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Internal stresses and breakup of rigid isostatic aggregates in homogeneous and isotropic turbulence

机译:均质和各向同性湍流中刚性等静压骨料的内部应力和破裂

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摘要

By characterising the hydrodynamic stresses generated by statistically homogeneous and isotropic turbulence in rigid aggregates, we estimate theoretically the rate of turbulent breakup of colloidal aggregates and the size distribution of the formed fragments. The adopted method combines direct numerical simulation of the turbulent field with a discrete element method based on Stokesian dynamics. In this way, not only is the mechanics of the aggregate modelled in detail, but the internal stresses are evaluated while the aggregate is moving in the turbulent flow. We examine doublets and cluster-cluster isostatic aggregates, where the failure of a single contact leads to the rupture of the aggregate and breakup occurs when the tensile force at a contact exceeds the cohesive strength of the bond. Owing to the different role of the internal stresses, the functional relationship between breakup frequency and turbulence dissipation rate is very different in the two cases. In the limit of very small and very large values, the frequency of breakup scales exponentially with the turbulence dissipation rate for doublets, while it follows a power law for cluster-cluster aggregates. For the case of large isostatic aggregates, it is confirmed that the proper scaling length for maximum stress and breakup is the radius of gyration. The cumulative fragment distribution function is nearly independent of the mean turbulence dissipation rate and can be approximated by the sum of a small erosive component and a term that is quadratic with respect to fragment size
机译:通过表征刚性聚集体中统计均质和各向同性湍流产生的流体动力应力,我们从理论上估计胶体聚集体的湍流破裂速率和形成的碎片的尺寸分布。所采用的方法将湍流场的直接数值模拟与基于斯托克斯动力学的离散元方法相结合。这样,不仅可以对集料的力学进行详细建模,而且可以在集料在湍流中移动时评估内部应力。我们研究了双峰和簇簇等静性聚集体,其中单个接触的失效会导致聚集体破裂,并且当接触处的拉力超过键的内聚强度时会发生破裂。由于内部应力的作用不同,在两种情况下,破裂频率和湍流耗散率之间的函数关系非常不同。在非常小的值和非常大的值的极限内,分解的频率与成对的湍流耗散率成指数比例,而对于簇簇聚集体则遵循幂定律。对于大的等静压骨料,可以确定最大应力和破碎的合适的定标长度是回转半径。累积的碎片分布函数几乎与平均湍流耗散率无关,并且可以通过较小的侵蚀性成分和相对于碎片大小为平方的项的总和来近似

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