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Sung-Koo Kang

Hanyang University · 工学

研究室紹介

Professor Sung-Koo Kang's research lab specializes in computational fluid dynamics and environmental hydraulics, focusing on turbulent flow modeling in natural and engineered aquatic systems. The lab employs advanced numerical methods such as large-eddy simulation (LES) and immersed boundary methods to investigate complex three-dimensional flow structures, including wake meandering, secondary flows, and vortex dynamics around hydraulic structures like turbines, spur dikes, and meandering channels. Their work emphasizes accurate near-wall modeling and turbulence closure for realistic simulations of open channel and riverine flows under natural flow conditions. The lab bridges fundamental fluid dynamics with practical applications in hydrokinetic energy, river restoration, and floodplain management.

large-eddy simulationturbulent flowimmersed boundary methodwake meanderingsecondary flow

Research Overview

Papers
99
Total Citations
2,691
Papers (5y)
18
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
18total
2021
2022
2023
2024
2026
Citations per year (5y)
185total
20212022202320242026

Selected Papers

15
1
Article|221 citations·2014
On the onset of wake meandering for an axial flow turbine in a turbulent open channel flow
Seokkoo Kang, Xiaolei Yang, Fotis Sotiropoulos
SJR Q1Journal of Fluid Mechanics

Abstract Laboratory experiments have yielded evidence suggestive of large-scale meandering motions in the wake of an axial flow hydrokinetic turbine in a turbulent open channel flow (Chamorro et al. , J. Fluid Mech. , vol. 716, 2013, pp. 658–670). We carry out a large-eddy simulation (LES) of the experimental flow to investigate the structure of turbulence in the wake of the turbine and elucidate the mechanism that gives rise to wake meandering. All geometrical details of the turbine structure a

Aerospace EngineeringEngineering
2
Article|174 citations·2010
High-resolution numerical simulation of turbulence in natural waterways
Seokkoo Kang, A. Lightbody, Craig Hill, Fotis Sotiropoulos
SJR Q1Advances in Water Resources
Computational MechanicsEngineering
3
Article|148 citations·2012
Numerical simulation of 3D flow past a real-life marine hydrokinetic turbine
Seokkoo Kang, Iman Borazjani, Jonathan Colby, Fotis Sotiropoulos
SJR Q1Advances in Water Resources
Aerospace EngineeringEngineering
4
Article|93 citations·2011
Flow phenomena and mechanisms in a field-scale experimental meandering channel with a pool-riffle sequence: Insights gained via numerical simulation
Seokkoo Kang, Fotis Sotiropoulos
SJR Q1Journal of Geophysical Research Atmospheres

[1] Large-eddy simulation of turbulent flow through a natural-like meandering channel with pool-riffle sequences installed in the St. Anthony Falls Laboratory Outdoor StreamLab is carried out to elucidate the hydrodynamics at bankfull flow condition. It is shown that the shallow flow in the riffle is dominated by the presence of large-scale roughness elements that enhance turbulent mixing; increase turbulence anisotropy; and induce multiple, streamwise secondary cells driven by turbulence anisot

EcologyEnvironmental Science
5
Article|88 citations·2018
Experimental Investigation of Three‐Dimensional Flow Structure and Turbulent Flow Mechanisms Around a Nonsubmerged Spur Dike With a Low Length‐to‐Depth Ratio
Jeongsook Jeon, Jiyong Lee, Seokkoo Kang
SJR Q1Water Resources Research

Abstract Flume experiments were conducted to investigate the three‐dimensional flow structure and turbulent flow mechanisms around a nonsubmerged, sidewall‐attached rectangular spur dike with a low length‐to‐depth ratio. Velocity measurements show that the wake of the spur dike in the middepth region consists of a single, large recirculation zone, while that in the near‐bed region is composed of a horizontal recirculation zone and a corner vortex with its axis perpendicular to the flume sidewall

EcologyEnvironmental Science
6
Article|74 citations·2012
Numerical modeling of 3D turbulent free surface flow in natural waterways
Seokkoo Kang, Fotis Sotiropoulos
SJR Q1Advances in Water Resources
Computational MechanicsEngineering
7
Article|48 citations·2012
Assessing the predictive capabilities of isotropic, eddy viscosity Reynolds‐averaged turbulence models in a natural‐like meandering channel
Seokkoo Kang, Fotis Sotiropoulos
SJR Q1Water Resources Research

