The University of Tokyo · 공학
Ruicong Xu 교수의 연구실은 주로 수소냉각고속로(Sodium-cooled Fast Reactor, SFR)의 안전성 평가를 핵심으로 하며, 핵심 파손 사고(Core Disruptive Accident, CDA) 동안 발생하는 고온 융해물의 거동과 그에 따른 잔여물 형성 메커니즘을 연구하고 있습니다. 특히, 융해물이 냉각수와 상호작용할 때 발생하는 연기입자 생성, 분말층 형성, 그리고 고온 잔여물의 자가평탄화 행동 등 핵심 현상을 실험 및 모델링을 통해 규명하고 있습니다. 이와 더불어, 영상 기반의 활동 검색 및 에어로졸 제거 기술 등 응용 분야에서도 혁신적인 기술 개발을 진행하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Activity image-to-video retrieval task aims to retrieve videos containing the similar activity as the query image, which is a challenging task because videos generally have many background segments irrelevant to the activity. In this paper, we utilize R-C3D model to represent a video by a bag of activity proposals, which can filter out background segments to some extent. However, there are still noisy proposals in each bag. Thus, we propose an Activity Proposal-based Image-to-Video Retrieval (AP
Subspace representations have been widely applied for videos in many tasks. In particular, the subspace-based query-by-image video retrieval (QBIVR), facing high challenges on similarity-preserving measurements and efficient retrieval schemes, urgently needs considerable research attention. In this paper, we propose a novel subspace-based QBIVR framework to enable efficient video search. We first define a new geometry-preserving distance metric to measure the image-to-video distance, which trans
During the decommissioning of Fukushima Daiichi nuclear power plants, it is important to consider a retrieval of the resolidified debris for both air and underwater configurations. For the subsequent retrieval of debris from the reactor building, resolidified debris needs to be cut into smaller pieces through various cutting methodologies. During the cutting process, aerosol particles in submicron scale are expected to be generated. It has been noted that such aerosols within the Greenfield gap
Investigations on the molten-pool sloshing behavior are of essential value for improving nuclear safety evaluation of Core Disruptive Accidents (CDA) that would be possibly encountered for Sodium-cooled Fast Reactors (SFR). This paper is aimed at synthesizing the knowledge from our recent studies on molten-pool sloshing behavior with solid particles conducted at the Sun Yat-sen University. To better visualize and clarify the mechanism and characteristics of sloshing induced by local Fuel-Coolant
Evaluations of the Core Disruptive Accident (CDA) are significantly important for safety analysis of Sodium-cooled Fast Reactor (SFR) despite the very low probability of occurrence for CDA. During the material-relocation phase in CDA of SFR, the molten materials are possibly released from the core region into subcooled sodium, subsequently forming the debris bed on the lower part of the reactor vessel after being quenched and fragmented. The accumulated high-temperature debris with decay heat ca
A Sodium-cooled Fast Reactor (SFR) is one of the optimized candidates in Generation IV nuclear reactor systems, but safety is an essential issue for SFR development and application. Most knowledge was accumulated through SFR safety investigations, especially for Core Disruptive Accidents (CDAs). During the CDA of SFRs, the molten materials in the core region are likely to discharge into subcooled sodium and form a debris bed on the lower region of the reactor vessel. Noticing that elaboration on
Safety issues are particularly crucial for sodium-cooled fast reactors (SFRs). Data obtained from SFR safety analyses over recent years have shown that a specific type of sloshing motion probably occurs in the molten pool during core disruptive accidents (CDAs) of SFRs due to local neutronic power excursion or pressure developments, thereby significantly influencing recriticality. Recognizing the importance of improving the evaluation of CDAs of SFRs, extensive knowledge about this phenomenon ha