2022 Vol. 42, No. 6
Article Contents

MAO Peixiao, WU Nengyou, WAN Yizhao, CHEN Qiang, HU Gaowei. Effects of perforation degree and deployment position of multilateral horizontal wells on gas production from inclined clay hydrate reservoirs[J]. Marine Geology & Quaternary Geology, 2022, 42(6): 207-217. doi: 10.16562/j.cnki.0256-1492.2022011501
Citation: MAO Peixiao, WU Nengyou, WAN Yizhao, CHEN Qiang, HU Gaowei. Effects of perforation degree and deployment position of multilateral horizontal wells on gas production from inclined clay hydrate reservoirs[J]. Marine Geology & Quaternary Geology, 2022, 42(6): 207-217. doi: 10.16562/j.cnki.0256-1492.2022011501

Effects of perforation degree and deployment position of multilateral horizontal wells on gas production from inclined clay hydrate reservoirs

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  • Natural gas hydrate (NGH) is generally disseminated in inclined mud sediments in South China Sea (SCS), China. It is of great significance to investigate the production performance of multilateral horizontal wells in actual inclined NGH reservoirs. We implemented a real 3D inclined clay hydrate reservoir model based on geological and topographical data from the site X01, Shenhu Area, SCS, to simulate the production performance of multilateral horizontal wells with TOUGH+HYDRATE software and verified the modeling method. We studied the effects of perforation degree on the production performance of multilateral horizontal wells. The differences in production were compared when multilateral horizontal wells were deployed at different tectonic settings of NGH reservoirs (i.e., structural high position, inclined position, and structural low position). The optimal well configuration and placement position were determined. Results show that multilateral horizontal wells that are perforated simultaneously in horizontal branch and vertical main well are beneficial to enhance NGH dissociation and gas production. However, the perforation section of vertical main wells should not be too long. The optimal length ratio of vertical main well and horizontal branch is 0.5~1.0. Moreover, the inclination of the hydrate reservoirs affects significantly the production performance of multilateral horizontal wells. Comparatively, deploying multilateral horizontal wells at horizontal places at low structural positions of clay hydrate reservoirs is conducive to long-term and efficient production of NGH.

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  • [1] Boswell R. Is gas hydrate energy within reach? [J]. Science, 2009, 325(5943): 957-958. doi: 10.1126/science.1175074

    CrossRef Google Scholar

    [2] Li J F, Ye J L, Qin X W, et al. The first offshore natural gas hydrate production test in South China Sea [J]. China Geology, 2018, 1(1): 5-16. doi: 10.31035/cg2018003

    CrossRef Google Scholar

    [3] 叶建良, 秦绪文, 谢文卫, 等. 中国南海天然气水合物第二次试采主要进展[J]. 中国地质, 2020, 47(3):557-568 doi: 10.12029/gc20200301

    CrossRef Google Scholar

    YE Jianliang, QIN Xuwen, XIE Wenwei, et al. Main progress of the second gas hydrate trial production in the South China Sea [J]. Geology in China, 2020, 47(3): 557-568. doi: 10.12029/gc20200301

    CrossRef Google Scholar

    [4] 刘昌岭, 李彦龙, 孙建业, 等. 天然气水合物试采: 从实验模拟到场地实施[J]. 海洋地质与第四纪地质, 2017, 37(5):12-26

    Google Scholar

    LIU Changling, LI Yanlong, SUN Jianye, et al. Gas hydrate production test: from experimental simulation to field practice [J]. Marine Geology & Quaternary Geology, 2017, 37(5): 12-26.

    Google Scholar

    [5] 吴能友, 李彦龙, 万义钊, 等. 海域天然气水合物开采增产理论与技术体系展望[J]. 天然气工业, 2020, 40(8):100-115 doi: 10.3787/j.issn.1000-0976.2020.08.008

    CrossRef Google Scholar

    WU Nengyou, LI Yanlong, WAN Yizhao, et al. Prospect of marine natural gas hydrate stimulation theory and technology system [J]. Natural Gas Industry, 2020, 40(8): 100-115. doi: 10.3787/j.issn.1000-0976.2020.08.008

    CrossRef Google Scholar

    [6] Wang Y, Feng J C, Li X S, et al. Influence of well pattern on gas recovery from methane hydrate reservoir by large scale experimental investigation [J]. Energy, 2018, 152: 34-45. doi: 10.1016/j.energy.2018.03.126

