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首页> 外文期刊>Latin American Journal of Solids and Structures >A Stochastic Reliability Model for Application in a Multidisciplinary Optimization of a Low Pressure Turbine Blade Made of Titanium Aluminide
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A Stochastic Reliability Model for Application in a Multidisciplinary Optimization of a Low Pressure Turbine Blade Made of Titanium Aluminide

机译:用于铝化钛低压涡轮叶片多学科优化的随机可靠性模型

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Currently, there are a lot of research activities dealing with gamma titanium aluminide (?3-TiAl) alloys as new materials for low pressure turbine (LPT) blades. Even though the scatter in mechanical properties of such intermetallic alloys is more distinctive as in conventional metallic alloys, stochastic investigations on ?3 -TiAl alloys are very rare. For this reason, we analyzed the scatter in static and dynamic mechanical properties of the cast alloy Ti-48Al-2Cr-2Nb. It was found that this alloy shows a size effect in strength which is less pronounced than the size effect of brittle materials. A weakest-link approach is enhanced for describing a scalable size effect under multiaxial stress states and implemented in a post processing tool for reliability analysis of real components. The presented approach is a first applicable reliability model for semi-brittle materials. The developed reliability tool was integrated into a multidisciplinary optimization of the geometry of a LPT blade. Some processes of the optimization were distributed in a wide area network, so that specialized tools for each discipline could be employed. The optimization results show that it is possible to increase the aerodynamic efficiency and the structural mechanics reliability at the same time, while ensuring the blade can be manufactured in an investment casting process.
机译:当前,有许多研究活动涉及将γ-铝化钛(?3-TiAl)合金用作低压涡轮(LPT)叶片的新材料。尽管这种金属间合金的机械性能的散布与常规金属合金相比更具特色,但对α3-TiAl合金的随机研究却很少。因此,我们分析了铸造合金Ti-48Al-2Cr-2Nb在静态和动态力学性能中的分散性。发现该合金显示出强度上的尺寸效应,其不如脆性材料的尺寸效应明显。增强了最弱链接方法,以描述多轴应力状态下的可缩放大小效应,并在后处理工具中实现了对真实组件的可靠性分析。提出的方法是第一种适用于半脆性材料的可靠性模型。已开发的可靠性工具已集成到LPT叶片几何形状的多学科优化中。优化的某些过程分布在广域网中,因此可以使用针对每个学科的专用工具。优化结果表明,可以同时提高空气动力学效率和结构力学可靠性,同时确保叶片可以在精密铸造工艺中制造。

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