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首页> 外文期刊>International Journal of Fatigue >Collective evolution of surface microcrack for compacted graphite iron under thermal fatigue with variable amplitude
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Collective evolution of surface microcrack for compacted graphite iron under thermal fatigue with variable amplitude

机译:变幅热疲劳下压实石墨铁表面微裂纹的集体演化

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With the growing demand of good performance and high reliability of the heated components, the cracking failure caused by the complex thermal loading of variable amplitude has become a crucial problem. The collective evolution of surface microcrack for compacted graphite iron under thermal fatigue with variable amplitude is studied in this paper, which is induced by pulsed laser. The thermal microcrack is analyzed with statistic method and fractal method systematically. The result shows that, the secondary microcrack is the primary crack pattern, and the number of main microcrack is the least. As the test goes on, the fractal dimension increases following the Hill's function. Furthermore, the effect of maximum temperature T-max and superimposed number N-HCP on the crack evolution is investigated. T-max in the heating stage mainly affects the number of main microcrack. With the increase of plastic strain amplitude, the fractal dimension increases exponentially, and gradually tends to be the critical fractal dimension D-o of 1.395. The superimposed number N-HCP in the high-cycle stage mainly affects the number of secondary microcrack. The fractal dimension increases exponentially with the increase of N-HCP, and tends to be the critical fractal dimension D-o of 1.404. The analysis of the collective behavior of surface microcrack is helpful for evaluating the damage degree and predicting the lifetime, which can be applied to other materials working under thermal loading of variable amplitude.
机译:随着对加热部件的良好性能和高可靠性的日益增长的需求,由可变振幅的复杂热载荷引起的破裂失败已成为关键问题。研究了脉冲激光诱导的变幅热疲劳下压实石墨铁表面微裂纹的集体演化。用统计方法和分形方法对热微裂纹进行了系统的分析。结果表明,次生微裂纹为主要裂纹形式,主微裂纹数量最少。随着测试的进行,分形维数随希尔函数的增加而增加。此外,研究了最高温度T-max和叠加数N-HCP对裂纹发展的影响。加热阶段的T-max主要影响主微裂纹的数量。随着塑性应变幅度的增加,分形维数呈指数增长,并逐渐趋向于1.395的临界分形维数D-o。高循环阶段的叠加数N-HCP主要影响二次微裂纹的数量。分形维数随N-HCP的增加呈指数增长,并趋向于1.404的临界分形维数D-o。对表面微裂纹集体行为的分析有助于评估损伤程度和预测寿命,可将其应用于在振幅可变的热载荷下工作的其他材料。

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