材料科学
开裂
盘式制动器
微观结构
制动器
火车
断裂力学
复合材料
热的
裂缝闭合
马氏体
冶金
结构工程
工程类
物理
气象学
地图学
地理
作者
Jinnan Wang,Yunbo Chen,Lingli Zuo,Haiyan Zhao,Ninshu Ma
出处
期刊:Materials
[MDPI AG]
日期:2022-10-01
卷期号:15 (19): 6837-6837
被引量:11
摘要
Effective braking in high-speed trains is one of the major bottlenecks in expediting the technology and possibilities to improve speed. Although substantial progress has been made to increase operating speed, perhaps, thermal fatigue cracking in brake discs is a primary constraint so far. Thermal fatigue cracking is the major cause of brake disc failure in high-speed trains, especially trains with a speed of 350 km/h or above. In this study, new material composition is proposed for brake discs of high-speed trains. A comprehensive investigation is presented based on fatigue crack initiation and propagation, along with wear and micro-hardness characterization. Thermal fatigue tests at various thermal cycles between 20 ℃ and 700 ℃ were performed and the experimental results are compared with fatigue properties of a commercial brake disc material. An experimental trial revealed that thermal cracks normally initiate and propagate along the oxidized grain boundaries; nevertheless, crack propagation is restricted by the fine precipitates and lath structure of martensitic. Moreover, crack length at the initiation and propagation stage is predicted through crack growth rate and favorable grain size in the crack vicinity. Thermal fatigue life can be improved by dictating the microstructure and precipitate morphology of cast steel by tailoring the alloying composition.
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