Optimal Stiffener Design for Interior Sound Reduction Using a Topology Optimization Based Approach

Author:

Luo Jianhui1,Gea Hae Chang1

Affiliation:

1. Department of Mechanical and Aerospace Engineering, Rutgers, The State University of New Jersey, Piscataway, NJ 08855

Abstract

A topology optimization based approach is proposed to study the optimal configuration of stiffeners for the interior sound reduction. Since our design target is aimed at reducing the low frequency noise, a coupled acoustic-structural conservative system without damping effect is considered. Modal analysis method is used to evaluate the interior sound level for this coupled system. To formulate the topology optimization problem, a recently introduced Microstructure-based Design Domain Method (MDDM) is employed. Using the MDDM, the optimal stiffener configurations problem is treated as a material distribution problem and sensitivity analysis of the coupled system is derived analytically. The norm of acoustic excitation is used as the indicator of the interior sound level. The optimal stiffener design is obtained by solving this topology optimization problem using a sequential convex approximation method. Examples of acoustic box under single frequency excitation and a band of low frequency excitations are presented and discussed.

Publisher

ASME International

Subject

General Engineering

Reference10 articles.

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2. Huff, J. E., Jr., and Bernhard, R. J., 1995, “Acoustic Shape Optimization Using Parametric Finite Elements,” ASME 1995 Design Engineering Technical Conferences, DE-Vol. 84-2, pp. 577–584.

3. Wodtke, H. W., and Koopmann, G. H., 1995, “Quieting Plate Modes with Optimally sized Point Masses—A Volume Velocity Approach,” ASME 1995 Design Engineering Technical Conferences, DE-Vol. 84-2, pp. 647–654.

4. Constans, E., and Belegundu, A., 1996, “Minimizing Radiated Sound Power from Vibrating Shells,” The 6th AIAA/NASA/ISSMO Symposium on Multidisciplinary Analysis and Optimization, Bellevue, WA, Paper 96-4111, pp. 1106–1116.

5. Luo, J. H., and Gea, H. C., 1997, “Modal Sensitivity Analysis of Coupled Acoustic-Structural Systems,” J. Sound Vib., 119, pp. 545–550.

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