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首页> 外文期刊>Journal of Materials Engineering and Performance >Evaluation of the Fracture Toughness of a SMSS Subjected to Common Heat Treatment Cycles in an Aggressive Environment
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Evaluation of the Fracture Toughness of a SMSS Subjected to Common Heat Treatment Cycles in an Aggressive Environment

机译:在侵蚀性环境中经受共同热处理周期的SMSS断裂韧性的评估

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Supermartensitic stainless steels (SMSS) are an alternative to corrosion-prone carbon steels and expensive duplex stainless steels in offshore tubing applications for the oil and gas industry. Due to their differentiated alloying, SMSS exhibit superior toughness, corrosion resistance, and weldability properties when compared with another viable option, conventional martensitic stainless steels. However, when cathodically protected in a seawater environment they can be susceptible to embrittlement due to hydrogen charging. In the present study, SMSS samples were removed from deep water pipelines and their fracture toughness in the as-received condition and with different heat treatments was evaluated. Tests were carried out in air and in harsh environmental and loading conditions, which were ensured by subjecting specimens to cathodic overprotection, simulating effects seen in structures with complex geometries, and to incremental step loads in a synthetic seawater environment, thus favoring hydrogen diffusion to the precrack tip. The fracture surfaces of the specimens were analyzed in order to identify hydrogen-induced embrittlement and fracture toughness values of specimens tested in air were compared to values obtained in environment-assisted experiments. The influence of microstructure was evaluated by control of the retained austenite and δ-ferrite contents of the specimens. The results show a significant drop in the fracture toughness of steel in the studied environment, with a fracture mode which is clearly more brittle and dependent on micro-structural characteristics of the samples.
机译:在石油和天然气行业的海上管道应用中,超马氏体不锈钢(SMSS)是易腐蚀碳钢和昂贵双相不锈钢的替代品。由于其独特的合金化,与另一种可行的选择-常规马氏体不锈钢相比,SMS具有优异的韧性,耐腐蚀性和可焊性。但是,当在海水环境中进行阴极保护时,由于充氢,它们可能会变脆。在本研究中,从深水管道中去除了SMSS样品,并评估了在接收状态和不同热处理条件下的断裂韧性。测试是在空气中以及在苛刻的环境和负载条件下进行的,通过对样本进行阴极过度保护,模拟在复杂几何结构中观察到的效果以及在合成海水环境中承受逐步增加的阶跃载荷,从而确保氢扩散到氢能中,可以确保进行测试。前裂纹尖端。分析样品的断裂表面以鉴定氢致脆性,并将在空气中测试的样品的断裂韧性值与在环境辅助实验中获得的值进行比较。通过控制样品的残余奥氏体和δ-铁素体含量来评估显微组织的影响。结果表明,在所研究的环境中,钢的断裂韧性显着下降,断裂模式明显更脆,并且取决于样品的微观结构特征。

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