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In situ SEM analysis for deformation mechanism of micro/nanostructured 304 stainless steel with high strength and good plasticity

机译:高强度良好塑性微/纳米结构304不锈钢变形机理的原位SEM分析

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Bulk micro/nanostructured 304 austenitic stainless-steel plates with bimodal grain size distributions were prepared by Alumina Thermite Reaction at various temperatures and extents of rolling deformation. Rolling cogging of the sheet was performed with a rolling reduction of 40% at 1000 degrees C followed by rolling reduction of 80% at 700 degrees C. The strength and plasticity of the resulting micro/nanostructured 304 stainless steels with bimodal grain size distribution achieved the best matching, with tensile strength, yield strength, and elongation of 1410 MPa, 723 MPa and 15.3%, respectively. To better understand the deformation mechanism of this micro/nanostructured stainless steel sample, an in situ scanning electron microscopy technique was adopted. The crack initiation, propagation, and fracture were dynamically observed and recorded during the tensile deformation. Our results revealed that a stress concentration near the preset notch served as the initiation source and that microcracks were formed in the grain boundaries between micro and nano-grains and then spread to the microcrystalline region until passing through the microcrystalline region or until passivation occurred in the microcrystalline region. The microcracks not only caused serious damage to the specimen but also generated back stress, which could lead to hardening of material, thereby enhancing the global ductility. Finally, the mechanism responsible for the enhanced plasticity and strength of the micro/nanostructured 304 stainless steel with a bimodal grain size distribution was analyzed and combined with the fracture morphology.
机译:散装微/纳米结构304具有双峰粒度分布的奥氏体不锈钢板是通过氧化铝热轧反应在各种温度和滚动变形的范围内制备的。在1000℃下轧制减少40%的轧制胶合,然后在700℃下滚动降低80%。所得的微/纳米结构304不锈钢的强度和可塑性具有双峰粒度分布的尺寸达到了最佳匹配,抗拉强度,屈服强度和1410MPa,723MPa和15.3%的伸长率。为了更好地理解这种微/纳米结构不锈钢样品的变形机理,采用了原位扫描电子显微镜技术。在拉伸变形期间动态地观察和记录裂纹引发,传播和裂缝。我们的结果表明,预设凹口附近的应力集中用作引发源,并且在微纳米颗粒之间的晶界中形成微裂纹,然后在微晶区域展开,直至通过微晶区域或直到钝化发生在钝化区域微晶区域。微裂纹不仅对样品造成严重损害而且产生了背部应力,这可能导致材料的硬化,从而提高全球延性。最后,对具有双峰粒度分布的微/纳米结构304不锈钢的增强塑性和强度负责的机制进行了分析,并与裂缝形态结合。

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