The Effect of Hydrogen on Failure of Complex Phase Steel under Different Multiaxial Stress States

氢脆 材料科学 成形性 极限抗拉强度 冶金 压力(语言学) 金属薄板 脆化 应变率 拉伸试验 复合材料 双相钢 微观结构 化学 腐蚀 马氏体 语言学 有机化学 哲学
作者
Fabien Ebling,Silke Klitschke,Ken Wackermann,Johannes Preußner
出处
期刊:Metals [MDPI AG]
卷期号:12 (10): 1705-1705 被引量:2
标识
DOI:10.3390/met12101705
摘要

The demand for advanced high-strength steel (AHSS) in the automotive industry has increased over the last few years. Nevertheless, it is known that AHSSs are susceptible to hydrogen embrittlement. Therefore, the influence of hydrogen on the localization and damage behavior of a CP1000 steel sheet was investigated in this work. The sheet metal was electrochemically charged to a hydrogen content of about 3 ppm (by weight). Tensile tests were performed at different nominal strain rates between 0.00004 s−1 and 0.01 s−1 to investigate the effects of strain rates on their susceptibility to hydrogen embrittlement. Nakajima tests were utilized to investigate the hydrogen effects on the steel’s formability under different stress states. Three different Nakajima specimen geometries were employed to represent a uniaxial stress state, a nearly plane strain stress state, and an equibiaxial stress state. Further, forming limits were evaluated with the standardized section line method. Hydrogen embrittlement, during tensile testing, occurred independent of the strain rate, unlike the Nakajima test results, which showed hydrogen effects that were strongly dependent on the stress state.

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