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Methane storage in water frameworks: Self-preservation of methane hydrate pellets formed from NaCl solutions

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  • Takeya, Satoshi
  • Mimachi, Hiroko
  • Murayama, Tetsuro

Abstract

The use of methane (CH4) hydrate as a CH4 or natural gas storage medium offers an efficient and green source of energy. In this study, we produced CH4 hydrate pellets containing NaCl at up to 2.7 wt%, and storage tests were performed to investigate the stability of CH4 hydrates with NaCl at 253 or 248 K under ambient pressure. Based on assessing mass variations and powder X-ray diffraction analyses, it was determined that the dissociation rate of the hydrate greatly depends on the storage temperature. Below the eutectic point of the water-NaCl system, the hydrate exhibited self-preservation, while specimens readily dissociated at 253 K. The experimental results obtained in this study elucidate the effects of the NaCl solution on the self-preservation of CH4 hydrates, and allow a kinetic model for this self-preservation phenomenon to be proposed. The results indicate that CH4 hydrate pellets formed from sea water are a viable CH4 storage and transportation media below the eutectic temperature.

Suggested Citation

  • Takeya, Satoshi & Mimachi, Hiroko & Murayama, Tetsuro, 2018. "Methane storage in water frameworks: Self-preservation of methane hydrate pellets formed from NaCl solutions," Applied Energy, Elsevier, vol. 230(C), pages 86-93.
  • Handle: RePEc:eee:appene:v:230:y:2018:i:c:p:86-93
    DOI: 10.1016/j.apenergy.2018.08.015
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    1. Gregor Rehder & Robert Eckl & Markus Elfgen & Andrzej Falenty & Rainer Hamann & Nina Kähler & Werner F. Kuhs & Hans Osterkamp & Christoph Windmeier, 2012. "Methane Hydrate Pellet Transport Using the Self-Preservation Effect: A Techno-Economic Analysis," Energies, MDPI, vol. 5(7), pages 1-25, July.
    2. Bi, Yuehong & Guo, Tingwei & Zhu, Tingying & Fan, Shuanshi & Liang, Deqing & Zhang, Liang, 2004. "Influence of volumetric-flow rate in the crystallizer on the gas-hydrate cool-storage process in a new gas-hydrate cool-storage system," Applied Energy, Elsevier, vol. 78(1), pages 111-121, May.
    3. Gregory M. Ruiz & Tonya K. Rawlings & Fred C. Dobbs & Lisa A. Drake & Timothy Mullady & Anwarul Huq & Rita R. Colwell, 2000. "Global spread of microorganisms by ships," Nature, Nature, vol. 408(6808), pages 49-50, November.
    4. Thomas, Sydney & Dawe, Richard A, 2003. "Review of ways to transport natural gas energy from countries which do not need the gas for domestic use," Energy, Elsevier, vol. 28(14), pages 1461-1477.
    5. Veluswamy, Hari Prakash & Kumar, Asheesh & Kumar, Rajnish & Linga, Praveen, 2017. "An innovative approach to enhance methane hydrate formation kinetics with leucine for energy storage application," Applied Energy, Elsevier, vol. 188(C), pages 190-199.
    6. Li, Xiao-Sen & Xu, Chun-Gang & Zhang, Yu & Ruan, Xu-Ke & Li, Gang & Wang, Yi, 2016. "Investigation into gas production from natural gas hydrate: A review," Applied Energy, Elsevier, vol. 172(C), pages 286-322.
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    2. Kumar, Asheesh & Veluswamy, Hari Prakash & Kumar, Rajnish & Linga, Praveen, 2019. "Direct use of seawater for rapid methane storage via clathrate (sII) hydrates," Applied Energy, Elsevier, vol. 235(C), pages 21-30.
    3. Xie, Yan & Zheng, Tao & Zhong, Jin-Rong & Zhu, Yu-Jie & Wang, Yun-Fei & Zhang, Yu & Li, Rui & Yuan, Qing & Sun, Chang-Yu & Chen, Guang-Jin, 2020. "Experimental research on self-preservation effect of methane hydrate in porous sediments," Applied Energy, Elsevier, vol. 268(C).
    4. Omran, Ahmed & Nesterenko, Nikolay & Valtchev, Valentin, 2022. "Zeolitic ice: A route toward net zero emissions," Renewable and Sustainable Energy Reviews, Elsevier, vol. 168(C).
    5. Jyoti Shanker Pandey & Saad Khan & Nicolas von Solms, 2021. "Chemically Influenced Self-Preservation Kinetics of CH 4 Hydrates below the Sub-Zero Temperature," Energies, MDPI, vol. 14(20), pages 1-28, October.

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