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Integrated seismic–geological prediction of tectonic coal via main controlling factors

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Tectonic coal in coal seams not only seriously restricts the development of coalbed methane (CBM), but also easily forms coal and gas outburst risk areas. Therefore, it is of great significance to effectively predict the tectonic coal in coal seams under the development scale. Currently, the prediction methods of tectonic coal include geological prediction and geophysical prediction. Due to the large scale of geological analysis and the low identifiability of geophysical response of thin coal seam, these two methods are difficult to meet the prediction requirements of tectonic coal in the development process. Therefore, this paper proposes a new method for predicting tectonic coal based on seismic–geological integrated analysis of main controlling fac tors. Firstly, the control factors of tectonic coal and their quantitative characterization are determined by geological analysis. Then, the characterization parameters of control factors are obtained by various seismic technologies. Finally, the main control factors are screened by grey correlation analysis, and the prediction model of tectonic coal distribution is established by using the main control factors, and applied in the Qinshui Basin. The results show that the structure, surrounding rock lithology and coal thickness are three kinds of geological factors controlling the development of tectonic coal and the control weight of each factor is different. Structure plays the most important role in controlling the development of tectonic coal, followed by coal thickness and surrounding rock lithology. The prediction error of two verification wells is less than 2%, which indicates that the method can provide effective guidance for coal structure evaluation in the process of CBM development and coal mining.
Czasopismo
Rocznik
Strony
173--190
Opis fizyczny
Bibliogr. 30 poz.
Twórcy
autor
  • Department of Earth Science & Engineering, Taiyuan University of Technology, Taiyuan, China
  • Department of Earth Science & Engineering, Taiyuan University of Technology, Taiyuan, China
autor
  • Department of Earth Science & Engineering, Taiyuan University of Technology, Taiyuan, China
autor
  • Department of Earth Science & Engineering, Taiyuan University of Technology, Taiyuan, China
autor
  • Department of Earth Science & Engineering, Taiyuan University of Technology, Taiyuan, China
Bibliografia
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  • 2. Cao D, Li X, Deng J (2009) Coupling effect between coalification and tectonic-thermal events: geological records of geodynamics of sedimentary basin. Earth Sci Front 16(4):52–60
  • 3. Cai Y, Liu D, Yao Y et al (2011) Geological controls on prediction of coalbed methane of No. 3 coal seam in Southern Qinshui Basin, North China. Int J Coal Geol 88(2):101–112.
  • 4. Cao Y, Peng L, Hou Q (1993) Basic characteristics of coal-seam faults and their geological significance. Geol Rev 39(6):522–528 ((in Chinese))
  • 5. Cao L, Chang S, Yao Y (2019) Application of seismic sedimentology in predicating sedimentary microfacies and coalbed methane gas content. J Natural Gas Sci Eng 69(11):102944.
  • 6. Cao L, Yao Y, Liu D et al (2020) Application of seismic curvature attributes in the delineation of coal texture and deformation in Zhengzhuang field, southern Qinshui Basin. Int J Coal Geol 53(2):1–23
  • 7. Cao Y, Davis A, Liu R et al (2003) The influence of tectonic deformation on some geochemical properties of coals-A possible indicator of outburst potential. Int J Coal Geol 53(2):69–79
  • 8. Chen TJ, Wang X, Guan YW (2015) Quantitative prediction of tectonic coal seam thickness using support vector regression and seismic attributes. J China Coal Soc 40(5):1103–1108
  • 9. Fu X, Qin Y, Wang G et al (2009) Evaluation of coal structure and permeability with the aid of geophysical logging technology. Fuel 88(11):2278–2285
  • 10. Fu XH, Qin Y, Wei CT (2007). Coalbed methane geology. Xuzhou: China University of Mining and Technology Press (in Chinese).
  • 11. GB/T 30050–2013 (2013). National standards of the People’s Republic of China. Classification of coal structure (in Chinese).
