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A mechanism governing oxidation-assisted low-cycle fatigue of superalloys

机译:高温合金氧化辅助低周疲劳的机理

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摘要

A model capable of characterizing oxidation-assisted low-cycle fatigue is described. It involves the following steps. After a few strain cycles, because of creep, a tensile stress develops during the de-straining phase of the cycle. This stress opens cracks present in the material and exposes the surfaces to the atmosphere, causing thermally grown oxide (TGO) growth. Dilatation takes place upon converting the alloy to oxide, with an associated strain rate that induces a compressive growth stress. Thereafter, during the re-straining phase of the cycle, transverse extension of the substrate induces in-plane tension in the TGO, which "pushes" the TGO into the substrate along the crack front. Finite element simulations of this process have been presented that predict crack growth per cycle, da/dN, comparable with experimental measurements. Trends in da/dN with the TGO dilatation rate and the creep strength of the superalloy have been elucidated.
机译:描述了一种能够表征氧化辅助低周疲劳的模型。它涉及以下步骤。经过几个应变循环后,由于蠕变,在循环的去应变阶段会产生拉伸应力。这种应力会打开材料中存在的裂纹,并使表面暴露在大气中,导致热生长氧化物 (TGO) 生长。在将合金转化为氧化物时会发生膨胀,其相关的应变速率会引起压缩生长应力。此后,在循环的再应变阶段,基体的横向延伸在TGO中引起面内张力,从而将TGO沿裂纹前沿“推”入基体中。已经提出了该过程的有限元模拟,可预测每个周期的裂纹扩展,da/dN,与实验测量值相当。阐明了da/dN随TGO膨胀速率和高温合金蠕变强度的变化趋势。

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