The predictive capabilities of an isotropic, eddy viscosity turbulence model for closing the unsteady Reynolds‐averaged Navier‐Stokes (RANS) equations are systematically investigated by simulating turbulent flow through a field‐scale meandering channel and comparing the computed results with the large‐eddy simulation (LES) of the same flow recently reported by Kang and Sotiropoulos (2011). To facilitate the comparison of the two turbulence models, both RANS simulation and LES are carried on exac

Computational MechanicsEngineering
8
Article|43 citations·2015
An improved near‐wall modeling for large‐eddy simulation using immersed boundary methods
Seokkoo Kang
SJR Q1International Journal for Numerical Methods in FluidsOA

Summary An improved near‐wall modeling for large‐eddy simulation using the immersed boundary method is proposed. It is shown in this study that the existing near‐wall modeling for the immersed boundary (IB) methods that imposes the velocity boundary condition at the IB node is not sufficient to enforce a correct wall shear stress at the IB node. A new method that imposes a shear stress condition through the modification of the subgrid scale‐eddy viscosity at the IB node is proposed. In this meth

Computational MechanicsEngineering
9
Article|31 citations·2022
Wake interactions of two horizontal axis tidal turbines in tandem
Seokkoo Kang, Young-Kyu Kim, Jiyong Lee, Ali Khosronejad, Xiaolei Yang
SJR Q1Ocean EngineeringOA
Aerospace EngineeringEngineering
10
Article|31 citations·2019
Experimental study of the wake characteristics of an axial flow hydrokinetic turbine at different tip speed ratios
Jiyong Lee, Youngkyu Kim, Ali Khosronejad, Seokkoo Kang
SJR Q1Ocean Engineering
Aerospace EngineeringEngineering
11
Article|29 citations·2021
Turbulent flow characteristics around a non-submerged rectangular obstacle on the side of an open channel
Seokkoo Kang, Ali Khosronejad, Xiaolei Yang
SJR Q1Physics of FluidsOA

The three-dimensional flow structure and turbulence characteristics around a non-submerged rectangular obstacle in an open channel are explored using numerical simulation. In particular, a low length-to-depth ratio condition, shown to be associated with three-dimensional flow features in our previous study, is considered. To sufficiently resolve all the important details of the three-dimensional turbulent flow around and in the entire wake of an obstacle, high-resolution large-eddy simulation (L

Computational MechanicsEngineering
12
Article|25 citations·2016
On the turbulent flow structure around an instream structure with realistic geometry
Seokkoo Kang, Craig Hill, Fotis Sotiropoulos
SJR Q1Water Resources ResearchOA

We investigate the flow dynamics around a rock vane, a widely used instream structure for stream restoration, by conducting laboratory flume experiments, and carrying out high-resolution Large Eddy Simulation (LES) taking advantage of parallel computing. The flume experiments are conducted under fixed- and mobile-bed conditions, where the velocities and bed elevations are measured, respectively. The LES is carried out for the fixed-bed experiment by directly resolving the details of the rocks th

EcologyEnvironmental Science
13
Article|22 citations·2015
Monitoring influential environmental conditions affecting communities of denitrifying and nitrifying bacteria in a combined anoxic–oxic activated sludge system
Jong‐Oh Kim, Kyung Hwa Cho, Mayzonee Ligaray, Hyun Min Jang, Seokkoo Kang, Young Mo Kim
SJR Q1International Biodeterioration & Biodegradation
PollutionEnvironmental Science
14
Article|22 citations·2015
Large-Eddy Simulation of Three-Dimensional Turbulent Free Surface Flow Past a Complex Stream Restoration Structure
Seokkoo Kang, Fotis Sotiropoulos
SJR Q2Journal of Hydraulic Engineering

Large-eddy simulation (LES) of a three-dimensional, turbulent free surface flow past a stream restoration structure with arbitrarily complex geometries is presented. The three-dimensional, incompressible, spatially filtered Navier-Stokes and continuity equations are solved in generalized curvilinear coordinates. For the solution of mixed air-water flows, the curvilinear immersed boundary (CURVIB)–level set method developed previously is used and extended to carry out LES. Complex solid geometrie

EcologyEnvironmental Science
15
Article|17 citations·2023
Experimental and numerical study on the flow characteristics around spur dikes at different length-to-depth ratios
Seokkoo Kang, Jiyong Lee, Young-Kyu Kim, Ali Khosronejad
SJR Q1Advances in Water Resources
EcologyEnvironmental Science

Research Areas

EcologyComputational MechanicsAerospace EngineeringGlobal and Planetary ChangeWater Science and TechnologyPollution

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