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Evolution of magnetic properties and crystallographic texture in electrical steel with large plastic deformation

机译:塑性变形大的电工钢的磁性能和晶体织构的演变

摘要

Deformation leads to a hardening of steel due to an increase in the density of dislocations and a reduction in their mobility, giving rise to a state of elevated residual stresses in the crystal lattice. In the microstructure, one observes an increase in the contribution of crystalline orientations which are unfavorable to the magnetization, as seen, for example, by a decrease in B(50), the magnetic flux density at a field of 50 A/cm. The present study was carried out with longitudinal strips of fully processed non-oriented (NO) electrical steel, with deformations up to 70% resulting from cold rolling in the longitudinal direction. With increasing plastic deformation, the value of B(50) gradually decreases until it reaches a minimum value, where it remains even for larger deformations. On the other hand, the coercive field H(c) continually increases. Magnetometry results and electron backscatter diffraction results are compared and discussed. (C) 2011 American Institute of Physics. [doi: 10.1063/1.3560895]
机译:由于位错密度的增加和其迁移率的降低,变形导致钢的硬化,从而导致晶格中残余应力升高的状态。在微观结构中,人们观察到不利于磁化的晶体取向的贡献增加,例如,通过降低B(50)(50 A / cm场的磁通密度)可以看出。本研究使用的是经过充分加工的无取向电工钢的纵向钢带,纵向冷轧导致的变形高达70%。随着塑性变形的增加,B(50)的值逐渐减小,直到达到最小值为止,即使较大的变形也保持不变。另一方面,矫顽场H(c)连续增加。比较并讨论了磁力计结果和电子背散射衍射结果。 (C)2011美国物理研究所。 [doi:10.1063 / 1.3560895]

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