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Bo Woo Nam

Seoul National University · Engineering

About the Lab

Professor Bo Woo Nam's research lab specializes in marine hydrodynamics and offshore structure dynamics, focusing on wave-structure interactions, floating body motions, and fluid-structure coupling phenomena. The lab conducts advanced numerical simulations and experimental validations to study complex hydrodynamic behaviors such as sloshing, wave drift forces, and wave energy conversion. Key research directions include the dynamic response of floating offshore units, deep-sea lifting operations, and the design optimization of wave energy converters and coastal protection devices.

wave-structure interactionfloating body dynamicssloshingwave energy conversionCFD simulation

Research Overview

Papers
160
Total Citations
1,025
Papers (5y)
37
Primary Field
Engineering

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
37total
2022
2023
2024
2025
2026
Citations per year (5y)
122total
20222023202420252026

Selected Papers

15
1
Article|71 citations·2009
Experimental and Numerical Studies on Ship Motion Responses Coupled with Sloshing in Waves
Bo Woo Nam, Yonghwan Kim, Dae‐Woong Kim, Yong Soo Kim
SJR Q2Journal of Ship Research

This study considers the motion responses of floating bodies in waves coupled with sloshing-induced internal forces and their effects on sloshing-induced impact loads. The linear ship motion is solved using an impulse-response-function (IRF) method, while the nonlinear sloshing flow is simulated using a finite difference method. The considered models are a liquid natural gas floating production, storage, and offloading unit (LNG FPSO) with two partially filled tanks and a modified S175 hull with

Computational MechanicsEngineering
2
Article|35 citations·2017
Experimental and numerical study on coupled motion responses of a floating crane vessel and a lifted subsea manifold in deep water
Bo Woo Nam, N.W. Kim, Seong-Wan Hong
SJR Q1International Journal of Naval Architecture and Ocean EngineeringOA

The floating crane vessel in waves gives rise to the motion of the lifted object which is connected to the hoisting wire. The dynamic tension induced by the lifted object also affects the motion responses of the floating crane vessel in return. In this study, coupled motion responses of a floating crane vessel and a lifted subsea manifold during deep-water installation operations were investigated by both experiments and numerical calculations. A series of model tests for the deep-water lifting

Control and Systems EngineeringEngineering
3
Article|27 citations·2013
Effects of Passive and Active Heave Compensators on Deepwater Lifting Operation
Bo Woo Nam, Sa Young Hong, Young Shik Kim, Jong Wook Kim
Control and Systems EngineeringEngineering
4
Article|27 citations·2021
Experimental and Numerical Analysis of Wave Drift Force on KVLCC2 Moving in Oblique Waves
Min-Guk Seo, Yoon Jin Ha, Bo Woo Nam, Yeongyu Kim
SJR Q2Journal of Marine Science and EngineeringOA

In this study, experimental and numerical methods were applied to estimate surge and sway wave drift forces and yaw drift moment acting on KVLCC2, advancing in oblique wave. An experiment was carried out in the ocean engineering basin of the Korea Research Institute of Ships and Ocean Engineering (KRISO). A series of regular wave tests under various heading conditions were conducted to investigate ship motion responses and wave drift forces. A Rankine panel method based on potential flow was ado

Ocean EngineeringEngineering
5
Article|20 citations·2008
Numerical Simulation of Wave Flow over the Spiral-Reef Overtopping Device
Bo Woo Nam, Sangmook Shin, Keyyong Hong, Shi Hong

In this paper, computational fluid dynamics (CFD) simulations are carried out for the purpose of finding the optimal design parameters of a spiral-reef overtopping device. In order to maximize the overtopping flow rate, geometrical parameters of the device were systematically examined in numerical computations. In all simulations, the commercial CFD program FLOW3D was used. In this study, regular waves with a period range of 4~6 seconds (which are very common in the Korean southern sea) are cons

