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A Fatigue Life Model for Predicting Crack Nucleation at Inclusions in Ni-Based Superalloys

机译:一种疲劳寿命模型,用于预测Ni基超合金中夹杂物的裂缝成核

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摘要

Engineering alloys such as Ni-based alloys, Al-alloys, and steels often contain non-metallic inclusions in their microstructures. These inclusions, which include oxide particles, carbides, and intermetallic particles, are introduced during component manufacturing processes such as casting, powder-metallurgy, or additive manufacturing methods. The presence of inclusions in the microstructure can promote fatigue crack nucleation by competing against slipband nucleation and reduce fatigue life performance of an engineering component. While it has been reported in many occasions, the competition between fatigue crack nucleation at inclusions and slipbands is still not well understood. In this article, the conditions for the concurrent occurrence of fatigue crack nucleation at inclusions and slipbands are analyzed theoretically. The analysis indicates that there exists a critical inclusion size (diameter) below which there is no fatigue life debit due to crack initiation at inclusions and above which a transition from slip-induced to inclusion-induced crack nucleation occurs. The low-cycle fatigue life model is applied to Ni-based superalloys and the model predictions are compared against experimental data from the literature to assess the dependence of the critical inclusion size on the slip morphology, grain size of the matrix, and the shear modulus of the inclusion.
机译:工程合金,如Ni基合金,Al合金和钢通常含有它们的微观结构中的非金属夹杂物。包括氧化物颗粒,碳化物和金属间颗粒的这些夹杂物在组分制造方法中引入,例如浇铸,粉末冶金或添加剂制造方法。微观结构中夹杂物的存在可以通过竞争滑带成核来促进疲劳裂缝成核,并降低工程组分的疲劳寿命性能。虽然已经在许多场合报道的虽然,疲劳裂缝在夹杂物和滑移带内的竞争仍然无法理解。在本文中,理论上分析了在夹杂物和滑带处同时发生疲劳裂纹成核的条件。分析表明,下面存在临界夹杂物尺寸(直径),其由于夹杂物的裂纹引发而没有疲劳寿命借记,并且在其上述其发生从滑动诱导至夹杂物诱导的裂缝成核的转变发生。将低循环疲劳寿命模型应用于Ni的高温合金,并将模型预测与来自文献的实验数据进行比较,以评估临界夹杂度大小对矩阵的晶粒尺寸和剪切模量的依赖性包含。

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