Microstructural Study on Dissolution of Natural Methane Hydrate by Multicontrast and Multiscale X-ray Computed Tomography

被引:4
|
作者
Takeya, Satoshi [5 ]
Hachikubo, Akihiro [1 ]
Sakagami, Hirotoshi [1 ]
Minami, Hirotsugu [1 ]
Yamashita, Satoshi [1 ]
Takahashi, Masayoshi [2 ]
Hirano, Keiichi [3 ]
Hyodo, Kazuyuki [3 ]
Yoneyama, Akio [4 ]
机构
[1] Kitami Inst Technol, Kitami 0908507, Japan
[2] Tohoku Univ, Sendai 9808579, Japan
[3] High Energy Accelerator Res Org, Tsukuba 3050801, Japan
[4] SAGA Light Source, Saga 8410005, Japan
[5] Natl Inst Adv Ind Sci & Technol, Tsukuba 3058565, Japan
来源
JOURNAL OF PHYSICAL CHEMISTRY C | 2023年 / 127卷 / 49期
基金
日本学术振兴会;
关键词
GAS-HYDRATE; CLATHRATE HYDRATE; DISSOCIATION; MICROBUBBLES; PRESERVATION; FLOW;
D O I
10.1021/acs.jpcc.3c06655
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Understanding the dissolution processes of natural methane (CH4) hydrates is important for the quantification of CH4 released into seawater used to assess unconventional natural gas resources. In this study, the spatial relationships among CH4 hydrates and seawater in frozen natural sediments obtained from the Sea of Okhotsk were successfully visualized using multicontrast and multiscale X-ray computed tomography. It was revealed that dissociation of the CH4 hydrates led to the formation of microbubbles and that the microbubbles were maintained at the boundary in a thin seawater layer with a thickness of 100-200 mu m. These results indicate that CH4 concentrations at the CH4 hydrate-seawater boundary layers were higher than those estimated from CH4 solubility in seawater, suggesting that ocean CH4 hydrates can exist longer even in seawater unsaturated with CH4. Experiments with such high-resolution techniques have enabled the control of dissolution rates, which can be useful for pore-scale CH4 emission and production.
引用
收藏
页码:23973 / 23979
页数:7
相关论文
共 50 条
  • [31] Industrial X-ray computed tomography
    Pechstein, Torsten
    TM-TECHNISCHES MESSEN, 2020, 87 (02) : 79 - 80
  • [32] Dynamic X-ray computed tomography
    Bonnet, S
    Koenig, A
    Roux, S
    Hugonnard, P
    Guillemaud, R
    Grangeat, P
    PROCEEDINGS OF THE IEEE, 2003, 91 (10) : 1574 - 1587
  • [33] Design for X-Ray Computed Tomography
    Moroni, Giovanni
    Petro, Stefano
    29TH CIRP DESIGN CONFERENCE 2019, 2019, 84 : 173 - 178
  • [34] Industrial computed X-ray tomography
    Luthi, T
    Flisch, A
    Wyss, P
    INSIGHT, 1998, 40 (03) : 196 - 197
  • [35] Dose in x-ray computed tomography
    Kalender, Willi A.
    PHYSICS IN MEDICINE AND BIOLOGY, 2014, 59 (03): : R129 - R150
  • [36] X-ray computed tomography of the heart
    Wijesekera, Nevin T.
    Duncan, Mark K.
    Padley, Simon P. G.
    BRITISH MEDICAL BULLETIN, 2010, 93 (01) : 49 - 67
  • [37] Multiscale analysis of carbon/carbon composite pores based on X-ray computed tomography
    Ying, Zhiping
    Chen, Haiyang
    Wu, Zhenyu
    Xiang, Lixue
    Peng, Laihu
    Cheng, Xiaoying
    Wu, Xinfeng
    JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2025, 45 (02)
  • [38] X-ray computed tomography using projection X-ray microscope
    Yoshimura, F
    Miyata, C
    Kuzuryu, C
    Hori, A
    Obi, T
    Ohyama, N
    DEVELOPMENTS IN X-RAY TOMOGRAPHY III, 2002, 4503 : 166 - 171
  • [39] Microstructural characterisation of commercial kiwifruit cultivars using X-ray micro computed tomography
    Cantre, Dennis
    East, Andrew
    Verboven, Pieter
    Araya, Ximenita Trejo
    Herremans, Els
    Nicolai, Bart M.
    Pranamornkith, Thamarath
    Loh, Michael
    Mowat, Alistair
    Heyes, Julian
    POSTHARVEST BIOLOGY AND TECHNOLOGY, 2014, 92 : 79 - 86
  • [40] Predicting mini-tablet dissolution performance utilizing X-ray computed tomography
    Borjigin, Tohn
    Zhan, Xi
    Li, Jiangwei
    Meda, Alvin
    Tran, Kenny K.
    EUROPEAN JOURNAL OF PHARMACEUTICAL SCIENCES, 2023, 181