Earth-Surface ProcessesEarth and Planetary Sciences
6
Article|16 citations·2023
Experimental study on hydrodynamic behavior and energy conversion of multiple oscillating-water-column chamber in regular waves
Jeong‐Seok Kim, Bo Woo Nam, Sejun Kim, Ji Yong Park, Sewan Park, Kyong‐Hwan Kim
SJR Q1Ocean Engineering
Ocean EngineeringEngineering
7
Article|14 citations·2018
Experimental and numerical study on mating operation of a topside module by a floating crane vessel in waves
Yoon-Jin Ha, Bo Woo Nam, Sup Hong, D.W. Jung, Hyojung Kim
SJR Q1Ocean Engineering
Computational MechanicsEngineering
8
Article|13 citations·2023
ANN-based prediction models for green water events around a FPSO in irregular waves
Hyo-Jin Park, Jeong‐Seok Kim, Bo Woo Nam, Joo-Sung Kim
SJR Q1Ocean Engineering
Ocean EngineeringEngineering
9
Article|13 citations·2011
Numerical Analysis of Wave-induced Motion of Floating Pendulor Wave Energy Converter
Bo Woo Nam, Sa-Young Hong, Kibum Kim, Ji Yong Park, Seung‐Ho Shin
SJR Q3Journal of Ocean Engineering and Technology

In this paper, the wave-induced motion characteristics of a floating pendulor are investigated numerically. A floating pendulor is a movable-body-type wave energy converter. This device consists of three main parts (floater, pendulum, and damping plates). In order to obtain the hydrodynamic coefficients and wave exciting forces acting on floating bodies, a higher-order boundary element method (HOBEM) using a wave Green function is applied to the present problems. The hinged motion of a pendulum

Ocean EngineeringEngineering
10
Article|13 citations·2022
Numerical investigation on hydrodynamic energy conversion performance of breakwater-integrated oscillating water column-wave energy converters
Jeong‐Seok Kim, Bo Woo Nam, Sewan Park, Kyong‐Hwan Kim, Seung‐Ho Shin, Keyyong Hong
SJR Q1Ocean Engineering
Ocean EngineeringEngineering
11
Article|13 citations·2016
Time-domain simulation of berthing problem between FPSO and shuttle tanker in waves
Bo Woo Nam, Young-Shik Kim, Sa Young Hong
SJR Q1Applied Ocean Research
Computational MechanicsEngineering
12
Article|12 citations·2015
Hydrodynamic interaction between two barges during berthing operation in regular waves
Bo Woo Nam, Yonghwan Kim, Sa Young Hong
SJR Q1Ocean Engineering
Ocean EngineeringEngineering
13
Article|12 citations·2017
Numerical simulation for a passing ship and a moored barge alongside quay
Bo Woo Nam, J.Y. Park
SJR Q1International Journal of Naval Architecture and Ocean EngineeringOA

A moored barge alongside quay can be influenced by a nearby passing ship and its ship-generated waves. In this study, a time-domain numerical method based on a three-dimensional potential flow solver is developed to investigate the passing ship problem with a moored barge alongside quay. Potential flows around the passing ship and the moored barge alongside a quay is directly solved by using a classical finite element method. Total computational meshes including a passing ship, a moored barge an

Ocean EngineeringEngineering
14
Article|11 citations·2020
Numerical Investigation on Nonlinear Dynamic Responses of a Towed Vessel in Calm Water
Bo Woo Nam
SJR Q2Journal of Marine Science and EngineeringOA

In this study, we numerically investigated the nonlinear dynamic responses of an autonomous towing system where a vessel is passively towed by a tug via a towline. A three-degrees-of-freedom maneuvering mathematical model is utilized to describe the nonlinear dynamics of the towed vessel in calm sea. The hydrodynamic force acting on the towed vessel is modelled as a modular-type hull force model, which includes linear and nonlinear (third order) damping forces in sway and yawing directions. The

Ocean EngineeringEngineering
15
Article|9 citations·2025
Monte-Carlo simulation method for ship collision avoidance performance considering various encounter situations in port congestion zones
Dong-Hee Choi, Hujae Choi, Kenton Ko, Bo Woo Nam
SJR Q1Applied Ocean ResearchOA

As interest in autonomous maritime technology continues to grow, various collision avoidance algorithms for autonomous vessels have been developed. However, evaluating and comparing the performance of these algorithms presents challenges due to the significant influence of factors such as the number of obstacles, specific encounter scenarios and obstacle arrangements. To address these challenges, the present study employs a Monte Carlo simulation technique to quantitatively evaluate the performa

Ocean EngineeringEngineering

Research Areas

Ocean EngineeringComputational MechanicsCivil and Structural EngineeringControl and Systems EngineeringEarth-Surface ProcessesMechanics of Materials

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