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Sangyeob Chung

Yonsei University · 工学

研究室紹介

Professor Sangyeob Chung's research lab specializes in advanced cement-based materials, with a strong focus on sustainable construction materials and lightweight concrete systems. The lab investigates the microstructural characteristics, pore distribution, and mechanical properties of foamed and lightweight concretes, particularly through non-destructive imaging techniques like micro-CT. Key research directions include the use of recycled materials—such as waste glass and fly ash—alongside nanomaterials like nanosilica to enhance performance and durability. The lab also explores printable mortars for additive manufacturing, emphasizing hydration kinetics, rheology, and transport properties.

lightweight concretefoamed concretemicro-CT imagingnanosilicarecycled aggregates

Research Overview

Papers
130
Total Citations
3,033
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)
355total
20222023202420252026

Selected Papers

15
1
Article|186 citations·2019
Overview of the use of micro-computed tomography (micro-CT) to investigate the relation between the material characteristics and properties of cement-based materials
Sang-Yeop Chung, Ji Su Kim, Dietmar Stephan, Tong‐Seok Han
SJR Q1Construction and Building Materials
Civil and Structural EngineeringEngineering
2
Article|116 citations·2017
Evaluation of the Effects of Crushed and Expanded Waste Glass Aggregates on the Material Properties of Lightweight Concrete Using Image-Based Approaches
Sang-Yeop Chung, Mohamed Abd Elrahman, Paweł Sikora, Teresa Rucińska, Elżbieta Horszczaruk, Dietmar Stephan
SJR Q2MaterialsOA

Recently, the recycling of waste glass has become a worldwide issue in the reduction of waste and energy consumption. Waste glass can be utilized in construction materials, and understanding its effects on material properties is crucial in developing advanced materials. In this study, recycled crushed and expanded glasses are used as lightweight aggregates for concrete, and their relation to the material characteristics and properties is investigated using several approaches. Lightweight concret

Building and ConstructionEngineering
3
Article|114 citations·2019
Comparison of lightweight aggregate and foamed concrete with the same density level using image-based characterizations
Sang-Yeop Chung, Mohamed Abd Elrahman, Ji Su Kim, Tong‐Seok Han, Dietmar Stephan, Paweł Sikora
SJR Q1Construction and Building Materials
Civil and Structural EngineeringEngineering
4
Article|103 citations·2017
Pore Characteristics and Their Effects on the Material Properties of Foamed Concrete Evaluated Using Micro-CT Images and Numerical Approaches
Sang-Yeop Chung, C.W. Lehmann, Mohamed Abd Elrahman, Dietmar Stephan
SJR Q2Applied SciencesOA

Foamed concrete contains numerous pores inside the material, and these pores are a significant factor determining the material characteristics. In particular, the pore distribution characteristics of foamed concrete significantly affect its thermal and mechanical properties. Therefore, an appropriate investigation is necessary for a more detailed understanding of foamed concrete. Here, a set of foamed concrete samples with different densities is used in order to investigate the density effects o

Civil and Structural EngineeringEngineering
5
Article|89 citations·2020
Evaluating the effects of nanosilica on the material properties of lightweight and ultra-lightweight concrete using image-based approaches
Paweł Sikora, Teresa Rucińska, Dietmar Stephan, Sang-Yeop Chung, Mohamed Abd Elrahman
SJR Q1Construction and Building MaterialsOA

This work is aimed at characterizing the effects of nanosilica (NS) on the properties of lightweight aggregate concretes with different densities. Lightweight aggregate concrete (LWAC) and ultra-lightweight aggregate concrete (ULWAC) with targeted oven-dry densities of 850 kg/m3 and 450 kg/m3, respectively, were produced. The mixtures were modified by replacing cement with nanosilica, in concentrations of 1, 2, 5 and 10 wt-%. For comparison purposes, control specimens containing either cement al

Civil and Structural EngineeringEngineering
6
Article|84 citations·2015
Evaluation of effect of glass beads on thermal conductivity of insulating concrete using micro CT images and probability functions
Sang-Yeop Chung, Tong‐Seok Han, Se Yun Kim, Jang-Ho Jay Kim, Kwang Soo Youm, Jae-Hong Lim
SJR Q1Cement and Concrete Composites
Civil and Structural EngineeringEngineering
7
Article|83 citations·2021
The effects of nanosilica on the fresh and hardened properties of 3D printable mortars
Paweł Sikora, Sang-Yeop Chung, Maxime Liard, Didier Lootens, Tobias Dorn, Paul H. Kamm, Dietmar Stephan, Mohamed Abd Elrahman
SJR Q1Construction and Building MaterialsOA

This study presents the experimental results of an investigation on the effects of nanosilica (NS) on the material characteristics of printable mortars used for additive manufacturing. Printable cement mortars based on Ordinary Portland Cement, limestone filler and silica sand were modified with different dosages of nanosilica (from 2% to 6% by weight of binder) and its influence on their hydration, rheological, mechanical and transport properties was assessed. The study showed that NS accelerat

