MOE Key Laboratory for Strength and Vibration, School of Aerospace, Xi'an Jiaotong University, Xi'an Shaanxi 710049, People's Republic of China.
J Acoust Soc Am. 2011 Apr;129(4):1919-34. doi: 10.1121/1.3531947.
The transmission loss of sound through infinite orthogonally rib-stiffened double-panel structures having cavity-filling fibrous sound absorptive materials is theoretically investigated. The propagation of sound across the fibrous material is characterized using an equivalent fluid model, and the motions of the rib-stiffeners are described by including all possible vibrations, i.e., flexural displacements, bending, and torsional rotations. The effects of fluid-structure coupling are account for by enforcing velocity continuity conditions at fluid-panel interfaces. By taking full advantage of the periodic nature of the double-panel, the space-harmonic approach and virtual work principle are applied to solve the sets of resultant governing equations, which are eventually truncated as a finite system of simultaneous algebraic equations and numerically solved insofar as the solution converges. To validate the proposed model, a comparison between the present model predictions and existing numerical and experimental results for a simplified version of the double-panel structure is carried out, with overall agreement achieved. The model is subsequently employed to explore the influence of the fluid-structure coupling between fluid in the cavity and the two panels on sound transmission across the orthogonally rib-stiffened double-panel structure. Obtained results demonstrate that this fluid-structure coupling affects significantly sound transmission loss (STL) at low frequencies and cannot be ignored when the rib-stiffeners are sparsely distributed. As a highlight of this research, an integrated optimal algorithm toward lightweight, high-stiffness and superior sound insulation capability is proposed, based on which a preliminary optimal design of the double-panel structure is performed.
本文从理论上研究了具有填充纤维吸声材料的腔室的正交加肋双层板结构中声音的传输损耗。采用等效流体模型描述纤维材料中的声传播,通过包含所有可能的振动(即弯曲位移、弯曲和扭转旋转)来描述肋的运动。通过在流-板界面处施加速度连续性条件来考虑流-固耦合的影响。通过充分利用双层板的周期性,应用空间谐波方法和虚功原理来求解所得控制方程组,最终将其截断为有限的联立代数方程组,并在解收敛的情况下进行数值求解。为了验证所提出的模型,对简化双层板结构的一个版本进行了本模型预测与现有数值和实验结果的比较,结果吻合良好。然后,该模型被用于研究腔室中的流体与两个板之间的流固耦合对正交加肋双层板结构中声音传输的影响。结果表明,这种流固耦合在低频时会显著影响声音传输损耗(STL),并且在肋较稀疏分布时不能忽略。作为本研究的一个亮点,提出了一种针对重量轻、高刚度和卓越隔音能力的综合优化算法,并在此基础上对双层板结构进行了初步的优化设计。