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A modal expansion analysis of noise transmission through circular cylindrical shell structures with blocking masses

机译:阻塞圆柱壳结构噪声传递的模态展开分析。

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摘要

This paper covers the development and application of a modal interaction analysis (MIA) to investigate the plane wave transmission characteristics of a circular cylindrical sandwich shell of the type used in the aerospace industry for satellite launch vehicles. The model is capable of handling many high order structural and acoustic modes, and can be used to investigate the sensitivity to different structural stiffness configurations, angles of incidence, damping and cavity absorption. The model has been developed to predict the structural response and transmitted noise when a number of discrete masses are applied to the shell. The study presented considers a set of cases where blocking masses, having a total weight equal to 8% of the cylinder weight, are attached to the cylinder. The simulations carried out show a substantial reduction of the sound transmission in many of the first 15 one-third octave frequency bands (frequency range 22.4-707 Hz). The blocking masses act on the shape of the cylinder normal modes and their orientations with respect to the plane of the incident wavenumber vector. In particular, the circumferential re-orientation reduces the coupling between the incident acoustic field and the structural modes of the cylinder. The modification of the structural mode shapes, both in axial and circumferential directions, also reduces the coupling between the cylinder modes and the acoustic modes of the interior. Simulations show the effect of the number of structural and acoustic modes included on the calculated frequency response, and indicate the number necessary for an accurate prediction of the resonant and non-resonant sound transmission through the structure. In particular, the effect of neglecting off-resonance acoustic and structural modes is investigated. It is shown that restricting the acoustic and structural modes to those having natural frequencies within an interval of +/- 40 and +/- 60 Hz, respectively, of the excitation frequency produces acceptably small errors in the transmission estimate. The simulations also show that in order to represent accurately the coupling effect between the structural and acoustic modes, for each acoustic mode of order m(a), n(a), p(a) (axial, circumferential and radial order, respectively), it is necessary to account only for the structural modes with n(s) = n(a) and m(s) = m(a) +/- alpha with alpha = 1, 3, 5,...,alpha (max). It is found that the time required to compute the sound transmission in a frequency range of 0-3123 Hz, using the minimum number of acoustic and structural modes required to compute an accurate response at each frequency, is 3% of that necessary for the computation of the full response using all the structural and acoustic modes with natural frequencies within the frequency range considered in the analysis. (C) 2001 Academic Press. [References: 28]
机译:本文涵盖了模态相互作用分析(MIA)的开发和应用,以研究航空航天工业中用于卫星运载火箭的圆柱型夹心圆柱壳的平面波传输特性。该模型能够处理许多高阶结构和声学模式,并可用于研究对不同结构刚度配置,入射角,阻尼和空腔吸收的敏感性。该模型已经开发出来,可以预测将大量离散质量应用于壳体时的结构响应和传递的噪声。提出的研究考虑了一组总质量等于钢瓶重量8%的阻塞质量附着在钢瓶上的情况。进行的模拟显示,在前15个三分之一八度音阶频段(频率范围22.4-707 Hz)中,许多频段的声音传输都大大降低了。阻塞质量作用于圆柱法线模式的形状及其相对于入射波数矢量平面的方向。特别地,周向重新定向减小了入射声场与汽缸的结构模式之间的耦合。在轴向和圆周方向上对结构模态形状的修改还减少了圆柱模与内部声学模之间的耦合。仿真显示了所包含的结构和声学模式的数量对计算出的频率响应的影响,并指出了准确预测通过结构传递的共振和非共振声音所需的数量。特别是,研究了忽略非共振声学和结构模式的影响。结果表明,将声学和结构模式分别限制为在激发频率的+/- 40和+/- 60 Hz间隔内具有固有频率的那些,会在传输估计中产生可接受的小误差。仿真还表明,为了精确表示结构模式和声学模式之间的耦合效应,对于阶m(a),n(a),p(a)(分别为轴向,周向和径向)的每个声学模式, ,仅需考虑n(s)= n(a)和m(s)= m(a)+/- alpha且alpha = 1,3,5,...,alpha(最高)。发现使用在每个频率下计算准确响应所需的最少声学和结构模式数量,在0-3123 Hz频率范围内计算声音传输所需的时间是计算所需时间的3%使用在分析中考虑的频率范围内的固有频率的所有结构和声学模式的完全响应。 (C)2001学术出版社。 [参考:28]

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