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Evaluation of a threshold-based model of fatigue in gamma titanium aluminide following impact damage.

机译:评估冲击破坏后基于阈值的γ-铝化钛疲劳模型。

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Recent interest in gamma titanium aluminide (γ-TiAl) for use in gas turbine engine applications has centered on the low density and good elevated temperature strength retention of γ-TiAl compared to current materials. However, the relatively low ductility and fracture toughness of γ-TiAl leads to serious concerns regarding its ability to resist impact damage. Furthermore, the limited fatigue crack growth resistance of γ-TiAl means that the potential for fatigue failures resulting from impact damage is real if a damage tolerant design approach is used. A threshold-based design approach may be required if fatigue crack growth from potential impact sites is to be avoided. The objective of the present research is to examine the feasibility of a threshold-based approach for the design of a γ-TiAl low-pressure turbine blade subjected to both assembly-related impact damage and foreign object damage.; Specimens of three different γ-TiAl alloys were damaged in such a way as to simulate anticipated impact damage for a turbine blade. Step-loading fatigue tests were conducted at both room temperature and 600°C. In terms of the assembly-related impact damage, the results indicate that there is reasonably good agreement between the threshold-based predictions of the fatigue strength of damaged specimens and the measured data. However, some discrepancies do exist. In the case of very lightly damaged specimens, prediction of the resulting fatigue strength requires that a very conservative small-crack fatigue threshold be used. Consequently, the allowable design conditions are significantly reduced. For severely damaged specimens, an analytical approach found that the potential effects of residual stresses may be related to the discrepancies observed between the threshold-based model and measured fatigue strength data.; In the case of foreign object damage, a good correlation was observed between impacts resulting in large cracks and a long-crack threshold-based approximation of the fatigue strength. However, in the case of smaller impact sites, a lower small-crack threshold appears to be more appropriate. In some cases, a complete perforation of the material, or blowout, would result from the impact. Prediction of the reduction in fatigue strength resulting from this form of damage required the use of a stress concentration factor, rather than a threshold-based prediction.
机译:与用于当前的材料相比,最近用于燃气涡轮发动机应用的γ-铝化钛(γ-TiAl)的兴趣集中在γ-TiAl的低密度和良好的高温强度保持性上。然而,γ-TiAl的较低的延展性和断裂韧性导致对其抗冲击破坏能力的严重关注。此外,γ-TiAl的有限的抗疲劳裂纹扩展性意味着,如果使用耐损伤设计方法,则由于冲击损伤而导致疲劳破坏的可能性是真实的。如果要避免潜在冲击点引起的疲劳裂纹增长,则可能需要基于阈值的设计方法。本研究的目的是研究基于阈值的方法设计γ-TiAl低压涡轮叶片的可行性,该叶片同时受到与组装有关的冲击损伤和异物损伤。三种不同的γ-TiAl合金的样品被损坏,以模拟涡轮叶片的预期冲击损伤。在室温和600°C下均进行了阶跃载荷疲劳测试。就与组装相关的冲击损伤而言,结果表明,基于阈值的损伤试样疲劳强度预测值与测量数据之间有相当好的一致性。但是,确实存在一些差异。对于非常轻微损坏的样品,要预测最终的疲劳强度,需要使用非常保守的小裂纹疲劳阈值。因此,可允许的设计条件大大降低。对于严重损坏的试样,一种分析方法发现,残余应力的潜在影响可能与基于阈值的模型与测量的疲劳强度数据之间观察到的差异有关。在异物损坏的情况下,观察到导致大裂纹的冲击与疲劳强度的基于长裂纹阈值的近似之间的良好相关性。但是,对于较小的冲击点,较低的小裂纹阈值似乎更合适。在某些情况下,冲击会导致材料完全穿孔或爆裂。对这种形式的损坏导致的疲劳强度降低的预测需要使用应力集中系数,而不是基于阈值的预测。

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