Technical Papers
May 18, 2017

Evolution of Water Table and Pore-Water Pressure in Stopes with Submerged Hydraulic Fill

Publication: International Journal of Geomechanics
Volume 17, Issue 9

Abstract

Hydraulic fill is often used to fill large underground voids created during mining operations. It is produced and distributed as a slurry at a pulp density (P) of 65–75% (solids content). Consequently, a substantial amount of water needs to drain after placement. Inadequate drainage has been regarded as the main cause of barricade failure for stopes with hydraulic fills. Therefore, a good understanding of the evolution of total and effective stresses within such backfilled stopes is critical for barricade design. Most existing analytical solutions for assessing stresses in stopes are based on Marston’s approach by considering a fully drained (without pore-water pressure) or hydrostatic state. These conditions are not always representative of the stress state in stopes and behind barricades. When slurried hydraulic fill is placed into a stope, the self-weight consolidation or sedimentation of the fill can take place fairly rapidly. Ponding could first occur on the top of backfill if the drainage through barricades is not sufficient. Drainage through the barricade then allows the water table to descend, changing the pore-water pressures with time. In this paper, the authors present analytical solutions for estimating the evolution of water table and pore-water pressures in stopes with submerged hydraulic fills. These solutions were validated using numerical simulations. The results show that the ponding on the top of the settled fill has a negative impact on the barricade safety. Two-dimensional (2D) modeling without considering the reduced drift area tends to underestimate the pore-water pressures in stopes and behind barricades, which may render the barricade design nonconservative. Discussion follows on some particular features and limitations of the proposed analytical and numerical solutions.

Get full access to this article

View all available purchase options and get full access to this article.

Acknowledgments

The authors acknowledge the financial support from the Natural Sciences and Engineering Research Council of Canada (NSERC 402318), Institut de recherche Robert-Sauvé en santé et en sécurité du travail (IRSST 2013-0029), Fonds de recherche du Québec–Nature et Technologies (FRQNT 2015-MI-191676), and industrial partners of the Research Institute on Mines and Environment (RIME UQAT-Polytechnique). GEO-SLOPE and Dr. Robert Chapuis are acknowledged for the courtesy of the use of SEEP/W. The anonymous reviewers are gratefully acknowledged for their comments that helped improve the quality of the paper.

