A Novel Approach for Evaluating the Influence of Texture Intensities on the First Magnetization Curve and Hysteresis Loss in Fe–Si Alloys

Materials Pub Date : 2024-08-09 DOI:10.3390/ma17163969
D. Carosi, A. Morri, L. Ceschini, Alessandro Ferraiuolo
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Abstract

This paper examines the relationship between the magnetization behavior and crystal lattice orientations of Fe–Si alloys intended for magnetic applications. A novel approach is introduced to assess anisotropy of the magnetic losses and first magnetization curves. This method links the magnetocrystalline anisotropy energy of single crystal structures to the textures of polycrystalline materials through a vectorial space description of the crystal unit cell, incorporating vectors for external applied field and saturation magnetization. This study provides a preliminary understanding of how texture influences magnetic loss rates and the first magnetization curves. Experimental results from Electron Back-Scattered Diffraction (EBSD) and Single-Sheet Tests (SSTs), combined with energy considerations and mathematical modeling, reveal the following key findings: (i) a higher density of cubic texture components, whether aligned or rotated relative to the rolling direction, decreases magnetic anisotropy, suggesting that optimizing cubic texture can enhance material performance; (ii) at high magnetic fields, there is no straightforward correlation between energy losses and polarization; and (iii) magnetization rates significantly impact magnetization loss rates, highlighting the importance of considering these rates in optimizing Fe–Si sheet manufacturing processes. These findings offer valuable insights for improving the manufacturing and performance of Fe–Si sheets, emphasizing the need for further exploration of texture effects on magnetic behavior.
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评估纹理强度对铁硅合金第一磁化曲线和磁滞损耗影响的新方法
本文研究了用于磁性应用的铁硅合金的磁化行为与晶格取向之间的关系。本文引入了一种新方法来评估磁损耗和首次磁化曲线的各向异性。这种方法通过对晶体单元格的矢量空间描述,将单晶结构的磁晶各向异性能与多晶材料的纹理联系起来,并纳入了外加磁场和饱和磁化的矢量。这项研究提供了对纹理如何影响磁损耗率和第一磁化曲线的初步理解。电子背散射衍射(EBSD)和单片测试(SST)的实验结果,结合能量考虑和数学建模,揭示了以下主要发现:(i) 较高密度的立方纹理成分,无论是对齐还是相对于轧制方向旋转,都会降低磁各向异性,这表明优化立方纹理可以提高材料性能;(ii) 在高磁场下,能量损失和极化之间没有直接的相关性;以及 (iii) 磁化率对磁化损失率有显著影响,突出了在优化硅铁薄片制造工艺时考虑磁化率的重要性。这些发现为改善硅铁板的制造和性能提供了宝贵的见解,强调了进一步探索纹理对磁性行为影响的必要性。
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