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고준위방사성폐기물 처분장 내 열-수리-역학-화학적 복합거동 해석을 위한 국제공동연구 DECOVALEX-2023에서 수행 중인 연구 과제 소개
Introduction to Tasks in the International Cooperation Project, DECOVALEX-2023 for the Simulation of Coupled Thermohydro-mechanical-chemical Behavior in a Deep Geological Disposal of High-level Radioactive Waste 원문보기

터널과 지하공간: 한국암반공학회지 = Tunnel and underground space, v.31 no.3, 2021년, pp.167 - 183  

김태현 (한국원자력연구원) ,  이창수 (한국원자력연구원) ,  김정우 (한국원자력연구원) ,  강신항 (한국원자력연구원) ,  권새하 (한국원자력연구원) ,  김광일 (한국원자력연구원) ,  박정욱 (한국지질자원연구원) ,  박찬희 (한국지질자원연구원) ,  김진섭 (한국원자력연구원)

초록
AI-Helper 아이콘AI-Helper

고준위방사성폐기물 처분장의 장기 안전성 확보를 위해서는 공학적방벽천연방벽 내에서 발생하는 복잡한 열-수리-역학-화학적(THMC) 복합거동 해석에 대한 이해가 필수적이다. 특히 고준위방사성폐기물에서 발생하는 열로 인해 암반 및 완충재 내의 지하수에서 압력 증가 및 상변화가 발생하게 되며, 지하수의 유입으로 인해 공학적방벽 내 포화도가 변화하게 된다. 또한 포화도의 변화는 완충재 내에서의 열전달다상 유동 특성에 영향을 미치게 된다. 따라서 복합거동 특성의 복잡성으로 인해 수치해석은 처분시스템에서의 THMC 복합거동 평가와 예측 및 안전성 평가에 있어 강점을 지니고 있으며, DECOVALEX 국제공동연구는 THMC 복합거동에 대한 이해도 증진 및 해석기법 검증을 목적으로 1992년부터 시작되었다. 국내에서는 2008년부터 한국원자력연구원이 지속적으로 참여하여 연구를 수행하고 있으며, 본 기술보고에서는 현재 진행 중인 DECOVALEX-2023의 주요 연구내용을 국내 암반 및 지반공학자들에게 소개하였다.

Abstract AI-Helper 아이콘AI-Helper

It is essential to understand the complex thermo-hydro-mechanical-chemical (THMC) coupled behavior in the engineered barrier system and natural barrier system to secure the high-level radioactive waste repository's long-term safety. The heat from the high-level radioactive waste induces thermal pres...

주제어

표/그림 (10)

참고문헌 (43)

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