References

Askew, J., McCarthy, P. L., and Fitzgerald, D. J. (1978). “Backfill research for pillar extraction at ZC/NBHC.” Proc., Mining with Backfill: 12th Canadian Rock Mechanics Symp., CIM, Montreal, 12, 100–110.
Aubertin, M. (2013). “R.M. Hardy Keynote Address: Self-weight consolidation problems related to surface and underground disposal of fine-grained mine wastes.” Proc., 66th Canadian Geotech. Conf., CGS, Montreal.
Aubertin, M., et al. (2003). “Interaction between backfill and rock mass in narrow stopes.” Proc., Soil and Rock America 2003, 1, Verlag Glückauf Essen (VGE), Essen, Germany, 1157–1164.
Aubertin, M., Bussière, B., and Bernier, L. (2002). Environnement et gestion des rejets miniers (CD-ROM), Presses Internationales Polytechnique, Montréal (in French).
Aubertin, M., Bussière, B., Pabst, T., James, M., and Mbonimpa, M. (2016). “Review of the reclamation techniques for acid-generating mine wastes upon closure of disposal sites.” Proc., Geo-Chicago 2016, ASCE, Reston, VA, 343–358.
Benzaazoua, M., Bussière, B., Demers, I., Aubertin, M., Fried, É., and Blier, A. (2008). “Integrated mine tailings management by combining environmental desulphurization and cemented paste backfill: Application to mine Doyon, Quebec, Canada.” Miner. Eng., 21(4), 330–340.
Bloss, M. L., and Chen, J. (1998). “Drainage research at Mount Isa Mines limited 1992–1997.” Proc., 6th Int. Symp. on Mining with Backfill, M. Bloss, ed., AusIMM, Carlton, Victoria, Australia, 111–116.
Bussière, B. (2007). “Colloquium 2004: Hydro-geotechnical properties of hard rock tailings from metal mines and emerging geoenvironmental disposal approaches.” Can. Geotech. J., 44(9), 1019–1052.
Chapuis, R. P. (2009). “Numerical modeling of reservoirs or pipes in groundwater seepage.” Comput. Geotech., 36(5), 895–901.
Chapuis, R. P., and Aubertin, M. (2001). “A simplified method to estimate saturated and unsaturated seepage through dikes under steady-state conditions.” Can. Geotech. J., 38(6), 1321–1328.
Chapuis, R. P., Chenaf, D., Bussière, B., Aubertin, M., and Crespo, R. (2001). “A user’s approach to assess numerical codes for saturated and unsaturated seepage conditions.” Can. Geotech. J., 38(5), 1113–1126.
Doherty, J. P. (2015). “A numerical study into factors affecting stress and pore pressure in free draining mine stopes.” Comput. Geotech., 63, 331–341.
Doherty, J. P., and Wood, D. M. (2016). “Back analysis of the Kanowna Belle stope filling case history.” Comput. Geotech., 76, 201–211.
Fahey, M., Helinski, M., and Fourie, A. (2009). “Some aspects of the mechanics of arching in backfilled stopes.” Can. Geotech. J., 46(11), 1322–1336.
Falaknaz, N., Aubertin, M., and Li, L. (2015). “Numerical analyses of the stress state in two neighboring stopes excavated and backfilled in sequence.” Int. J. Geomech., 04015005.
Fourie, A. B., Copeland, A. M., and Barrett, A. J. (1994). “Optimization of the as-placed properties of hydraulic backfill.” J. South Afr. Inst. Min. Metall., 94(8), 199–210.
GEO-SLOPE International Ltd. (2010). Seepage modeling with SEEP/W 2007, user’s guide, Calgary, Alberta, Canada.
Grice, A. G. (1998). “Stability of hydraulic backfill barricades.” Proc., 6th Int. Symp. on Mining with Backfill, M. Bloss, ed., AusIMM, Carlton, Victoria, Australia, 117–120.
Grice, A. G. (1998b). “Underground mining with backfill.” Proc., 2nd Annual Summit-Mine Tailings Disposal Systems, Brisbane.
Grice, A. G. (2001). “Recent mine fill developments in Australia.” Proc., 7th Int. Symp. on Mining with Backfill, SME, Littleton, CO, 351–357.
Hassani, F., and Archibald, J. (1998). Mine backfill (CD-ROM), Canadian Institute of Mine, Metallurgy and Petroleum, Montréal.
Helinski, M., and Grice, A. G. (2007). “Water management in hydraulic fill operations.” Proc., 9th Int. Symp. on Mining with Backfill, CIM, Montreal.
Herget, G., and De Korompay, V. (1978). “In-situ drainage properties of hydraulic backfills.” Proc., Mining with Backfill: 12th Canadian Rock Mechanics Symp., CIM, Montreal, 19, 117–123.
Hustrulid, W. A., and Bullock, R. L. (2001). Underground mining methods: Engineering fundamentals and international case studies, Society for Mining, Metallurgy, and Exploration, Littleton, CO.
Isaacs, L. T., and Carter, J. P. (1982). “Theoretical study of pore water pressures developed in hydraulic fill in mine stopes.” Research Rep. No. CE32, Univ. of Queensland, St. Lucia, Australia.
Kuganathan, K. (2001). “Mine backfilling, backfill drainage and bulkhead construction—A safety first approach.” Australia’s Mining Monthly, (Feb), 58–64.
Li, L. (2014). “Generalized solution for mining backfill design.” Int. J. Geomech., 04014006.
Li, L., Alvarez, I. C., and Aubertin, J. D. (2013). “Self-weight consolidation of a slurried deposition: Tests and interpretation.” Int. J. Geotech. Eng., 7(2), 205–213.
