Probabilistic Micromechanical Fatigue Model for High Temperature Materials

R. Tryon
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Abstract

The paper discusses an enhanced analytical modeling approach to characterize and understand fatigue crack initiation and growth in gas turbine engine intermetallics. It is recognized that the design of components subjected to fatigue cannot be based on average material behavior but that designs must consider −3σ or some other appropriate extreme value material properties. Thus, a life prediction capability useful in a design application must address the scatter inherent in material response to fatigue. The paper addresses the scatter in fatigue life of gamma titanium aluminide by investigating the microstructural variables responsible for the scatter and developing analytical and semi-analytical models to quantitatively relate the variables to the response. The model is general and considers the entire range of damage accumulation sequences; from crack nucleation of the initially unflawed structure to final fast fracture. However, the model also allows failure to be defined as any subset of damage accumulation i.e., crack initiation life to a particular crack size or the number of cycles to grow a crack from a particular size to final fracture. The models allows the structural engineer to systematically and quantitatively assess the influence of the material uncertainties on the overall reliability of the structure.
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高温材料的概率微机械疲劳模型
本文讨论了一种改进的分析建模方法来表征和理解燃气涡轮发动机金属间化合物的疲劳裂纹萌生和扩展。人们认识到,构件的疲劳设计不能基于材料的平均性能,而必须考虑- 3σ或其他一些适当的极值材料性能。因此,在设计应用中有用的寿命预测能力必须解决材料对疲劳响应中固有的散射。本文通过研究造成散射的微观组织变量,并建立了定量地将这些变量与响应联系起来的分析和半分析模型,来解决γ铝化钛疲劳寿命中的散射问题。该模型具有通用性,考虑了损伤累积序列的全范围;从最初无缺陷组织的裂纹形核到最终的快速断裂。然而,该模型也允许将失效定义为损伤积累的任何子集,即裂纹起裂寿命到特定裂纹尺寸或裂纹从特定尺寸扩展到最终断裂的循环次数。这些模型使结构工程师能够系统和定量地评估材料不确定性对结构整体可靠性的影响。
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