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PHYSICS OF ROCKS AND PROCESSES
Название Probability assessment of pit wall stability in jointed rock mass
DOI 10.17580/gzh.2019.05.06
Автор Chukin B. A., Chukin R. B.
Информация об авторе

R&D Laboratory for Geotechnical Stability, Bishkek, Kyrgyzstan:

B. A. Chukin, CEO, Candidate of Engineering Sciences, bchukin@yandex.com
R. B. Chukin, Deputy CEO of Research and Development

Реферат

Based on the real data from engineering–geological investigation and laboratory tests, probability assessment of pit wall stability was performed for pit wall at the Kumtor gold ore deposit in the Kyrgyz Republic. The sensitivity analysis was carried out determine influence of random variables on the pit wall stability based on the computational experiment according to the scheme of the central composite plan. The chosen variable factors were the parameters of the Hoek–Brown criteria, the general angle of the pit wall slope and the ground water level in the pit. The computational experiment was implemented out using the test example of pit wall 400 m heigh. According to the sensitivity analysis, the dominant factor is GSI—geological strength index, which describes how heavily rock mass is jointed and is determined by the results of engineering–geological investigation. With regard to the influence on the pitwall stability, the GSI parameter is twice as high as the compressive strength of the undisturbed sample and three times as high as the general slope angle and ground water level. Thus, the distribution law of pitwall FoS is primarily affected by the distribution law of GSI parameter, which, gentically is individual per each pit wall area. For probability assessment of stability, a random variable is selected to be FoS. The reliability of FoS calculation is based on a FLAC program option to perform complex processing of random variables by the Monte Carlo method and to calculate stability of each implemented variant. In total, 100 variants were implementede. The statistical estimation of the mathematical expectation accuracy of FoS was performed by the sample mean FoS based on the determination of confidence intervals with a given reliability γ=0.99. In our case, testing the hypothesis of the normal distribution law for FoS was rejected in favor of the Weibull distribution. The law of distribution of the GSI parameter in each geological zone was different from normal. The calculated probability of failure by the Weibull distribution was Р(FoS<1)=31.7 %. The decision on the stability of the pit wall was made based on the comparison of Р(FoS<1) with the critical probability of pit wall failure Рcrit. We believe that the most acceptable values of Рcrit are withn the range from 5% to 0%. The comparison of Р(FoS<1) with Рcrit, in our case, indicates the need to carry out measures aimed to increase overall stability of the pit wall in the study section. The reli ability of probability assessment of pit wall stability is based on the implementation of the rules and methods of statistical processing and analysis of both source and calculated data on the specialized program Statistica.

Ключевые слова Jointed rock mass, factor of stability, Hoek–Brown criterion, Geological Strength Index GSI, Monte Carlo simulation, sensitivity analysis, statistical hypothesis, empirical distribution function, probabilistic stability assessment
Библиографический список

1. Fisenko G. L. Slope stability of pit walls and dumps. 2nd enlarged and revised edition. Moscow : Nedra, 1965. 378 p.
2. Read J., Stacey P. (Eds.). Guidelines for open pit slope desig. Translated from English. Ekaterinburg : Pravoved, 2015. 544 p.
3. Zoteev V. G. Pitwall design : Domestic and foreign experience. Gornyi Zhurnal. 2017. No. 1. pp. 85–89.
4. Hoek E. Practical Rock Engineering. Available at: https://www.rocscience.com/assets/resources/learning/hoek/Practical-Rock-Engineering-Full-Text.pdf (accessed: 15.03.2019).
5. Polishchuk S. Z., Lashko V. T., Kucherskiy N. I., Sytenkov N. V., Bykovtsev S. A. et al. Forecast of stability and optimization of parameters of edges of deep open pits. Dnepropetrovsk : Poligrafist, 2001. 371 p.
6. Popov V. N., Shpakov P. S., Yunakov Yu. L. Pitwall slope stability control : Textbook. Moscow : Gornaya kniga, 2008. 683 p.
7. Balovtsev S. V. Theory and practice in ensuring the methodological management of manufacturing risk in mining. GIAB. 2016. No. 12. Special Issue 39. Safety and risk management in mining. pp. 6–9.
8. Stead D., Wolter A. A critical review of rock slope failure mechanisms: The importance of structural geology. Journal of Structural Geology. 2015. Vol. 74. pp. 1–23.
9. Wenchen Fan, Ping Cao, Ke Zhang, Kaihui Li, Chong Chen. Stability Assessment and Optimization Design of Lakeside Open-Pit Slope considering Fluid-Solid Coupling Effect. Mathematical Problems in Engineering. 2015. Vol. 2015.
10. Hormazabal E. Bench berm design using probabilistic key block analysis. Gornyi Zhurnal. 2015. No. 3. pp. 38–45. DOI: 10.17580/gzh.2015.03.06
11. Levin E. L., Polovinko A. V. Effect exerted by uncertainty of physical and mechanical properties of rock mass on factor of stability and failure probability of pit wall, as well as rock fall disisntegration zone assessment. Gornyi Zhurnal. 2016. No. 5. pp. 14–20.
12. Levin E. L., Serdyukov A. L. Probabilistic models of limit equilibrium and face deformation designed open pit with dynamic parameters prediction of sliding surfaces using the method of spectral analysis of seismic profiling. Problemy nedropolzovaniya. 2017. Vol. 4(15). pp. 43–51.
13. Cheskidov V. V., Lipina A. V., Melnichenko I. A. Integrated monitoring of engineering structures in mining. Eurasian Mining. 2018. No. 2. pp. 18–21. DOI: 10.17580/em.2018.02.05
14. Gaziev E. G., Rechitsky V. I. Probabilistic assessment of rock mass quality . Moscow : Stroyizdat, 1985. 105 p.
15. Bellendir E. N., Ivashintsov D.A., Stefanishin D. V., Finagenov O. M., Shulman S. G. Probabilistic methods to assess reliability of subsurface waterwork structure. Saint-Petersburg : VNIIG Vedeneeva, 2003. Vol. 1. 553 p.
16. STP VNIIG 210.02.NT-04. Guidelines on accident risk analysis of waterworks. 2nd ed. Saint-Petersburg : VNIIG Vedeneeva, 2005. 100 p.
17. SP 58.13330.2012. Waterworks. Basic provisions (as amended No. 1 as of 20.10.2016). Moscow : Minregion Rossii, 2012. 53 p.
18. Regulations on slope stability in open pit coal mines. Saint-Petersburg, 1998. 208 p.
19. Ventsel E. S. The theory of probability : Textbook. 10th ed. Moscow : Vysshaya shkola, 2006. 575 p.
20. Products. Itasca Consulting Group, 2019. Available at: https://www.itascacg.com/software (accessed: 19.03.2019).
21. Hoek E., Martin C. D. Fracture initiation and propagation in intact rock – A review. Journal of Rock Mechanics and Geotechnical Engineering. 2014. Vol. 6, Iss. 4. pp. 287–300.
22. Gmurman V. E. The probability theory and mathematical statistics : Textbook. 12th ed. Moscow : Yurait, 2014. 479 p.

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