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- 2011 Annual Meeting
- Engineering Sciences and Fundamentals
- Colloidal Hydrodynamics I
- (209h) PBE Breakage Kernel Through Stokesian Dynamics Simulations of Colloidal Aggregates' Breakage
We have formulated a model to study the breakup of colloidal aggregates made of identical spherical particles in shear flow under laminar flow conditions, using Stokesian dynamics to estimate the hydrodynamic interactions among the particles, DLVO theory to describe the normal inter-particle interactions, and discrete element method to account for the tangential contact interactions. Simulations were performed to study different characteristics of the breakage process of fractal aggregates, generated using different Monte-Carlo methods, composed of a number of uniform sized spheres and characterized by fractal dimensions, at different flow magnitudes in simple shear flow. The developed model was first used to investigate the dependence of the characteristic time required for the on-set of cluster breakage on the cluster geometry (mass and morphology) and flow conditions. In addition, the dependence of the fragment mass distribution at the instance of first breakage on the cluster mass and morphology has been studied. The so performed analysis of the breakage process was used to develop a breakage kernel which can be directly used in PBE.