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首页> 外文期刊>Journal of Sound and Vibration >A systematic uncertainty analysis for liner impedance eduction technology
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A systematic uncertainty analysis for liner impedance eduction technology

机译:衬垫阻抗感应技术的系统不确定性分析

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The so-called impedance eduction technology is widely used for obtaining acoustic properties of liners used in aircraft engines. The measurement uncertainties for this technology are still not well understood though it is essential for data quality assessment and model validation. A systematic framework based on multivariate analysis is presented in this paper to provide 95 percent confidence interval uncertainty estimates in the process of impedance eduction. The analysis is made using a single mode straightforward method based on transmission coefficients involving the classic Ingard-Myers boundary condition. The multivariate technique makes it possible to obtain an uncertainty analysis for the possibly correlated real and imaginary parts of the complex quantities. The results show that the errors in impedance results at low frequency mainly depend on the variability of transmission coefficients, while the mean Mach number accuracy is the most important source of error at high frequencies. The effect of Mach numbers used in the wave dispersion equation and in the Ingard-Myers boundary condition has been separated for comparison of the outcome of impedance eduction. A local Mach number based on friction velocity is suggested as a way to reduce the inconsistencies found when estimating impedance using upstream and downstream acoustic excitation. Crown Copyright (C) 2015 Published by Elsevier Ltd. All rights reserved.
机译:所谓的阻抗减小技术被广泛用于获得用于飞机发动机的衬套的声学特性。尽管该技术对于数据质量评估和模型验证至关重要,但仍不确定其测量不确定性。本文提出了一种基于多元分析的系统框架,可在阻抗生成过程中提供95%的置信区间不确定性估计。使用基于涉及经典Ingard-Myers边界条件的透射系数的单模直接方法进行分析。多元技术使得有可能对复数的可能相关的实部和虚部进行不确定性分析。结果表明,低频阻抗结果的误差主要取决于传输系数的可变性,而平均马赫数精度是高频误差的最重要来源。已将波弥散方程和Ingard-Myers边界条件中使用的马赫数的影响分开,以比较阻抗产生的结果。建议使用基于摩擦速度的局部马赫数来减少使用上游和下游声激励估算阻抗时发现的不一致性。 Crown版权所有(C)2015,由Elsevier Ltd.发行。保留所有权利。

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