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Yield Stress Materials in Soft Condensed Matter
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We present a comprehensive review of the physical behavior of yield stress materials in soft condensed matter, which encompass a broad range of materials from colloidal assemblies and gels to emulsions and non-Brownian suspensions. All these disordered materials display a nonlinear flow behavior in response to external mechanical forces, due to the existence of a finite force threshold for flow to occur: the yield stress. We discuss both the physical origin and rheological consequences associated with this nonlinear behavior, and give an overview of experimental techniques available to measure the yield stress. We discuss recent progress concerning a microscopic theoretical description of the flow dynamics of yield stress materials, emphasizing in particular the role played by relaxation time scales, the interplay between shear flow and aging behavior, the existence of inhomogeneous shear flows and shear bands, wall slip, and non-local effects in confined geometries.
Forward citations
Cited by 2 Pith papers
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Universal scalings and switching entropy in yield-stress fluids
Yield-stress fluids show universal G'∼γ0^{−3/2}, G''∼γ0^{−1} decays under large-amplitude oscillation, captured by a bistable-fluidity model linking yield stress to recoverable elastic energy and a fitted 'switching entropy'.
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Influence of active breathing on rheology and jamming of amorphous solids: insights from microscopic and mesoscale analysis
Periodic internal size oscillations fluidize a jammed 2D amorphous solid above a critical amplitude and convert yield-stress rheology to Newtonian flow.
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