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A Structural Dynamic Model Inversion-Based Technique to Characterize Impacts to a Full-Scale and Operational Helicopter Rotor Blade

机译:基于结构动力学模型反演的技术来表征对全尺寸和作战直升机旋翼的影响

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摘要

The incorporation of real-time structural health monitoring has the potential to substantially reduce the inspection burden of advanced composite rotor blades, particularly if impacts can be detected and characterized using operational data. Data-driven impact identification techniques, such as those applied in this work, require that a structural dynamic model of blade frequency response functions (FRFs) be developed for the operational environment. However, the operational characteristics of the rotor system are not accurately described by a model developed and validated in a nonrotating environment. The discrepancies are predominately due to two sources: the change in the blade root boundary condition and the presence of a centrifugal force. This research demonstrates an analytical methodology to compensate for the first of these effects. Derivations of this method are included, as well as analytical and experimental results. Additionally, the theory and experimental results are presented for an approach by which planar impact area and impactor stiffness may be estimated. Applying these techniques, impact location estimation accuracy was improved from 51.6% to 94.2%. Impacts produced by objects of 2-in. diameter were demonstrated to be distinguishable from those of 1 in. or less diameter. Finally, it was demonstrated that the impacts by objects of metallic material were distinguishable from those of rubber material, and that such differentiation was robust to impactor size and impact force magnitude.
机译:结合实时结构健康状况监视有可能显着减少高级复合材料转子叶片的检查负担,特别是如果可以使用运行数据检测和表征撞击的情况下。数据驱动的影响识别技术(例如在这项工作中应用的技术)要求为运行环境开发叶片频率响应函数(FRF)的结构动态模型。但是,在非旋转环境中开发和验证的模型无法准确描述转子系统的运行特性。差异主要是由于两个原因:叶片根部边界条件的变化和离心力的存在。这项研究表明了一种分析方法可以弥补这些影响中的第一个。包括该方法的派生以及分析和实验结果。此外,提供了一种方法和方法的理论和实验结果,通过该方法可以估计平面冲击面积和冲击器刚度。应用这些技术,影响位置估计的准确性从51.6%提高到94.2%。 2英寸物体产生的冲击。直径与1英寸或更小直径区分开来。最后,证明了金属材料物体与橡胶材料物体的影响是可以区分的,并且这种区分对于冲击器的尺寸和冲击力的大小是稳健的。

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