    CrossRef Google Scholar

    [7] Wang Y, Feng J C, Li X S. Experimental investigation into methane hydrate dissociation by thermal stimulation with dual vertical well [J]. Energy Procedia, 2017, 105: 4738-4744. doi: 10.1016/j.egypro.2017.03.1031

    CrossRef Google Scholar

    [8] Wang Y, Li X S, Li G, et al. A three-dimensional study on methane hydrate decomposition with different methods using five-spot well [J]. Applied Energy, 2013, 112: 83-92. doi: 10.1016/j.apenergy.2013.05.079

    CrossRef Google Scholar

    [9] Zhao E M, Hou J, Liu Y G, et al. Enhanced gas production by forming artificial impermeable barriers from unconfined hydrate deposits in Shenhu area of South China sea [J]. Energy, 2020, 213: 118826. doi: 10.1016/j.energy.2020.118826

    CrossRef Google Scholar

    [10] Zhao J F, Liu Y L, Guo X W, et al. Gas production behavior from hydrate-bearing fine natural sediments through optimized step-wise depressurization [J]. Applied Energy, 2020, 260: 114275. doi: 10.1016/j.apenergy.2019.114275

    CrossRef Google Scholar

    [11] 吴能友, 黄丽, 胡高伟, 等. 海域天然气水合物开采的地质控制因素和科学挑战[J]. 海洋地质与第四纪地质, 2017, 37(5):1-11

    Google Scholar

    WU Nengyou, HUANG Li, HU Gaowei, et al. Geological controlling factors and scientific challenges for offshore gas hydrate exploitation [J]. Marine Geology & Quaternary Geology, 2017, 37(5): 1-11.

    Google Scholar

    [12] Feng J C, Wang Y, Li X S, et al. Effect of horizontal and vertical well patterns on methane hydrate dissociation behaviors in Pilot-scale hydrate Simulator [J]. Applied Energy, 2015, 145: 69-79. doi: 10.1016/j.apenergy.2015.01.137

    CrossRef Google Scholar

    [13] Myshakin E M, Ajayi T, Anderson B J, et al. Numerical simulations of depressurization-induced gas production from gas hydrates using 3-D heterogeneous models of L-Pad, Prudhoe Bay Unit, North Slope Alaska [J]. Journal of Natural Gas Science and Engineering, 2016, 35: 1336-1352. doi: 10.1016/j.jngse.2016.09.070

    CrossRef Google Scholar

    [14] Wu N Y, Li Y L, Wan Y Z, et al. Prospect of marine natural gas hydrate stimulation theory and technology system [J]. Natural Gas Industry B, 2021, 8(2): 173-187. doi: 10.1016/j.ngib.2020.08.003

    CrossRef Google Scholar

    [15] 陈强, 胡高伟, 李彦龙, 等. 海域天然气水合物资源开采新技术展望[J]. 海洋地质前沿, 2020, 36(9):44-55

    Google Scholar

    CHEN Qiang, HU Gaowei, LI Yanlong, et al. A prospect review of new technology for development of marine gas hydrate resources [J]. Marine Geology Frontiers, 2020, 36(9): 44-55.

    Google Scholar

    [16] Li Y L, Wan Y Z, Chen Q, et al. Large borehole with multi-lateral branches: a novel solution for exploitation of clayey silt hydrate [J]. China Geology, 2019, 2(3): 331-339. doi: 10.31035/cg2018082

    CrossRef Google Scholar

    [17] Xin X, Li S, Xu T F, et al. Numerical investigation on gas production performance in methane hydrate of multilateral well under depressurization in Krishna-Godavari Basin [J]. Geofluids, 2021, 2021: 9936872.

    Google Scholar

    [18] Mao P X, Wan Y Z, Sun J X, et al. Numerical study of gas production from fine-grained hydrate reservoirs using a multilateral horizontal well system [J]. Applied Energy, 2021, 301: 117450. doi: 10.1016/j.apenergy.2021.117450

    CrossRef Google Scholar

    [19] Huang L, Su Z, Wu N Y, et al. Analysis on geologic conditions affecting the performance of gas production from hydrate deposits [J]. Marine and Petroleum Geology, 2016, 77: 19-29. doi: 10.1016/j.marpetgeo.2016.05.034

    CrossRef Google Scholar

    [20] Moridis G J. Numerical studies of gas production from Class 2 and Class 3 hydrate accumulations at the Mallik Site, Mackenzie Delta, Canada [J]. SPE Reservoir Evaluation & Engineering, 2004, 7(3): 175-183.

