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| Low-Temperature Fatigue Crack Propagation Behavior of Bainitic Rail Steel |
LIU Rong, GAO Guhui( ), GUI Xiaolu, BAI Bingzhe |
| School of Mechanical, Electronic and Control Engineering, Beijing Jiaotong University, Beijing 100044, China |
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Cite this article:
LIU Rong, GAO Guhui, GUI Xiaolu, BAI Bingzhe. Low-Temperature Fatigue Crack Propagation Behavior of Bainitic Rail Steel. Acta Metall Sin, 2026, 62(9): 1541-1552.
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Abstract Bainitic rail steels have been extensively studied as a solution to the considerable fatigue and wear issues experienced with conventional pearlitic rails. With railway constructions in high-cold regions, the effect of low temperatures on the fatigue performance of railways has garnered considerable attention. Despite several studies on the room-temperature fatigue performance of high-strength steels, the effect of the microstructure, particularly retained austenite (RA), on the low-temperature fatigue crack growth behavior in bainitic rail steels remains unclear. This study examined the low-temperature fatigue crack propagation behavior of U20Mn2SiCrNiMo (U20Mn) bainitic rail steel subjected to hot rolling and air cooling. The microstructure of the bainitic rail steel was characterized employing SEM, TEM, EBSD, and XRD. The conventional mechanical properties and fatigue crack propagation rate (da / dN; where a is the crack length and N is the number of stress cycles) were determined at room temperature (20-25 oC) and -40 oC. The results demonstrated that the U20Mn bainitic rail steel was primarily composed of a granular bainite/martensite multiphase structure, with approximately 10% (volume fraction) RA. A decrease in the experimental temperature increased the tensile and yield strengths of the U20Mn rail steel; however, its impact toughness decreased. The da / dNvs stress intensity factor (ΔK) curves for U20Mn rail steel at room temperature and -40 oC indicated that the fatigue crack propagation rate reduced at low temperatures within the ΔK range of 8.0-18.0 MPa·m1/2. However, an examination of the fatigue fracture surface revealed a transition from ductile to brittle fractures at -40 oC. This indicates that the combined effects of the increased strength, decreased toughness, and changes in the stability of RA at low temperatures are the underlying factors responsible for the variation in the low-temperature fatigue crack propagation rate of bainitic rail steel.
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Received: 12 November 2024
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| Fund: National Key Research and Development Program of China(2021YFB3703500) |
Corresponding Authors:
GAO Guhui, professor, Tel: (010)51685495, E-mail: gaogh@bjtu.edu.cn
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