Analysis of the influence of the hydrate-bearing rocks properties on the prospects their industrial development
DOI:
https://doi.org/10.15587/2706-5448.2022.263562Keywords:
gas hydrate, hydrate-bearing rock, gas hydrate deposits development, destruction of hydrate-bearing rock, daily gas extractionAbstract
Along with renewable energy and hydrogen, gas hydrates may become the most significant energy resource in the coming years. The reserves of gas in the hydrate state exceed all the combined world reserves of traditional energy resources. At the same time, the gas hydrates properties in the conditions their natural occurrence in the composition of hydrate-containing rock cause significant difficulties in their extraction. In this regard, the industrial use of colossal renewable gas resources in the gas hydrate state is just beginning. Based on this, the methods of developing gas hydrate deposits are the object of research. Based on the analysis and generalization of the currently known examples results of experimental and industrial development of gas hydrate deposits, as well as the results of studying the hydrate-bearing rocks properties, an assessment of the prospects for the industrial implementation of gas hydrate deposit development methods is given. Extraction of methane from gas hydrate deposits causes difficulties due to their solid form. Existing promising methods of their development involve the dissociation of gas hydrate into gas and water.
Currently implemented research and industrial development projects of gas hydrate deposits have shown a number of problems related, first of all, to the instability of the hydrate-bearing rock after dissociation of the gas hydrate (at the same time, in the vast majority, the natural gas hydrate becomes metastable and weakly cemented). Therefore, there is still no commercially attractive technology for obtaining natural gas from gas hydrate deposits. At the same time, the depressurization method is considered the most promising. Based on this, the improvement of the technology of influence on the hydrate-bearing rock for the natural gas extraction should concern the provision of the rock removal the into the well. At the same time, effective and competitive development of marine gas hydrates deposits can be realized only if taking into account the geological features of the distribution of hydrate-bearing rocks, as well as the gas hydrates properties in their natural occurrence.
References
- Lukin, O. Yu. (2008). Vuhlevodnevyi potentsial nadr Ukrainy ta osnovni napriamy yoho osvoiennia. Visnyk NAN Ukrainy, 4, 56–67.
- Lukin, A. E. (2010). Slantcevyi gaz i perspektivy ego dobychi v Ukraine. Statia 1. Sovremennoe sostoianie problemy slantcevogo gaza (v svete opyta osvoeniia ego resursov v SShA). Geologіchnii zhurnal, 3, 17–33.
- Lukin, O. Yu. (2011). Hazovi resursy Ukrainy: suchasnyi stan i perspektyvy. Visnyk NAN Ukrainy, 5, 40–48.
- Makogon, Y. F. (2010). Natural gas hydrates – A promising source of energy. Journal of Natural Gas Science and Engineering, 2 (1), 49–59. doi: http://doi.org/10.1016/j.jngse.2009.12.004
- Makogon, Iu. F. (2010). Gazogidraty. Istoriia izucheniia i perspektivy osvoeniia. Geologiia i poleznye iskopaemye mirovogo okeana, 2, 5–21.
- Shniukov, E. F., Gozhik, P. F., Kraiushkin, V. P., Klochko, V. P. (2007). Nakanune mirovoi submarinnoi metanogidratodobychi. Dopovіdі Natcіonalnoi akademіi nauk Ukraini, 6, 125–134.
- Rodgers, R. E., Zbong, Y., Arunkumar, R., Etheridge, J. A., Pearson, L. E., Mc. Cown, J., Hogancamp, K. (2005). Gas Hydrate Storage Process for Natural Gas. GasTIPS, Winter, 54.
- Lu, S.-M. (2015). RETRACTED: A global survey of gas hydrate development and reserves: Specifically in the marine field. Renewable and Sustainable Energy Reviews, 41, 884–900. doi: http://doi.org/10.1016/j.rser.2014.08.063
- Pro alternatyvni vydy ridkoho ta hazovoho palyva (2000). Zakon Ukrainy No. 1391-XIY. 14.01.2000. Vidomosti Verkhovnoi Rady (VVR), 12, st. 94. Available at: https://zakon.rada.gov.ua/laws/show/1391-14#Text
- Nemokonov, V. P., Stupak, S. N. (1988). Priznaki gazogidratnykh zalezhei v Chernom more. Izvestiia vuzov. Geologiia i razvedka, 3, 72–82.
- Shniukov, E. F., Kraiushkin, V. A. (1999). Priroda, struktura, usloviia zaleganiia i zapasy morskikh metanogidratov. Geologiia i poleznye iskopaemye Chernogo moria. Kiev: Karbon LTD, 107–116.
