Yeon June Kang
Seoul National University · Engineering
About the Lab
Professor Yeon June Kang's research lab specializes in the development and application of advanced finite element modeling techniques for poroelastic materials, particularly in the context of acoustic and vibro-acoustic analysis. The lab focuses on modeling elastic porous materials—such as foams—using Biot’s theory to predict sound absorption, transmission loss, and wave propagation in complex geometries like waveguides, ducts, and axisymmetric structures. Key research directions include the coupling of structural, acoustic, and poroelastic finite elements, interface modeling for multi-material systems, and the optimization of noise control treatments such as foam wedges and layered absorbers. The lab also develops innovative methods for dynamic property identification and vehicle noise reduction through substructuring and inverse analysis.
Research Overview
Research Output Trend
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Selected Papers
15In this paper the development of a two-dimensional elastic-absorption finite element model of isotropic elastic porous noise control materials is described. A method for coupling elastic-absorption finite elements with conventional acoustic finite elements is also presented for the cases when the interface between the adjacent air space and the foam is either unfaced or sealed by a membrane. The accuracy of the acoustic/elastic-absorption model has been verified by comparing its predictions with
In this paper, methods for coupling both elastic porous material (i.e., foam) and structural finite elements with either modal or finite element representations of acoustical system are presented. In addition, interface conditions are described for coupling elastic porous material finite elements with acoustical and structural finite elements in various configurations. The foam finite element is based on the elastic porous material theory of Biot. By considering sound transmission through layere
Recently a finite element implementation of Biot’s elastic porous material theory has been developed for the purpose of modeling and optimizing foam noise control treatments [Y. J. Kang and J. S. Bolton, J. Acoust. Soc. Am. 98, 635–643 (1995)]. That finite element formulation was used in the work reported here to study normal incidence sound transmission through a foam wedge placed in a hard-walled duct. It was found that in some frequency bands the transmission loss of the wedge was significant
A finite element model for elastic porous materials is presented that allows for interfaces with adjacent acoustical media that are arbitrarily oriented with respect to the global coordinate system. The foam finite element is based on a complete elastic porous material theory that can account for all the three wave types known to be significant in foams. Example problems are used to illustrate the application of foam finite elements to the optimal design of a foam wedge terminating a waveguide.
Research Areas
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