Sungyeol Choi
Seoul National University · 工学
研究室紹介
Professor Sungyeol Choi's research lab specializes in nuclear energy systems and advanced nuclear technologies, with a strong focus on nuclear fuel cycle management, radioactive aerosol behavior, and in-situ monitoring in harsh environments. The lab investigates critical challenges in nuclear decommissioning, including aerosol dynamics, corrosion-related deposits (CRUD), and spent fuel reprocessing scenarios, particularly in the context of China’s expanding nuclear energy program. Advanced diagnostic techniques such as laser-induced breakdown spectroscopy (LIBS) are developed and applied for real-time, high-precision elemental analysis in extreme conditions. The lab also explores plasma physics phenomena, such as magnetic reconnection in fusion-relevant devices, to support next-generation energy solutions.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15Radioactive aerosols from nuclear power plant decommissioning have not been actively studied compared to those from severe accidents. However, it will be more critical issues in the future. The radioactive aerosols will deposit on the surfaces of matter and disperse in the working space. Hence, the workers in nuclear power plant decommissioning may inhale some of the aerosols during the normal operation or accident. The health effects of aerosols depend not only on the particle size but also on
The cause for sudden reconnection in reversed field pinch plasmas is determined experimentally for two cases: large reconnection events (the sawtooth crash) and small reconnection events during improved confinement. We measure the term in the MHD equations which represents the driving (or damping) of edge tearing modes due to the axisymmetric magnetic field. The term is negative for large reconnection events (the modes are stable, implying that reconnection may be driven by nonlinear coupling to
Simulating the Corrosion-Related Unidentified Deposit (CRUD) on the surface of fuel assemblies is necessary to predict the axial offset anomaly and the localized corrosion induced by the CRUD during the operation of nuclear power plants. A new CRUD model was developed to predict the formation of the CRUD deposits, considering the deposition and erosion mechanisms. The heat transfer and capillary flow within the CRUD were also considered to evaluate the boiling amount within the CRUD layer. This
The rapid expansion of nuclear energy in China has intensified concerns regarding spent fuel management. However, the consequences of failure or delay in developing approaches to managing spent fuel in China have not yet been explicitly analyzed. Thus, a dynamic analysis of transitions in nuclear fuel cycles in China to 2050 was conducted. This multi-disciplinary study compares the environmental, security, and economic consequences of choices among ongoing technology development options for spen
An advanced nuclear reactor based on molten salts including a molten salt reactor and pyroprocessing needs a sensitive monitoring system suitable for operation in harsh environments with limited access. Multi-element detection is challenging with the conventional technologies that are compatible with the in-situ operation; hence laser-induced breakdown spectroscopy (LIBS) has been investigated as a potential alternative. However, limited precision is a chronic problem with LIBS. We increased the