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Jae‐Jin Kim

Korea University · 環境科学

研究室紹介

Professor Jae-Jin Kim's research lab specializes in urban atmospheric dispersion, focusing on the interaction between airflow, pollutant transport, and urban microclimates. The lab employs advanced computational fluid dynamics (CFD) modeling to investigate how urban morphology, green infrastructure (such as trees and green roofs), and thermal effects influence wind comfort, air quality, and pollutant dispersion in street canyons. Key research directions include the impact of building geometry, urban vegetation, and passive cooling strategies on near-surface airflows and pedestrian-scale environmental conditions. The lab emphasizes both numerical simulation and validation through wind-tunnel experiments and field measurements.

urban dispersioncomputational fluid dynamicsgreen infrastructurestreet canyon aerodynamicsair quality modeling

Research Overview

Papers
184
Total Citations
3,204
Papers (5y)
43
Primary Field
環境科学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
43total
2021
2022
2023
2024
2025
Citations per year (5y)
226total
20212022202320242025

Selected Papers

15
1
Article|320 citations·2004
A numerical study of the effects of ambient wind direction on flow and dispersion in urban street canyons using the RNG k?? turbulence model
Jae‒Jin Kim
SJR Q1Atmospheric Environment
Environmental EngineeringEnvironmental Science
2
Article|198 citations·2001
Urban street-canyon flows with bottom heating
Jae‒Jin Kim, Jong‐Jin Baik
SJR Q1Atmospheric Environment
Environmental EngineeringEnvironmental Science
3
Article|176 citations·1999
A Numerical Study of Thermal Effects on Flow and Pollutant Dispersion in Urban Street Canyons
Jae‒Jin Kim, Jong‐Jin Baik
Journal of Applied Meteorology

This study investigates thermal effects on the flow and pollutant dispersion in urban street canyons. A two-dimensional numerical model with a k–ϵ turbulent closure scheme is developed, and the heat transfer between the air and the building wall or street-canyon bottom is effectively represented by a wall function. For each of seven cases with different aspect ratios (building height/width between buildings = 0.5, 1, 1.5, 2, 2.5, 3, and 3.5), four thermal situations (no heating, upwind building-

Environmental EngineeringEnvironmental Science
4
Article|118 citations·2002
Effects of inflow turbulence intensity on flow and pollutant dispersion in an urban street canyon
Jae‒Jin Kim, Jong‐Jin Baik
SJR Q1Journal of Wind Engineering and Industrial Aerodynamics
Environmental EngineeringEnvironmental Science
5
Article|105 citations·2020
Computational fluid dynamics simulation of tree effects on pedestrian wind comfort in an urban area
Geon Kang, Jae‒Jin Kim, Won‐Sik Choi
SJR Q1Sustainable Cities and SocietyOA

In this study, we applied a computational fluid dynamics (CFD) model incorporating a tree drag parameterization scheme to investigate how the presence of trees improved pedestrian wind comfort on the urban campus of Pukyong National University (PKNU). We comprehensively analyzed pedestrian wind comfort considering wind inflow direction and observed frequency. To validate the CFD model, we conducted sensitivity simulations by varying the vertical profiles of leaf area density (LAD) and compared o

Environmental EngineeringEnvironmental Science
6
Article|69 citations·2010
Effects of street-bottom and building-roof heating on flow in three-dimensional street canyons
Jae‒Jin Kim, Jong‐Jin Baik
SJR Q1Advances in Atmospheric Sciences
Environmental EngineeringEnvironmental Science
7
Article|61 citations·2015
Characteristics of flow and reactive pollutant dispersion in urban street canyons
Soo-Jin Park, Jae‒Jin Kim, Minjoong J. Kim, Rokjin J. Park, H. B. Cheong
SJR Q1Atmospheric Environment
Environmental EngineeringEnvironmental Science
8
Article|60 citations·2017
Development of a computational fluid dynamics model with tree drag parameterizations: Application to pedestrian wind comfort in an urban area
Geon Kang, Jae‒Jin Kim, Dong-Ju Kim, Won‐Sik Choi, Soo-Jin Park
SJR Q1Building and Environment
Environmental EngineeringEnvironmental Science
9
Article|45 citations·2020
Wind speed estimation in urban areas based on the relationships between background wind speeds and morphological parameters
Jang-Woon Wang, Hojin Yang, Jae‒Jin Kim
SJR Q1Journal of Wind Engineering and Industrial AerodynamicsOA

