Robust optimization of coupled structural-acoustic systems based on sensitivity analysis

被引:0
作者
Wang, Chong [1 ]
Qiu, Zhiping [1 ]
Wang, Xiaojun [1 ]
Wu, Di [2 ]
机构
[1] School of Aeronautic Science and Engineering, Beijing University of Aeronautics and Astronautics
[2] Research and Development Center, China Academy of Launch Vehicle Technology
来源
Beijing Hangkong Hangtian Daxue Xuebao/Journal of Beijing University of Aeronautics and Astronautics | 2014年 / 40卷 / 04期
关键词
Coupled structural-acoustic system; Interval finite element; Robust optimization; Sensitivity; Uncertainty;
D O I
10.13700/j.bh.1001-5965.2013.0328
中图分类号
学科分类号
摘要
An interval finite element method and an interval robust optimization model were proposed for the coupled structural-acoustic field prediction and structural design with uncertainties both in the inherent parameters and external load. Based on the central difference method, the response sensitivity with respect to the system parameters was derived from the structural-acoustic dynamic equilibrium equation. Interval variables were used to quantitatively describe all the uncertain parameters with limited information. In terms of the first-order Taylor expansion, the lower and upper bounds of the uncertain structural-acoustic field could be quickly obtained. In the structural robust optimization, the original uncertain single-objective optimization problem was transformed into a deterministic multi-objective one by introducing a sensitivity index. To ensure a more stable performance of the structural design, the interval possible degree was adopted to describe the robustness of the constraints. Numerical results about a bomb bay were given to demonstrate the effectiveness of proposed robust model and algorithm.
引用
收藏
页码:512 / 516
页数:4
相关论文
共 12 条
[1]  
Li S., A state-space coupling method for fluid-structure interaction analysis of plates, Journal of the Acoustical Society of America, 118, 2, pp. 800-805, (2005)
[2]  
Coyette J.P., A conjugated infinite element method for half-space acoustic problems, Journal of the Acoustical Society of America, 108, 4, pp. 1464-1473, (2000)
[3]  
Raveendra S.T., An efficient indirect boundary element technique for mufti-frequency acoustic analysis, International Journal for Numerical Methods in Engineering, 44, 1, pp. 59-76, (1999)
[4]  
Vlahopoulos N., Garza-Rios L.O., Numerical implementation, validation and marine applications of an energy finite element formulation, Journal of Ship Research, 43, 3, pp. 143-156, (1999)
[5]  
Marburg S., Efficient optimization of a noise transfer function by modification of a shell structure geometry - Part 1: Theory, Structural and Multidisciplinary Optimization, 24, 5, pp. 51-59, (2001)
[6]  
Scarpa F., Parametric sensitivity analysis of coupled acoustic-structural systems, Journal of Vibration and Acoustic, 122, 2, pp. 109-115, (2000)
[7]  
Dong J., Choi K.K., Wang A.M., Parametric design sensitivity analysis of high-frequency structural-acoustic problems using energyfinite element method, International Journal for Numerical Methods in Engineering, 62, 1, pp. 83-121, (2005)
[8]  
Bhat W.V., Wilby J.F., Interior noise radiated by an airplane fuselate subjected to turbulent boundary layer excitation and evaluation of noise reduction treatments, Journal of Sound and Vibration, 18, 4, pp. 449-464, (1971)
[9]  
Liu B.S., Li A., Zhao G.Z., PEM based sensitivity analysis for acoustic radiation problems of random responses, Journal of Vibration and Acoustics, 132, 2, pp. 0210121-02101211, (2010)
[10]  
Culla A., Sestieri A., Carcaterra A., Energy flow uncertainties in vibrating systems: Definition of a statistical confidence factor, Mechanical Systems and Signal Processing, 17, 3, pp. 635-663, (2003)