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Effects of microstructure on room temperature fatigue crack initiation and short crack propagation in Udimet 720Li Ni-base superalloy

机译:Udimet 720Li镍基高温合金组织对室温疲劳裂纹萌生和短裂纹扩展的影响

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摘要

An assessment of the effects of microstructure on room temperature fatigue crack initiation and short crack propagation in a Ni-base superalloy is presented. The assessment was carried out on microstructural variants of U720Li, including as-received U720Li, U720Li-LG (large grain variant) and U720Li-LP (large intragranular coherent ?? variant). Fatigue tests were carried out at room temperature using a 20Hz sinusoidal cycling waveform on plain bend bars. Tests were conducted in 3-point bend under load control with an R-ratio of 0.1. A maximum load of 95% ?y was used in all tests. Room temperature fatigue crack initiation was noted to occur due to slip band cracking and from porosity on or just beneath the surface in all materials. Crack propagation was noted to be highly faceted (due to planar slip band cracking) immediately after crack initiation followed by a transition to a flatter Stage II type crack path as crack length increases. U720Li-LP was noted to show the longest fatigue lifetime, followed by U720Li-LG while U720Li shows the shortest life. The longer lifetime of U720Li-LP was linked to a higher resistance to both fatigue crack initiation and short crack propagation. U720Li and U720Li-LG show approximately similar crack initiation resistance although U720Li-LG showed slightly improved short crack growth resistance. The observations have been rationalised in terms of the microstructural characteristics of the materials, and it is believed that larger grain size, larger coherent ?? precipitate size and higher volume fractions of both coherent and primary ?? precipitates will improve overall fatigue lifetimes in PM Ni-base alloys which exhibit planar slip characteristics at room temperature.
机译:提出了一种微观结构对镍基高温合金中室温疲劳裂纹萌生和短裂纹扩展的影响的评估。评估是对U720Li的微观结构变体进行的,包括按原样接受的U720Li,U720Li-LG(大晶粒变体)和U720Li-LP(大颗粒内相干Δε变体)。疲劳测试是在室温下使用20Hz正弦循环波形在普通弯杆上进行的。测试在负载控制下的三点弯曲下进行,R比率为0.1。在所有测试中,最大负载为95%?y。注意到室温疲劳裂纹萌生的发生是由于滑带裂纹以及所有材料表面上或表面下方的孔隙所致。注意到裂纹产生后立即出现高度扩展的裂纹扩展(由于平面滑移带裂纹),随后随着裂纹长度的增加,过渡到平坦的Stage II型裂纹路径。 U720Li-LP的疲劳寿命最长,其次是U720Li-LG,而U720Li的使用寿命最短。 U720Li-LP的较长使用寿命与更高的抗疲劳裂纹萌生性和较短的裂纹扩展能力有关。尽管U720Li-LG表现出略微改善的抗短裂纹扩展性,但U720Li和U720Li-LG表现出近似相似的抗裂纹起始性。根据材料的微观结构特征对观察进行了合理化,据信较大的晶粒尺寸,较大的相干强度Δε。相干和初生相的析出物尺寸和较高的体积分数析出物将改善PM Ni基合金的整体疲劳寿命,这些合金在室温下表现出平面滑移特性。

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    Pang, H.T.; Reed, P.A.S.;

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  • 年度 2008
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  • 正文语种 {"code":"en","name":"English","id":9}
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