High-precision coal seam correlation in the Nui Beo mine, North-Eastern Vietnam, using the blood relation algorithm

  • Cơ quan:

    Hanoi University of Mining and Geology, Hanoi, Vietnam

  • *Tác giả liên hệ:
    This email address is being protected from spambots. You need JavaScript enabled to view it.
  • Nhận bài: 02-04-2025
  • Sửa xong: 01-07-2025
  • Chấp nhận: 04-07-2025
  • Ngày đăng: 01-08-2025
Trang: 23 - 47
Lượt xem: 31
Lượt tải: 0
Yêu thích: , Số lượt: 0
Bạn yêu thích

Tóm tắt:

The Nui Beo coal mine is located in the Southern region of Quang Ninh province and is part of the Hon Gai-Cam Pha coal field. This formation is acknowledged as one of the most promising coal reserve areas in Vietnam. The blood relation algorithm enables comprehensive synthesis of geological data and systematic processing of stratigraphic parameters, facilitating scientifically robust coal seam identification and correlation. However, applying conventional correlation algorithms in the Quang Ninh coal basin has revealed significant limitations, particularly when distinguishing features-poor coal seams. This study, therefore, introduces an innovative application of the blood relation technique to address these challenges. This method employs parameters, including coal seam thickness, interbedded layers, and angle of incidence. The blood relation technique achieved a correct identification rate of 97.33%, yielding higher efficiency compared to the recurrent neural network-RNN method (84.94%) and logistic regression method (70.87%). Therefore, the application of the blood relation technique for coal seam identification eliminated the need for characteristic factors of the coal seams. The algorithm revealed simpler and more environmentally congruent coal seams in the Nui Beo mine compared to other traditional methods. The findings of this study underscore applied mathematical methods in geological research, emphasize their role in identifying coal seams, and assess their compatibility with the sedimentary environment within the mine.

Trích dẫn
Hung The Khuong, Toan Thi Ta và Hien Thanh Thi Pham, 2025. High-precision coal seam correlation in the Nui Beo mine, North-Eastern Vietnam, using the blood relation algorithm, Tạp chí Khoa học kỹ thuật Mỏ - Địa chất, số 66, kỳ 4, tr. 23-47.
Tài liệu tham khảo

Anh, P.T. (ed.) (2009).The report delineates the transformation in coal reserve levels and the grading of coal resources pertaining to the Ha Lam mine. Archived at the Vietnam National Coal and Mineral Industries Group (Vinacomin),105 p (in Vietnamese).

Crook, A.W. (1974). Lithogenesis and geo-tectonics: the significance of compositional variations in flysch arenites (graywackes), in Dott, R.H. and Shaver, R.H., eds., Modern and ancient geosynclinal sedimentation. SEPM Special Publication,19, 304-310. https://doi.org/10.2110/pec.74.19.0304.

Dickinson, W.R., Suczek, C.A. (1979). Plate tectonics and sandstone compositions. American Association of Petroleum Geologists Bulletin, 63, 2164-2182. https://doi.org/10.1306/2F9188FB-16CE-11D7-8645000102C1865D.

Dickinson, W.R., Valloni, R. (1980). Plate settings and provenance of sands in modern ocean basins. Geology, 8, 82-86. https://doi.org/10.1130/0091-7613(1980)8%3C82:PSAPOS%3E2.0.CO;2.

Duan, H., Xie, W., Zhao, J., Jia, T. (2021). Sequence stratigraphy and coal accumulation model of the Taiyuan Formation in the Tashan Mine, Datong Basin, China. Open Geosciences, 3(1), 1259-1272. http://dx.doi.org/10.1515/geo-2020-0303.

Dyke, M.V., Klemetti, T., Wickline, J. (2020). Geologic data collection and assessment techniques in coal mining for ground control. International Journal of Mining Science and Technology,30(1), 131-139. https://doi.org/10.1016/j.ijmst.2019.12.003.

Einsele, G. (2020). Sedimentary Basins, Evolution, Facies and Sediment Budget. Springer-Verlag Berlin Heidelberg.https://doi.org/10.1007/ 978-3-662-04029-4.

Freedman, D.A. (2009).Statistical models: theory and practice. Cambridge University Press, 12 p.

