Microstructural effects on fatigue crack initiation mechanisms in a near-alpha titanium alloy

材料科学 晶间腐蚀 晶界 钛合金 穿晶断裂 打滑(空气动力学) 合金 冶金 吕德斯乐队 裂缝闭合 体积分数 晶间断裂 复合材料 断裂力学 微观结构 物理 热力学
作者
Conghui Liu,Xu Xu,Tianzhu Sun,Rhys Thomas,João Quinta da Fonseca,Michael Preuß
出处
期刊:Acta Materialia [Elsevier BV]
卷期号:253: 118957-118957 被引量:43
标识
DOI:10.1016/j.actamat.2023.118957
摘要

The role of different microstructural constituents on crack initiation in two-phase titanium alloys is still an area of great controversy. The present study investigates the effects of primary α volume fraction and concomitant macrozones on two different fatigue crack initiation modes concurrently observed in a near-α titanium alloy. Statistically representative regions were monitored in quasi-in-situ studies by interrupting fatigue testing to detect slip trace formation leading to crack initiation. In addition, high-resolution 2D strain maps were generated to quantify in-plane shear strains of slip traces related to microstructural features. The detailed analysis demonstrates that at 90% of the proof stress basal 〈a〉 slip plays a crucial role in crack initiation, regardless of whether cracking is transgranular or intergranular. In addition, a distinct shift from transgranular to intergranular crack initiation was observed with increasing αp fraction driven by the increased number of αp/αp grain boundaries. The high-resolution 2D strain mapping suggest that these intergranular cracks initiated from a burst of basal 〈a〉 slip starting from (0001) twist grain boundaries but penetrating one side of the grain pair in case of a partial (0001) twist grain boundary. From these observations, a new criterion for intergranular cracking is proposed based on a geometrical grain boundary parameter and the preference of neighbouring αp grain pair well aligned for basal 〈a〉 slip. It was found that while (0001) twist grain boundaries increase with increasing αp fraction, macrozones do not further enhance their frequency. However, macrozones of hard orientated grains did enhance transgranular crack formation by potentially higher local stress and increasing slip length over clustered αp grains with low misorientation reducing the requirement for out-of-plane shear.
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