Sealing of Unconformity Structure and Hydrocarbon Accumulation in the Baikouquan Formation of the Mahu Sag
Abstract
:1. Introduction
2. Geological Overview
3. Method and Experiment
3.1. Material Selection
3.2. Experimental Test and Calculation Method
3.2.1. Experimental Test
3.2.2. Calculation Method
3.3. Numerical Simulation
4. Results
4.1. Development Characteristics of Unconformity Structure in the Mahu Sag
4.2. Unconformity Sealing Evaluation
4.2.1. Unconformity Closure Evaluation Parameters
4.2.2. Unconformity Sealing Evaluation—Taking Ma 131 Well Area as an Example
5. Discussion
5.1. Unconformity and Reservoir Roof and Floor
5.2. Unconformity and Oil and Gas Reservoir Formation
6. Conclusions
- (1)
- Unconformity has a three-layer structure, including a residual layer, a weathered clay layer, and a weathered leaching zone. According to the difference between multiple logging curves, the identification factor Qi of the unconformity structure is summarized. The Qi value of the upper layer of unconformity is 0.4~0.5, the middle layer is 0.5~0.6, and the lower layer is 0.6~0.7, so as to distinguish the three-layer structure vertically. According to whether the weathered clay layer is developed and based on different lithologic configurations, the internal unconformity structure of Mahu Sag is divided into five types: sandstone–clay–sandstone, sandstone–clay–mudstone, sandstone–sandstone, sandstone–mudstone, and sandstone–volcanic rock. Most of the study area is characterized by a clay-bearing layer type, and a few areas lacking the weathered clay layer types are concentrated in the south of the Mahu Sag.
- (2)
- The weathered clay layer is the key to the formation of unconformity oil and gas reservoirs. The physical simulation experiment is used to select the fracture pressure gradient and thickness as the most critical factors affecting its sealing. Taking the Ma 131 well area as an example, the fracture pressure coefficient of the roof and floor is distributed in a range of 2.0~2.3, and the fracture pressure coefficient of the reservoir is distributed in a range of 1.8~2.0. The logging curves are obviously different, and the average thickness of the roof and floor is 21 m, providing a good sealing effect. Under the action of the upper transport of the P/T overlapping unconformity structure and the joint sealing of the middle and lower layers and the upper mudstone, the oil and gas are completely preserved in the trap.
- (3)
- The control exerted by the unconformity on oil and gas accumulation is reflected in several aspects: the effect of glutenite on oil and gas migration and accumulation in the structure; the sealing ability of mudstone and volcanic rock with dense structures; and the control effect of the combination of fracture and unconformity on oil and gas in different tectonic environments. After the oil and gas are generated from the source rock in the Mahu Sag, they migrate upward along the fault. The rocks above the unconformity and the tight sandstone developed under the sedimentary environment jointly serve as oil and gas transportation channels. The weathered clay layer under the unconformity surface has a stable structure and an excellent sealing effect, providing roof, floor, and lateral sealing conditions for oil and gas reservoirs.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Zhang, S.A.; Wu, Y.J.; She, X.Y.; Feng, C.S. Condition and trend for formation of unconformity reservoir in Tarim Basin. Xinjiang Pet. Geol. 1999, 20, 15–17+72. (In Chinese) [Google Scholar]
