Ness Christopher, Sun Jin
School of Engineering, University of Edinburgh, Edinburgh EH9 3JL, UK.
Soft Matter. 2016 Jan 21;12(3):914-24. doi: 10.1039/c5sm02326b. Epub 2015 Nov 11.
We propose a unifying rheological framework for dense suspensions of non-Brownian spheres, predicting the onsets of particle friction and particle inertia as distinct shear thickening mechanisms, while capturing quasistatic and soft particle rheology at high volume fractions and shear rates respectively. Discrete element method simulations that take suitable account of hydrodynamic and particle-contact interactions corroborate the model predictions, demonstrating both mechanisms of shear thickening, and showing that they can occur concurrently with carefully selected particle surface properties under certain flow conditions. Microstructural transitions associated with frictional shear thickening are presented. We find very distinctive divergences of both microstructural and dynamic variables with respect to volume fraction in the thickened and non-thickened states.
我们为非布朗球体的致密悬浮液提出了一个统一的流变学框架,预测颗粒摩擦和颗粒惯性的起始点是不同的剪切增稠机制,同时分别捕捉高体积分数和剪切速率下的准静态和软颗粒流变学。适当考虑流体动力学和颗粒接触相互作用的离散元方法模拟证实了模型预测,展示了两种剪切增稠机制,并表明在特定流动条件下,它们可以与精心选择的颗粒表面特性同时发生。文中还介绍了与摩擦剪切增稠相关的微观结构转变。我们发现,在增稠和未增稠状态下,微观结构和动态变量相对于体积分数都有非常明显的差异。