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首页> 外文期刊>Engineering Fracture Mechanics >Mixed-mode, high-cycle fatigue-crack growth thresholds in Ti-6Al-4V II. quantification of crack-tip shielding
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Mixed-mode, high-cycle fatigue-crack growth thresholds in Ti-6Al-4V II. quantification of crack-tip shielding

机译:Ti-6Al-4V II中的混合模式,高循环疲劳裂纹扩展阈值。裂纹尖端屏蔽的量化

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摘要

The role of crack-tip shielding in influencing mixed-mode (mode I + II) fatigue-crack growth thresholds for large, through-thickness cracks in a Ti-6Al-4V turbine blade alloy is examined under high-cycle fatigue loading conditions, i.e., at a loading frequency of 1000Hz in ambient temperature air for load ratios (K{sub}(min)/K{sub}(max)) of R = 0.1-0.8. Techniques are developed to quantify crack-tip shielding with respect to both the mode I and mode II applied loading, enabling an estimation of the shielding-corrected, crack-driving forces actually experienced at the crack tip (ΔK{sub}(I,TH,eff and ΔK{sub}(II,TH,eff) or ΔG{sub}(TH,eff)). In Part I, it was shown that when the crack-driving force is characterized in terms of the range in strain-energy release rate, ΔG, which incorporates contributions from both the applied tensile and shear loading, the mixed-mode (I + II) fatigue-crack growth resistance increases monotonically with the ratio ΔK{sub}II/ΔK{sub}I. When the fatigue-crack growth thresholds are expressed in terms of the near-tip (shielding-corrected) crack-driving force, this increase in crack-growth resistance with increasing mode mixity is markedly reduced. Moreover, for all mode mixities investigated, the near-tip mixed-mode fatigue threshold is lower than the applied (global) value, with the effect being particularly pronounced under shear-dominant loading conditions. These observations illustrate the prominent role of crack-tip shielding for the mixed-mode loading of fatigue cracks with crack-wake dimensions large compared with microstructural size scales; specifically, they indicate that the elevation of the ΔG{sub}(TH) fatigue-crack growth threshold with increasing applied mode mixity is largely due to a shear-induced enhancement of crack-tip shielding.
机译:在高循环疲劳载荷条件下,研究了裂纹尖端屏蔽在影响Ti-6Al-4V涡轮叶片合金中大型,全厚度裂纹的混合模式(I + II)疲劳裂纹扩展阈值中的作用,也就是说,在环境温度为1000Hz的负载频率下,空气的负载比(K {sub}(min)/ K {sub}(max))为R = 0.1-0.8。已经开发出了针对模式I和模式II施加的载荷来量化裂纹尖端屏蔽的技术,从而能够估计在裂纹尖端实际经历的屏蔽校正的裂纹驱动力(ΔK{sub}(I,TH ,eff和ΔK{sub}(II,TH,eff)或ΔG{sub}(TH,eff))。在第一部分中,表明了当裂纹驱动力的特征在于应变范围时,能量释放速率ΔG结合了施加的拉伸载荷和剪切载荷,混合模式(I + II)的疲劳裂纹增长阻力随ΔK{sub} II /ΔK{sub} I的比值单调增加。疲劳裂纹扩展阈值用近端(经屏蔽校正)裂纹驱动力来表示,随着模式混合比的增加,这种抗裂纹扩展性的增加明显减小了。尖端混合模式疲劳阈值低于应用的(全局)值,这种影响尤其明显在剪切为主的载荷条件下标称。这些观察结果说明了裂纹尖端屏蔽在疲劳唤醒的混合模式载荷中的显着作用,与微观结构尺寸尺度相比,该疲劳唤醒尺寸较大。具体而言,他们表明随着施加模式混合度的增加,ΔG{sub}(TH)疲劳裂纹增长阈值的升高很大程度上是由于剪切引起的裂纹尖端屏蔽作用的增强。

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