通过熔融沉积建模制作的 3D 打印粘结磁体的微观结构和磁性能表征

M. Brunčko, A. Kneissl, L. Gorše, I. Anžel
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摘要

粘结磁铁是由聚合物基体和磁粉组成的复合材料,由钕铁硼合金通过快速凝固工艺制备而成。它们是通过双螺杆挤压机上的复合工艺合成的,因此可以使用注塑成型或通过熔融沉积建模法(FDM)进行三维打印,将粘结磁体制成形状复杂的成品。三维打印的主要优点是可以生产出传统制造技术无法制造的复杂几何形状的零件,而且小批量生产成本低。研究工作的目的是确定最佳加工参数,使三维打印的粘结磁体具有与注塑成型生产的磁体相似的特性。对低温断裂、传统机械制备和离子束抛光样品进行了粘结磁体微观结构的表征。通过立体显微镜、光学显微镜和扫描电子显微镜对粘结磁体的微观结构进行了分析。此外,还研究了三维打印参数对磁性能的影响。研究结果表明,通过优化打印层的厚度、打印速度和流速,可以获得所需的三维打印粘合磁体的磁性能。此外,研究还发现,材料制备方法的选择是正确表征微观结构的关键步骤。也就是说,不适当的样品制备会导致伪影,而这些伪影大多被误解为 3d 打印过程中意外造成的微观结构缺陷(气孔、裂缝、非附着层等)。
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Characterization of microstructure and magnetic properties of 3D printed bonded magnets made by fused deposition modeling
Bonded magnets are composite materials consisting of polymer matrix and magnetic powders, prepared by rapid solidification processes from Nd-Fe-B alloys. They are synthesised by the compounding process on a twin-screw extruder, whereby, the finished products of complex shapes can be made from bonded magnets using injection moulding or 3D printing by fused deposition modelling method (FDM). The main advantages of 3D printing are the possibility to produce parts with complex geometries that are not possible with traditional manufacturing techniques and low-cost production of small batches. The aim of the research work was to identify the optimum processing parameters, which would give 3D printed bonded magnets characteristics similar to those produced by injection moulding. The characterization of the microstructure of bonded magnets was made on cryo-fractured, conventionally mechanically prepared and ion beam polished samples. The microstructures of bonded magnets were analysed by stereo, optical and scanning electron microscopy. Additionally, the influence of the 3D printing parameters on the magnetic properties has been examined. The results of the research work have shown that desired magnetic properties of 3D printed bonded magnets can be obtained by optimizing the thickness of the printed layer, printing speed and flowrate. In addition, it was revealed that selection of the materialographic preparation method plays a crucial step for correct microstructural characterization. Namely, the impropriate sample preparation results in artifacts that are mostly misinterpreted as microstructural defects (pores, cracks, non-adherent layers, etc.) accidently caused during 3d printing.
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