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Dynamics of Magnetic Particles in a Magnetic Separation System Using the Finite Element Field Model and Level Set Method

机译:基于有限元场模型和能级集方法的磁选系统中磁粉动力学

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Magnetic particles have been being adopted in various areas, ranging from engineering to biomedical fields such as magnetorheological fluids, separation of magnetically tagged DNA, drug delivery and identification of biological species. The particles in a fluid domain can be controlled by an external magnetic field. The magnetized particles also interact between themselves, revealing interesting characteristics. Many theoretical and computational studies have been presented to analyze these characteristics. However, since most of them are based on the point-dipole model, the mutual interaction between the particles has not been taken into account with a high degree of accuracy. In this paper, we propose a new analysis method for particle interaction based on full magnetic field calculation. The particle system is modeled using the finite element method for magnetic field analysis. This is coupled with the level set method that can effectively capture moving geometry of ferromagnetic particles. Numerical results of two test problems of particle chaining and magnetic separation validate this approach for the system dynamics of magnetic particles.
机译:磁性颗粒已被广泛应用于各个领域,从工程到生物医学领域,例如磁流变液,磁性标记DNA的分离,药物递送和生物物种识别。流体域中的颗粒可以通过外部磁场控制。磁化粒子之间也相互作用,从而显示出有趣的特性。已经提出了许多理论和计算研究来分析这些特征。但是,由于它们大多数基于点偶极子模型,因此尚未高度准确地考虑粒子之间的相互作用。本文提出了一种基于全磁场计算的粒子相互作用分析新方法。使用有限元方法对粒子系统进行建模以进行磁场分析。这与可以有效捕获铁磁粒子运动几何体的水平集方法结合在一起。粒子链接和磁分离两个测试问题的数值结果验证了这种方法对磁性粒子的系统动力学的影响。

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