Wall slip across the jamming transition of soft thermoresponsive particles
arXiv:1508.06716 · doi:10.1103/PhysRevE.92.060301
Abstract
Flows of suspensions are often affected by wall slip, that is the fluid velocity in the vicinity of a boundary differs from the wall velocity due to the presence of a lubrication layer. While the slip velocity robustly scales linearly with the stress at the wall in dilute suspensions, there is no consensus regarding denser suspensions that are sheared in the bulk, for which slip velocities have been reported to scale as a with exponents inconsistently ranging between 0 and 2. Here we focus on a suspension of soft thermoresponsive particles and show that actually scales as a power law of the viscous stress , where denotes the yield stress of the bulk material. By tuning the temperature across the jamming transition, we further demonstrate that this scaling holds true over a large range of packing fractions on both sides of the jamming point and that the exponent increases continuously with , from in the case of dilute suspensions to for jammed assemblies. These results allow us to successfully revisit inconsistent data from the literature and paves the way for a continuous description of wall slip above and below jamming.
6 pages, 4 figures - accepted for publication as a Rapid Communication in Phys. Rev. E
References in corpus (3)
Cited by in corpus (7)
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