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Effect of wheel speed on magnetic and mechanical properties of melt spun Fe-6.5 wt.% Si high silicon steel

机译:车轮速度对熔融纺丝Fe-6.5的磁性和力学性能的影响。%Si高硅钢

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Fe-Si electric steel is the most widely used soft magnetic material in electric machines and transformers. Increasing the silicon content from 3.2 wt.% to 6.5 wt.% brings about large improvement in the magnetic and electrical properties. However, 6.5 wt.% silicon steel is inherited with brittleness owing to the formation of B2 and D0sub3/sub ordered phase. To obtain ductility in Fe-6.5wt.% silicon steel, the ordered phase has to be bypassed with methods like rapid cooling. In present paper, the effect of cooling rate on magnetic and mechanical properties of Fe-6.5wt.% silicon steel is studied by tuning the wheel speed during melt spinning process. The cooling rate significantly alters the ordering and microstructure, and thus the mechanical and magnetic properties. X-ray diffraction data shows that D0sub3/sub ordering was fully suppressed at high wheel speeds but starts to nucleate at 10m/s and below, which correlates with the increase of Young’s modulus towards low wheel speeds as tested by nanoindentation. The grain sizes of the ribbons on the wheel side decrease with increasing wheel speeds, ranging from ~100 μm at 1m/s to ~8 μm at 30m/s, which lead to changes in coercivity.
机译:Fe-Si电动钢是电机和变压器中使用的最广泛使用的软磁材料。将硅含量从3.2重量%增加。%至6.5重量%。%在磁性和电气性质中产生大的改善。然而,由于B2和D0 3 有序相,以6.5重量%的硅钢被脆性继承。为了获得Fe-6.5wt的延展性。%硅钢,有序相必须用快速冷却等方法绕过。本文采用了冷却速率对Fe-6.5wt的磁性和力学性能的影响。通过在熔融纺丝过程中调整车轮速度来研究%硅钢。冷却速率显着改变了订购和微观结构,从而改变了机械和磁性。 X射线衍射数据表明,在高轮速度下完全抑制D0 3 排序,但在10m / s及以下开始核心,这与杨氏模量的增加与由此测试的低轮速度的增加相关纳米intentation。在车轮侧上的晶粒尺寸随着车轮速度的增加而减小,从〜100μm以1m / s为100μm,30m / s,导致矫顽力的变化。

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