Predicting noise-induced vibration from acoustic loads experienced in launch environment was investigated with the coupled finite element method and boundary element algorithm. The conventional numerical simulation of a reverberant field as a launch acoustic environment was introduced. Following the reciprocity theorem used in the coupled FE-BE model
the structural response due to reverberant acoustic excitation was substituted by the sound pressure caused by force excitation on the structure
then the output response power spectrum density of the coupled model subjected to reverberant environment was evaluated based on the stochastic analysis principle. To verify the accuracy and efficiency of the proposed method
it was used to simulate a force-excited structure. The simulation results were in good agreement with the solutions from the conventional methods.
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