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Joongseek Lee

Seoul National University · Engineering

About the Lab

Professor Joongseek Lee's research lab specializes in the design and optimization of advanced acoustic materials using principles of metamaterials, poroelasticity, and topology optimization. The lab focuses on broadband sound absorption, low-frequency sound transmission loss reduction, and wavefront manipulation through engineered microstructures such as metaporous layers, rigid partitioning, and metagratings. Key research directions include the development of dissipative acoustic metamaterials, efficient multilayer and 2D foam configurations, and innovative solutions for sound control in practical applications like ventilation panels and lightweight barriers. The lab combines theoretical modeling, numerical simulation, and optimization techniques—particularly Biot’s theory and topology optimization—to create next-generation acoustical systems with enhanced performance.

acoustic metamaterialssound absorptiontopology optimizationporoelastic materialssound transmission loss

Research Overview

Papers
45
Total Citations
907
Papers (5y)
12
Primary Field
Engineering

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
12total
2021
2022
2023
2024
2026
Citations per year (5y)
138total
20212022202320242026

Selected Papers

15
1
Article|113 citations·2016
Multiple slow waves in metaporous layers for broadband sound absorption
Jieun Yang, Joong Seok Lee, Yoon Young Kim
SJR Q1Journal of Physics D Applied PhysicsOA

Sound absorption for a broad frequency range requires sound dissipation. The mechanics of acoustic metamaterials for non-dissipative applications has been extensively studied, but sound absorption using dissipative porous metamaterials has been less explored because of the complexity resulting from the coupling of its dissipative mechanism and metamaterial behavior. We investigated broadband sound absorption by engineering dissipative metaporous layers, which absorb sound by the mechanism of mul

Biomedical EngineeringEngineering
2
Article|96 citations·2015
Metaporous layer to overcome the thickness constraint for broadband sound absorption
Jieun Yang, Joong Seok Lee, Yoon Young Kim
SJR Q2Journal of Applied Physics

The sound absorption of a porous layer is affected by its thickness, especially in a low-frequency range. If a hard-backed porous layer contains periodical arrangements of rigid partitions that are coordinated parallel and perpendicular to the direction of incoming sound waves, the lower bound of the effective sound absorption can be lowered much more and the overall absorption performance enhanced. The consequence of rigid partitioning in a porous layer is to make the first thickness resonance

Biomedical EngineeringEngineering
3
Article|87 citations·2016
Effective mass density based topology optimization of locally resonant acoustic metamaterials for bandgap maximization
Xiong Yang, Joong Seok Lee, Yoon Young Kim
SJR Q1Journal of Sound and Vibration
Biomedical EngineeringEngineering
4
Article|62 citations·2018
Slow-wave metamaterial open panels for efficient reduction of low-frequency sound transmission
Jieun Yang, Joong Seok Lee, Hyeongrae Lee, Yeon June Kang, Yoon Young Kim
SJR Q1Applied Physics Letters

Sound transmission reduction is typically governed by the mass law, requiring thicker panels to handle lower frequencies. When open holes must be inserted in panels for heat transfer, ventilation, or other purposes, the efficient reduction of sound transmission through holey panels becomes difficult, especially in the low-frequency ranges. Here, we propose slow-wave metamaterial open panels that can dramatically lower the working frequencies of sound transmission loss. Global resonances originat

Biomedical EngineeringEngineering
5
Article|56 citations·2007
Optimal poroelastic layer sequencing for sound transmission loss maximization by topology optimization method
Joong Seok Lee, Eun Il Kim, Yoon Young Kim, Jung Soo Kim, Yeon June Kang
SJR Q1The Journal of the Acoustical Society of America

Optimal layer sequencing of a multilayered acoustical foam is solved to maximize its sound transmission loss. A foam consisting of air and poroelastic layers can be optimized when a limited amount of a poroelastic material is allowed. By formulating the sound transmission loss maximization problem as a one-dimensional topology optimization problem, optimal layer sequencing and thickness were systematically found for several single and ranges of frequencies. For optimization, the transmission los