Building and ConstructionEngineering
8
Article|66 citations·2020
Investigation of phase composition and microstructure of foamed cement paste with different supplementary cementing materials
Sang-Yeop Chung, Ji Su Kim, C.W. Lehmann, Dietmar Stephan, Tong‐Seok Han, Mohamed Abd Elrahman
SJR Q1Cement and Concrete Composites
Civil and Structural EngineeringEngineering
9
Article|65 citations·2019
Preparation and Characterization of Ultra-Lightweight Foamed Concrete Incorporating Lightweight Aggregates
Mohamed Abd Elrahman, Mohamed E. El Madawy, Sang-Yeop Chung, Paweł Sikora, Dietmar Stephan
SJR Q2Applied SciencesOA

Increasing interest is nowadays being paid to improving the thermal insulation of buildings in order to save energy and reduce ecological problems. Foamed concrete has unique characteristics and considerable potential as a promising material in construction applications. It is produced with a wide range of dry densities, between 600 and 1600 kg/m3. However, at a low density below 500 kg/m3, it tends to be unstable in its fresh state while exhibiting high drying shrinkage in its hardened state. I

Civil and Structural EngineeringEngineering
10
Article|55 citations·2020
Comparison of the pore size distributions of concretes with different air-entraining admixture dosages using 2D and 3D imaging approaches
Sang-Yeop Chung, Paweł Sikora, Teresa Rucińska, Dietmar Stephan, Mohamed Abd Elrahman
SJR Q1Materials CharacterizationOA

This study aims to more accurately investigate the pore size distribution of air voids in cement-based materials. For this purpose, micro-computed tomography (micro-CT) images were used to describe the inner structure of target materials, without damaging them. Together with the data obtained and the imaging techniques used, the pore structures of the specimens were visualized in 3D, with the pore size distributions being investigated using a volume-based method. The chord-length distribution, a

Civil and Structural EngineeringEngineering
11
Article|55 citations·2021
Effect of different expanded aggregates on durability-related characteristics of lightweight aggregate concrete
Sang-Yeop Chung, Paweł Sikora, Dong Joo Kim, Mohamed E. El Madawy, Mohamed Abd Elrahman
SJR Q1Materials Characterization
Civil and Structural EngineeringEngineering
12
Article|55 citations·2018
The influence of different concrete additions on the properties of lightweight concrete evaluated using experimental and numerical approaches
Sang-Yeop Chung, Mohamed Abd Elrahman, Dietmar Stephan, Paul H. Kamm
SJR Q1Construction and Building Materials
Civil and Structural EngineeringEngineering
13
Article|51 citations·2021
The performance of ultra-lightweight foamed concrete incorporating nanosilica
Mohamed Abd Elrahman, Paweł Sikora, Sang-Yeop Chung, Dietmar Stephan
SJR Q1Archives of Civil and Mechanical EngineeringOA

Abstract This paper aims to investigate the feasibility of the incorporation of nanosilica (NS) in ultra-lightweight foamed concrete (ULFC), with an oven-dry density of 350 kg/m 3 , in regard to its fresh and hardened characteristics. The performance of various dosages of NS, up to 10 wt.-%, were examined. In addition, fly ash and silica fume were used as cement replacing materials, to compare their influence on the properties of foamed concrete. Mechanical and physical properties, drying shrink

Civil and Structural EngineeringEngineering
14
Article|51 citations·2022
Insight into the microstructural and durability characteristics of 3D printed concrete: Cast versus printed specimens
Paweł Sikora, Mateusz Techman, Karol Federowicz, A.M. El-Khayatt, H. A. Saudi, Mohamed Abd Elrahman, M. Hoffmann, Dietmar Stephan, Sang-Yeop Chung
SJR Q1Case Studies in Construction MaterialsOA

This study presents the comparison of microstructural and durability characteristics of 3D printed concrete (3DPC) depending on its production method (printing or casting). Printed samples with different numbers of layers, as well as a cast specimen with an identical mix composition, were produced and compared, with their microstructural pore and solid characteristics quantitatively and qualitatively investigated. For this purpose, scanning electron microscopy (SEM), mercury intrusion porosimetr

Building and ConstructionEngineering
15
Article|46 citations·2014
Investigation of the permeability of porous concrete reconstructed using probabilistic description methods
Sang-Yeop Chung, Tong‐Seok Han, Se-Yun Kim, Tae‐Hyung Lee
SJR Q1Construction and Building Materials
Civil and Structural EngineeringEngineering

Research Areas

Civil and Structural EngineeringBuilding and ConstructionMaterials ChemistryMechanics of MaterialsEnvironmental EngineeringPollution

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