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首页> 外文期刊>Journal of the Brazilian Chemical Society >Microstructure by Thermal Attack under Vacuum of a Superduplex Stainless Steels and Electrochemical Behavior in H2S/CO2-Saturated Synthetic Seawater
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Microstructure by Thermal Attack under Vacuum of a Superduplex Stainless Steels and Electrochemical Behavior in H2S/CO2-Saturated Synthetic Seawater

机译:超双相不锈钢在真空下的热侵袭引起的显微组织和在H2S / CO2饱和合成海水中的电化学行为

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摘要

Superduplex stainless steels (SSS) composed in both equal fraction ferritic-austenite phases, classically defined by ASTM A995M Gr.5A, in order to obtain a better relation of mechanical properties and corrosion properties, are applied as components for use in petrochemical industries in off-shore platforms. The corrosion resistance of stainless steels is due to the oxides formed on the surface, which is dependent on the temperature and environment in which they are exposed. This paper investigates a microstructure duplex during steps of thermal attack under vacuum at high temperatures through observation of the coloration and growth of oxide films. Some coloration was observed in the phases, austenite and ferrite, with the increase of the temperature to 1100 ?oC, which is indicative of the presence of chromium and iron oxides. In the cooling occurs the stability of oxides present in the films. Electrochemical tests were conducted in H2S/CO2-saturated in two different concentrations of chloride sodium electrolyte, simulating a seawater environment. Potentiodynamic polarization curves indicate that pitting corrosion resistance and repassivation process in media of 3.5 and 9.0% (wt.%) NaCl are not affected by the presence of H2S/CO2 (40/60 ppm) at room temperature (25 ?oC).
机译:为了获得更好的机械性能和腐蚀性能之间的关系,由ASTM A995M Gr.5A经典定义的等分铁素体-奥氏体两个相组成的超双相不锈钢(SSS)被用作石化工业中的组分。岸平台。不锈钢的耐腐蚀性归因于表面上形成的氧化物,这取决于其暴露于的温度和环境。本文通过观察氧化膜的着色和生长,研究了高温下真空热侵袭过程中的微观结构双相结构。随着温度升高到1100°C,在相,奥氏体和铁素体中观察到一些着色,这表明存在铬和氧化铁。在冷却中,存在于膜中的氧化物的稳定性。在以两种不同浓度的氯化钠电解质饱和的H2S / CO2中进行了电化学测试,模拟了海水环境。电位动力学极化曲线表明,在室温(25°C)下存在H2S / CO2(40/60 ppm)的情况下,在3.5%和9.0%(wt。%)NaCl介质中的耐点蚀性和再钝化过程不受影响。

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