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Multiaxial Fatigue Life Prediction of GH4169 Alloy Based on the Critical Plane Method

机译:基于临界面法的GH4169合金多轴疲劳寿命预测

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摘要

The multiaxial fatigue life of GH4169 alloy was predicted based on the critical plane method. In this paper, a new critical plane-damage multiaxial fatigue parameter is proposed, in which the maximum shear strain is considered to be the main damage control parameter, and the correction parameter, including the normal stress and strain of the maximum shear strain plane, is defined as the second control parameter. The axis of principle strain rotates under non-proportional loading. Meanwhile, the mechanism of the variation of material microstructure and slip systems leads to an additional hardening phenomenon. The ratio of cyclic yield stress to static yield stress is used to represent cyclic strengthening capacity, and the influence of the phase difference and loading condition on the non-proportional reinforcement effect is considered. It is also proposed that different materials have different influences on the additional hardening phenomenon. Meanwhile, the model revision results in stress under asymmetrical loading. Experimental data of GH4169 alloy show that the proposed model can provide better prediction than the Smith–Watson–Topper (SWT) and Fatemi–Socie (FS) models.
机译:基于临界面法预测了GH4169合金的多轴疲劳寿命。本文提出了一种新的临界平面损伤多轴疲劳参数,其中最大剪切应变被认为是主要的损伤控制参数,修正参数包括最大剪切应变面的法向应力和应变,被定义为第二个控制参数。主应变轴在非比例载荷下旋转。同时,材料微观结构和滑移系统变化的机理导致额外的硬化现象。以循环屈服应力与静态屈服应力之比表示循环加固能力,并考虑了相差和加载条件对非比例配筋效应的影响。还提出了不同的材料对附加的硬化现象具有不同的影响。同时,模型修正导致非对称载荷下的应力。 GH4169合金的实验数据表明,与Smith-Watson-Topper(SWT)模型和Fatemi-Socie(FS)模型相比,该模型可以提供更好的预测。

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