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Effect of welding processes on microstructural and mechanical properties of dissimilar weldments between conventional austenitic and high nitrogen austenitic stainless steels

机译:焊接工艺对常规奥氏体和高氮奥氏体不锈钢不同焊件的组织和力学性能的影响

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摘要

High nitrogen austenitic stainless steels are in great demand due to their outstanding combination of strength and ductility, excellent work-hardening capability and corrosion resistance at relatively cost-effective than conventional stainless steels. The replacement compatibility of most widely used conventional austenitic stainless steel (type 304) was investigated by employing dissimilar weldments with high nitrogen austenitic stainless steel (type 201) using scanning electron microscope coupled with EDS and X-ray diffraction techniques. Dissimilar weldments between conventional and high nitrogen stainless steel was prepared using gas tungsten arc welding and shielded metal arc welding processes. The weld defects and their integrity were investigated by radiographic analysis. The effect of welding speeds on microstructural characteristics and grain boundary precipitation was analyzed. The subsequent effect on mechanical properties was studied using tensile test and microhardness evaluation. The faster cooling rate associated with higher welding speed resulted in 5% increment in ultimate tensile strength for GTAW process and 9% for SMAW process respectively. (C) 2016 The Society of Manufacturing Engineers. Published by Elsevier Ltd. All rights reserved.
机译:高强度奥氏体不锈钢由于具有强度和延展性,出色的加工硬化能力和耐腐蚀性能的优异组合,因此比传统不锈钢具有相对较高的成本效益,因此需求量很大。通过采用扫描电子显微镜,EDS和X射线衍射技术,采用高氮奥氏体不锈钢(201型)的异种焊件,研究了最广泛使用的常规奥氏体不锈钢(304型)的替代相容性。使用气体钨极电弧焊和屏蔽金属电弧焊工艺制备了常规和高氮不锈钢之间的不同焊件。通过射线照相分析研究焊缝缺陷及其完整性。分析了焊接速度对显微组织和晶界析出的影响。使用拉伸试验和显微硬度评估研究了对机械性能的后续影响。更快的冷却速度和更高的焊接速度使GTAW工艺的极限抗拉强度提高了5%,而SMAW工艺的极限抗拉强度提高了9%。 (C)2016年制造工程师学会。由Elsevier Ltd.出版。保留所有权利。

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