- Wu, K.Y.; Li, L.L.; Zha, M. Vertical structures of unconformity and its simulation experiment of hydrocarbon accumulation mechanism. Pet. Geol. Exp. 2009, 31, 537–541. (In Chinese) [Google Scholar]
- He, D.F. Basic types and geologic significances of “truncation and onlap” unconformities. Pet. Explor. Dev. 2018, 45, 995–1006. (In Chinese) [Google Scholar]
- Zhang, J.T.; Zhang, Y.Y.; Gu, N.; Jin, X.H.; Zhang, T.; Liu, S.H.; Jia, H.C.; Yang, J.Q.; Liu, L.; Gao, X.P. Unconformity characteristics of Huaiyuan movement in the northeast of Wushenqi paleo-uplift in Ordos Basin and its implications for karst reservoir generation. Oil Gas Geol. 2023, 44, 101–109. (In Chinese) [Google Scholar]
- Tang, Y.; Wei, X.; Yan, D.; Zheng, M.; Zhang, L.; Yu, Z. The Effect of Pre–Triassic Unconformity on a Hydrocarbon Reservoir: A Case Study from the Eastern Mahu Area, Northwestern Junggar Basin, China. Minerals 2024, 14, 1277. [Google Scholar] [CrossRef]
- Zhang, K.Y.; Ai, H.G.; Wu, Y.J. Characteristics and oil-congtrolling significance of unconformity structure layer on top of carbonate rock. Pet. Explor. Dev. 1996, 23, 16–19+82. (In Chinese) [Google Scholar]
- Wu, K.Y.; Cha, M.; Liu, G.D. The Unconformity Surface in the permian of Jungga-R Basin and the characters of oil-gas migration and accumulation. Pet. Explor. Dev. 2002, 2, 53–57. (In Chinese) [Google Scholar]
- Wang, Y.Z.; Cao, Y.C.; Wang, S.P.; Song, Y.B. Advances in research of spatial structures of unconformity. Geotechtonica Metallog. 2006, 30, 326–330. (In Chinese) [Google Scholar]
- Zou, C.N.; Hou, L.H.; Yang, F.; Yang, C.; Tao, S.; Yuan, X.; Zhu, R. Structure of weathered clastic crust and its petroleum potential. Sci. China Earth Sci. 2014, 57, 3015–3026. [Google Scholar] [CrossRef]
- Tang, Y.; Ji, J.; Guo, W.J.; Cheng, H.; Li, Y.Y.; Dong, F. Characteristics and reservoir-control effect of Upper/Middle Permian unconformity structures in the east of Fukang Sag, Junggar Basin. Oil Geophys. Prospect. 2022, 57, 1138–1147+1005. (In Chinese) [Google Scholar]
- Qadri, S.M.T.; Ahmed, W.; Haque, A.K.M.E.; Radwan, A.E.; Hakimi, M.H.; Abdel Aal, A.K. Murree Clay Problems and Water-Based Drilling Mud Optimization: A Case Study from the Kohat Basin in Northwestern Pakistan. Energies 2022, 15, 3424. [Google Scholar] [CrossRef]
- Osinowo, O.O.; Ayorinde, J.O.; Nwankwo, C.P.; Ekeng, O.M.; Taiwo, O.B. Reservoir description and characterization of Eni field Offshore Niger Delta, southern Nigeria. J. Petrol. Explor. Prod. Technol. 2018, 8, 381–397. [Google Scholar] [CrossRef]
- Qadri, S.T.; Islam, M.A.; Shalaby, M.R.; Ali, S.H. Integration of 1D and 3D modeling schemes to establish the Farewell Formation as a self-sourced reservoir in Kupe Field, Taranaki Basin, New Zealand. Front. Earth Sci. 2021, 15, 631–648. [Google Scholar] [CrossRef]
- Adelu, A.O.; Aderemi, A.A.; Akanji, A.O.; Sanuade, O.A.; Kaka, S.I.; Afolabi, O.; Olugbemiga, S.; Oke, R. Application of 3D static modeling for optimal reservoir characterization. J. Afr. Earth Sci. 2019, 152, 184–196. [Google Scholar] [CrossRef]
