Skip to main content

Shin Hyung Rhee

Seoul National University · Engineering

About the Lab

Professor Shin Hyung Rhee's research lab specializes in computational fluid dynamics (CFD) applications in naval and marine hydrodynamics, focusing on ship resistance, propulsion, and propeller performance. The lab develops advanced CFD tools—such as the open-source SNUFOAM solver—tailored for complex free-surface and cavitating flows, with strong emphasis on numerical accuracy, mesh adaptability, and validation against experimental data. Research directions include unstructured and hybrid meshing strategies, turbulence modeling, and the simulation of cavitating flows and sloshing phenomena in marine systems. The lab actively bridges computational innovation with practical ship performance prediction and hydrodynamic design optimization.

computational fluid dynamicsship hydrodynamicscavitationpropulsion performanceSNUFOAM

Research Overview

Papers
292
Total Citations
2,655
Papers (5y)
34
Primary Field
Engineering

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
34total
2022
2023
2024
2025
2026
Citations per year (5y)
89total
20222023202420252026

Selected Papers

15
1
Article|118 citations·2012
Computational methods for performance analysis of horizontal axis tidal stream turbines
Ju Hyun Lee, Sunho Park, Dong Hwan Kim, Shin Hyung Rhee, Moon-Chan Kim
SJR Q1Applied Energy
Mechanics of MaterialsEngineering
2
Article|77 citations·2005
Unstructured Grid Based Reynolds-Averaged Navier-Stokes Method for Liquid Tank Sloshing
Shin Hyung Rhee
SJR Q2Journal of Fluids Engineering

The present study is concerned with liquid tank sloshing at low filling level conditions. The volume of fluid method implemented in a Navier–Stokes computational fluid dynamics code is employed to handle the free-surface flow of liquid sloshing. The geometric reconstruction scheme for the interface representation is employed to ensure sharpness at the free surface. The governing equations are discretized by second order accurate schemes on unstructured grids. Several different computational appr

Computational MechanicsEngineering
3
Article|69 citations·2005
Propeller Cavitation Study Using an Unstructured Grid Based Navier-Stoker Solver
Shin Hyung Rhee, Takafumi Kawamura, Huiying Li
SJR Q2Journal of Fluids Engineering

The cavitating flow around a marine propeller is studied using an unstructured grid based Reynolds-averaged Navier-Stokes computational fluid dynamics method. A cavitation model based on a single-fluid multi-phase flow method is implemented in the Navier-Stokes solver. The proposed computational approach for cavitation is validated against a benchmark database for a cavitating hydrofoil as well as measured data for a cavitating marine propeller. The leading edge and mid-chord cavitation on the h

Mechanics of MaterialsEngineering
4
Article|65 citations·2012
Computational analysis of turbulent super-cavitating flow around a two-dimensional wedge-shaped cavitator geometry
Sunho Park, Shin Hyung Rhee
SJR Q1Computers & Fluids
Mechanics of MaterialsEngineering
5
Article|60 citations·2015
Full scale wake prediction of an energy saving device by using computational fluid dynamics
Sunho Park, Gwangho Oh, Shin Hyung Rhee, Bonyong Koo, Hoseong Lee
SJR Q1Ocean Engineering
Ocean EngineeringEngineering
6
Article|50 citations·2010
Flexible CFD meshing strategy for prediction of ship resistance and propulsion performance
Jeonghwa Seo, Dong Myung Seol, Ju Hyun Lee, Shin Hyung Rhee
SJR Q1International Journal of Naval Architecture and Ocean EngineeringOA

In the present study, we conducted resistance test, propeller open water test and self-propulsion test for a ship's resistance and propulsion performance, using computational fluid dynamics techniques, where a Reynolds-averaged Navier-Stokes equations solver was employed. For convenience of mesh generation, unstructured meshes were used in the bow and stern region of a ship, where the hull shape is formed of delicate curved surfaces. On the other hand, structured meshes were generated for the mi

Ocean EngineeringEngineering
7
Article|49 citations·2005
Computational Validation for Flow around a Marine Propeller Using Unstructured Mesh Based Navier-Stokes Solver
Shin Hyung Rhee, Shitalkumar Joshi
JSME International Journal Series BOA

Results of computational fluid dynamics validation for flow around a marine propeller are presented. Computations were performed for various advance ratios following experimental conditions. The objectives of the study are to propose and verify a hybrid mesh generation strategy and to validate computational results against experimental data with advanced computational fluid dynamics tools. Computational results for both global and local flow quantities are discussed and compared with experimenta

