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APPLICATION OF REDUCED-ORDER AERODYNAMIC MODELING TO THE ANALYSIS OF STRUCTURAL UNCERTAINTY IN BLADED DISKS

机译:减少空气动力学建模在叶片磁盘中结构不确定性分析中的应用

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Blade-to-blade variations can significantly impact the operation of bladed disks. In this paper, a method is presented for assessing the effects of these variations using a high-fidelity aerodynamic analysis. Systematic model reduction is applied to a high-order computational fluid dynamics code using the proper orthogonal decomposition technique. This results in a low-order model suitable for time domain computations of mistuning effects. The model is shown to capture the dynamics of the aeroe-lastic system more accurately than with a traditional influence coefficient approach. Results are presented for a bladed disk with structural uncertainty, where the blade frequencies exhibit random variations about a nominal state. Finally, the concept of a robust design is explored, in which intentional variation is introduced to the system in an attempt to alleviate the ill-effects of random variations. The approach can also be extended to consider aerodynamic uncertainty, which may arise from geometric variations.
机译:刀片到叶片变化可以显着影响叶片的操作。在本文中,提出了一种用于评估这些变化使用高保真空气动力学分析的效果的方法。使用适当的正交分解技术将系统模型减少应用于高阶计算流体动力学码。这导致适合于时域计算的低阶模型。该模型被示出比以传统的影响系数方法更准确地捕获航空级系统的动态。结果用于具有结构不确定性的叶片盘,其中刀片频率表现出关于标称状态的随机变化。最后,探索了强大的设计的概念,其中将有意变化引入系统,以试图缓解随机变化的不起作用。该方法也可以扩展以考虑空气动力学不确定性,这可能来自几何变化。

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