Man‐Sung Yim
KAIST 핵 및 양자공학과 · 공학
이 교수의 연구실은 핵에너지 안전성과 지속가능한 에너지 기술을 위한 첨단 재료 개발에 초점을 맞추고 있습니다. 특히 해수에서 우라늄을 효율적으로 추출할 수 있는 활성화탄소 기반 광물 및 바이스무트 기반 금속유기프레임워크(MOF)를 활용한 방사성 이odor화물의 고온 흡착 및 고정 기술이 핵심 연구 분야입니다. 또한, 핵발전소의 심각한 사고 상황에서의 방사성 물질 제어와 재생 가능 에너지 통합에 따른 전력 과잉 문제 해결 전략 모델링도 함께 진행하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
To support the use of nuclear power as a sustainable electric energy generating technology, long-term supply of uranium is very important. The objective of this research is to investigate the use of new adsorbent material for cost effective uranium extraction from seawater. An activated carbon-based adsorbent material is developed and tested through an electrosorption technique in this research. Adsorption of uranium from seawater by activated carbon electrodes was investigated through electroso
Public acceptance is a major issue that will determine the future of nuclear energy. In this article, we review relevant studies and identify several common patterns of nuclear public acceptance. Based on these patterns and four categories of factors, we propose hypotheses on the impact of different socioeconomic factors on the public opinion of nuclear energy. These factors were demographic and social influences, politico-economic, energy conditions, and nuclear accidents and natural risks. We
In this study, a bismuth-based metal–organic framework (Bi-MOF) was investigated in its applicability as an iodine adsorbent at high temperatures for possible applications under severe accidents in a nuclear power plant. Bi-mna was selected among Bi-MOF candidates based on its thermodynamic characteristics, which expected to allow chemisorption of iodine by bismuth. Its iodine adsorption performance was compared with zeolitic imidazolate framework-8 and Cu-BTC and other MOFs which were chosen du
The purpose of this study is to examine the feasibility of using bismuth-embedded SBA-15 (Bi-SBA-15) as gaseous iodine filtration material for applications at higher temperatures, such as environmental release severe accident mitigation, while reducing the cost of production and maintaining its iodine adsorption capacity. It was shown that Bi-SBA-15 can be produced in a much more economically feasible way by (1) increasing the amount of the chemical reagents for SBA-15 synthesis, (2) decreasing