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Energy-efficient natural gas hydrate production using gas exchange

Author

Listed:
  • Koh, Dong-Yeun
  • Kang, Hyery
  • Lee, Jong-Won
  • Park, Youngjune
  • Kim, Se-Joon
  • Lee, Jaehyoung
  • Lee, Joo Yong
  • Lee, Huen

Abstract

Breaking the bounds of classical natural gas hydrate (NGH) production processes, a newborn concept based on the gas exchange mechanism provides an opportunity to catch two birds with one stone: simultaneously achieving the sequestration of CO2 for climate change mitigation and the enhanced recovery of CH4 for energy production. As a ‘new paradigm’ in NGH production schemes, the non-destructive gas exchange as one of the most stable and promising NGH recovery approaches has received much attention in the fields of physics, chemistry, chemical engineering, civil engineering, petroleum engineering and geology. In this review, we assess the state-of-the-art gas exchange concept for NGH production by understanding its principles and developments, with emphasis on another technical breakthrough using the CO2+N2 gas mixture injection. After establishing the fundamentals of the gas exchange process, we make a general survey of the NGH field production in the North Slope of Alaska in 2012, which practically adopted the gas exchange as a key technology. Several recent international NGH field production tests that basically use depressurization are also briefly analyzed for comparison. We suggest that the gas exchange method is ready to be tested in the NGH deposits with the valuable lessons learned from past pioneering tests.

Suggested Citation

  • Koh, Dong-Yeun & Kang, Hyery & Lee, Jong-Won & Park, Youngjune & Kim, Se-Joon & Lee, Jaehyoung & Lee, Joo Yong & Lee, Huen, 2016. "Energy-efficient natural gas hydrate production using gas exchange," Applied Energy, Elsevier, vol. 162(C), pages 114-130.
  • Handle: RePEc:eee:appene:v:162:y:2016:i:c:p:114-130
    DOI: 10.1016/j.apenergy.2015.10.082
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    References listed on IDEAS

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    1. Zhenji Zhang & Runtong Zhang & Juliang Zhang (ed.), 2013. "Liss 2012," Springer Books, Springer, edition 127, number 978-3-642-32054-5, November.
    2. Jiafei Zhao & Kun Xu & Yongchen Song & Weiguo Liu & Weihaur Lam & Yu Liu & Kaihua Xue & Yiming Zhu & Xichong Yu & Qingping Li, 2012. "A Review on Research on Replacement of CH 4 in Natural Gas Hydrates by Use of CO 2," Energies, MDPI, vol. 5(2), pages 1-21, February.
    3. Feng, Jing-Chun & Wang, Yi & Li, Xiao-Sen & Li, Gang & Chen, Zhao-Yang, 2015. "Production behaviors and heat transfer characteristics of methane hydrate dissociation by depressurization in conjunction with warm water stimulation with dual horizontal wells," Energy, Elsevier, vol. 79(C), pages 315-324.
    4. Li, Xiao-Sen & Yang, Bo & Zhang, Yu & Li, Gang & Duan, Li-Ping & Wang, Yi & Chen, Zhao-Yang & Huang, Ning-Sheng & Wu, Hui-Jie, 2012. "Experimental investigation into gas production from methane hydrate in sediment by depressurization in a novel pilot-scale hydrate simulator," Applied Energy, Elsevier, vol. 93(C), pages 722-732.
    5. Jiafei Zhao & Chuanxiao Cheng & Yongchen Song & Weiguo Liu & Yu Liu & Kaihua Xue & Zihao Zhu & Zhi Yang & Dayong Wang & Mingjun Yang, 2012. "Heat Transfer Analysis of Methane Hydrate Sediment Dissociation in a Closed Reactor by a Thermal Method," Energies, MDPI, vol. 5(5), pages 1-17, May.
    6. Li, Bo & Li, Xiao-Sen & Li, Gang & Feng, Jing-Chun & Wang, Yi, 2014. "Depressurization induced gas production from hydrate deposits with low gas saturation in a pilot-scale hydrate simulator," Applied Energy, Elsevier, vol. 129(C), pages 274-286.
    7. Lijun Xiong & Xiaosen Li & Yi Wang & Chungang Xu, 2012. "Experimental Study on Methane Hydrate Dissociation by Depressurization in Porous Sediments," Energies, MDPI, vol. 5(2), pages 1-13, February.
    8. Wang, Yi & Li, Xiao-Sen & Li, Gang & Zhang, Yu & Li, Bo & Chen, Zhao-Yang, 2013. "Experimental investigation into methane hydrate production during three-dimensional thermal stimulation with five-spot well system," Applied Energy, Elsevier, vol. 110(C), pages 90-97.
    9. Christian Deusner & Nikolaus Bigalke & Elke Kossel & Matthias Haeckel, 2012. "Methane Production from Gas Hydrate Deposits through Injection of Supercritical CO 2," Energies, MDPI, vol. 5(7), pages 1-29, June.
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