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首页> 外文期刊>Journal of Thermoplastic Composite Materials >Predicting the Alignment of Ferromagnetic Particles in a Thermoplastic Matrix
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Predicting the Alignment of Ferromagnetic Particles in a Thermoplastic Matrix

机译:预测热塑性基体中铁磁颗粒的排列

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摘要

This study investigates the use of an external magnetic field to cause the magnetic and physical alignment of ferromagnetic particles in a thermoplastic polymer matrix. The composite selected provides the best alignment involving rare-earth ferromagnetic particles in a polystyrene matrix. The rare-earth particles are able to be effectively aligned due to their high magnetic and physical anisotropy. The time-to align the particles ranged from <5 s at 498 K to approximately 60 s at 398 K. Composites with weight percents ranging from 5 to 25% are studied. A model is developed in order to predict the alignment, and is validated against experimental data. This model predicts the time-to-align based on magnetic torque balancing that would cause alignment with the viscous drag that acts to slow the particle rotation. It is found that the model describing the polymer as a Newtonian fluid follows the same trends and form as the experimental data. Potential sources of differences that prevents close fit to the data are attributed to particle interactions, sample variations, and especially the shear thinning behavior of polystyrene.
机译:这项研究调查了使用外部磁场引起热塑性聚合物基体中铁磁颗粒的磁性和物理排列。所选的复合材料可提供最佳取向,其中涉及在聚苯乙烯基质中的稀土铁磁颗粒。稀土粒子由于其高的磁和物理各向异性而能够有效地排列。颗粒的排列时间从498 K下的<5 s到398 K下的约60 s。研究了重量百分比为5%至25%的复合材料。开发模型以预测对准,并针对实验数据进行验证。该模型基于磁转矩平衡来预测对准时间,该磁转矩平衡将导致与用来减慢粒子旋转的粘性阻力对准。发现将聚合物描述为牛顿流体的模型遵循与实验数据相同的趋势和形式。差异的潜在来源可能导致无法紧密拟合数据,这归因于颗粒相互作用,样品变化,尤其是聚苯乙烯的剪切稀化行为。

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