Hou, H., Shao, L., Tang, Y., Li, Y., Liang, G., Xin, Y., Zhang, J. (2023). Coal seam correlation in terrestrial basins by sequence stratigraphy and its implications for paleoclimate and paleoenvironment evolution. Journal of Earth Science, 34, 556-570. https://doi.org/10.1007/s12583-020-1069-4.

Hung, K.T., Phuong, N., Cuc, N.T., Sang, P.N., Tuyen, N.D. (2021). Identifying Correlation of Coal Seams in the Tien Hai Area, Northern Vietnam by Using Multivariate Statistic Methods. Inżynieria Mineralna - Journal of the Polish Mineral Engineering Society, 2(46),129-148. http://doi.org/10.29227/IM-2021-02-11

Hung, K.T., Toan, T.T., Tuyen, N.D. (2022). Identifying the correlation of coal seams in Nui Beo mine, Quang Ninh province using logistic regression and artificial intelligence methods. Proceedings of the 5th National Conference on Sustainable Earth, Mine, Environment Creative, 305-317 (in Vietnamese). http://doi.org/10.15625/vap.2022.0184.

Hung, K.T., Tuyen, N.D. (2023). Identifying the coal seams and their sedimentary environments in the Nui Beo mine, Quang Ninh province using K-means and regression methods. Science and Technology Development Journal - Science of the Earth and Environment, 6(2), 583-599 (in Vietnamese). https://doi.org/10.32508/stdjsee.v6i2.692.

Hung, L. (ed.) (1996). Report on Geological and Mineral resource mapping at 1:50.000 scale of the Hon Gai-Cam Pha sheet group. The Vietnam Geological Department (VGD), Hanoi, 58 p.

Hung, N.M. (ed.) (2019).Report on the results of the exploration of Ha Lam coal mine, Ha Long, Quang Ninh. Ministry of Natural Resources and Environment Vietnam, 110 p (in Vietnamese).

Konstantinov, A. R.(1968). Ispareniye v prirode(Evaporation in nature). Leningrad,Russia, Hydrometeorological publishing, 532 p (in Russian).

Potter, E. (1978). Petrology and chemistry of modern big river sands. Journal of Geology, 86, 423-449.

Schwab, L. (1975). Framework mineralogy and chemical composition of continental margin-type sandstone. Geology,3(9), 487-490. https://doi.org/10.1130/0091-7613(1975)3%3C487:FMACCO% 3E2.0.CO;2.

Steinhaus, H. (1956). Sur la division descorps matériels en parties. Bulletin del’Académie Polonaise des Sciences,3(12), 801-804.

Valloni, R., Maynard, J.B. (1981). Detrital model of Recent deep-sea sands and their relation to tectonic setting: A first approximation. Sedimentology, 28, 75-83. https://doi.org/10. 1111/j.1365-3091.1981.tb01664.x.

Zhifei, L., Yingchun, W., Shuzheng, N., Xu, J., Rongfang, Q., Daiyong, C. (2019). The differences of element geochemical characteristics of the main coal seams in the Ningdong coalfield, Ordos Basin. Journal of Geochemical Exploration,202, 77-91. https: //doi.org/10.1016/j.gexplo.2019.03.018.

Srivastava, A.K., Agnihotri, D. (2013). Coal seam correlation of an Indian Gondwana coalfield:A palaeobotanical perspective. International Journal of Coal Geology, 113, 88-96. https://doi.org/10.1016/j.coal.2012.06.009.

Shi, J., Zeng, L., Dong, S., Wang, J., Zhang, Y. (2020). Identification of coal structures using geophysical logging data in QinshuiBasin, China: Inestigation by kernel Fisher discriminant analysis. International Journal of Coal Geology, 217, 103314. https://doi.org/10.1016/j.coal.2019.103314.

Li, Y., Shao, L., Fielding, C. R., Wang, D., Mu, G. (2021). Sequence stratigraphy, paleogeography and coal accumulation in alowland alluvial plain, coastal plain and shallow-marine setting: UpperCarboniferous-Permian of the Anyang-Hebi coalfield, Henan Province,North China. Palaeogeography, Palaeoclimatology, Palaeoecology, 567, 110287. https://doi.org/10.1016/j.palaeo.2021.110287.

Các bài báo khác