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Nonlinear rheology of dense colloidal systems with short-ranged attraction: A mode-coupling theory analysis

机译:短程吸引的稠密胶体系统的非线性流变学:一种模式耦合理论分析

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The nonlinear rheology of glass-forming colloidal suspensions with short-ranged attractions is discussed within the integration-through transients framework combined with the mode-coupling theory of the glass transition. Calculations are based on the square-well system, as a model for colloid-polymer mixtures. The high-density regime featuring reentrant melting of the glass upon increasing the attraction strength and the crossover from repulsive glasses formed at weak attraction to attractive glasses formed at strong attraction are discussed. Flow curves are found in qualitative agreement with experimental data, featuring a strong increase in the yield stress and for suitable interaction parameters, the crossover between two yield stresses. The yield strain, defined as the position of the stress overshoot under startup flow, is found to be proportional to the attraction range for strong attraction. At weak and intermediate attraction strength, the combined effects of hard-core caging and attraction-driven bonding result in a richer dependence on the parameters. The first normal-stress difference exhibits a weaker dependence on short-ranged attractions as the shear stress, since the latter is more sensitive than the short-wavelength features of the static structure.
机译:在通过瞬变积分的框架内,结合玻璃化转变的模式耦合理论,讨论了具有短时吸引力的玻璃形成胶体悬浮液的非线性流变学。计算基于平方井系统,作为胶体-聚合物混合物的模型。讨论了高密度状态,其特征在于玻璃在增加吸引力时会发生折返熔化,并讨论了从吸引力弱的排斥性玻璃到吸引力强的排斥性玻璃的交叉现象。流量曲线与实验数据定性一致,其特征在于屈服应力大大增加,并且对于合适的相互作用参数,两个屈服应力之间的交叉也很明显。发现屈服应变定义为启动流下应力超调的位置,与强吸引力的吸引力范围成正比。在弱的和中等的吸引力强度下,硬核保持架和吸引力驱动的结合的结合作用导致对参数的依赖性更大。第一个法向应力差表现为对短程吸引力的依赖性较小,因为后者比静态结构的短波长特征更为敏感。

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