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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Impact Toughness Properties of Nickel- and Manganese-Free High Nitrogen Austenitic Stainless Steels
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Impact Toughness Properties of Nickel- and Manganese-Free High Nitrogen Austenitic Stainless Steels

机译:不含镍和锰的高氮奥氏体不锈钢的冲击韧性

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摘要

A large amount of manganese (> 10 wt pct) in nickel-free high nitrogen austenitic stainless steels (Ni-free HNASSs) can induce toxicity. In order to develop Ni-free HNASSs with low or no manganese, it is necessary to investigate their mechanical properties for biomedical applications. This work aims to study the Charpy V-notch (CVN) impact toughness properties of a Ni- and Mn-free Fe-22.7Cr-2.4Mo-1.2N HNASS plate in the temperature range of 103 K to 423 K (-170 A degrees C to 150 A degrees C). The results show that unlike conventional AISI 316L austenitic stainless steel, the Ni- and Mn-free HNASS exhibits a sharp ductile-to-brittle transition (DBT). The intergranular brittle fracture associated with some plasticity and deformation bands is observed on the fracture surface at 298 K (25 A degrees C). Electron backscattered diffraction (EBSD) analysis of the impact-tested sample in the longitudinal direction indicates that deformation bands are parallel to {111} slip planes. By decreasing the temperature to 273 K, 263 K, and 103 K (0 A degrees C, -10 A degrees C, and -70 A degrees C), entirely intergranular brittle fracture occurs on the fracture surface. The fracture mode changes from brittle fracture to ductile as the temperature increases to 423 K (150 A degrees C). The decrease in impact toughness is discussed on the basis of temperature sensitivity of plastic flow and planarity of deformation mechanism.
机译:无镍高氮奥氏体不锈钢(无镍HNASS)中的大量锰(> 10 wt%)会引起毒性。为了开发低锰或无锰的无镍HNASS,有必要研究其在生物医学应用中的机械性能。这项工作旨在研究在103 K至423 K(-170 A)温度范围内的无镍和无锰Fe-22.7Cr-2.4Mo-1.2N HNASS板的夏比V型缺口(CVN)冲击韧性性能C至150 A C)。结果表明,与传统的AISI 316L奥氏体不锈钢不同,无镍和无锰的HNASS表现出急剧的延性-脆性转变(DBT)。在298 K(25 A摄氏度)的断口表面观察到与一些可塑性和变形带相关的晶间脆性断口。在纵向方向上对冲击测试的样品进行电子背散射衍射(EBSD)分析表明,变形带平行于{111}滑移面。通过将温度降低到273 K,263 K和103 K(0 A摄氏度,-10 A摄氏度和-70 A摄氏度),在断裂表面上会发生整个晶间脆性断裂。随着温度升高至423 K(150 A摄氏度),断裂模式从脆性断裂变为延性断裂。基于塑性流动的温度敏感性和变形机理的平面性,讨论了冲击韧性的降低。

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