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Sandra Lerouge

Researcher at Paris Diderot University

Publications -  48
Citations -  2057

Sandra Lerouge is an academic researcher from Paris Diderot University. The author has contributed to research in topics: Shear rate & Shear stress. The author has an hindex of 26, co-authored 46 publications receiving 1843 citations. Previous affiliations of Sandra Lerouge include Centre national de la recherche scientifique & University of Leeds.

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Journal ArticleDOI

Shear Banding of Complex Fluids

TL;DR: A review of recent work on shear banding in polymeric and soft glassy materials can be found in this paper, where the authors highlight their similarities and disparities, as well as the development of new techniques to probe the flow on multiple scales and with increasing spatial and temporal resolution.
Book ChapterDOI

Shear-Induced Transitions and Instabilities in Surfactant Wormlike Micelles

TL;DR: In this paper, the authors report recent developments on the shear-induced transitions and instabilities found in surfactant wormlike micelles, and describe three types of transitions and/or instabilities: shearthickening, shearbanding, and flow-aligning and tumbling instabilities characteristic of nematic structures.
Journal ArticleDOI

Shear Banding of Complex Fluids

TL;DR: A review of recent work on shear banding in polymeric and soft glassy materials can be found in this paper, where the authors highlight their similarities and disparities, and compare them with previous work.
Journal ArticleDOI

Interface instability in shear-banding flow.

TL;DR: A model based on the flow symmetry which qualitatively describes the observed patterns of spatiotemporal dynamics of the interface in shear-banding flow of a wormlike micellar system is built.
Journal ArticleDOI

Rheology of complex fluids by particle image velocimetry in microchannels

TL;DR: In this article, the authors used tracers to image the flow of complex fluids in microchannels of controlled geometry using tracers, which can access quantitatively the bulk nonlinear rheology and wall slip, as they show on model polymer solutions.