This study proposes a method for estimating wind speeds. The method determined the rate of change in wind speed associated with the morphological parameters in the urban or suburban districts by conducting multiple regression analyses. Then, it estimated wind speeds by combining the change rate and inflow wind speeds in Gangnam-gu (GD), Yangcheon-gu (YD), and Pyeongtaek City (PD). Compared to the local data assimilation and prediction system (LDAPS), the estimation method decreased the root mean

Environmental EngineeringEnvironmental Science
10
Article|39 citations·2016
Effects of building–roof cooling on the flow and dispersion of reactive pollutants in an idealized urban street canyon
Soo-Jin Park, Won‐Sik Choi, Jae‒Jin Kim, Minjoong J. Kim, Rokjin J. Park, Kyung‐Soo Han, Geon Kang
SJR Q1Building and EnvironmentOA

This study investigated the characteristics of the flow and dispersion of reactive pollutants in three-dimensional idealized street canyons in the presence of building-roof cooling to provide implications in how a green-roof system contributes to mitigating of pedestrian exposure to near-roadway air pollution in street canyons. The pollutant chemistry was simulated using a coupled CFD-chemistry model. In the presence of building-roof cooling, winds and temperature fields inside the building cano

Environmental EngineeringEnvironmental Science
11
Article|35 citations·2019
Flow Characteristics Around Step-Up Street Canyons with Various Building Aspect Ratios
Soo-Jin Park, Jae‒Jin Kim, Won‐Sik Choi, EunRyoung Kim, Chang‐Keun Song, Eric R. Pardyjak
SJR Q2Boundary-Layer MeteorologyOA

Abstract We investigate the flow characteristics around step-up street canyons with various building aspect ratios (ratio of along-canyon building length to street-canyon width, and upwind building height to downwind building height) using a computational fluid dynamics (CFD) model. Simulated results are validated against experimental wind-tunnel results, with the CFD simulations conducted under the same building configurations as those in the wind-tunnel experiments. The CFD model reproduces th

Environmental EngineeringEnvironmental Science
12
Article|27 citations·2024
How trees’ drag and cooling effects influence airflow and temperature distributions around a street canyon
Da‒Som Mun, Geon Kang, Minjune Yang, Jae‒Jin Kim
SJR Q1Building and Environment
Environmental EngineeringEnvironmental Science
13
Article|27 citations·2005
Physical experiments to investigate the effects of street bottom heating and inflow turbulence on urban street-canyon flow
Jae‒Jin Kim, Jong‐Jin Baik
SJR Q1Advances in Atmospheric Sciences
Environmental EngineeringEnvironmental Science
14
Article|20 citations·2023
Effects of Vertical Forests on Air Quality in Step-up Street Canyons
Geon Kang, Jae‒Jin Kim
SJR Q1Sustainable Cities and SocietyOA

Vertical forests have been constructed as environmentally friendly solutions for air quality and urban heat problems. With an expectation to provide insights into the value of vertical forests, we examined the impact of these structures on flows and distribution of fine particles in step-up street canyons using a computational fluid dynamics (CFD) model. The CFD model was rigorously validated against wind-tunnel experiments and accurately simulated particle deposition efficiency by tree leaves u

Environmental EngineeringEnvironmental Science
15
Article|19 citations·2009
Effects of a building’s density on flow in urban areas
Jae‒Jin Kim, Do-Yong Kim
SJR Q1Advances in Atmospheric Sciences
Environmental EngineeringEnvironmental Science

Research Areas

Environmental EngineeringAtmospheric ScienceWater Science and TechnologyHealth, Toxicology and MutagenesisEcologyAerospace Engineering

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