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Improving the Magnetic Properties of Non-Oriented Electrical Steels by Secondary Recrystallization Using Dynamic Heating Conditions

机译:在动态加热条件下通过二次重结晶改善非取向电工钢的磁性能

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摘要

In the present work, we have used unconventional short-term secondary recrystallization heat treatment employing extraordinary high heating rate to develop coarse-grained microstructure with enhanced intensity of rotating cube texture {100}<011> in semi-finish vacuum degassed non-oriented electrical steels. The soft magnetic properties were improved through the increase of grains size with favourable cube crystallographic orientation. The appropriate final textural state of the treated experimental steels was achieved by strain-induced grain boundary migration mechanism, activated by gradient of accumulated stored deformation energy between neighbouring grains after the application of soft cold work, combined with steep temperature gradient during subsequent heat treatment under dynamic heating conditions. The materials in our experimentally prepared material states were mounted on the stator and rotor segments of electrical motors and examined for their efficiency in real operational conditions. Moreover, conventionally long-term heat treated materials, prepared in industrial conditions, were also tested for reference. The results show that the electrical motor containing the segments treated by our innovative approach, exhibits more than 1.2% higher efficiency, compared to the motor containing conventionally heat treated materials. The obtained efficiency enhancement can be directly related to the improved microstructural and textural characteristics of our unconventionally heat treated materials, specifically the homogenous coarse grained microstructure and the high intensity of cube and Goss crystallographic texture.
机译:在目前的工作中,我们使用了非常规的短期二次重结晶热处理,该热处理采用异常高的加热速率,以在半成品真空脱气无方向性电中发展出具有增强的旋转立方织构{100} <011>强度的粗晶粒组织。钢。通过增加具有有利的立方晶体学取向的晶粒尺寸来改善软磁性能。通过应变诱导的晶界迁移机制,通过在应用软冷加工后相邻晶粒之间累积的储存变形能的梯度激活,并在随后的热处理条件下陡峭的温度梯度相结合,激活了已处理实验钢的适当最终组织状态。动态加热条件。将经过实验准备的材料状态的材料安装在电动机的定子和转子段上,并在实际运行条件下检查其效率。此外,还测试了在工业条件下制备的常规长期热处理材料,以供参考。结果表明,与包含常规热处理材料的电动机相比,包含通过我们的创新方法处理过的扇形的电动机的效率高出1.2%以上。所获得的效率提高与我们非常规热处理材料的改善的微观结构和组织特性直接相关,特别是均质的粗粒组织和高强度的立方晶和高斯晶体学纹理。

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