このアイテムのアクセス数: 138

このアイテムのファイル:
ファイル 記述 サイズフォーマット 
j.sandf.2022.101207.pdf2 MBAdobe PDF見る/開く
タイトル: Multi-physics numerical analyses for predicting the alterations in permeability and reactive transport behavior within single rock fractures depending on temperature, stress, and fluid pH conditions
著者: Ogata, Sho
Nishira, Eita
Yasuhara, Hideaki  kyouindb  KAKEN_id  orcid https://orcid.org/0000-0003-4557-4692 (unconfirmed)
Kinoshita, Naoki
Inui, Toru
Kishida, Kiyoshi  kyouindb  KAKEN_id  orcid https://orcid.org/0000-0003-1588-4024 (unconfirmed)
著者名の別形: 岸田, 潔
キーワード: Reactive transport model
Rock fracture
Fracture permeability
Geochemical reactions
Pressure dissolution
Fluid pH
発行日: Dec-2022
出版者: Elsevier BV
The Japanese Geotechnical Society
誌名: Soils and Foundations
巻: 62
号: 6
論文番号: 101207
抄録: The aim of the current study was to establish a validated numerical model for addressing the changes in permeability and reactive transport behavior within rock fractures based on the fluid pH under coupled thermal-hydraulic-mechanical-chemical (THMC) conditions. Firstly, a multi-physics reactive transport model was proposed, considering the geochemical reactions that depend on the temperature, stress, and fluid chemistry conditions (e.g., fluid pH and solute concentrations), as well as the changes in permeability in the rock fractures driven by these reactions, after which the correctness of the model implementation was verified by solving the 1D reactive transport problem as a fundamental benchmark. Secondly, the validity of the model against actual rock fractures was investigated by utilizing the model to replicate the measurements of the evolving permeability and the effluent element concentrations in single granite fractures obtained by means of two flow-through experiments using deionized water (pH ∼ 6) and a NaOH aqueous solution (pH ∼ 11) as permeants under stressed, temperature-elevated conditions. The model predictions efficiently followed the changes in fracture permeability over time measured by both experiments. Additionally, the observed difference in the changing rates, which may contribute to the difference in the fluid pH between the two experiments, was also captured exactly by the predictions. Moreover, in terms of the effluent element concentrations, among all the elements targeted for measurement, the concentrations of most elements were replicated by the model within one order of discrepancy. Overall, it can be concluded that the developed model should be valid for estimating the changes in permeability and reactive transport behavior within rock fractures induced by geochemical reactions which depend on the fluid pH under coupled THMC conditions.
著作権等: © 2022 Production and hosting by Elsevier B.V. on behalf of The Japanese Geotechnical Society.
This is an open access article under the CC BY license.
URI: http://hdl.handle.net/2433/279210
DOI(出版社版): 10.1016/j.sandf.2022.101207
出現コレクション:学術雑誌掲載論文等

アイテムの詳細レコードを表示する

Export to RefWorks


出力フォーマット 


このアイテムは次のライセンスが設定されています: クリエイティブ・コモンズ・ライセンス Creative Commons