Biomedical EngineeringEngineering
6
Article|55 citations·2008
Two-dimensional poroelastic acoustical foam shape design for absorption coefficient maximization by topology optimization method
Joong Seok Lee, Yoon Young Kim, Jung Soo Kim, Yeon June Kang
SJR Q1The Journal of the Acoustical Society of America

Optimal shape design of a two-dimensional poroelastic acoustical foam is formulated as a topology optimization problem. For a poroelastic acoustical system consisting of an air region and a poroelastic foam region, two different physical regions are continuously changed in an iterative design process. To automatically account for the moving interfaces between two regions, we propose a new unified model to analyze the whole poroelastic acoustical foam system with one set of governing equations; B

Biomedical EngineeringEngineering
7
Article|49 citations·2021
Longitudinal wave steering using beam-type elastic metagratings
Shin Young Kim, Woorim Lee, Joong Seok Lee, Yoon Young Kim
SJR Q1Mechanical Systems and Signal ProcessingOA

Metagratings have recently received much attention for effective realization of anomalous wave steering. Governed by the diffraction grating theory and the concept of metamaterials, metagratings allow to suppress superfluous propagations of high-order scattering modes in a selective manner such that wavefronts are accurately steered as designated. While numerous metagratings have been reported in electromagnetic wave research field, little has been explored in the elastic wave regime because of

Electronic, Optical and Magnetic MaterialsMaterials Science
8
Article|43 citations·2019
Topology optimization design for total sound absorption in porous media
Won Uk Yoon, Jun Hyeong Park, Joong Seok Lee, Yoon Young Kim
SJR Q1Computer Methods in Applied Mechanics and Engineering
Biomedical EngineeringEngineering
9
Article|33 citations·2015
Topology optimization for three-phase materials distribution in a dissipative expansion chamber by unified multiphase modeling approach
Joong Seok Lee, Peter Göransson, Yoon Young Kim
SJR Q1Computer Methods in Applied Mechanics and Engineering
Biomedical EngineeringEngineering
10
Article|31 citations·2006
Damage detection by the topology design formulation using modal parameters
Joong Seok Lee, Jae Eun Kim, Yoon Young Kim
SJR Q1International Journal for Numerical Methods in Engineering

Abstract The feasibility of using the topology design method for structural damage identification is investigated for the first time. The finite element model of an undamaged structure and some point‐frequency response functions of a damaged structure are assumed to be available. To carry out the feasibility study, the topology optimization formulation suitable for structural damage detection is newly set up, where both resonances and anti‐resonances are used as the damage indication modal param

Civil and Structural EngineeringEngineering
11
Article|25 citations·2022
Anomalous mode-converting reflection of elastic waves using strip-type metagratings
Shin Young Kim, Yu Bin Oh, Joong Seok Lee, Yoon Young Kim
SJR Q1Mechanical Systems and Signal Processing
Biomedical EngineeringEngineering
12
Article|20 citations·2012
Unified multiphase modeling for evolving, acoustically coupled systems consisting of acoustic, elastic, poroelastic media and septa
Joong Seok Lee, Yeon June Kang, Yoon Young Kim
SJR Q1Journal of Sound and Vibration
Biomedical EngineeringEngineering
13
Article|15 citations·2022
Deep learning-based prediction and interpretability of physical phenomena for metaporous materials
Soo Young Lee, Jihun Lee, Joong Seok Lee, Seung‐Chul Lee
SJR Q1Materials Today Physics
Biomedical EngineeringEngineering
14
Article|14 citations·2021
Directional quantification of power dissipation in sound-absorbing metaporous layers
Jun Hyeong Park, Joong Seok Lee, Yoon Young Kim
SJR Q1Journal of Sound and Vibration
Biomedical EngineeringEngineering
15
Article|13 citations·2024
Broad and sharp-transient sound absorption band in phase-gradient metasurface lined with thin porous layer
Jun Hyeong Park, Yoon Young Kim, Pyung Sik, Joong Seok Lee
SJR Q1Applied Acoustics
Biomedical EngineeringEngineering

Research Areas

Biomedical EngineeringCivil and Structural EngineeringMechanics of MaterialsAutomotive EngineeringElectronic, Optical and Magnetic MaterialsElectrical and Electronic Engineering

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