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Correlation of structural-acoustic testing and finite element analysis of aircraft cabin noise control designs

机译:机舱噪声控制设计的结构声学测试与有限元分析的相关性

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When developing airplane cabin noise control, it is a challenge to represent the in-flight environment within a laboratory setting. But the performance of noise reducing damping systems for aircraft primary structure is sensitive to both temperature and in-flight static pressure loading. The complexity of these systems merits a joint test and analysis approach, to gain a better understanding of the combined environment physics that affect viscoelastic damping treatment design. The uniqueness of the current work is in pushing the experimental capability to curved, rib-stiffened test articles that exhibit the desired structural-dynamic behavior. The combined thermal and pressure environmental test requires advancements in test methods, control systems, and hardware. Advancements in data analysis, including the processing of damping loss factors over arrays of frequency, pressure, and temperature, are also required. The experimental results are augmented with numerical analysis to translate to airplane-level performance. Finite Element Methods (FEM) are used for validation of the stress, non-linear displacements, modal dynamics, and system loss factors of the test articles. The Finite Element (FE) models are used to account for the finite test panel and the influence of boundary conditions. The objective is to understand the complex behavior of noise control damping systems in a representative flight environment and translate this understanding into specifications and compliance test methods for the commercialization of lighter, more effective noise control treatments.
机译:在开发飞机机舱噪声控制时,要在实验室环境中呈现飞行中的环境是一个挑战。但是,用于飞机主结构的降噪阻尼系统的性能对温度和飞行中的静压力负荷均敏感。这些系统的复杂性值得采用联合测试和分析方法,以更好地了解影响粘弹性阻尼处理设计的组合环境物理。当前工作的独特之处在于将实验能力推向展现出所需结构动力学行为的弯曲,肋骨加硬的测试物品。热压环境综合测试需要测试方法,控制系统和硬件方面的进步。还需要数据分析方面的进步,包括在频率,压力和温度阵列上处理阻尼损耗因子。通过数值分析来增强实验结果,以转化为飞机级性能。有限元方法(FEM)用于验证测试物品的应力,非线性位移,模态动力学和系统损耗因子。有限元(FE)模型用于说明有限的测试面板和边界条件的影响。目的是了解噪声控制阻尼系统在典型飞行环境中的复杂行为,并将这种理解转化为规格和一致性测试方法,以实现更轻,更有效的噪声控制治疗的商业化。

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