    Google Scholar

    [21] Reagan M T, Moridis G J, Zhang K N. Sensitivity analysis of gas production from Class 2 and Class 3 hydrate deposits[C]//Offshore Technology Conference. Houston, Texas, USA, 2008.

    Google Scholar

    [22] Su Z, Moridis G J, Zhang K N, et al. A huff-and-puff production of gas hydrate deposits in Shenhu area of South China Sea through a vertical well [J]. Journal of Petroleum Science and Engineering, 2012, 86-87: 54-61. doi: 10.1016/j.petrol.2012.03.020

    CrossRef Google Scholar

    [23] Sun J X, Ning F L, Zhang L, et al. Numerical simulation on gas production from hydrate reservoir at the 1st offshore test site in the eastern Nankai Trough [J]. Journal of Natural Gas Science and Engineering, 2016, 30: 64-76. doi: 10.1016/j.jngse.2016.01.036

    CrossRef Google Scholar

    [24] Chen L, Feng Y C, Merey S, et al. Numerical investigation on gas production from Shenhu (China): Influence of layer inclination and horizontal Inhomogeneities [J]. Journal of Natural Gas Science and Engineering, 2020, 82: 103509. doi: 10.1016/j.jngse.2020.103509

    CrossRef Google Scholar

    [25] Xia Y L, Xu T F, Yuan Y L, et al. Effect of perforation interval design on gas production from the validated hydrate-bearing deposits with layered heterogeneity by depressurization [J]. Geofluids, 2020, 2020: 8833884.

    Google Scholar

    [26] Mao P X, Sun J X, Ning F L, et al. Numerical simulation on gas production from inclined layered methane hydrate reservoirs in the Nankai Trough: A case study [J]. Energy Reports, 2021, 7: 8608-8623. doi: 10.1016/j.egyr.2021.03.032

    CrossRef Google Scholar

    [27] Yuan Y L, Xu T F, Xia Y L, et al. Effects of formation dip on gas production from unconfined marine hydrate-bearing sediments through depressurization [J]. Geofluids, 2018, 2018: 5836293.

    Google Scholar

    [28] Song B J, Cheng Y F, Yan C L, et al. Seafloor subsidence response and submarine slope stability evaluation in response to hydrate dissociation [J]. Journal of Natural Gas Science and Engineering, 2019, 65: 197-211. doi: 10.1016/j.jngse.2019.02.009

    CrossRef Google Scholar

    [29] Tamaki M, Fujii T, Suzuki K. Characterization and prediction of the gas hydrate reservoir at the second offshore gas production test site in the eastern Nankai Trough, Japan [J]. Energies, 2017, 10(10): 1678. doi: 10.3390/en10101678

    CrossRef Google Scholar

    [30] Sun X, Luo T T, Wang L, et al. Numerical simulation of gas recovery from a low-permeability hydrate reservoir by depressurization [J]. Applied Energy, 2019, 250: 7-18. doi: 10.1016/j.apenergy.2019.05.035

    CrossRef Google Scholar

    [31] Yamamoto K, Wang X X, Tamaki M, et al. The second offshore production of methane hydrate in the Nankai Trough and gas production behavior from a heterogeneous methane hydrate reservoir [J]. RSC Advances, 2019, 9(45): 25987-26013. doi: 10.1039/C9RA00755E

    CrossRef Google Scholar

    [32] Kurihara M, Sato A, Ouchi H, et al. SS gas hydrate: Prediction of production test performances in eastern Nankai Trough methane hydrate reservoirs using 3D reservoir model[C]//Offshore Technology Conference. Houston, Texas, USA, 2010.

    Google Scholar

    [33] Yamamoto K, Kanno T, Wang X X, et al. Thermal responses of a gas hydrate-bearing sediment to a depressurization operation [J]. RSC Advances, 2017, 7(10): 5554-5577. doi: 10.1039/C6RA26487E

    CrossRef Google Scholar

    [34] Zhang W, Liang J Q, Wei J G, et al. Geological and geophysical features of and controls on occurrence and accumulation of gas hydrates in the first offshore gas-hydrate production test region in the Shenhu area, Northern South China Sea [J]. Marine and Petroleum Geology, 2020, 114: 104191. doi: 10.1016/j.marpetgeo.2019.104191

