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The Mechanism of Creep during Crack Propagation of a Superalloy under Fatigue–Creep–Environment Interactions

机译:疲劳 - 蠕变环境相互作用下高温合金裂纹传播过程中的蠕变机理

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摘要

In this study, we examine the mechanism of fatigue-crack propagation in 718Plus superalloy at 704 °C under fatigue–creep–environment interactions, in this case, a new turbine disc material used in aero-engines at high temperatures. The effect of creep on the fatigue-crack propagation of the superalloy at high temperature was also researched. There was an unusual inhibitory effect on the propagation of fatigue cracks in 718Plus alloy, in which the propagation rate of fatigue cracks decreased with the increase of creep time through exploration of dwell-fatigue-crack growth (DFCG) test with different creep times. In particular, under lower stress intensity factor range (ΔK) conditions, the fatigue-crack growth rate with a 90 s hold-time was one order of magnitude lower than that with a 5 s hold-time. Conversely, the gap between the two DFCGs gradually decreased with the increase of ΔK and the creep effect became less apparent. The mechanism of crack propagation in 718Plus alloy under two creep conditions was investigated from a viewpoint of the microstructure, oxidation rate at high temperature and crack path morphology under different conditions.
机译:在这项研究中,在疲劳 - 蠕变环境相互作用下,在718pluly高温合金中检查疲劳 - 裂纹繁殖的机理,在这种情况下,在高温下使用的空气发动机中使用的新涡轮机盘材料。还研究了蠕变对高温下高温合金的疲劳裂纹繁殖的影响。在718Plus合金中对疲劳裂缝的繁殖造成不寻常的抑制作用,其中疲劳裂缝的传播速率随着肝脏裂纹裂纹(DFCG)试验的蠕变时间的增加而降低了不同的蠕变时间。特别地,在低应力强度因子范围(ΔK)条件下,具有90秒的疲劳裂纹的生长速率比具有5秒的保持时间低一种数量级。相反,随着ΔK的增加,两个DFCG之间的间隙逐渐降低,并且蠕变效应变得不那么明显。从微观结构的观点出发,研究了在两个蠕变条件下的718plus合金中的裂纹繁殖机理,在不同条件下的高温和裂纹路径形态的氧化率。

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