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강정신 교수

Jungshin Kang

서울대학교 에너지자원공학과 · 공학

연구실 소개

강정신 교수의 연구실은 마그네슘 및 티타늄 산화물의 고순도 금속 및 산화티타늄 제조를 위한 첨단 전기화학적 및 화학적 공정 기반의 자원 순환 기술을 핵심으로 한다. 주로 마그네시아, 석회석, 폐_SCR 촉매 등 다양한 원료에서 마그네슘 금속을 직접 생산하거나 철 등 불순물을 선택적으로 제거하는 녹색 공정을 개발하고 있으며, 특히 유리상 금속 합금 생성과 진공 증류를 통한 정련 기술도 함께 응용하고 있다. 이는 자원의 고부가가치화와 환경 친화적 자원 회수를 동시에 달성하는 데 기여한다.

마그네슘 생산티타늄 산화물 정제자원 순환전기화학적 정련녹색 공정

연구 현황

논문 수
70
총 인용 수
593
최근 5년 논문
36
주요 분야
공학

연구 성과 추이

표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.

5개년 연도별 논문 게재 수
36총합
2022
2023
2024
2025
2026
5개년 연도별 피인용 수
178총합
20222023202420252026

주요 논문

15
1
논문|인용수 50·2021
Development of a novel electrolytic process for producing high-purity magnesium metal from magnesium oxide using a liquid tin cathode
Tae-Hyuk Lee, Toru H. Okabe, Jin‐Young Lee, Young Min Kim, Jungshin Kang
SJR Q1Journal of Magnesium and AlloysOA

The current electrolytic processes for magnesium (Mg) metal have several disadvantages, such as anhydrous magnesium chloride (MgCl2) preparation and generation of harmful chlorine (Cl2) gas. To overcome these drawbacks, a novel Mg production process to produce high-purity Mg metal directly from magnesium oxide (MgO) was investigated in this study. The electrolysis of MgO was conducted using a liquid tin (Sn) cathode and a carbon (C) anode in the eutectic composition of a magnesium fluoride (MgF2

BiomaterialsMaterials Science
2
논문|인용수 41·2019
Leaching of spent selective catalytic reduction catalyst using alkaline melting for recovery of titanium, tungsten, and vanadium
Gyeonghye Moon, Jin Hyeong Kim, Jin‐Young Lee, Jungshin Kang
SJR Q1Hydrometallurgy
Biomedical EngineeringEngineering
3
논문|인용수 38·2014
Thermodynamic Consideration of the Removal of Iron from Titanium Ore by Selective Chlorination
Jungshin Kang, Toru H. Okabe
SJR Q2Metallurgical and Materials Transactions B
Mechanical EngineeringEngineering
4
논문|인용수 37·2020
Molten Salt Electrolysis of Magnesium Oxide Using a Liquid–Metal Cathode for the Production of Magnesium Metal
Tae-Hyuk Lee, Toru H. Okabe, Jin‐Young Lee, Young Min Kim, Jungshin Kang
SJR Q2Metallurgical and Materials Transactions B
Fluid Flow and Transfer ProcessesChemical Engineering
5
논문|인용수 31·2013
Removal of Iron from Titanium Ore through Selective Chlorination Using Magnesium Chloride
Jungshin Kang, Toru H. Okabe
SJR Q2MATERIALS TRANSACTIONSOA

A selective chlorination process using magnesium chloride (MgCl2) as chlorinating agent was investigated with the aim of developing a process for removing iron directly from ilmenite, which is a low-grade titanium ore known as FeTiO3. Two crucibles, one consisting of titanium ore and the other consisting of a mixture of titanium ore and MgCl2, were placed in a gas-tight quartz tube, and then both crucibles were heated to 1000 K. In some experiments, H2O vapor was introduced in the quartz tube. H

Mechanical EngineeringEngineering
6
논문|인용수 28·2022
Use of various MgO resources for high-purity Mg metal production through molten salt electrolysis and vacuum distillation
Hyeong-Jun Jeoung, Tae-Hyuk Lee, Youngjae Kim, Jin‐Young Lee, Young Min Kim, Toru H. Okabe, Kyung‐Woo Yi, Jungshin Kang
SJR Q1Journal of Magnesium and AlloysOA

A green and effective electrolytic process was developed to produce high-purity Mg metal using primary and secondary resources containing MgO as a feedstock. The electrolysis of various MgO resources was conducted using a Cu cathode in MgF2 – LiF – KCl molten salt at 1043 K by applying an average current of 1.44 A for 12.5 h. The electrolysis of calcined North Korean magnesite and seawater MgO clinker yielded Mg alloys of MgCu2 and (Cu) phases with current efficiencies of 89.6–92.4%. The electro

BiomaterialsMaterials Science
7
논문|인용수 27·2014
Production of Titanium Dioxide Directly from Titanium Ore through Selective Chlorination Using Titanium Tetrachloride
Jungshin Kang, Toru H. Okabe
SJR Q2MATERIALS TRANSACTIONSOA

