软磁材料的增材制造

Martin Vincent, Gillon Frédéric, Najjar Denis, Benabou Abdelkader, Witz Jean-François, Hecquet Michel, Quaegebeur Philippe
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引用次数: 2

摘要

增材制造技术以快速成型和实现各种形状的组件设计而闻名。如果用于3D打印机的材料最初主要是聚合物,那么现在它们开始变得更加复杂,以便允许使用复合原料进行金属和陶瓷3D打印。在这项工作中,我们的目标是增材制造磁性元件。介绍了采用长丝原料进行熔融沉积成型的工艺流程,并对部分生产的岩芯进行了磁性表征。第二种创新的印刷工艺使用颗粒基材料的印刷部分进行了研究。为了考虑软磁铁氧体,对打印对象进行了建模。首先计算环形电感的损耗,并考虑温度对磁导率的强烈影响。其次,研究磁导率随材料密度的变化规律。此后,通过3d打印实现的环形电感器的波动几何形状作为说明。为了验证密度对磁导率影响的建模结果,对磁性能进行了实验表征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Additive manufacturing for soft magnetic materials
Additive manufacturing technologies are known for fast prototyping and enabling a wide variety of shapes beneficial to the design of components. If materials used for 3D printers were first mainly polymers, nowadays they are beginning to become more complex in order to allow metal and ceramic 3D printing using composite feedstock. In this work, we aim at additively manufacturing magnetic component. The building process is presented by using filament feedstock for Fused Deposition Modeling process and part of the produced cores have been magnetically characterized. A second innovative printing process using a pellet-based material is investigated for the printing part. In order to consider soft magnetic ferrite, the modeling of the printed object has been carried out. First to calculate the losses in a toroidal inductor and take into account the strong impact of the temperature on the magnetic permeability. Second, to investigate the evolution of magnetic permeability in link with the material density. Thereafter an undulated geometry of a toroidal inductor that is enabled by 3d printing is presented as an illustration. Experimental characterization of the magnetic properties has been carried out to verify the modeling results concerning the impact of the density over permeability.
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