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Microstructural transition in an ordered set of magnetic spheres immersed in a carrier liquid
Affiliation:1. Universidade Estadual de Campinas, Faculdade de Engenharia Mecânica, Departmento de Energia, Rua Mendeleyev, 200, Unicamp, 13083-970, Campinas, SP, Brazil;2. Universidade de São Paulo, Departamento de Engenharia Mecânica, Núcleo de Dinâmica e Fluidos, 05508-030, São Paulo, SP, Brazil;3. Member of the Laboratory of Microhydrodynamics and Rheology - VORTEX, Brasilia-DF 70910 900, Brazil;1. School of Civil Engineering, Chongqing University, Chongqing 400045, PR China;2. Key Laboratory of New Technology for Construction of Cities in Mountain Area (Chongqing University), Ministry of Education, Chongqing 400045, PR China;1. School of Urban Rail Transportation, Soochow University, Suzhou, 215131, PR China;2. Department of Civil Engineering and Engineering Mechanics, Columbia University, USA;3. Department of Civil and Environmental Engineering, University of Delaware, USA
Abstract:This work explores the physics of an ordered set of interacting spheres immersed in a carrier liquid. We present numerical simulations that compute the translational and rotational motion of N interacting spheres based on classical principles of Stokesian dynamics. The spheres are assumed to be made of a magnetizable material, subjected to magnetic and hydrodynamic long range interactions. We explore structure transition using a Lagragian approach of a continuum volume of fluid containing micrometric magnetic particles. We present local maps of particle volume fraction within the calculation Lattice. In this condition, considering the presence and absence of an applied magnetic field, instantaneous snapshots of the local microstructure are taken. Thus, different possibilities of long range interactions are considered. We also complement these results with meaningful statistics of time series obtained through our simulations, such as the correlation time of velocity fluctuations and their self-correlation functions. The data analyzed in the present work sustain the fact that initially ordered neutrally buoyant suspensions have an anisotropic memory-like behavior in the direction of an applied field. It is also observed that particles tend to form small isotropic clusters in the absence of an external field. However, hydrodynamic interactions tend to disperse the particulate phase, avoiding the formation of clusters. This finding suggests that hydrodynamic interactions may play a relevant role on the magnetization dynamics of ferrofluids.
Keywords:Magnetic suspensions  Nonlinear dynamics  Ewald summation  Hydrodynamic interactions  Dipolar matter
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