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Yong Hwan Kim

Seoul National University · 工学

研究室紹介

Professor Yong Hwan Kim's research lab specializes in marine hydrodynamics, ship seakeeping, and advanced numerical simulation of fluid-structure interaction. The lab focuses on developing real-time digital twin technologies for ship operations, integrating wave prediction, hydrodynamic performance analysis, and structural response modeling. Key research directions include computational modeling of ship motions, sloshing dynamics in liquid cargo tanks, and vortex dynamics around vibrating structures, with applications in maritime safety and optimization. The lab also explores environmental and supply chain challenges in global shipping through organizational and systems-level analysis.

digital twinship seakeepingsloshing flowfluid-structure interactionwave prediction

Research Overview

Papers
318
Total Citations
3,509
Papers (5y)
41
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
41total
2022
2023
2024
2025
2026
Citations per year (5y)
365total
20222023202420252026

Selected Papers

15
1
Article|110 citations·2011
Numerical study on added resistance of ships by using a time-domain Rankine panel method
Kyong‐Hwan Kim, Yonghwan Kim
SJR Q1Ocean Engineering
Ocean EngineeringEngineering
2
Article|102 citations·2011
Time-domain analysis of nonlinear motion responses and structural loads on ships and offshore structures: development of WISH programs
Yonghwan Kim, Yonghwan Kim, Kyong‐Hwan Kim, Jae‐Han Kim, Taeyoung Kim, Min-Guk Seo, Yooil Kim, Yooil Kim
SJR Q1International Journal of Naval Architecture and Ocean EngineeringOA

The present paper introduced a computer program, called WISH, which is based on a time-domain Rankine panel method. The WISH has been developed for practical use to predict the linear and nonlinear ship motion and structural loads in waves. The WISH adopts three different levels of seakeeping analysis: linear, weakly-nonlinear and weak-scatterer approaches. Later, WISH-FLEX has been developed to consider hydroelasticity effects on hull-girder structure. This program can solve the springing and w

Ocean EngineeringEngineering
3
Article|93 citations·2011
Numerical analysis on ship maneuvering coupled with ship motion in waves
Min-Guk Seo, Yonghwan Kim
SJR Q1Ocean Engineering
Ocean EngineeringEngineering
4
Article|87 citations·2003
Phase-resolved flow field produced by a vibrating cantilever plate between two endplates
Yonghwan Kim, Steven T. Wereley, Chung-Hwan Chun
SJR Q1Physics of Fluids

The flow field created by a vibrating cantilever plate was studied using phase-resolved particle image velocimetry measurements as well as a smoke visualization technique. The cantilever is 38 mm wide, 31 mm long, and is actuated by a piezoelectric material. It is immersed in initially quiescent air, i.e., no free stream velocity is imposed on the system. The cantilever’s vibration frequency in these experiments is set to 180 Hz—the fundamental natural frequency of cantilever. The flow is quite

Aerospace EngineeringEngineering
5
Article|86 citations·2004
Numerical study on slosh-induced impact pressures on three-dimensional prismatic tanks
Yonghwan Kim, Yung-Sup Shin, Kwang Hyun Lee
SJR Q1Applied Ocean Research
Computational MechanicsEngineering
6
Article|84 citations·2022
Real-time digital twin for ship operation in waves
Jae‐Hoon Lee, Yoon-Seo Nam, Yonghwan Kim, Yuming Liu, J.M. Lee, Heesuk Yang
SJR Q1Ocean EngineeringOA

This paper introduces a real-time digital twin for ship operations in seaways. The concept of the digital twin is becoming popular, and it is adopted for ship operation systems in this study. In particular, this paper introduces a new and innovative concept of the digital twin to predict ocean waves and hydrodynamic performances, such as seakeeping and maneuvering, which enables the risk and optimum route to be forecast in real time. An essential element in the realization of such a real-time di

Ocean EngineeringEngineering
7
Article|79 citations·2002
A Numerical Study on Sloshing Flows Coupled with Ship Motion—The Anti-Rolling Tank Problem
Yonghwan Kim
SJR Q2Journal of Ship Research

