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Underground hydrogen storage in reservoirs: pore-scale mechanisms and optimization of storage capacity and efficiency

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  • Song, Hongqing
  • Lao, Junming
  • Zhang, Liyuan
  • Xie, Chiyu
  • Wang, Yuhe

Abstract

Underground Hydrogen Storage in Reservoirs (UHSR) is promising for long-term and large-scale renewable energy storage, yet improvements in capacity and efficiency are still highly demanded, which requires a deep understanding of the pore-scale mechanisms. Here, we investigate UHSR using micromodels and discover three pore-scale mechanisms, namely the preferential-to-uniform flow transformation, floating flow, and dead-end pore invasion. Preferential flows ensure the base storage capacity and the early transformation to uniform flows promotes the storage efficiency. Floating flow not only enhances the flow transformation but also increases the storage capacity via its facilitation for dead-end pore invasion. We also provide pore-scale mechanism-based elucidation for the effects of pore heterogeneity, injection flux, and oil/brine distribution on storage capacity and efficiency. Injection flux affects the preferential and floating flows to regulate the rate of base storage and determine whether controlling the flow profile or breaking through the outlet via inertia induced preferential flow. Pore heterogeneity affects the proportion of dynamic dead-end pores and possibility of breaking through via capillary induced preferential flow. In comparison with brine saturated condition, the oil saturated condition is unfavorable of floating flow and dead-end invasion. We propose that brine saturated initial condition with high injection flux and median pore heterogeneity are optimal for both UHSR capacity and efficiency from our micromodel study. We further optimize the capacity from 50 % to 95 % and the efficiency from 7.4 × 10-2 kg/(m3·s) to 2.1 × 10-1 kg/(m3·s) according to revealed mechanisms and influencing factors. From the microscale perspective, this work brings critical insights for enhancing and broadening the application of UHSR engineering practice.

Suggested Citation

  • Song, Hongqing & Lao, Junming & Zhang, Liyuan & Xie, Chiyu & Wang, Yuhe, 2023. "Underground hydrogen storage in reservoirs: pore-scale mechanisms and optimization of storage capacity and efficiency," Applied Energy, Elsevier, vol. 337(C).
  • Handle: RePEc:eee:appene:v:337:y:2023:i:c:s0306261923002659
    DOI: 10.1016/j.apenergy.2023.120901
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    References listed on IDEAS

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    1. Daraei, Mahsa & Campana, Pietro Elia & Thorin, Eva, 2020. "Power-to-hydrogen storage integrated with rooftop photovoltaic systems and combined heat and power plants," Applied Energy, Elsevier, vol. 276(C).
    2. Nguyen, Phong & Carey, J. William & Viswanathan, Hari S. & Porter, Mark, 2018. "Effectiveness of supercritical-CO2 and N2 huff-and-puff methods of enhanced oil recovery in shale fracture networks using microfluidic experiments," Applied Energy, Elsevier, vol. 230(C), pages 160-174.
    3. Fan, Huifang & Zhang, Luyi & Wang, Ruifei & Song, Hongqing & Xie, Hui & Du, Li & Sun, Pengguang, 2020. "Investigation on geothermal water reservoir development and utilization with variable temperature regulation: A case study of China," Applied Energy, Elsevier, vol. 275(C).
    4. Yue, Meiling & Lambert, Hugo & Pahon, Elodie & Roche, Robin & Jemei, Samir & Hissel, Daniel, 2021. "Hydrogen energy systems: A critical review of technologies, applications, trends and challenges," Renewable and Sustainable Energy Reviews, Elsevier, vol. 146(C).
    5. Trevino-Martinez, Samuel & Sawhney, Rapinder & Shylo, Oleg, 2022. "Energy-carbon footprint optimization in sequence-dependent production scheduling," Applied Energy, Elsevier, vol. 315(C).
    6. Martin Nielsen & Elisabetta Alberico & Wolfgang Baumann & Hans-Joachim Drexler & Henrik Junge & Serafino Gladiali & Matthias Beller, 2013. "Low-temperature aqueous-phase methanol dehydrogenation to hydrogen and carbon dioxide," Nature, Nature, vol. 495(7439), pages 85-89, March.
    7. Parra, David & Valverde, Luis & Pino, F. Javier & Patel, Martin K., 2019. "A review on the role, cost and value of hydrogen energy systems for deep decarbonisation," Renewable and Sustainable Energy Reviews, Elsevier, vol. 101(C), pages 279-294.
    8. Shaojie Song & Haiyang Lin & Peter Sherman & Xi Yang & Chris P. Nielsen & Xinyu Chen & Michael B. McElroy, 2021. "Production of hydrogen from offshore wind in China and cost-competitive supply to Japan," Nature Communications, Nature, vol. 12(1), pages 1-8, December.
    9. Zhang, Yang & Campana, Pietro Elia & Lundblad, Anders & Yan, Jinyue, 2017. "Comparative study of hydrogen storage and battery storage in grid connected photovoltaic system: Storage sizing and rule-based operation," Applied Energy, Elsevier, vol. 201(C), pages 397-411.
    10. Tarkowski, Radoslaw, 2019. "Underground hydrogen storage: Characteristics and prospects," Renewable and Sustainable Energy Reviews, Elsevier, vol. 105(C), pages 86-94.
    11. Hemamala I. Karunadasa & Christopher J. Chang & Jeffrey R. Long, 2010. "A molecular molybdenum-oxo catalyst for generating hydrogen from water," Nature, Nature, vol. 464(7293), pages 1329-1333, April.
    12. Du, Shuyi & Wang, Jiulong & Wang, Meizhu & Yang, Jiaosheng & Zhang, Cong & Zhao, Yang & Song, Hongqing, 2023. "A systematic data-driven approach for production forecasting of coalbed methane incorporating deep learning and ensemble learning adapted to complex production patterns," Energy, Elsevier, vol. 263(PE).
    13. Maeder, Mattia & Weiss, Olga & Boulouchos, Konstantinos, 2021. "Assessing the need for flexibility technologies in decarbonized power systems: A new model applied to Central Europe," Applied Energy, Elsevier, vol. 282(PA).
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