Track 3: Environmental Stewardship

339 climate. The evidence presented demonstrates that omitting such variability can lead to underestimations of the actual range of hydrogeochemical behavior of the system. ACKNOWLEDGEMENTS The authors would like to thank Anddes Asociados for their support and assistance with this work, under the framework of the LixiviAnddes Project. REFERENCES Allison, J. D., Brown, D. S., & Novo-Gradac, K. J. (1991). MINTEQA2/PRODEFA2, A Geochemical Assessment Model for Environmental Systems: Version 3.0 User’s Manual (EPA/600/3-91/021). U.S. Environmental Protection Agency. American Psychological Association (2009). Publication Manual of the American Psychological Association (6th ed.). Washington, DC: Author. Anawar, H. M. (2013). Impact of climate change on acid mine drainage generation and contaminant transport in water ecosystems of semi‑arid and arid mining areas. Physics and Chemistry of the Earth, Parts A/B/C, 58-60, 13-21. A. Yekta, P. Salinas, S. Hajirezaie, M. Amooie, C. Pain, M. Jackson, C. Jacquemyn, and M. Soltanian (2021) . Reactive transport modeling in heterogeneous porous media with dynamic mesh optimization. Computational Geosciences, 25(1):357–372. Appelo, C. A. J., & Postma, D. (2005). Geochemistry, groundwater and pollution (2nd ed.). CRC Press. ASTM International. (2024). ASTM D5744 - Standard Test Method for Laboratory Weathering of Solid Materials Using a Humidity Cell . Blowes, D. W., Ptacek, C. J., Jambor, J. L., & Weisener, C. G. (2014). The geochemistry of acid mine drainage. In H. D. Holland & K. K. Turekian (Eds.), Treatise on Geochemistry (2nd ed., Vol. 11, pp. 131-190). Elsevier. C. Jacquemyn, M. D. Jackson, and G. J. Hampson (2019). Surface-based geological reservoir modelling using grid-free NURBS curves and surfaces. Mathematical Geosciences, 51:1–28. INAP (International Network for Acid Prevention). (2014). The Global Acid Rock Drainage Guide (GARD Guide).

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