Sun Sijie, Xue Nan, Aime Stefano, Kim Hyoungsoo, Tang Jizhou, McKinley Gareth H, Stone Howard A, Weitz David A
John A. Paulson School of Engineering and Applied Sciences, Harvard University, Cambridge, MA 02138.
Department of Mechanical and Aerospace Engineering, Princeton University, Princeton, NJ 08544.
Proc Natl Acad Sci U S A. 2023 Oct 3;120(40):e2304272120. doi: 10.1073/pnas.2304272120. Epub 2023 Sep 29.
Addition of particles to a viscoelastic suspension dramatically alters the properties of the mixture, particularly when it is sheared or otherwise processed. Shear-induced stretching of the polymers results in elastic stress that causes a substantial increase in measured viscosity with increasing shear, and an attractive interaction between particles, leading to their chaining. At even higher shear rates, the flow becomes unstable, even in the absence of particles. This instability makes it very difficult to determine the properties of a particle suspension. Here, we use a fully immersed parallel plate geometry to measure the high-shear-rate behavior of a suspension of particles in a viscoelastic fluid. We find an unexpected separation of the particles within the suspension resulting in the formation of a layer of particles in the center of the cell. Remarkably, monodisperse particles form a crystalline layer which dramatically alters the shear instability. By combining measurements of the velocity field and torque fluctuations, we show that this solid layer disrupts the flow instability and introduces a single-frequency component to the torque fluctuations that reflects a dominant velocity pattern in the flow. These results highlight the interplay between particles and a suspending viscoelastic fluid at very high shear rates.
向粘弹性悬浮液中添加颗粒会极大地改变混合物的性质,尤其是在对其进行剪切或其他处理时。聚合物的剪切诱导拉伸会产生弹性应力,随着剪切力增加,测得的粘度会大幅上升,并且颗粒之间存在吸引相互作用,导致它们形成链状。在更高的剪切速率下,即使没有颗粒,流动也会变得不稳定。这种不稳定性使得确定颗粒悬浮液的性质变得非常困难。在此,我们使用完全浸没的平行板几何结构来测量颗粒悬浮液在粘弹性流体中的高剪切速率行为。我们发现悬浮液中的颗粒出现了意想不到的分离,导致在单元中心形成了一层颗粒。值得注意的是,单分散颗粒形成了一个结晶层,这极大地改变了剪切不稳定性。通过结合速度场和扭矩波动的测量,我们表明这个固体层破坏了流动不稳定性,并在扭矩波动中引入了一个单频分量,该分量反映了流动中的主导速度模式。这些结果突出了在非常高的剪切速率下颗粒与悬浮粘弹性流体之间的相互作用。