For the production of high-grade titanium dioxide (TiO2) directly from titanium ore (Ti ore), a fundamental study on the development of a novel carbo-selective-chlorination method using titanium tetrachloride (TiCl4) as a chlorinating agent was carried out. In order to selectively remove iron directly from low-grade Ti ore (mainly FeTiO3), Ti ore and carbon powder were set in a gas-tight quartz tube that was then placed in a horizontal furnace to react with TiCl4 at 1100 K. In the experiments, v

Mechanical EngineeringEngineering
8
논문|인용수 26·2013
Upgrading Titanium Ore Through Selective Chlorination Using Calcium Chloride
Jungshin Kang, Toru H. Okabe
SJR Q2Metallurgical and Materials Transactions B
Mechanical EngineeringEngineering
9
논문|인용수 22·2021
Scale-Up Study of Molten Salt Electrolysis using Cu or Ag Cathode and Vacuum Distillation for the Production of High-Purity Mg Metal from MgO
Dong-Hee Lee, Hyeong-Jun Jeoung, Tae-Hyuk Lee, Kyung‐Woo Yi, Jin‐Young Lee, Young Min Kim, Toru H. Okabe, Jungshin Kang
SJR Q1Journal of Sustainable Metallurgy
Fluid Flow and Transfer ProcessesChemical Engineering
10
논문|인용수 19·2016
Removal of iron from titanium ore by selective chlorination using TiCl4 under high oxygen chemical potential
Jungshin Kang, Toru H. Okabe
International Journal of Mineral Processing
Mechanical EngineeringEngineering
11
논문|인용수 19·2022
Production of high-purity Mg metal from dolomite through novel molten salt electrolysis and vacuum distillation
Hyeong-Jun Jeoung, Tae-Hyuk Lee, Jin‐Young Lee, Kyung‐Woo Yi, Jungshin Kang
SJR Q1Journal of Magnesium and AlloysOA

In this study, a novel Mg production process for producing high-purity Mg metal from dolomite was developed. When the electrolysis of calcined dolomite was conducted using Cu cathode and C anode in MgF2 – LiF molten salt at 1083–1173 K by applying an average current of 1.42–1.46 A for 9.50–21.0 h, the current efficiency of 66.4–88.6% was obtained. The produced Mg alloys consisted of MgCu2 and Cu (Mg) or MgCu2 and CuMg2 phases, depending on the Mg concentration in the Mg alloy. When the electroly

Fluid Flow and Transfer ProcessesChemical Engineering
12
논문|인용수 17·2022
Deoxidation of Off-Grade Titanium Sponge Using Magnesium Metal in Argon and Hydrogen Mixed Gas Atmosphere
Kyung-Hwan Lim, Hyeong-Jun Jeoung, Tae-Hyuk Lee, Kyung‐Woo Yi, Jungshin Kang
SJR Q2Metallurgical and Materials Transactions B
Fluid Flow and Transfer ProcessesChemical Engineering
13
논문|인용수 17·2020
Recent Developments in the Recycling of Spent Selective Catalytic Reduction Catalyst in South Korea
In-Hyeok Choi, Yeon-Chul Cho, Gyeonghye Moon, Hee-Nam Kang, YoungBok Oh, Jin‐Young Lee, Jungshin Kang
SJR Q2CatalystsOA

Spent selective catalytic reduction (SCR) catalyst installed in power and incineration plants is used to convert nitrogen oxide (NOx) gas to nitrogen (N2) gas. Currently, most spent SCR catalyst in South Korea is eventually discarded in landfills. Recently, a novel and efficient recycling process has been developed to recover tungsten (W), vanadium (V) and titanium (Ti) from spent SCR catalyst. In this process, after soda-melting reactions between the spent SCR catalyst and sodium carbonate (Na2

Mechanical EngineeringEngineering
14
논문|인용수 15·2020
Applicability of the Electrochemical Oxygen Sensor for In-Situ Evaluation of MgO Solubility in the MgF2–LiF Molten Salt Electrolysis System
Youngjae Kim, Junsoo Yoo, Jungshin Kang
SJR Q2MetalsOA

The measurement and evaluation of MgO solubility in the molten fluoride system is of significant importance in the recently proposed magnesium electrolysis reduction process. In the present study, an in-situ quantitative method of evaluating the concentration of dissolved MgO in molten fluoride is proposed. The MgO solubility in the 32.8MgF2–67.2LiF system was measured at 1083 and 1123 K using a combustion analyzer. MgO saturation was achieved in under 2 h, and higher solubilities were observed

Fluid Flow and Transfer ProcessesChemical Engineering
15
논문|인용수 13·2022
A novel electrolytic process using a Cu cathode for the production of Mg metal from MgO
Hyeong-Jun Jeoung, Youngjae Kim, Tae-Hyuk Lee, Jin‐Young Lee, Young Min Kim, Kyung‐Woo Yi, Jungshin Kang
SJR Q2Journal of Applied Electrochemistry
BiomaterialsMaterials Science

대표 연구 분야

Fluid Flow and Transfer ProcessesMechanical EngineeringBiomedical EngineeringMaterials ChemistryBiomaterialsElectrical and Electronic Engineering

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