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論文

Viscosity and density measurements of melts and glasses at high pressure and temperature by using the multi-anvil apparatus and synchrotron X-ray radiation

大谷 栄治*; 鈴木 昭夫*; 安藤 良太*; 浦川 啓*; 舟越 賢一*; 片山 芳則

Advances in High-Pressure Technology for Geophysical Applications, p.195 - 209, 2005/09

本論文は第3世代放射光SPring-8でのX線ラジオグラフィーと吸収法による高温高圧での珪酸塩融体とガラスの粘性及び密度測定技術についてまとめたものである。X線ラジオグラフィーその場観察による落下球法は、珪酸塩融体の粘性を高温下で6GPaを超える圧力まで測定することを可能にした。われわれは粘性測定の実験技術の詳細と、アルバイトやジオプサイド-ジェダイド系などの幾つかの珪酸塩の測定結果を紹介する。X線吸収法が、バサルトガラスや鉄ナトリウム珪酸塩ガラスの高温下で圧力5GPaまでの密度測定に適用された。これらのガラスの密度測定の結果は、この方法が高温高圧での珪酸塩融体の密度測定に有用であることを示している。

口頭

Preliminary evaluation of the fuel debris behavior below the RPV lower head boundary of 1F Unit-2

坂東 大都*; 佐々木 凌太郎*; 福田 貴斉*; 山路 哲史*; 山下 拓哉

no journal, , 

As one of the three tasks of "Project of Decommissioning, Contaminated Water and Treated Water Management (Development of Analysis and Estimation Technologies for Characterization of Fuel Debris) (Development of Estimation Technologies of RPV Damaged Condition, etc.)", this study presents evaluation of the fuel debris behavior below the damaged RPV lower head boundary of Fukushima Daiichi Nuclear Power Station (1F) Unit-2. The focus of the study is to evaluate the debris behavior at the time of / after the failure of the RPV boundary. It is expected to provide more comprehensive understanding of the precedingly obtained muon image, which seemed to indicate that a large amount of highly-dense materials distributed between the RPV lower head and the thermal insulation structures just below the RPV. The Moving Particle Semi-implicit (MPS) method is being developed to evaluate the fuel debris behavior in/under the actual plant geometry and conditions. The melt behavior analysis code, based on the MPS method, is being developed to analyze the following two debris behaviors. Firstly, the debris discharge behavior from penetration tube structures is analyzed. The solidified debris blocks are represented by rigid bodies, using the Passively Moving Solid (PMS) model with consideration of decay heat of the oxidic fuel debris. The relocations of the oxidic debris involving melting of the surrounding metallic debris and the penetration tube wall structure are analyzed. Secondly, the melt behavior on / through the multi-layered thermal insulation structures below the RPV is analyzed. The discharged melt from the RPV boundary may freeze on the insulation plate, depending on the thermal condition in the pedestal and the discharged melt history.

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