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Sub- and super-critical carbon dioxide flow variations in large high-rank coal specimen: An experimental study

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  • Zhang, Xiaogang
  • Ranjith, P.G.
  • Ranathunga, A.S.

Abstract

Many experimental studies to date have investigated CO2 sequestration in coal using small-scale samples (usually less than 100 mm in length), and the results may not be applicable to large-scale samples which better represent in-situ conditions for the estimation of CO2 flow behaviours in coal. This study was therefore initiated to determine the sub- and super-critical CO2 flow characteristics in a large reconstituted bituminous coal sample (203 mm in diameter and 1 m in length) by performing three sets of N2 and CO2 injections with injection pressures from 6 MPa to 10 MPa under 11 MPa axial stress and at 37 °C. It was observed that, unlike N2 permeability which increases with injection pressure, CO2 permeability exhibits reductions with injection pressure due to greater swelling effects at elevated CO2 pressures. The second N2 injections into the coal sample previously flooded with CO2 showed reductions in permeability compared to the first N2 injection into the original coal sample, because the coal structure had been altered considerably by the CO2 flows. The pressure build-up at downstream for CO2 injection is always lower than that for the first N2 injection due to reduced CO2 flows as a result of decreased permeability, which also contributes to the lower pressure development at downstream for the second N2 injections. The pressure profiles along the sample are similar for the first N2 and CO2 injections with relatively greater pressure decays for CO2, while considerable pressure reductions were observed for the second N2 injections, especially in the regions near the injection point where greater CO2 pressures previously existed, causing greater structural rearrangement in those regions. The second N2 injection causes less volumetric strain of the sample than the first due to the altered coal structure induced by the prior CO2 flows which impede gas flow in the sample.

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  • Zhang, Xiaogang & Ranjith, P.G. & Ranathunga, A.S., 2019. "Sub- and super-critical carbon dioxide flow variations in large high-rank coal specimen: An experimental study," Energy, Elsevier, vol. 181(C), pages 148-161.
  • Handle: RePEc:eee:energy:v:181:y:2019:i:c:p:148-161
    DOI: 10.1016/j.energy.2019.04.213
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    as
    1. Okamoto, Ikuo & Li, Xiaochun & Ohsumi, Takashi, 2005. "Effect of supercritical CO2 as the organic solvent on cap rock sealing performance for underground storage," Energy, Elsevier, vol. 30(11), pages 2344-2351.
    2. Mark G. Lawrence & Stefan Schäfer & Helene Muri & Vivian Scott & Andreas Oschlies & Naomi E. Vaughan & Olivier Boucher & Hauke Schmidt & Jim Haywood & Jürgen Scheffran, 2018. "Evaluating climate geoengineering proposals in the context of the Paris Agreement temperature goals," Nature Communications, Nature, vol. 9(1), pages 1-19, December.
    3. S. A. Montzka & E. J. Dlugokencky & J. H. Butler, 2011. "Non-CO2 greenhouse gases and climate change," Nature, Nature, vol. 476(7358), pages 43-50, August.
    4. Wenju Cai & Agus Santoso & Guojian Wang & Sang-Wook Yeh & Soon-Il An & Kim M. Cobb & Mat Collins & Eric Guilyardi & Fei-Fei Jin & Jong-Seong Kug & Matthieu Lengaigne & Michael J. McPhaden & Ken Takaha, 2015. "ENSO and greenhouse warming," Nature Climate Change, Nature, vol. 5(9), pages 849-859, September.
    5. Niu, Qinghe & Cao, Liwen & Sang, Shuxun & Zhou, Xiaozhi & Wang, Zhenzhi & Wu, Zhiyong, 2017. "The adsorption-swelling and permeability characteristics of natural and reconstituted anthracite coals," Energy, Elsevier, vol. 141(C), pages 2206-2217.
    6. Holloway, S., 2005. "Underground sequestration of carbon dioxide—a viable greenhouse gas mitigation option," Energy, Elsevier, vol. 30(11), pages 2318-2333.
    7. Pan, Xunzhang & Wang, Hailin & Wang, Lining & Chen, Wenying, 2018. "Decarbonization of China's transportation sector: In light of national mitigation toward the Paris Agreement goals," Energy, Elsevier, vol. 155(C), pages 853-864.
    8. Knez, Ž. & Markočič, E. & Leitgeb, M. & Primožič, M. & Knez Hrnčič, M. & Škerget, M., 2014. "Industrial applications of supercritical fluids: A review," Energy, Elsevier, vol. 77(C), pages 235-243.
    9. Cui, Guodong & Wang, Yi & Rui, Zhenhua & Chen, Bailian & Ren, Shaoran & Zhang, Liang, 2018. "Assessing the combined influence of fluid-rock interactions on reservoir properties and injectivity during CO2 storage in saline aquifers," Energy, Elsevier, vol. 155(C), pages 281-296.
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    3. Zhao, Weizhong & Su, Xianbo & Xia, Daping & Hou, Shihui & Wang, Qian & Zhou, Yixuan, 2022. "Enhanced coalbed methane recovery by the modification of coal reservoir under the supercritical CO2 extraction and anaerobic digestion," Energy, Elsevier, vol. 259(C).
    4. Huping Wang & Zhao Wang & Haikui Yin & Chao Jin & Xiaogang Zhang & Langtao Liu, 2023. "CO 2 Flow Characteristics in Macro-Scale Coal Sample: Effect of CO 2 Injection Pressure and Buried Depth," Sustainability, MDPI, vol. 15(10), pages 1-20, May.
    5. Zhang, Xiaogang & Jin, Chao & Zhang, Decheng & Zhang, Chengpeng & Ranjith, P.G. & Yuan, Yong, 2023. "Carbon dioxide flow behaviour in macro-scale bituminous coal: An experimental determination of the influence of effective stress," Energy, Elsevier, vol. 268(C).

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