Qian, G. H. McKinley and A. E. Hosoi, Soft Matter, 2013, 9, 2889 DOI: 10.1039/C2SM27022F

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