使用小型和大型基于颗粒的3d打印机对钕铁硼/SmFeN尼龙粘结磁铁进行综合压缩成型的材料挤压

IF 4.2 Q2 ENGINEERING, MANUFACTURING
Kaustubh Mungale , Vipin Kumar , Mariappan Parans Paranthaman , Brian C. Sales , Harshida Parmar , Ikenna C. Nlebedim , Brittany Rodriguez , Uday Kumar Vaidya
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引用次数: 0

摘要

高密度粘结稀土磁体的制造采用颗粒喂料增材制造(AM)/材料挤压和集成增材制造-压缩成型(AM- cm)工艺。采用质量分数为93%(体积分数为65%)的钕铁硼-氮化铁钐(NdFeB-SmFeN/PA12)。报告了材料的力学性能(抗拉强度和模量)、磁性能(最大能量密度、矫顽力、剩余力)。制造参数,如层的高度,桶的温度,螺杆速度和龙门进料速度进行优化,以获得尽可能高的磁铁密度使用小型台式材料挤压打印机。然后利用大规模集成增材制造-压缩成型(AM-CM)通过减少材料挤压过程中常见的孔隙缺陷来增加磁体的密度。打印磁体的密度为5.2 g/cm3, BHmax为124.14 kJ/m3,抗拉强度为20 MPa,模量为2 GPa。AM-CM使化合物的密度提高了5.5% (5.49 g/cm3)。通过x射线断层扫描(XCT)证实孔隙度降低。材料的机械强度也有所提高,抗拉强度提高25% (25.09 MPa),抗拉模量提高275% (5.49 GPa)。扫描电镜显示,集成AM-CM工艺增加了颗粒-基质的粘附性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Material extrusion with integrated compression molding of NdFeB/SmFeN nylon bonded magnets using small- and large-scale pellet-based 3D-printers

Material extrusion with integrated compression molding of NdFeB/SmFeN nylon bonded magnets using small- and large-scale pellet-based 3D-printers
High-density bonded rare-earth magnets are manufactured using pellet-fed additive manufacturing (AM)/material extrusion and an integrated additive manufacturing-compression molding (AM-CM) process. Neodymium iron boron – samarium iron nitride in polyamide 12 (NdFeB-SmFeN/PA12) of 93 % weight fraction (65 % volume fraction) are used for the study. The mechanical properties (tensile strength and modulus), magnetic properties (maximum energy density, coercivity, remanence) are reported. Manufacturing parameters such as layer height, barrel temperatures, screw speed and gantry feed rate are optimized to obtain the highest possible density of the magnets using a small-scale desktop material extrusion printer. Large scale integrated additive manufacturing-compression molding (AM-CM) is then utilized to increase the density of the magnets by reducing porosity defects common in the material extrusion process. The density of as-printed magnets was 5.2 g/cm3 with a BHmax value of 124.14 kJ/m3, tensile strength of 20 MPa and a modulus of 2 GPa. AM-CM increased the density of the compound by 5.5 % (5.49 g/cm3). The reduction in porosity was confirmed using X-ray tomography (XCT). Improvement in mechanical strength of the material was also observed, with an increase in tensile strength of 25 % (25.09 MPa) and increase in tensile modulus of 275 % (5.49 GPa). Scanning electron microscopy showed increased particle-matrix adhesion with the integrated AM-CM process.
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来源期刊
Additive manufacturing letters
Additive manufacturing letters Materials Science (General), Industrial and Manufacturing Engineering, Mechanics of Materials
CiteScore
3.70
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