Microstructure Evolution and Mechanical Properties of AISI 430 Ferritic Stainless Steel Strengthened through Laser Carburization

IF 1.5 4区 材料科学 Q3 ENGINEERING, MECHANICAL Journal of Engineering Materials and Technology-transactions of The Asme Pub Date : 2022-07-18 DOI:10.1115/1.4055025
Zhige Wang, J. Dirrenberger, P. Lapouge, S. Dubent, Hamza A. Jabir, V. Michel
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Abstract

Carburization assisted by laser processing is a promising method to strengthen metallic materials. Direct laser beam carburization is implemented for the first time on thin AISI 430 ferritic stainless steel sheets with graphite coating under different conditions. Microstructural morphology, phase constitution, carbon content, microhardness and tensile behavior are investigated to evaluate laser carburization effect. The carburized zone presents different morphologies according to linear energy density of laser beam. The least carbon content is around 0.4 wt% in the carburized zone where austenite becomes the leading phase. Delta ferrite is found in cellular carburized area, which resembles to a duplex microstructure. Hardness of carburized zone has been at least increased by 130%. And the yield strength and ultimate tensile strength of a fully carburized sample can be increased up by respectively 90% and 85 %. This hardening effect is driven by the precipitation of carbides formed during solidification offering pinning points for dislocations and grain boundaries. These improvements could be useful to modify locally ferritic stainless steel to meet industrial needs such as wear-resistant surface.
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激光渗碳强化AISI 430铁素体不锈钢的组织演变与力学性能
激光辅助渗碳是一种很有前途的强化金属材料的方法。首次在不同条件下对具有石墨涂层的AISI 430铁素体不锈钢薄板进行了直接激光束渗碳。研究了激光渗碳的微观组织形态、相组成、碳含量、显微硬度和拉伸行为,以评价激光渗碳效果。根据激光束的线性能量密度,渗碳区呈现出不同的形貌。在奥氏体成为主导相的渗碳区中,最低碳含量约为0.4wt%。δ铁素体存在于蜂窝状渗碳区,类似于双相组织。渗碳区的硬度至少提高了130%。全渗碳试样的屈服强度和极限抗拉强度分别提高了90%和85%。这种硬化效应是由凝固过程中形成的碳化物沉淀驱动的,这些碳化物为位错和晶界提供了钉扎点。这些改进可能有助于对局部铁素体不锈钢进行改性,以满足工业需求,如耐磨表面。
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来源期刊
CiteScore
3.00
自引率
0.00%
发文量
30
审稿时长
4.5 months
期刊介绍: Multiscale characterization, modeling, and experiments; High-temperature creep, fatigue, and fracture; Elastic-plastic behavior; Environmental effects on material response, constitutive relations, materials processing, and microstructure mechanical property relationships
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