Li, L., and Aubertin, M. (2009a). “A three-dimensional analysis of the total and effective stresses in submerged backfilled stopes.” Geotech. Geol. Eng., 27(4), 559–569.
Li, L., and Aubertin, M. (2009b). “Influence of water pressure on the stress state in backfill with cohesionless stopes.” Geotech. Geol. Eng., 27(1), 1–11.
Li, L., Aubertin, M., and Belem, T. (2005). “Formulation of a three dimensional analytical solution to evaluate stresses in backfilled vertical narrow openings.” Can. Geotech. J., 42(6), 1705–1717.
Liu, G. S., et al. (2017a). “An investigation of the uniaxial compressive strength of a cemented hydraulic backfill made of alluvial sand.” Miner., 7(1), 4.
Liu, G. S., Li, L., Yang, X. C., and Guo, L. J. (2017b). “Numerical analysis of stress distribution in backfilled stopes considering interfaces between the backfill and rock walls.” Int. J. Geomech., 06016014.
Martic, Z., Gelson, J., Bras, H., Xu, Q., and Brosko, W. (2014). “New perspectives for cemented hydraulic fill with chemical technologies.” Proc., Mine Fill 2014, Australian Centre for Geomechanics, Perth, Australia.
Neindorf, L. B. (1983). “Fill operating practices at Mount Isa Mines.” Proc., Mining with Backfill, A. A. Balkema/Taylor & Francis, Rotterdam, Netherlands, 179–187.
Ouellet, J., Bussere, B., and Gagnon, G. (1995). “Simulation numérique du remblayage d’un chantier de mine avec du remblai hydraulique cimenté: Élaboration du modèle.” Proc., 3rd Canadian Conf. on Computer Applications in the Mineral Industry, McGill Univ., Montreal, 331–339.
Ouellet, J., and Servant, S. (1998). “Numerical simulation of the drainage in a mining stope filled with hydraulic backfill.” Proc., 6th Int. Symp. on Mining with Backfill, M. Bloss, ed., AusIMM, Carlton, Victoria, Australia, 105–110.
Pedroni, L. (2011). “Étude expérimentale et numérique de la sédimentation et de la consolidation des boues de traitement des eaux acides.” Ph.D. thesis, Polytechnique Montréal, Montréal (in French).
Peele, I. (1941). Mining engineers handbook, John Wiley and Sons, New York.
Potvin, Y., Thomas, E., and Fourie, A. (2005). Handbook on mine fill, Australian Centre for Geomechanics, Perth, Australia.
Rankine, K. J. (2005). “An investigation into the drainage characteristics and behaviour of hydraulically placed mine backfill and permeable minefill barricades.” Ph.D. thesis, James Cook Univ., Townsville City, Australia.
Rankine, K. J., Rankine, K. S., and Sivakugan, N. (2003). “Three dimensional drainage modelling of hydraulic fill mines.” Proc., 12th Asian Regional Conf. on Soil Mechanics and Geotechnical Engineering, World Scientific, Singapore, 937–940.
Rankine, K. J., Sivakugan, N., and Cowling, R. (2006). “Emplaced geotechnical characteristics of hydraulic fills in a number of Australian mines.” Geotech. Geol. Eng., 24(1), 1–14.
Sivakugan, N., Rankine, K. J., and Rankine, K. S. (2006a). “Study of drainage through hydraulic fill stopes using method of fragments.” Geotech. Geol. Eng., 24, 79–89.
Sivakugan, N., Rankine, K. J., and Rankine, R. M. (2006b). “Permeability of hydraulic fills and barricade bricks.” Geotech. Geol. Eng., 24, 661–673.
Sivakugan, N., and Rankine, K. S. (2006). “A simple solution for drainage through a 2-dimensional hydraulic fill stope.” Geotech. Geol. Eng., 24(5), 1229–1241.
Soderberg, R. L,. and Busch, R. A. (1985). Bulkheads and drains for high sandfill stopes, U.S. Dept. of the Interior, Bureau of Mines, Pittsburgh.
Thomas, E. G. (1979). Fill technology in underground metalliferous mines, International Academic Services Limited, Kingston, Canada.
Thompson, B. D., Hunt, T., Malek, F., Grabinsky, M. W., and Bawden, W. F. (2014). “In situ behaviour of cemented hydraulic and paste backfills and the use of instrumentation in optimising efficiency.” Proc., Mine Fill 2014, Australian Centre for Geomechanics, Perth, Australia.
Traves, W. H., and Isaacs, L. T. (1991). “Three-dimensional modelling of fill drainage in mine stopes.” Trans. Inst. Min. Metall., Sect. A: Min. Ind., 100, A66–A72.
Wickland, B. E., and Wilson, G. W. (2005). “Self-weight consolidation of mixtures of mine waste rock and tailings.” Can. Geotech. J., 42(2), 327–339.
Yang, P. Y. (2016). “Investigation of the geomechanical behavior of mine backfill and its interaction with rock walls and barricades.” Ph.D. thesis, Polytechnique Montreal, Montreal.
Yang, P. Y., and Li, L. (2015). “Investigation of the short-term stress distribution in stopes and drifts backfilled with cemented paste backfill.” Int. J. Min. Sci. Technol., 25(5), 721–728.
Yang, P. Y., Li, L., Aubertin, M., Brochu-Baekelmans, M., and Ouellet, S. (2016). “Stability analyses of waste rock barricades designed to retain paste backfill.” Int. J. Geomech., 04016079.