    CrossRef Google Scholar

    [35] Wang X X, Zhuo H T, Wang Y M, et al. Controls of contour currents on intra-canyon mixed sedimentary processes: insights from the Pearl River Canyon, northern South China Sea [J]. Marine Geology, 2018, 406: 193-213. doi: 10.1016/j.margeo.2018.09.016

    CrossRef Google Scholar

    [36] 苏正, 刘丽华. 南海北部陆坡天然气水合物成藏特征研究进展分析[J]. 新能源进展, 2020, 8(1):35-41 doi: 10.3969/j.issn.2095-560X.2020.01.006

    CrossRef Google Scholar

    SU Zheng, LIU Lihua. Research progress on gas hydrate accumulation in the northern slope of the South China Sea [J]. Advances in New and Renewable Energy, 2020, 8(1): 35-41. doi: 10.3969/j.issn.2095-560X.2020.01.006

    CrossRef Google Scholar

    [37] Wang X J, Liu B, Jin J P, et al. Increasing the accuracy of estimated porosity and saturation for gas hydrate reservoir by integrating geostatistical inversion and lithofacies constraints [J]. Marine and Petroleum Geology, 2020, 115: 104298. doi: 10.1016/j.marpetgeo.2020.104298

    CrossRef Google Scholar

    [38] Yin Z Y, Moridis G, Chong Z R, et al. Numerical analysis of experiments on thermally induced dissociation of methane hydrates in porous media [J]. Industrial & Engineering Chemistry Research, 2018, 57(17): 5776-5791.

    Google Scholar

    [39] Moridis G J. User's manual for the hydrate v1.5 option of TOUGH+ v1.5: A code for the simulation of system behavior in hydrate-bearing geologic media[R]. Berkeley, CA: Lawrence Berkeley National Laboratory, 2014.

    Google Scholar

    [40] Zhang K N, Moridis G J, Wu Y S, et al. A domain decomposition approach for large-scale simulations of flow processes in hydrate-bearing geologic media[C]//Proceedings of the 6th International Conference on Gas Hydrates (ICGH 2008). Vancouver, British Columbia, Canada, 2008.

    Google Scholar

    [41] Sun J X, Ning F L, Liu T L, et al. Gas production from a silty hydrate reservoir in the South China Sea using hydraulic fracturing: A numerical simulation [J]. Energy Science & Engineering, 2019, 7(4): 1106-1122.

    Google Scholar

    [42] Van Genuchten M T. A closed-form equation for predicting the hydraulic conductivity of unsaturated soils [J]. Soil Science Society of America Journal, 1980, 44(5): 892-898. doi: 10.2136/sssaj1980.03615995004400050002x

    CrossRef Google Scholar

    [43] Mao P X, Wu N Y, Sun J X, et al. Numerical simulations of depressurization-induced gas production from hydrate reservoirs at site GMGS3-W19 with different free gas saturations in the northern South China Sea [J]. Energy Science & Engineering, 2021, 9(9): 1416-1439.

    Google Scholar

    [44] Moridis G J, Reagan M T, Queiruga A F, et al. Evaluation of the performance of the oceanic hydrate accumulation at site NGHP-02-09 in the Krishna-Godavari Basin during a production test and during single and multi-well production scenarios [J]. Marine and Petroleum Geology, 2019, 108: 660-696. doi: 10.1016/j.marpetgeo.2018.12.001

    CrossRef Google Scholar

    [45] Moridis G J, Reagan M T. Strategies for gas production from oceanic Class 3 hydrate accumulations[C]//Offshore Technology Conference. Houston, Texas, USA, 2007.

    Google Scholar

    [46] Moridis G J, Reagan M T, Boyle K L, et al. Evaluation of the gas production potential of some particularly challenging types of oceanic hydrate deposits [J]. Transport in Porous Media, 2011, 90(1): 269-299. doi: 10.1007/s11242-011-9762-5

    CrossRef Google Scholar

    [47] Mao P X, Sun J X, Ning F L, et al. Effect of permeability anisotropy on depressurization-induced gas production from hydrate reservoirs in the South China Sea [J]. Energy Science & Engineering, 2020, 8(8): 2690-2707.

    Google Scholar

    [48] Sun J X, Ning F L, Wu N Y, et al. The effect of drilling mud properties on shallow lateral resistivity logging of gas hydrate bearing sediments [J]. Journal of Petroleum Science and Engineering, 2015, 127: 259-269. doi: 10.1016/j.petrol.2014.12.015

    CrossRef Google Scholar

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