Mandal Shuvam, Kumar Manoj, Sengupta Pradyut, Panigrahi Ajit, Debata Mayadhar, Shamili Chandradas, Surendran Kuzhichalil Peethambharan, Manna Indranil, Basu Suddhasatwa
CSIR-Institute of Minerals and Materials Technology, Bhubaneswar 751013, India.
Academy of Scientific and Innovative Research (AcSIR), Ghaziabad 201002, India.
ACS Omega. 2024 Mar 20;9(13):15650-15662. doi: 10.1021/acsomega.4c00601. eCollection 2024 Apr 2.
The current study attempts to establish the interrelation between microstructure and magnetic properties induced during laser melting of the FeNi alloy. This study demonstrates the optimization of laser parameters for defect-free, uniform, and chemically homogeneous FeNi alloy synthesis. Mechanically alloyed FeNi (50-50 atom %) powders obtained after 12 and 24 h milling, with average particle sizes of 15 and 7 μm, were used as starting materials. It was found that the optimum range of laser power density for synthesis of dense and defect-free solids is between 1 and 1.4 J/mm. For laser melting under similar conditions, 12 h milled FeNi powder produces a larger grain (∼100 μm) with a preferred texture of (001), compared to 25 μm grain size in 24 h milled FeNi, with random texture. Smaller grain size is correlated with higher resistance to domain wall movement, resulting in higher coercivity and remanence in the laser-melted samples prepared from 24 h of milled powder. The presence of microtexture in laser-melted samples prepared from 12 h milled powder is related to a higher anisotropy.
当前的研究试图建立铁镍合金激光熔化过程中诱导产生的微观结构与磁性能之间的相互关系。本研究展示了用于无缺陷、均匀且化学性质均一的铁镍合金合成的激光参数优化。经过12小时和24小时球磨后获得的机械合金化铁镍(50 - 50原子%)粉末,平均粒径分别为15微米和7微米,用作起始材料。研究发现,用于合成致密且无缺陷固体的激光功率密度的最佳范围在1至1.4焦耳/平方毫米之间。在相似条件下进行激光熔化时,与24小时球磨的铁镍粉末中25微米的晶粒尺寸且具有随机织构相比,12小时球磨的铁镍粉末产生更大的晶粒(约100微米),具有(001)择优织构。较小的晶粒尺寸与更高的畴壁移动阻力相关,导致由24小时球磨粉末制备的激光熔化样品具有更高的矫顽力和剩磁。由12小时球磨粉末制备的激光熔化样品中微观织构的存在与更高的各向异性有关。