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The Impact of Forging Residual Stress on Fatigue in Aluminum

机译:锻造压力对铝疲劳的影响

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Large aluminum forgings are seeing increased application in aerospace structures, particularly as an enabler for structural unitization. These applications, however, demand an improved understanding of the forging process induced bulk residual stresses and their impact on both design mechanical properties and structural performance. In recent years, significant advances in both computational and experimental methods have led to vastly improved characterization of residual stresses. As a result, new design approaches which require the extraction of residual stress effects from material property data and the formal inclusion of residual stresses in the design analysis, have been enabled. In particular, the impact of residual stresses on durability and damage tolerance can now be assessed, and more importantly, accounted for at the beginning of the design cycle. In an effort to support the development of this next-generation design capability, the AFRL sponsored Metals Affordability Initiative (MAI) consortium has conducted a detailed experimental and analytical study of fatigue crack initiation and fatigue crack growth in aluminum coupons with known, quench induced residual stresses. In this study, coupons were designed and manufactured such that simple 'design features,' such as holes and machined pockets, were installed in locations with varying levels of bulk residual stress. The residual stresses at the critical locations in the coupons were measured using multiple techniques and modeled using detailed finite element analysis. Fatigue crack initiation (FCI) and fatigue crack growth (FCG) tests were performed using both constant amplitude and spectrum loading and the results were compared against computed FCI and FCG lives.
机译:大型铝锻件看到航空航天结构中的应用增加,特别是作为结构单元化的推动力。然而,这些应用需要改进对锻造过程诱导散装残留应力的了解及其对设计机械性能和结构性能的影响。近年来,计算和实验方法的显着进展导致了大大提高了残留应力的表征。结果,已经启用了需要从材料性质数据提取残余应力效应的新设计方法以及在设计分析中进行残留应力的正式包含。特别是,现在可以评估残余应力对耐久性和损坏耐受性的影响,并且更重要的是,在设计周期开始时占据了。为了支持发展本一代设计能力的发展,AFRL赞助金属负担能力倡议(MAI)联盟已经进行了具有已知的铝试样的疲劳裂纹引发和疲劳裂纹生长的详细实验和分析研究,具有已知的,骤冷诱导的残留物压力。在这项研究中,设计和制造了优惠券,使得简单的“设计特征”如孔和机加工口袋,安装在具有不同水平的散装残余应力的位置。使用多种技术测量优惠券中关键位置处的残余应力,并使用详细的有限元分析进行建模。使用恒定幅度和光谱载荷进行疲劳裂纹引发(FCI)和疲劳裂纹生长(FCG)试验,并将结果与​​计算的FCI和FCG生命进行比较。

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