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Characterizing pore-level oil mobilization processes in unconventional reservoirs assisted by state-of-the-art nuclear magnetic resonance technique

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  • Zhang, Xiang
  • Wei, Bing
  • You, Junyu
  • Liu, Jiang
  • Wang, Dianlin
  • Lu, Jun
  • Tong, Jing

Abstract

Rigorous characterizations of fluid contents, rock/fluid interactions, and pore-size distributions are crucial in the development of unconventional resources. As a nonintrusive and real-time tool, Nuclear Magnetic Resonance (NMR) draws increasingly attention for these applications. Herein, we first summarized the most intensively used NMR methods, T2 (1D), T1-T2 and D-T2 (2D) maps, and then performed a critical analyses of pore-scale oil mobilization characterization assisted by NMR, aiming to advance the understanding of unconventional reservoir exploitation. Numerous efforts have been made on presenting the oil mobilization process by 1D NMR. There, however, exists some controversial and even contradictory for similar research objects. Quantifying the interactions in place between gas and oil still needs further investigation. The 2D NMR technique is much more informative compared to the 1D NMR, whereas only limited qualitative analysis can be conducted and the accuracy of the measurement needs to be enhanced for clay mineral-rich reservoirs. Water and oil signals can be easily distinguished in 2D NMR maps with the increase of NMR frequency, which greatly help to identify the fluids in nano-size pores. Currently, all the NMR measurements are limited to the short core plug (length≤10 cm); thus, future attention should be given to the development of NMR hardware.

Suggested Citation

  • Zhang, Xiang & Wei, Bing & You, Junyu & Liu, Jiang & Wang, Dianlin & Lu, Jun & Tong, Jing, 2021. "Characterizing pore-level oil mobilization processes in unconventional reservoirs assisted by state-of-the-art nuclear magnetic resonance technique," Energy, Elsevier, vol. 236(C).
  • Handle: RePEc:eee:energy:v:236:y:2021:i:c:s0360544221017977
    DOI: 10.1016/j.energy.2021.121549
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    References listed on IDEAS

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    1. Ting Chen & Zhengming Yang & Yunhong Ding & Yutian Luo & Dan Qi & Wei Lin & Xinli Zhao, 2018. "Waterflooding Huff-n-puff in Tight Oil Cores Using Online Nuclear Magnetic Resonance," Energies, MDPI, vol. 11(6), pages 1-14, June.
    2. Zuloaga, Pavel & Yu, Wei & Miao, Jijun & Sepehrnoori, Kamy, 2017. "Performance evaluation of CO2 Huff-n-Puff and continuous CO2 injection in tight oil reservoirs," Energy, Elsevier, vol. 134(C), pages 181-192.
    3. Ren, Bo & Ren, Shaoran & Zhang, Liang & Chen, Guoli & Zhang, Hua, 2016. "Monitoring on CO2 migration in a tight oil reservoir during CCS-EOR in Jilin Oilfield China," Energy, Elsevier, vol. 98(C), pages 108-121.
    4. Aliya Mukhametdinova & Andrey Kazak & Tagir Karamov & Natalia Bogdanovich & Maksim Serkin & Sergey Melekhin & Alexey Cheremisin, 2020. "Reservoir Properties of Low-Permeable Carbonate Rocks: Experimental Features," Energies, MDPI, vol. 13(9), pages 1-25, May.
    5. Kim, Tae Hong & Cho, Jinhyung & Lee, Kun Sang, 2017. "Evaluation of CO2 injection in shale gas reservoirs with multi-component transport and geomechanical effects," Applied Energy, Elsevier, vol. 190(C), pages 1195-1206.
    6. Middleton, Richard S. & Carey, J. William & Currier, Robert P. & Hyman, Jeffrey D. & Kang, Qinjun & Karra, Satish & Jiménez-Martínez, Joaquín & Porter, Mark L. & Viswanathan, Hari S., 2015. "Shale gas and non-aqueous fracturing fluids: Opportunities and challenges for supercritical CO2," Applied Energy, Elsevier, vol. 147(C), pages 500-509.
    7. Ghomian, Yousef & Pope, Gary A. & Sepehrnoori, Kamy, 2008. "Reservoir simulation of CO2 sequestration pilot in Frio brine formation, USA Gulf Coast," Energy, Elsevier, vol. 33(7), pages 1055-1067.
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