- Kvenvolden, K. A. (1993). Gas hydrates-geological perspective and global change. Reviews of Geophysics, 31 (2), 173–187. doi: http://doi.org/10.1029/93rg00268
- Mohd, Y. (2016). Natural gas hydrates: the future’s fuel. Journal of Environmental Research And Development, 10 (4), 738–746.
- Collett, T. S. (2002). Energy resource potential of natural gas hydrates Bull. AAPG Bulletin, 11 (86), 1971–1992. doi: http://doi.org/10.1306/61eeddd2-173e-11d7-8645000102c1865d
- Collett, T. S. (2014). Geologic implications of gas hydrates in the offshore of India: Results of the National Gas Hydrate Program Expedition 01. Marine and Petroleum Geology, 58, 1–2. doi: http://doi.org/10.1016/j.marpetgeo.2014.07.020
- Zhou, S. W., Chen, W., Li, Q. P., Zhou, J. L., Shi, H. S. (2017). Research on the solid fluidization well testing and production for shallow non-diagenetic natural gas hydrate in deep water area. China Offshore Oil and Gas, 29, 1–8.
- Max, M. D., Johnson, A. H. (2016). Exploration and Production of Oceanic Natural Gas Hydrate. Cham: Springer. doi: http://doi.org/10.1007/978-3-319-43385-1
- Egawa, K., Furukawa, T., Saeki, T., Suzuki, K., Narita, H. (2013). Three-dimensional paleomorphologic reconstruction and turbidite distribution prediction revealing a Pleistocene confined basin system in the northeast Nankai Trough area. AAPG Bulletin, 97 (5), 781–798. doi: http://doi.org/10.1306/10161212014
- Boswell, R., Collett, T. S., Frye, M., Shedd, W., McConnell, D. R., Shelander, D. (2012). Subsurface gas hydrates in the northern Gulf of Mexico. Marine and Petroleum Geology, 34 (1), 4–30. doi: http://doi.org/10.1016/j.marpetgeo.2011.10.003
- Sung-Rock, L. (2011). 2nd ulleung basin gas hydrate expedition (UBGH2): findings and implications. Fire in the Ice, 11 (1), 6–9.
- Boswell, R. (2009). Is Gas Hydrate Energy Within Reach? Science, 325 (5943), 957–958. doi: http://doi.org/10.1126/science.1175074
- Ruan, X., Song, Y., Zhao, J., Liang, H., Yang, M., Li, Y. (2012). Numerical Simulation of Methane Production from Hydrates Induced by Different Depressurizing Approaches. Energies, 5 (2), 438–458. doi: http://doi.org/10.3390/en5020438
- Zhao, J., Zhu, Z., Song, Y., Liu, W., Zhang, Y., Wang, D. (2015). Analyzing the process of gas production for natural gas hydrate using depressurization. Applied Energy, 142, 125–134. doi: http://doi.org/10.1016/j.apenergy.2014.12.071
- Song, Y., Cheng, C., Zhao, J., Zhu, Z., Liu, W., Yang, M., Xue, K. (2015). Evaluation of gas production from methane hydrates using depressurization, thermal stimulation and combined methods. Applied Energy, 145, 265–277. doi: http://doi.org/10.1016/j.apenergy.2015.02.040
- Sun, X., Luo, T., Wang, L., Wang, H., Song, Y., Li, Y. (2019). Numerical simulation of gas recovery from a low-permeability hydrate reservoir by depressurization. Applied Energy, 250, 7–18. doi: http://doi.org/10.1016/j.apenergy.2019.05.035
- Johnson, A. H. (2013). Unconventional Energy Resources: 2013. Review. Natural Resources Research, 23 (1), 19–98. doi: http://doi.org/10.1007/s11053-013-9224-6
- Feng, J.-C., Wang, Y., Li, X.-S. (2017). Entropy generation analysis of hydrate dissociation by depressurization with horizontal well in different scales of hydrate reservoirs. Energy, 125, 62–71. doi: http://doi.org/10.1016/j.energy.2017.02.104
- Japan Oil, Gas and Metals National Corporation (GOGMEC). Gas Produced from Methane Mydrate (Provisional) (2013). Available at: http://www.jogmec.go.jp/english/news/release/news_01_000006
- JOGMEC (2017). About the start of the 2nd methane hydrate marine production test (field work). Available at: http://www.jogmec.go.jp/news/release/news_10_000243.html
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Copyright (c) 2022 Angela Yelchenko-Lobovska, Oleksandr Lukin, Vasyl Savyk, Victoriіa Dmytrenko
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