Effect of surface modification on corrosion fatigue fracture behavior and mechanisms of Q235 steel

材料科学 腐蚀 喷丸 腐蚀疲劳 表面改性 冶金 疲劳极限 喷丸 残余应力 激光喷丸 断裂(地质) 固体力学 微观结构 复合材料 延展性(地球科学) 材料的强化机理 碳化物 结构材料 抗压强度 曲面(拓扑) 电子背散射衍射
作者
Feiyang Tao,Zhifeng Yan,Shubang Wang,Xiuli He,Weiye Li
出处
期刊:Journal of materials research and technology [Elsevier BV]
卷期号:42: 933-946
标识
DOI:10.1016/j.jmrt.2026.03.134
摘要

To significantly enhance the service reliability of electric power connection fittings in coastal and other corrosive environments, this study systematically investigates the effects of shot peening (SP) and ultrasonic surface rolling process (USRP) on the corrosion fatigue behavior of Q235 steel. The results show that in a 3.5 wt.% NaCl solution, the corrosion fatigue limit of the as-received Q235 steel decreased by approximately 37.50% compared to that in air, while after SP and USRP treatments, the corrosion fatigue limits increased by 7.50% and 12.50%, respectively. Surface performance analysis revealed that SP and USRP introduced gradient nanostructured layers with depths of about 213.61 μm and 373.81 μm, respectively, and generated near-surface compressive residual stresses of approximately -170.47 MPa and -306.91 MPa. The core innovation of this study lies in conducting a systematic comparative investigation of the corrosion fatigue behavior of SP and USRP-treated Q235 steel within the same corrosive medium, quantitatively revealing the competitive mechanisms by which these two distinct surface modifications inhibit Cl - -induced crack initiation and propagation. Comprehensive analysis indicates that USRP outperforms SP in delaying pit initiation and fatigue crack growth due to its ability to form a deeper gradient structure, higher surface compressive stress, and superior surface smoothness. This research elucidates the micro-mechanisms through which different surface strengthening technologies influence corrosion fatigue performance, providing direct theoretical basis and data support for selecting and optimizing surface protection processes for electric power connection fittings and other critical steel components in harsh corrosive environments.

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