- Lin, J.P.; Jia, S.P.; Liu, T.H.; Yan, A.H.; Xi, Z.Q. Comprehensive evaluation of sealing ability of mudstone cap rock for Xing 9 depleted gas reservoir in reconstructing underground gas storage. Chin. J. Rock Mech. Eng. 2015, 34, 4099–4107. (In Chinese) [Google Scholar]
- Sui, F.G.; Wang, X.J.; Zhuo, Q.G. Current ex-ploration situation and research trend of stratigraphic reservoirs in continental fault basin—Taking Jiyang Depressionas an example. Pet. Geol. Recovery Effic. 2007, 14, 1–6. (In Chinese) [Google Scholar]
- Liu, X.J.; Jiang, Y.L.; Song, G.Q.; Chen, T. Determination of Unconformity Structure Types with Fuzzy Comprehensive Evaluation Method. J. Oil Gas Technol. 2009, 31, 170–173+435. (In Chinese) [Google Scholar]
- Chen, G.H.; Liang, S.S.; Wang, J.; Sui, S. Application of convolutional neural network in lithology identification. Well Logging Technol. 2019, 43, 129–134. (In Chinese) [Google Scholar]
- Han, B.; Wang, C.W.; Sheng, S.F.; Pang, Y.Q. Controls of the permian unconformity on Reservoir Formation in Zhongguai-District 5 Area of Juggar Basin. Nat. Gas Geosci. 2017, 28, 1821–1828. (In Chinese) [Google Scholar]
- Zhou, P.X.; Wu, K.Y.; Dong, F.; Li, Y.Y. Denudation thickness and distribution rule in the fault-depression transition period of Junggar Basin. Geol. Resour. 2023, 32, 575–583. (In Chinese) [Google Scholar]
- Gao, C.H.; Peng, P.; Li, B.Q. Unconfor-Mity types and their constraints on hydrocarbon behaviort. Lithol. Reserv. 2013, 25, 1–7. (In Chinese) [Google Scholar]
- Cheng, Z.G.; Hu, T.T.; Qu, J.H.; He, L.P. High-quality and thin reservoir of tight conglomerate prediction in Maxi area of Junggar Basin. Geophys. Geochem. Explor. 2015, 39, 891–896. (In Chinese) [Google Scholar]
- Anderson, R.A.; Ingram, D.S.; Zanier, A.M. Determining fracture pressure gradient from well log. J. Pet. Technol. 1973, 25, 1259–1268. [Google Scholar] [CrossRef]
- Allais, M. Évaluation des Perspectives Économiques de la Recherche Minière sur de Grands Espaces—Application au Sahara Algérien; Revue de l’Industrie Minérale: Paris, France, 1956. [Google Scholar]
- Haimson, B.; Fairhurst, C. Initiation and extension of hydraulic fractures in rocks. Soc. Pet. Eng. J. 1967, 7, 310–318. [Google Scholar] [CrossRef]
- Hubbert, M.K.; Willis, D.G. Mechanics of hydraulic fracturing. Pet. Trans. 1957, 210, 153–168. [Google Scholar] [CrossRef]
- Schowalter, T.T. Mechanics of secondary hydrocarbon migration and entrapment. AAPG Bull. 1979, 63, 723–760. [Google Scholar]
- Stephen, R.D. Prediction of fracture pressures for wildcat wells. J. Pet. Technol. 1982, 34, 863–872. [Google Scholar]
- Tourinho, O. The Valuation of Reserves of Natural Resources: An Option Pricing Approach. Ph.D. Thesis, University of California, Berkeley, CA, USA, 1979. [Google Scholar]
- He, Y.B.; Zheng, J.Y.; Zhang, M. Calculation method and application of formation fracture pressure in Baiyun deepwater area. Mar. Geol. Front. 2022, 38, 41–50. (In Chinese) [Google Scholar]
- Eaton, B.A. Fracture gradient prediction and its application in oilfield operations. J. Pet. Technol. 1969, 21, 1353–1360. [Google Scholar] [CrossRef]
- Wang, Z.A. Study on Prediction Method and Distribution Law of Formation Pressure of Baikouquan Formation in Mahu Sag. Master’s Thesis, China University of Petroleum, Beijing, China, 2020. [Google Scholar] [CrossRef]
- Liu, H.L.; Lu, Z.Y.; Li, S.; Li, W.F. Sedimentary microfacies and favorable reservoir prediction of lower wuerhe formation of permian in MH1 Well Area. Sci. Technol. Eng. 2023, 23, 7650–7660. (In Chinese) [Google Scholar]
