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Excellent Corrosion Resistance of Dual‐Phase Bimodal Stainless Steel

机译:双相双相不锈钢的优异耐腐蚀性

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>Bimodal microstructures in metals are attractive because they help in achieving high strength and good ductility simultaneously thereby circumventing the strength‐ductility paradox. However, there are few reports and limited understanding of the surface degradation behavior of bimodal alloys. Here, the authors report on the exceptional corrosion resistance of bimodal stainless steel developed using a simple single‐step processing route. The microstructure of bimodal steel comprises of fine martensite (≈200–400?nm) in a matrix of coarse austenitic grains (≈10?μm). The bimodal steel shows significantly lower corrosion rate of 0.001?mm/year in 3.5?wt% NaCl solution compared to 0.088?mm/year for commercially available SS316L stainless steel. The exceptional corrosion behavior of bimodal steel is attributed to favorable electronic properties of its passive layer. Formation of a depletion zone in the passive layer and higher chromium fraction limits the charge transport across metal‐oxide‐solution interface. The current microstructural design strategy is potentially transformative for developing high‐performance structural materials with superior corrosion resistance.
机译: <第XML:ID =“SRIN201800554-SEC-0001”> >金属中的双峰组织是有吸引力的,因为它们有助于同时实现高强度和良好的延展性,从而避免强度 - 延展性悖论。然而,少数报道和对双峰合金的表面降解行为有限的了解。在此,作者报告了使用简单的单步加工路线开发的双峰不锈钢的卓越耐腐蚀性。双峰钢的微观结构包括粗奥氏体晶粒基质中的精细马氏体(≈200-400≤nm)(≈10≤μm)。双峰钢显示出3.5℃/毫米/年的腐蚀速率显着较低,与市售SS316L不锈钢的0.088Ω/毫米/年。双峰钢的卓越腐蚀行为归因于其无源层的有利电子性质。在无源层和更高的铬部分中形成耗尽区限制了金属氧化物溶液界面的电荷输送。目前的微观结构设计策略是开发具有卓越耐腐蚀性的高性能结构材料的变革性。

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