Mechanics of MaterialsEngineering
8
Article|46 citations·2012
Experimental investigation of green water on deck for a CFD validation database
Hyun-Ho Lee, Ho-Jeong Lim, Shin Hyung Rhee
SJR Q1Ocean Engineering
Ocean EngineeringEngineering
9
Article|42 citations·2020
Maneuvering simulation of an X-plane submarine using computational fluid dynamics
Yong Jae Cho, Woochan Seok, Ki-Hyeon Cheon, Shin Hyung Rhee
SJR Q1International Journal of Naval Architecture and Ocean EngineeringOA

X-plane submarines show better maneuverability as they have much longer span of control plane than that of cross plane submarines. In this study, captive model tests were conducted to evaluate the maneuverability of an X-plane submarine using Computational Fluid Dynamics (CFD) and a mathematical maneuvering model. For CFD analysis, SNUFOAM, CFD software specialized in naval hydrodynamics based on the open-source toolkit, OpenFOAM, was applied. A generic submarine Joubert BB2 was selected as a te

Ocean EngineeringEngineering
10
Article|41 citations·2013
Investigation on the wall function implementation for the prediction of ship resistance
Sunho Park, Se Wan Park, Shin Hyung Rhee, Sang Bong Lee, Jung-Eun Choi, Seon Hyung Kang
SJR Q1International Journal of Naval Architecture and Ocean EngineeringOA

A computational fluid dynamics (CFD) code, dubbed SNUFOAM, was developed to predict the performance of ship resistance using a CFD tool kit with open source libraries. SNUFOAM is based on a pressure-based cell-centered finite volume method and includes a turbulence model with wall functions. The mesh sensitivity, such as the skewness and aspect ratio, was evaluated for the convergence. Two wall functions were tested to solve the turbulent flow around a ship, and the one without the assumption of

Ocean EngineeringEngineering
11
Article|37 citations·2012
Preliminary tests of a damaged ship for CFD validation
Sungkyun Lee, Ji-Myoung You, Hyun-Ho Lee, Taegu Lim, Shin Hyung Rhee, Key-Pyo Rhee
SJR Q1International Journal of Naval Architecture and Ocean EngineeringOA

One of the most critical issues in naval architecture these days is the operational safety. Among many factors to be considered for higher safety level requirements, the hull stability in intact and damaged conditions is the first to ensure for both commercial and military vessels. Unlike the intact stability cases, the assessment of the damaged ship stability is very complicated physical phenomena. Therefore it is widely acknowledged that computational fluid dynamics (CFD) methods are one of mo

Ocean EngineeringEngineering
12
Article|35 citations·2005
Assessment of the volume of fluid method for free-surface wave flow
Shin Hyung Rhee, B. P. Makarov, H. Krishinan, В. А. Иванов
SJR Q1Journal of Marine Science and Technology
Ocean EngineeringEngineering
13
Article|32 citations·2002
Numerical Simulation of Unsteady Turbulent Flow Around Maneuvering Prolate Spheroid
Shin Hyung Rhee, Takanori Hino
SJR Q1AIAA Journal

A three-dimensional Reynolds averaged Navier-Stokes method for unsteady turbulent flow around a maneuvering vehicle was developed and applied to a model problem concerning an extreme case of submarine maneuvers. A body force term is added in the momentum equations to take into account the inertial motion in the body-fixed coordinate system. The Spalart and Allmaras turbulence model is employed for turbulence closure. An artificial compressibility is introduced into the continuity equation for ve

Computational MechanicsEngineering
14
Article|31 citations·2015
A dynamic interface compression method for VOF simulations of high-speed planing watercraft
Heebum Lee, Shin Hyung Rhee
SJR Q2Journal of Mechanical Science and Technology
Ocean EngineeringEngineering
15
Article|29 citations·2002
RANS Model for Spilling Breaking Waves
Shin Hyung Rhee, Fred Stern
SJR Q2Journal of Fluids Engineering

A RANS model for spilling breaking waves is developed, which can be implemented with ship hydrodynamics RANS CFD codes. The model is based on the Cointe & Tulin theory of steady breakers. The breaker cross section is assumed triangular with maximum height determined by the theoretical/experimental linear relationship with following wave height. Pressure and velocity boundary conditions are imposed on the dividing streamline between the breaker and underlying flow based on the hydrostatic and

Earth-Surface ProcessesEarth and Planetary Sciences

Research Areas

Ocean EngineeringMechanics of MaterialsAerospace EngineeringComputational MechanicsPhilosophyEnvironmental Engineering

Dive deeper into Shin Hyung Rhee's research on Nubint

Open this lab's papers in the app to read with AI, summarize, and cite in your writing.