- Zecchin, M.; Catuneanu, O.; Caffau, M. High-resolution sequence stratigrap of clastic shelves VIII: Full-cycle subaerial unconformities. Mar. Pet. Geol. 2022, 135, 105425. [Google Scholar] [CrossRef]
- Green, A.; Meltzer, L.; Cooper, A.; Labuschagne, H.; Heeralal, T. Anatomy and stratigraphic evolution of a shelf bypass valley system: Lessons from the Namibian continental shelf. Geomorphology 2025, 476, 109680. [Google Scholar] [CrossRef]
- Bouat, L.; Strzerzynski, P.; Gardien, V.; Barré, G.; Branquet, Y.; Melleton, J.; Mourgues, R. Unconformity-related mineralization and fluid transfers in the northern Aquitaine Basin (France) revealed by fluid inclusions and S-Sr isotopes studies. J. Geochem. Explor. 2025, 272, 107713. [Google Scholar] [CrossRef]
- Bachari, M.; Negra, M.H.; Neumann, F.H.; Bergh, E.W.; Soltani, A.; Grosheny, D. Tectonic control of the Late Cretaceous sedimentation in north-central Tunisia: Insights from unconformities and early basin inversion. Mediterr. Geosci. Rev. 2025, 7, 29–50. [Google Scholar] [CrossRef]
- Baby, P.; Prudhomme, A.; Brusset, S.; Robert, A.; Roddaz, M.; Calderon, Y.; Eude, A.; Gil, W.; Hermoza, W.; Hurtado, C.; et al. The Northern Central Andes and Andean tectonic evolution revisited: An integrated stratigraphic and structural model of three superimposed orogens. Earth-Sci. Rev. 2025, 260, 104998. [Google Scholar] [CrossRef]
Roof | Middle Baseplate | Baseplate | ||||||||
---|---|---|---|---|---|---|---|---|---|---|
Well | FG | H (m) | FG*H | FG | H (m) | FG*H | FG | H (m) | FG*H | Oil Yield |
Ma 131 | 2.27 | 40.7 | 92.4 | 2.23 | 24.3 | 54.2 | 2.28 | 26.1 | 59.5 | 9.24 t/d |
Ma 133 | 2 | 24.9 | 49.8 | 2.01 | 19.1 | 38.4 | 2.02 | 27.4 | 55.3 | 6.69 t/d |
Ma 154 | 1.96 | 12 | 23.5 | 2.15 | 3.3 | 7.1 | 1.98 | 26.3 | 52.1 | 2.81 t/d |
Ma 158 | 1.95 | 27.15 | 52.9 | 1.91 | 4 | 7.64 | 1.99 | 7.5 | 14.9 | 3.55 t/d |
Xia 89 | 2.1 | 10.5 | 22.1 | 1.91 | 10.1 | 19.3 | 2.07 | 18.2 | 37.7 | 7.06 t/d |
Xia 94 | 2.11 | 20.9 | 44.1 | 2.12 | 5.1 | 10.8 | 2.13 | 30.1 | 64.1 | 4.36 t/d |
Xia 723 | 2.06 | 7.2 | 14.8 | 2.04 | 4.9 | 10 | 2.09 | 25.7 | 53.7 | 3.5 t/d |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2025 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Wan, Z.; Zheng, M.; Wang, X.; Bao, Y.; An, Z.; Xiao, Q.; Chen, Y. Sealing of Unconformity Structure and Hydrocarbon Accumulation in the Baikouquan Formation of the Mahu Sag. Appl. Sci. 2025, 15, 4061. https://doi.org/10.3390/app15074061
Wan Z, Zheng M, Wang X, Bao Y, An Z, Xiao Q, Chen Y. Sealing of Unconformity Structure and Hydrocarbon Accumulation in the Baikouquan Formation of the Mahu Sag. Applied Sciences. 2025; 15(7):4061. https://doi.org/10.3390/app15074061
Chicago/Turabian StyleWan, Zexin, Menglin Zheng, Xiaolong Wang, Yiyao Bao, Zhiyuan An, Qilin Xiao, and Yunqiao Chen. 2025. "Sealing of Unconformity Structure and Hydrocarbon Accumulation in the Baikouquan Formation of the Mahu Sag" Applied Sciences 15, no. 7: 4061. https://doi.org/10.3390/app15074061
APA StyleWan, Z., Zheng, M., Wang, X., Bao, Y., An, Z., Xiao, Q., & Chen, Y. (2025). Sealing of Unconformity Structure and Hydrocarbon Accumulation in the Baikouquan Formation of the Mahu Sag. Applied Sciences, 15(7), 4061. https://doi.org/10.3390/app15074061