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Effect of Microstructure on The Corrosion Resistance of Duplex Stainless Steels: Materials Performance Maps.

机译:显微组织对双相不锈钢耐蚀性的影响:材料性能图。

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Although duplex stainless steels are extensively used in oil and gas production due to their excellent combination of mechanical properties and corrosion resistance, they are susceptible to precipitation of deleterious phases during heat treatment and manufacturing operations. Deleterious phases affect both localized corrosion resistance and mechanical properties. Even though current international standards such as ISO 21457, NORSOK M-001 and NORSOK M-630 treat most 25Cr duplex stainless steel (SDSS) grades as equivalent, debate still exists as to whether alloying elements such as tungsten accelerate or retard the formation of detrimental phases. Understanding the effect of alloying elements on phase transformation kinetics can help streamline fabrication by optimizing, for example, welding procedures. In this work, the effect of W on the precipitation kinetics of a 25% Cr SDSS, namely, UNS S32760 was quantified by constructing Time-Temperature-Transformation (TTT) diagrams. The effect of tertiary phases on localized corrosion resistance was investigated as a function of volume fraction and type of precipitate, with a focus on a- and x- phase formation. The critical pitting temperature (CPT) of the various metallurgical stages was determined by monitoring open circuit potentials during immersion in 6 wt% ferric chloride (FeCb). Materials performance maps (MPM) were developed by combining TTT diagrams with CPT. Given that MPM provide information about phase transformation kinetics and corrosion resistance simultaneously, TTT-CPT diagrams could become an indispensable materials selection tool that could be incorporated as parts of international materials selection standards.
机译:尽管双相不锈钢由于其机械性能和耐腐蚀性的极佳组合而广泛用于油气生产,但它们在热处理和制造过程中易受有害相沉淀的影响。有害相会影响局部耐腐蚀性和机械性能。尽管当前的国际标准(例如ISO 21457,NORSOK M-001和NORSOK M-630)将大多数25Cr双相不锈钢(SDSS)等级视为等同,但仍存在关于诸如钨这样的合金元素是加速还是阻碍有害成分形成的争论。阶段。了解合金元素对相变动力学的影响可以通过优化(例如)焊接程序来帮助简化制造过程。在这项工作中,通过构建时间-温度-转变(TTT)图,量化了W对25%Cr SDSS(即UNS S32760)的沉淀动力学的影响。研究了第三相对局部耐腐蚀性能的影响,该影响是体积分数和沉淀物类型的函数,重点是α相和x相的形成。通过监控浸入6 wt%氯化铁(FeCb)期间的开路电势来确定各个冶金阶段的临界点蚀温度(CPT)。通过将TTT图和CPT相结合来开发材料性能图(MPM)。鉴于MPM同时提供了有关相变动力学和耐蚀性的信息,因此TTT-CPT图可以成为必不可少的材料选择工具,并且可以作为国际材料选择标准的一部分。

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