A computational study on the sloshing problem coupled with ship motion in waves is introduced. The ship motion excites the sloshing flow in the ship's liquid cargo, and the slosh-induced forces and moments affect the ship motion in return. This study applies a numerical method to solve the coupling problem of the ship motion and sloshing flow. In particular, it concentrates on the anti-rolling tank, which has the most significant coupling effects of two problems. The three-dimensional sloshing f

Computational MechanicsEngineering
8
Article|75 citations·2015
Uncertainty analysis for added resistance experiment of KVLCC2 ship
Dong-Min Park, Jae‐Hoon Lee, Yonghwan Kim
SJR Q1Ocean Engineering
Ocean EngineeringEngineering
9
Article|67 citations·2013
Fully coupled BEM-FEM analysis for ship hydroelasticity in waves
Kyong‐Hwan Kim, Je-Sung Bang, Jung-Hyun Kim, Yonghwan Kim, Yonghwan Kim, Seung-Jo Kim, Yooil Kim, Yooil Kim
SJR Q1Marine Structures
Control and Systems EngineeringEngineering
10
Article|65 citations·2013
Comparative study on computation of ship added resistance in waves
Min-Guk Seo, Dong-Min Park, Kyung-Kyu Yang, Yonghwan Kim
SJR Q1Ocean Engineering
Ocean EngineeringEngineering
11
Article|62 citations·2014
Comparison of slamming and whipping loads by fully coupled hydroelastic analysis and experimental measurement
Jung-Hyun Kim, Yonghwan Kim, Rae-Hyoung Yuck, Dong‐Yeon Lee
SJR Q1Journal of Fluids and StructuresOA

This paper proposes a numerical method for analyzing whipping using a fully coupled hydroelastic model. The numerical analysis method utilizes a 3-D Rankine panel method, 1-D/3-D finite element methods, and a 2-D generalized Wagner model, which are strongly coupled in the time domain. The computational results were compared with those of a model test of an 18 000-TEU containership. The slamming pressures and whipping responses to regular waves for bow flare and stern slamming were compared. Furt

Computational MechanicsEngineering
12
Article|60 citations·1997
Linear and nonlinear interactions of surface waves with bodies by a three-dimensional Rankine panel method
Yonghwan Kim, David C. Kring, Paul D. Sclavounos
SJR Q1Applied Ocean Research
Ocean EngineeringEngineering
13
Article|60 citations·2011
Time-domain analysis of nonlinear motion responses and structural loads on ships and offshore structures: development of WISH programs
김용환, 김경환, 김재한, 서민국, 김유일, 김태영

The present paper introduced a computer program, called WISH, which is based on a time-domain Rankine panel method. The WISH has been developed for practical use to predict the linear and nonlinear ship motion and structural loads in waves. The WISH adopts three different levels of seakeeping analysis: linear, weakly-nonlinear and weak-scatterer approaches. Later, WISH-FLEX has been developed to consider hydroelasticity effects on hull-girder structure. This program can solve the springing and w

14
Article|57 citations·2016
Benchmark study on motions and loads of a 6750-TEU containership
Yonghwan Kim, Jung-Hyun Kim
SJR Q1Ocean EngineeringOA

This study deals with a benchmark test on the performance of seakeeping analysis codes, which was carried out as part of the 2nd ITTC–ISSC joint workshop in 2014. Eleven institutes participated in the benchmark test with seventeen analysis codes. The target ship was the 6750-TEU containership, and the test of its flexible scale model was conducted by KRISO. A test matrix was composed of one condition for linear responses and three conditions for nonlinear responses. Participants were requested t

Ocean EngineeringEngineering
15
Article|56 citations·2014
Numerical analysis of added resistance on ships in short waves
Min-Guk Seo, Kyung-Kyu Yang, Dong-Min Park, Yonghwan Kim
SJR Q1Ocean Engineering
Ocean EngineeringEngineering

Research Areas

Computational MechanicsOcean EngineeringAerospace EngineeringControl and Systems EngineeringCivil and Structural EngineeringElectrical and Electronic Engineering

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