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Cho, Yeunwoo

Korea Advanced Institute of Science and Technology · Earth and Planetary Sciences

About the Lab

Professor Cho, Yeunwoo's research lab specializes in experimental and theoretical fluid dynamics, with a focus on wave phenomena, cavity formation, and multiphase flows. Key research directions include the generation and dynamics of gravity–capillary waves, supercavitation in free-surface flows, and the behavior of underwater bubbles and their interaction with interfaces. The lab also investigates vaporization and transport processes in internal combustion engines, particularly in piston ring packs, using multi-component modeling approaches.

gravity-capillary wavessupercavitationbubble dynamicswave resonanceengine oil vaporization

Research Overview

Papers
46
Total Citations
327
Papers (5y)
10
Primary Field
Earth and Planetary Sciences

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
10total
2019
2020
2023
2024
2025
Citations per year (5y)
34total
20192020202320242025

Selected Papers

15
1
Article|27 citations·2019
Gravity–capillary jet-like surface waves generated by an underwater bubble
Youn J. Kang, Yeunwoo Cho
SJR Q1Journal of Fluid Mechanics

Jet-like surface waves generated by an electric-spark-generated underwater bubble are experimentally studied. Three different motions of jet-like surface waves are observed depending on the inception position of the bubble ( $d$ : 0.28–7 mm) below the free surface and the maximum radius of the bubble ( $R_{m}$ : 1.5–3.6 mm). When $d/R_{m}>1.3$ , the surface wave shows a simple smooth hump (case 1). When $0.82<d/R_{m}<1.3$ , a single droplet or multiple droplets are pinched off sequentia

Materials ChemistryMaterials Science
2
Article|26 citations·2018
Ventilated supercavitation around a moving body in a still fluid: observation and drag measurement
Jaeho Chung, Yeunwoo Cho
SJR Q1Journal of Fluid Mechanics

This experimental study examines ventilated supercavity formation in a free-surface bounded environment where a body is in motion and the fluid is at rest. For a given torpedo-shaped body and water depth ( $H$ ), depending on the cavitator diameter ( $d_{c}$ ) and the submergence depth ( $h_{s}$ ), four different cases are investigated according to the blockage ratio ( $B=d_{c}/d_{h}$ , where $d_{h}$ is the hydraulic diameter) and the dimensionless submergence depth ( $h^{\ast }=h_{s}/H$ ). Case

Computational MechanicsEngineering
3
Article|25 citations·2011
Resonantly forced gravity–capillary lumps on deep water. Part 2. Theoretical model
Yeunwoo Cho, J.D. Diorio, T. R. Akylas, James H. Duncan
SJR Q1Journal of Fluid MechanicsOA

A theoretical model is presented for the generation of waves by a localized pressure distribution moving on the surface of deep water with speed near the minimum gravity–capillary phase speed, c min . The model employs a simple forced–damped nonlinear dispersive equation. Even though it is not formally derived from the full governing equations, the proposed model equation combines the main effects controlling the response and captures the salient features of the experimental results reported in

OceanographyEarth and Planetary Sciences
4
Article|15 citations·2016
Experimental observation of gravity–capillary solitary waves generated by a moving air suction
Beomchan Park, Yeunwoo Cho
SJR Q1Journal of Fluid Mechanics

Gravity–capillary solitary waves are generated by a moving ‘air-suction’ forcing instead of a moving ‘air-blowing’ forcing. The air-suction forcing moves horizontally over the surface of deep water with speeds close to the minimum linear phase speed $c_{min}=23~\text{cm}~\text{s}^{-1}$ . Three different states are observed according to forcing speeds below $c_{min}$ . At relatively low speeds below $c_{min}$ , small-amplitude linear circular depressions are observed, and they move steadily ahead

OceanographyEarth and Planetary Sciences
5
Article|12 citations·2016
Diffraction of waves past two vertical thin plates on the free surface: A comparison of theory and experiment
Dong Min Shin, Yeunwoo Cho
SJR Q1Ocean Engineering
Ocean EngineeringEngineering
6
Article|12 citations·2004
Modeling Engine Oil Vaporization and Transport of the Oil Vapor in the Piston Ring Pack of Internal Combustion Engines
Yeunwoo Cho, Tian Tian
SAE technical papers on CD-ROM/SAE technical paper seriesOA

<div class="htmlview paragraph">A model was developed to study engine oil vaporization and oil vapor transport in the piston ring pack of internal combustion engines. With the assumption that the multi-grade oil can be modeled as a compound of a number of distinct paraffin hydrocarbons, a set of equations governing the oil vapor density variations were derived by applying mass conservation law to the amount of oil vaporized from the piston and the amount of oil vapor transported within the

