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The influence of hydrodynamic effects on the complex susceptibility response of magnetic fluids undergoing oscillatory fields: New insights for magnetic hyperthermia

机译:流体动力学效应对振动场磁流体复杂敏感性响应的影响:磁热疗新见解

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In this work, we perform Langevin dynamics simulations to examine microstructure-macroscopic related properties of magnetic fluids in an attempt to understand the influence of the long range viscous hydrodynamic and dipolar interparticle interactions on the complex susceptibility response of a magnetic suspension undergoing an oscillatory magnetic field. The simulations use periodic boundary conditions in order to properly compute particle interactions through the Ewald summation technique. The imaginary part of the complex susceptibility predicted by the simulations is presented in terms of the frequency, particle volume fraction, and Peclet number. This property is used to investigate the process of magnetic hyperthermia. A detailed comparison between our simulations and the prediction of an asymptotic theory for a small Peclet number in the absence of hydrodynamic interactions shows an excellent agreement. The influence of the hydrodynamic and dipolar interactions on the average rate of temperature rise is investigated here. The coupling between the particle relaxation time and the forcing frequency of the applied field is also discussed. The simulations exhibit inhomogeneous chainlike structures in the numerical box induced by interparticle dipolar interactions. We find that the presence of these structures enhances magnetic heating production, whereas hydrodynamic interactions weaken this effect. Our results also suggest that the way of combining and controlling physical parameters at moderate frequencies of the applied oscillatory field can improve the heating performance of magnetic hyperthermia. Published under license by AIP Publishing.
机译:在这项工作中,我们执行Langevin Dynamics模拟以检查磁流体的微观结构 - 宏观相关性能,以了解长距离粘性流体动力学和偶极颗粒间相互作用对振荡磁场的磁悬浮液复合敏感性响应的影响。模拟使用周期性边界条件,以便通过Ewald求和技术正确计算粒子相互作用。通过模拟预测的复杂易感性的虚构部分以频率,粒度分数和PECLET编号呈现。该属性用于研究磁体热疗的过程。在没有流体动力学相互作用的情况下,我们的模拟与渐近理论的渐近理论的预测的详细比较显示了良好的一致性。这里研究了流体动力学和偶极相互作用对平均温度升高速率的影响。还讨论了颗粒松弛时间与所施加的场的矫正频率之间的耦合。模拟在颗粒间偶极相互作用诱导的数值框中表现出非均匀的链条结构。我们发现这些结构的存在增强了磁热量产生,而流体动力学相互作用削弱了这种效果。我们的结果还表明,在施加振荡场的中等频率下组合和控制物理参数的方式可以提高磁体热热的加热性能。通过AIP发布在许可证下发布。

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    《Physics of fluids》 |2020年第1期|共17页
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  • 正文语种 eng
  • 中图分类 流体力学;
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