首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Deterioration in Fracture Toughness of 304LN Austenitic Stainless Steel Due to Sensitization
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Deterioration in Fracture Toughness of 304LN Austenitic Stainless Steel Due to Sensitization

机译:304LN奥氏体不锈钢由于致敏而导致的断裂韧性下降

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摘要

The aim of this report is to examine the influence of sensitization on the mechanical properties of AISI grade 304LN stainless steel with special emphasis on its fracture toughness. A series of stainless steel samples has been sensitized by holding at 1023 K for different time periods ranging from 1 to 100 hours followed by water quenching. The degree of sensitization (DOS) for each type of the varyingly heat-treated samples has been measured by an electrochemical potentiodynamic reactivation (EPR) test. The microstructures of these samples have been characterized by optical metallography, scanning electron microscopy, transmission electron microscopy (TEM), and X-ray diffraction (XRD) analyses, together with measurements of their hardness and tensile properties. The fracture toughness of the samples has been measured by the ball indentation (BI) technique and the results are validated by conducting conventional /-integral tests. It is revealed for the first time that the fracture toughness and ductility of AISI 304LN stainless steel deteriorate significantly with increased DOS, while the tensile strength (TS) values remain almost unaltered. The results have been critically discussed in terms of the depletion of solid solution strengtheners, the nature of the grain boundary precipitations, and the strain-induced martensite formation with the increasing DOS of the 304LN stainless steel.
机译:本报告的目的是研究敏化对AISI等级304LN不锈钢的机械性能的影响,并特别强调其断裂韧性。一系列不锈钢样品通过在1023 K下保持1到100小时的不同时间段进行敏化,然后进行水淬。每种类型的经过不同热处理的样品的敏化度(DOS)已通过电化学电位动力学再活化(EPR)测试进行了测量。这些样品的微观结构已通过光学金相,扫描电子显微镜,透射电子显微镜(TEM)和X射线衍射(XRD)分析进行了表征,并对其硬度和拉伸性能进行了测量。样品的断裂韧性已通过球压痕(BI)技术进行了测量,结果通过进行常规的/整体测试得到了验证。首次发现,随着DOS的增加,AISI 304LN不锈钢的断裂韧性和延展性显着降低,而拉伸强度(TS)值几乎保持不变。对于固溶强化剂的损耗,晶界沉淀的性质以及随着304LN不锈钢DOS的增加,应变诱发的马氏体形成的问题,已经进行了严格的讨论。

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