Effect of process parameters on the texture evolution of Fe-6.5 wt% Si soft magnetic alloys manufactured via laser powder bed fusion

  • Lee, Hansol
  • Choi,Youngsin
  • Ahn, Jonghyuk
  • Lee, Kwiyoung
  • Kim, Yerim
  • ... Kim,Jongryoul
  • 외 2명
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초록

Numerous attempts have been made to manufacture high-Si steels using a laser powder bed fusion process. It has been established that controlling texture is critical to enhancing their magnetic properties. In this study, a comprehensive analysis was conducted to ascertain the texture evolution in Fe-Si alloys under various laser powers (P) and scanning speeds (V). The analysis revealed that texture formation in the fusion process is primarily influenced by two factors: P/V, the line energy density, and P/V, associated with enthalpy. Both the melt-pool sizes and the threshold value for the transition in melting mode were effectively characterized by the P/V term, while the P/V term proved essential for texture development under the same melting mode. In keyhole mode, an increase in P/V led to a transition from the {001}<100> to the {111}<1−10> texture. In conduction mode, an increase in P/V led to a transition from the {001}<100> to the {001}<110> texture, along with the development of a strong θ-fiber texture at intermediate P/V values. Furthermore, by examining the mechanisms behind the development of these textures, potential conditions for the development of a strong Goss texture were identified. Finally, significant improvements in magnetic properties were achieved through texture optimization. © 2024 Elsevier B.V.

키워드

Energy densityFe-SiLaser powder bed fusionMagnetic propertiesMicrostructureTextureCRYSTALLOGRAPHIC TEXTUREENERGY DENSITYSTEELMICROSTRUCTURE
제목
Effect of process parameters on the texture evolution of Fe-6.5 wt% Si soft magnetic alloys manufactured via laser powder bed fusion
저자
Lee, HansolChoi,YoungsinAhn, JonghyukLee, KwiyoungKim, YerimChoi, JoonphilLee,HaksungKim,Jongryoul
DOI
10.1016/j.jmatprotec.2024.118521
발행일
2024-10
유형
Article
저널명
Journal of Materials Processing Technology
331
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1 ~ 12