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微观结构和喷丸处理对AISI F55-UNS S32760超级双相不锈钢耐腐蚀性的影响

Influence of Microstructure and Shot Peening Treatment on Corrosion Resistance of AISI F55-UNS S32760 Super Duplex Stainless Steel.

作者信息

Ciuffini Andrea Francesco, Barella Silvia, Peral Martínez Luis Borja, Mapelli Carlo, Fernández Pariente Inés

机构信息

Dipartimento di Meccanica, Politecnico di Milano, via La Masa 34, 20156 Milano, Italy.

Escuela Politécnica de Ingeniería de Gijón, Universidad de Oviedo, Campus de Viesques, Gijón 33203, Spain.

出版信息

Materials (Basel). 2018 Jun 19;11(6):1038. doi: 10.3390/ma11061038.

Abstract

Shot peening is a surface process commonly used in the aeronautic and automotive industries to improve fatigue resistance. Shot peening is proven to be beneficial in the fatigue behavior of components, but rarely has its influence on wear and pitting corrosion resistance been evaluated. In this work, shot peening was performed on AISI F55-UNS S32760 super-duplex stainless steel samples previously submitted to various thermal treatments, to obtain different initial microstructures and properties. Samples have been characterized in terms of microstructure morphology, local chemical composition, microhardness of each constituent phase, and energy dissipation modes. The enhanced properties provided by shot peening has been evaluated through residual stress depth profiles and Full Width at Half Maximum (FWHM) using X-ray diffraction (XRD), surface hardness, surface roughness, and corrosion resistance through salt spray fog tests. The 1400 °C solution thermal treatment was identified as the optimum initial condition, which maximizes the advantages of the shot peening treatment, even pitting corrosion resistance. These results are related to the uniformity of austenite and ferrite in terms of microstructure morphology, micromechanical properties, and alloying elements distribution.

摘要

喷丸强化是一种常用于航空航天和汽车工业以提高疲劳抗力的表面处理工艺。喷丸强化已被证明对部件的疲劳性能有益,但很少评估其对耐磨和抗点蚀性能的影响。在这项工作中,对先前经过各种热处理的AISI F55-UNS S32760超级双相不锈钢样品进行喷丸强化,以获得不同的初始微观结构和性能。已对样品的微观结构形态、局部化学成分、各组成相的显微硬度以及能量耗散模式进行了表征。通过使用X射线衍射(XRD)的残余应力深度分布和半高宽(FWHM)、表面硬度、表面粗糙度以及通过盐雾试验的耐腐蚀性,评估了喷丸强化所提供的增强性能。1400℃固溶热处理被确定为最佳初始条件,它能使喷丸强化处理的优势最大化,甚至包括抗点蚀性能。这些结果与奥氏体和铁素体在微观结构形态、微观力学性能和合金元素分布方面的均匀性有关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8ca3/6025024/25be65667e9a/materials-11-01038-g001.jpg

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