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首页> 外文期刊>Materials Characterization >Improvement on room-temperature ductility of 6.5 wt.% Si steel by stress-relief annealing treatments after warm rolling
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Improvement on room-temperature ductility of 6.5 wt.% Si steel by stress-relief annealing treatments after warm rolling

机译:通过热轧后的去应力退火处理改善6.5 wt%Si钢的室温延展性

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In our previous work, we demonstrated that thin sheets of 6.5 wt.% Si steel could be fabricated by cold rolling with deformation induced disordering (DID). However, because the warm rolled sheets possessed high hardness, edge cracks were still formed in the cold rolled sheets. Therefore, hardness of warm rolled sheets needed to be decreased to further improve the ductility at room temperature. In the present work, disordered 6.5 wt.% Si sheets with the thickness of 0.35 mm were fabricated by strip casting, hot rolling and warm rolling. Stress-relief annealing treatments were carried out at temperatures from 300 degrees C to 550 degrees C, and influences of annealing temperatures on the ductility of warm rolled sheets were investigated. It had been observed that the room-temperature bending properties experienced "over-hill" changes, although dislocation densities in the annealed specimens were indeed decreased with the increase of annealing temperatures. The specimen annealed at 350 degrees C exhibited the lowest macro Vickers hardness and highest fracture deflection among all specimens, with a certain amount of dimples having been observed on the fracture surfaces after bending. Ordered domains could be observed when the annealing temperature was higher than 400 degrees C, and they grew with the increase of annealing temperatures. The integrated effect of decrease in dislocation density and suppression of re-ordering was realized at 350 degrees C, which was believed to be responsible for the highest room-temperature ductility, the best surface quality, and the least edge cracking for the cold rolled sheets. (C) 2016 Elsevier Inc. All rights reserved.
机译:在我们以前的工作中,我们证明了可以通过冷轧制造具有变形诱导无序(DID)的6.5 wt。%Si钢薄板。但是,由于热轧板具有高硬度,因此在冷轧板中仍然形成边缘裂纹。因此,需要降低热轧板的硬度以进一步提高室温下的延展性。在本工作中,通过带钢铸造,热轧和热轧制造了厚度为0.35mm的无序6.5%(重量)的硅片。在300℃至550℃的温度下进行了应力消除退火处理,并且研究了退火温度对热轧板的延展性的影响。已经观察到,尽管随着退火温度的升高,退火样品中的位错密度确实降低了,但室温弯曲性能却经历了“过山坡”变化。在所有样品中,在350℃下退火的样品表现出最低的宏观维氏硬度和最高的断裂挠度,弯曲后在断裂表面上观察到一定数量的凹痕。当退火温度高于400℃时,可以观察到有序畴,并且它们随着退火温度的升高而增长。位错密度降低和抑制再排序的综合效果是在350摄氏度下实现的,这被认为是冷轧板的最高室温延展性,最佳表面质量和最小的边缘开裂的原因。 。 (C)2016 Elsevier Inc.保留所有权利。

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