Information & Authors

Information

Published In

Go to International Journal of Geomechanics
International Journal of Geomechanics
Volume 17Issue 9September 2017

History

Received: Aug 25, 2016
Accepted: Feb 15, 2017
Published online: May 18, 2017
Published in print: Sep 1, 2017
Discussion open until: Oct 18, 2017

Permissions

Request permissions for this article.

Authors

Affiliations

Postdoctoral Fellow, Research Institute on Mines and Environment, Dept. of Civil, Geological and Mining Engineering, École Polytechnique de Montréal, C.P. 6079, Succursale Centre-Ville, Montréal, QC, Canada H3C 3A7 (corresponding author). ORCID: https://orcid.org/0000-0002-5128-5785. E-mail: [email protected]
Li Li, Ph.D. [email protected]
Associate Professor, Research Institute on Mines and Environment, Dept. of Civil, Geological and Mining Engineering, École Polytechnique de Montréal, C.P. 6079, Succursale Centre-Ville, Montréal, QC, Canada H3C 3A7. E-mail: [email protected]

Metrics & Citations

Metrics

Citations

Download citation

If you have the appropriate software installed, you can download article citation data to the citation manager of your choice. Simply select your manager software from the list below and click Download.

Cited by

View Options

Get Access

Access content

Please select your options to get access

Log in/Register Log in via your institution (Shibboleth)
ASCE Members: Please log in to see member pricing

Purchase

Save for later Information on ASCE Library Cards
ASCE Library Cards let you download journal articles, proceedings papers, and available book chapters across the entire ASCE Library platform. ASCE Library Cards remain active for 24 months or until all downloads are used. Note: This content will be debited as one download at time of checkout.

Terms of Use: ASCE Library Cards are for individual, personal use only. Reselling, republishing, or forwarding the materials to libraries or reading rooms is prohibited.
ASCE Library Card (5 downloads)
$105.00
Add to cart
ASCE Library Card (20 downloads)
$280.00
Add to cart
Buy Single Article
$35.00
Add to cart

Get Access

Access content

Please select your options to get access

Log in/Register Log in via your institution (Shibboleth)
ASCE Members: Please log in to see member pricing

Purchase

Save for later Information on ASCE Library Cards
ASCE Library Cards let you download journal articles, proceedings papers, and available book chapters across the entire ASCE Library platform. ASCE Library Cards remain active for 24 months or until all downloads are used. Note: This content will be debited as one download at time of checkout.

Terms of Use: ASCE Library Cards are for individual, personal use only. Reselling, republishing, or forwarding the materials to libraries or reading rooms is prohibited.
ASCE Library Card (5 downloads)
$105.00
Add to cart
ASCE Library Card (20 downloads)
$280.00
Add to cart
Buy Single Article
$35.00
Add to cart

Media

Figures

Other

Tables

Share

Share

Copy the content Link

Share with email

Email a colleague

Share