Enhancing the SCC Resistance of the Anchor Steel with Microalloying in a Simulated Mine Environment

材料科学 冶金 极限抗拉强度 腐蚀 应力腐蚀开裂 氢脆 微观结构 合金 脆化 微合金钢 电化学 奥氏体 电极 物理化学 化学
作者
Hailong Du,Na An,Xiyan Wang,Yongliang Li,Zhiyong Liu,Aibing Jin,Renshu Yang,Yue Pan,Xiaogang Li
出处
期刊:Materials [MDPI AG]
卷期号:16 (17): 5965-5965 被引量:2
标识
DOI:10.3390/ma16175965
摘要

This work explored a new idea for enhancing the resistance to stress corrosion cracking (SCC) of mining anchor steel through microalloying. Microalloyed anchor steels with Nb, Cu, Ni, Sb, and C were prepared through vacuum smelting and hot rolling. Electrochemical measurements, slow strain rate tensile (SSRT) tests, and fracture morphology observations were used to study the electrochemical and SCC behavior in the simulated mine environment. The results proved that the microstructure of microalloyed steels varies slightly. Adding Ni, Cu, and Sb can improve the mechanical properties of the anchor steel, while reducing C content decreases tensile strength as a result of loss of the solution-strengthening effect. The addition of Sb, Cu, Ni, and reducing the content of C enhances the resistance to corrosion and SCC by mitigating anodic dissolution (AD), while adding Nb improves SCC resistance by inhibiting hydrogen embrittlement (HE). The combined addition of 1% Ni, 0.5% Cu, 0.05% Nb, 0.1% Sb, and 0.5% C presented the highest SCC resistance, which is a promising prospect for the development of high-performance, low-alloy anchor steels. The combined addition of 1% Ni, 0.5% Cu, 0.05% Nb, and 0.1% Sb resulted in the inhibition of electrochemical reactions and corrosion. As a result of the synergistic effect of the microalloy, both AD and HE mechanisms were simultaneously inhibited, which greatly enhanced SCC resistance.
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