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Isothermal and thermomechanical fatigue interaction in fatigue crack propagation behavior of a low-carbon nitrogen-controlled 316 stainless steel

机译:低碳氮控制的316不锈钢疲劳裂纹扩展行为中的等温和热机械疲劳相互作用

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In this work, the effect of superimposing of isothermal low cycle fatigue loading to the thermomechanical fatigue loading on the crack propagation behavior of the naturally initiated short crack in Low-carbon nitrogen-controlled 316 stainless steel was investigated. The experimental results indicated that the crack propagation path depends on the loading condition; the cracks appear to be initiated and propagated at grain boundary perpendicular to the loading axis which might be a relatively week region at elevated temperature under the in-phase type TMF loading and the LCF loading at high temperature, on the other hand, the cracks initiated and propagated by the transgranular mode under the out-of-phase type TMF loading and the LCF loading at middle temperature. The short crack growth rate has also affected the microstructure, i.e., the intergranular crack exhibits higher growth rate compared with the transgranular crack. In addition, the crack growth rate was accelerated by superimposing of the isothermal low cycle fatigue loading to the main thermo-mechanical fatigue loading. The short crack growth rate could be predicted according to summation law of crack growth behavior based on the J-integral approach considering with crack propagation path.
机译:在这项工作中,研究了在低碳氮控制的316不锈钢中,将等温低周疲劳载荷叠加到热机械疲劳载荷上对自然引发的短裂纹的裂纹扩展行为的影响。实验结果表明,裂纹扩展路径取决于载荷条件。裂纹似乎是在垂直于载荷轴的晶界处开始并扩展的,而在同相型TMF载荷和高温下的LCF载荷下,在高温下,裂纹可能是一个相对的周长区域,另一方面,裂纹开始了在中温下,在异相型TMF载荷和LCF载荷下,通过穿晶模式传播。短的裂纹生长速率也影响了显微组织,即,与跨晶裂纹相比,晶间裂纹表现出更高的生长速率。另外,通过将等温低周疲劳载荷叠加到主要的热机械疲劳载荷上,可以加快裂纹的扩展速度。考虑裂纹扩展路径,可以基于J积分法,根据裂纹扩展行为的总和规律,预测出裂纹的短裂纹增长率。

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