Mechanical EngineeringEngineering
7
Article|9 citations·2009
Forced Waves Near Resonance at a Phase‐Speed Minimum
Yeunwoo Cho, T. R. Akylas
SJR Q1Studies in Applied Mathematics

When a dispersive wave system is subject to forcing by a moving external disturbance, a maximum or minimum of the phase speed is associated with a critical forcing speed at which the linear response is resonant. Nonlinear effects can play an important part near such resonances, and the salient characteristics of the nonlinear response depend on whether the maximum or minimum of the phase speed is realized in the long‐wave limit (zero wavenumber) or at a finite wavenumber. The focus here is on th

OceanographyEarth and Planetary Sciences
8
Article|6 citations·2018
Stability of gravity-capillary solitary waves on shallow water based on the fifth-order Kadomtsev-Petviashvili equation
Yeunwoo Cho
SJR Q2Physical review. E

Longitudinal and transverse instabilities of gravity-capillary solitary waves on shallow water are investigated based on the numerical analysis of the fifth-order Kadomtsev-Petviashvili (KP) equation, which describes the wave phenomena on shallow water where the relevant Bond number is less than and close to 1/3. Two-dimensional (2D) depression gravity-capillary solitary waves are stable to longitudinal perturbations. 2D elevation gravity-capillary solitary waves are unstable to longitudinal per

Statistical and Nonlinear PhysicsPhysics and Astronomy
9
Article|6 citations·2015
A modified Petviashvili method using simple stabilizing factors to compute solitary waves
Yeunwoo Cho
SJR Q2Journal of Engineering Mathematics
Statistical and Nonlinear PhysicsPhysics and Astronomy
10
Article|6 citations·2017
A laboratory experiment on the surface and internal waves in two-layered fluids
Donghyeong Ko, Yeunwoo Cho
SJR Q1Ocean Engineering
OceanographyEarth and Planetary Sciences
11
Article|3 citations·2024
Gravity–capillary wave-making resistance on deep water
Yeunwoo Cho
SJR Q1Physics of FluidsOA

For supercritical cases (forcing speed > the minimum phase speed, 0.23 m/s), the problem of two-dimensional linear, inviscid gravity–capillary waves generated by a moving delta-function type pressure source is well known. Using harmonic functions or Fourier transform, Lamb [Hydrodynamics, 6th ed. (Cambridge University Press, 1993)] and Rayleigh [Proc. London Math. Soc. s1-15(1), 69–78 (1883)] detailed the steady-state full-space wave-profile solution using an artificial viscosity. Whitham

Earth-Surface ProcessesEarth and Planetary Sciences
12
Article|2 citations·2017
Semi-analytical Karhunen–Loeve representation of irregular waves based on the prolate spheroidal wave functions
Gibbeum Lee, Yeunwoo Cho
SJR Q1Journal of Computational Physics
OceanographyEarth and Planetary Sciences
13
Article|2 citations·2019
Hysteresis phenomena in gravity–capillary waves on deep water generated by a moving two-dimensional/three-dimensional air-blowing/air-suction forcing
Beomchan Park, Yeunwoo Cho
SJR Q1Journal of Fluid Mechanics
OceanographyEarth and Planetary Sciences
14
dissertation|2 citations·2010
Nonlinear dynamics of three-dimensional solitary waves
Yeunwoo Cho
DSpace@MIT (Massachusetts Institute of Technology)OA

Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2010.

Statistical and Nonlinear PhysicsPhysics and Astronomy
15
Article|2 citations·2018
Long-time behavior of three-dimensional gravity-capillary solitary waves on deep water generated by a moving air-blowing forcing: Numerical study
Yeunwoo Cho
SJR Q2Physical review. E

Long-time simulations are conducted on a forced three-dimensional (3D) nonlinear viscous gravity-capillary wave equation that describes the surface wave pattern when the forcing moves on the surface of deep water with speeds less than the linear phase speed ${c}_{\mathrm{min}}=23\phantom{\rule{0.16em}{0ex}}\mathrm{cm}/\mathrm{s}$. Three different states are identified according to forcing speeds $U$ below ${c}_{\mathrm{min}}$. At relatively low speeds below a certain speed (${c}_{1}$), a steady

OceanographyEarth and Planetary Sciences

Research Areas

OceanographyEnvironmental ChemistryComputational MechanicsEarth-Surface ProcessesStatistical and Nonlinear PhysicsBiomedical Engineering

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