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Influence of microstructural changes on impact toughness of weldment and base metal of duplex stainless steel AISI 2205 for low temperature applications

机译:显微组织变化对低温应用双相不锈钢AISI 2205焊件和母材冲击韧性的影响

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Austenite(γ)reformation and microstructural changes are the major anxieties in duplex stainless steel welding and aging process. Insufficient stabilization of austenite phases and intermetallic formations due to unfavourable thermal cycle leads to drastic reduction in the ductility and toughness of duplex stainless steel in particularly at low temperature. In this work, an attempt has been made to analyze the microstructure in the DSS weld, heat affected zone and base metal with respect to their impact toughness. DSS weld joints were fabricated using gas tungsten arc welding process with controlled welding parameters. Ferrite austenite ratio in the weld zone, heat affected zone and base metal was assessed by quantitative metallographic image analysis. The impact test results were correlated with the fractured surface and the microstructure of the tested specimens. The effect of heat treatment on the microstructural changes in the weld and base metal were also investigated with respect to impact toughness. Austenite phases were nucleated in the high temperature heat affected zone during heat treatment of weldment at 1050°C for 1 hour and it leads to enhancement in the impact toughness of the DSS weldment. But, drastic reduction in the impact toughness was observed in the base metal after heat treatment at 850°C and 1050°C due to the formation of sigma phase at 850°C and the coarser ferrite and austenite grains and partially dissolved sigma phase in the microstructure of 1050°C heat treated samples.
机译:奥氏体(γ)重组和组织变化是双相不锈钢焊接和时效过程中的主要问题。由于不利的热循环,奥氏体相和金属间化合物形成的稳定性不足,导致双相不锈钢的塑性和韧性急剧降低,尤其是在低温下。在这项工作中,试图分析DSS焊缝、热影响区和母材中的微观结构及其冲击韧性。DSS焊接接头采用钨极气体保护焊工艺,焊接参数可控。通过定量金相图像分析,评估了焊缝区、热影响区和母材中的铁素体-奥氏体比率。冲击试验结果与试样的断裂表面和微观结构相关。此外,还研究了热处理对焊缝和母材微观结构变化的影响。焊接件在1050°C下热处理1小时时,奥氏体相在高温热影响区形核,从而提高DSS焊接件的冲击韧性。但是,在850°C和1050°C下热处理后,由于在850°C下形成sigma相,以及在1050°C热处理样品的微观结构中形成较粗的铁素体和奥氏体晶粒以及部分溶解的sigma相,母材的冲击韧性显著降低。

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