Numerical Modeling of a Laboratory-Scale Waste Rock Pile Featuring an Engineered Cover System

被引:14
|
作者
Raymond, Katherine E. [1 ]
Seigneur, Nicolas [1 ,3 ]
Su, Danyang [1 ]
Poaty, Bisse [2 ]
Plante, Benoit [2 ]
Bussiere, Bruno [2 ]
Mayer, K. Ulrich [1 ]
机构
[1] Dept Earth Ocean & Atmospher Sci, 2207 Main Mall, Vancouver, BC V6T 1Z4, Canada
[2] Univ Quebec Abitibi Temiscamingue, Inst Rech Mines & Environm, 445 Blvd Univ, Rouyn Noranda, PQ J9X 5E4, Canada
[3] PSL Univ, MINES ParisTech, Ctr Geosci, 35 Rue St Honore, F-77330 Fontainebleau, France
基金
加拿大自然科学与工程研究理事会;
关键词
reactive transport modeling; waste rock; engineered cover system; capillary barrier effects; contaminated neutral drainage; heterogeneity; CONTAMINATED NEUTRAL DRAINAGE; ACID-MINE DRAINAGE; PYRITE OXIDATION; TRANSPORT; FLOW; TEMPERATURE; DISSOLUTION; FORMULATION; CARBONATE; PYROXENES;
D O I
10.3390/min10080652
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Improved design to reduce contaminant mass loadings from waste rock piles is an increasingly important consideration. In certain cases, an engineered cover system containing a flow control layer (FCL) may be used to mitigate the release of metals out of a pile using capillary barrier effects (CBEs), diverting water away from reactive materials below. In this study, a reactive transport model was calibrated to observational data from a laboratory experiment designed to evaluate a cover system. The results show that the numerical model is capable of capturing flow rates out of multiple drainage ports and matching key effluent concentrations by including the spatial distribution of hydraulic parameters and mineral weathering rates. Simulations were also useful for characterizing the internal flow pathways within the laboratory experiment, showing the effectiveness of the cover in diverting the flow away from the reactive waste rock and identifying secondary CBEs between different rock types. The numerical model proved beneficial in building an improved understanding of the processes controlling the metal release and conceptualizing the system. The model was expanded to investigate the robustness of the cover system as a function of the applied infiltration rate, supporting that water diversion will occur with infiltration rates representative of field conditions.
引用
收藏
页码:1 / 25
页数:24
相关论文
共 50 条
  • [41] Pull-Out Response of a Laboratory-Scale Energy Pile Subjected to Cooling Cycles
    Elzeiny, Rehab
    Suleiman, Muhannad T.
    JOURNAL OF GEOTECHNICAL AND GEOENVIRONMENTAL ENGINEERING, 2021, 147 (07)
  • [42] Characterization of rock weathering using elastic waves: A Laboratory-scale experimental study
    Lee, Jong-Sub
    Yoon, Hyung-Koo
    JOURNAL OF APPLIED GEOPHYSICS, 2017, 140 : 24 - 33
  • [43] Numerical modelling of the dynamic response of threadbar under laboratory-scale conditions
    Vallejos, J. A.
    Marambio, E.
    Burgos, L.
    Gonzalez, C., V
    TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY, 2020, 100
  • [44] Numerical investigation on flow structures of a laboratory-scale trapped vortex combustor
    Jin, Yi
    He, Xiaomin
    Zhang, Jingyu
    Jiang, Bo
    Wu, Zejun
    APPLIED THERMAL ENGINEERING, 2014, 66 (1-2) : 318 - 327
  • [45] Pore-scale and multiscale numerical simulation of flow and transport in a laboratory-scale column
    Scheibe, Timothy D.
    Perkins, William A.
    Richmond, Marshall C.
    McKinley, Matthew I.
    Romero-Gomez, Pedro D. J.
    Oostrom, Mart
    Wietsma, Thomas W.
    Serkowski, John A.
    Zachara, John M.
    WATER RESOURCES RESEARCH, 2015, 51 (02) : 1023 - 1035
  • [46] Research on the Relay Protection System for A Small Laboratory-scale Microgrid System
    Wang, Xiao-ping
    Li, Yang
    Yu, Yong-yang
    2011 6TH IEEE CONFERENCE ON INDUSTRIAL ELECTRONICS AND APPLICATIONS (ICIEA), 2011, : 2712 - 2716
  • [47] A Quantitative Strain Energy Indicator for Predicting the Failure of Laboratory-Scale Rock Samples: Application to Shale Rock
    Pan, Xiao-Hua
    Lu, Qing
    ROCK MECHANICS AND ROCK ENGINEERING, 2018, 51 (09) : 2689 - 2707
  • [48] A Quantitative Strain Energy Indicator for Predicting the Failure of Laboratory-Scale Rock Samples: Application to Shale Rock
    Xiao-Hua Pan
    Qing Lü
    Rock Mechanics and Rock Engineering, 2018, 51 : 2689 - 2707
  • [49] Laboratory-scale experiments and numerical modeling of cosolvent flushing of multi-component NAPLs in saturated porous media
    Agaoglu, Berken
    Scheytt, Traugott
    Copty, Nadim K.
    JOURNAL OF CONTAMINANT HYDROLOGY, 2012, 140 : 80 - 94
  • [50] LABORATORY-SCALE MEDIUM-CONSISTENCY OZONE BLEACHING SYSTEM
    SREERAM, C
    SUNDARAM, VSM
    JAMEEL, H
    CHANG, HM
    TAPPI JOURNAL, 1994, 77 (10): : 161 - 168