조영범 교수
JO YOUNGBEOM
경희대학교 원자력공학과 · 공학
연구실 소개
조영범 교수 연구실은 핵열유체 및 구조물의 복잡한 비선형 거동을 정밀하게 해석하기 위해 메쉬리스 수치해석 기법, 특히 스플라인 유한요소 기반의 Smoothed Particle Hydrodynamics(SPH) 기법을 핵심으로 연구를 전개하고 있습니다. 특히 고속 충격, 증기 폭발, 액체 금속의 유동 및 열전달, 콘크리트 및 금속의 고속 파손 현상 등 극한 조건에서의 안전성 평가를 목표로 하며, GPU 병렬 계산 기반의 고성능 시뮬레이션 기술을 접목하여 실제 원자로 설계 및 사고 분석에 응용 가능한 정밀한 수치 모델을 개발하고 있습니다. 이는 원자로의 안전성 확보와 심각한 사고 대응 능력을 향상시키는 데 기여하고 있습니다.
연구 현황
연구 성과 추이
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
주요 논문
15Advanced modeling and analysis are always essential for the development of safe and reliable nuclear systems. Traditionally, the numerical analysis codes used for nuclear thermal hydraulics and safety are mostly based on mesh-based (or grid-based) methods, which are very mature for well-defined and fixed domains, both mathematically and numerically. In support of their robustness and efficiency, they have been well-fit into many nuclear applications for the last several decades. However, the rec
Abstract In this article, we propose a simple, consistent, and robust Eulerian–Lagrangian weakly compressible smoothed particle hydrodynamics (EL‐WCSPH) for the simulation of hydrodynamics and convection heat transfer problems. First, the basic governing equation is formulated using the ALE‐SPH framework. The universal formulation is similar to the standard WCSPH, but the degree of Eulerian and Lagrangian schemes can be controlled by inserting a pre‐defined arbitrary parameter . To alleviate pot
The Smoothed Particle Hydrodynamics is one of the most widely used mesh-free numerical method for thermo-fluid dynamics. Due to its Lagrangian nature and simplicity, it is recently gaining popularity in simulating complex physics with large deformations. In this study, the 3D single/two-phase numerical simulations are performed on the Liquid Metal Reactor (LMR) centralized sloshing benchmark experiment using the SPH parallelized using a GPU. In order to capture multi-phase flows with a large den
Abstract Accurately analyzing local failure areas, such as penetration or perforation in concrete structures under extreme conditions, such as those caused by shaped charge jet penetration, is of paramount importance for ensuring structural integrity and safety. This study addresses these challenging problems by developing a GPU-parallelized smoothed particle hydrodynamics solver, which incorporates advanced multiphase SPH models, complex constitutive models, and equations of state (EOS) for met
Steam explosions in nuclear reactors pose significant risks to reactor safety and containment integrity during severe accidents. This study addresses the challenges of accurately simulating shockwave propagation and structural impact in such events by establishing a unified Smoothed Particle Hydrodynamics (SPH) framework. The proposed SPH model was optimized using GPU parallelization and validated against experimental results from shock tube, underwater explosion and high-velocity impact tests,
The cover image is based on the Research Article A simple Eulerian–Lagrangian weakly compressible smoothed particle hydrodynamics method for fluid flow and heat transfer by Hee Sang Yoo et al., https://doi.org/10.1002/nme.7148.
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