Author/Authors :
Zhang, Jun Changan Auto Global R&D Center, Chongqing, China , Ji, Lin School of Mechanical Engineering - Shandong University, Jinan, China , Huang, Zhenyu Institute of Intelligent Mechatronics Research - Shanghai Jiao Tong University, Shanghai, China , Zhang, Pingping School of Mechanical Engineering ---Shandong University, Jinan, China , Wang, Wei Institute of Intelligent Mechatronics Research - Shanghai Jiao Tong University, Shanghai, China
Abstract :
A simple formula is proposed to estimate the Statistical Energy Analysis (SEA) coupling loss factors (CLFs) for two flexible subsystems connected via discrete interfaces. First, the dynamic interactions between two discretely connected subsystems are described as a set of intermodal coupling stiffness terms. It is then found that if both subsystems are of high modal density and meanwhile the interface points all act independently, the intermodal dynamic couplings become dominated by only those between different subsystem mode sets. If ensemble- and frequency-averaged, the intermodal coupling stiffness terms can simply reduce to a function of the characteristic dynamic properties of each subsystem and the subsystem mass, as well as the number of interface points. The results can thus be accommodated within the theoretical frame of conventional SEA theory to yield a simple CLF formula. Meanwhile, the approach allows the weak coupling region between the two SEA subsystems to be distinguished simply and explicitly. The consistency and difference of the present technique with and from the traditional wave-based SEA solutions are discussed. Finally, numerical examples are given to illustrate the good performance of the present technique.