  • 12. Guo D, Han D, Zhang J (2002) Research on the occurrence and distribution of structural coal in Pingdingshan coal district. J China Coal Soc 27(3):249–253 (in Chinese)
  • 13. Hou QL, Li HJ, Fan JJ et al (2012) Structure and coalbed methane occurrence in tectonically deformed coals. Sci China Earth Sci 55(011):1755–1763
  • 14. Huang B, Qin Y, Zhang WH et al (2018) Identification of the coal structure and prediction of the fracturability in the No. 8 coal reservoir, Gujiao block. China Energy Explor Exploit 36:204–229
  • 15. Jiang B, Qin Y, Ju YW et al (2009) The coupling mechanism of the evolution of chemical structure with the characteristics of gas of tectonic coals. Earth Sci Front 16(2):262–271
  • 16. Ju Y, Wang G, Hu C (2002) Tectonic deformation and its control over thickness of coal seams in Haizi Coal Mine. J China Univ Mining Technol 31(04):47–52 (in Chinese)
  • 17. Li S, Yao S, Han Y (2007) Using tendency analysis method to deal with geochemical data based on the surfer software. Geol Prospect 43(2):72–75 (in Chinese)
  • 18. Lu J, Wang Y, Chen J (2018) Detection of tectonically deformed coal using model-based joint inversion of multi-component seismic data. Energies 11(4).
  • 19. Liu Z, Feng M (2018) Numerical simulation study on the development patterns of tectonically deformed coal in Xinjing coal mine in Yangquan. Coal Geol Exploration 46(4):35–43 (in Chinese)
  • 20. Peng S, Du W, Yuan C et al (2008) Identification and forecasting of different structural coals by P-wave and S-wave from well-logging. Acta Geol Sin 82:1311–1321
  • 21. Sun Z, Zhang J (2004) Variation of in-situ stresses before and after occurrence of geologic fault structure. Chin J Rock Mech Eng 23(23):3964–3969 (in Chinese)
  • 22. Teng J, Yao Y, Liu D et al (2015) Evaluation of coal texture distributions in the southern Qinshui basin, North China: Investigation by a multiple geophysical logging method. Int J Coal Geol 140:9–22
  • 23. Wang S, Wang Y, Cao X (2003). Geological controls of coal body structure at No.1 mine in Shizuishan mine area. J Xi' An Univ Sci Technol 23(01):44–48 (in Chinese)
  • 24. Wang Y, Liu D, Cai Y et al (2018) Evaluation of structured coal evolution and distribution by geophysical logging methods in the Gujiao Block, northwest Qinshui basin, China. J Nat Gas Sci Eng 51:210–222
  • 25. Yao Y, Liu D, Tang D et al (2009) Preliminary evaluation of the coalbed methane production potential and its geological controls in the Weibei Coalfield, Southeastern Ordos Basin. China Int J Coal Geol 78(1):1–15
  • 26. Yao YB, Liu DM, Tang DZ et al (2008) A comprehensive model for evaluating coalbed methane reservoirs in China. Acta Geol Sin 82(6):1253–1270
  • 27. Yang ZB, Li YY, Qin Y et al (2019) Development unit division and favorable area evaluation for joint mining coalbed methane. Pet Explor Dev 46:583–593
  • 28. Zhang S, Huang H, Dong Y, et al (2017) Direct estimation of the fluid properties and brittleness via elastic impedance inversion for predicting sweet spots and the fracturing area in the unconventional reservoir. J Nat Gas Sci Eng 45(2017):415–427.
  • 29. Zhang S, Huang H, Zhu B et al (2018) Seismic facies-controlled pre-stack simultaneous inversion of elastic and petrophysical parameters for favourable reservoir prediction. Explor Geophys 49(05):655–668
  • 30. Zhang XD, Liu YH, Wang G et al (2009) Coalbed methane resources and reservoir characteristics of NO. II1 coal seam in the Jiaozuo coalfield. China Energy Explor Exploit 27:307–332
Uwagi
PL
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-5bdbe30f-9fee-46d1-81ce-6ff6e4282b03
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