MWS-Report

References

Abbott, B. W., Jones, J. B., Godsey, S. E., Larouche, J. R., & Bowden, W. B. (2015). Patterns and persistence of hydrologic carbon and nutrient export from collapsing upland permafrost. Biogeosciences, 12(12), 3725-3740. doi:10.5194/bg-12-3725-2015 Bailey, B. L., Smith, L. J. D., Blowes, D. W., Ptacek, C. J., Smith, L., & Sego, D. C. (2013). The Diavik Waste Rock Project: Persistence of contaminants from blasting agents in waste rock effluent. Applied Geochemistry, 36, 256-270. doi:10.1016/j.apgeochem.2012.04.008 Balasubramaniam, A. M., Hall, R. I., Wolfe, B. B., Sweetman, J. N., & Wang, X. W. (2015). Source water inputs and catchment characteristics regulate limnological conditions of shallow subarctic lakes (Old Crow Flats, Yukon, Canada). Canadian Journal of Fisheries and Aquatic Sciences, 72(7), 1058-1072. doi:10.1139/cjfas-2014-0340 Blaen, P. J., Milner, A. M., Hannah, D. M., Brittain, J. E., & Brown, L. E. (2014). IMPACT OF CHANGING HYDROLOGY ON NUTRIENT UPTAKE IN HIGH ARCTIC RIVERS. River Research and Applications, 30(9), 1073-1083. doi:10.1002/rra.2706 Bond, M. J., & Carr, J. (2018). Permafrost thaw and implications for the fate and transport of tritium in the Canadian north. Journal of Environmental Radioactivity, 192, 295-311. doi:10.1016/j.jenvrad.2018.07.006 Brazeau, M. L., Blais, J. M., Paterson, A. M., Keller, W., & Poulain, A. J. (2013). Evidence for microbially mediated production of elemental mercury (Hg-0) in subarctic lake sediments. Applied Geochemistry, 37, 142-148. doi:10.1016/j.apgeochem.2013.07.020 Burd, K., Tank, S. E., Dion, N., Quinton, W. L., Spence, C., Tanentzap, A. J., & Olefeldt, D. (2018). Seasonal shifts in export of DOC and nutrients from burned and unburned peatland-rich catchments, Northwest Territories, Canada. Hydrology and Earth System Sciences, 22(8), 4455-4472. doi:10.5194/hess-22-4455-2018 Canadian Council of Ministers of the Environment. (2014). Canada-wide Definitions and Principles for Cumulative Effects. https://www.ccme.ca/files/Resources/enviro_assessment/CE%20Definitions%20and%20Principles%201.0%20EN.pdf Canadian Environmental Assessment Act. (2012). Assessing Cumulative Environmental Effects under the Canadian Environmental Assessment Act, 2012. https://www.canada.ca/en/impact-assessment-agency/services/policy-guidance/assessing-cumulative-environmental-effectsceaa2012. html#toc013 Chen, W., Hanna, B., Patenaude, A., Leblanc, S.G., White, H.P., Croft, B., Clark, K., Pellisey, J.S., Jennings, R., Gunna, A., and Boulanger, J. (2019). SATELLITE OBSERVATION OF DUST ON SNOW AND IMPACT ON SNOWMELT ALONGSIDE UNPAVED MINING HAUL ROADS IN CANADA’S ARCTIC. Yellowknife Geoscience Forum Abstracts. Cohen, S., Bush, E., Zhang, X., Gillett, N., Bonsal, B., Derksen, C., Flato, G., Greenan, B., Watson, E (2019): Synthesis of Findings for Canada’s Regions; Chapter 8 in Canada’s Changing Climate Report, (ed.) E. Bush and D.S. Lemmen; Government of Canada, Ottawa, Ontario, p. 424–443. Cox, D. R., & Donnelly, C. A. (2011). Principles of applied statistics. Retrieved from https://ebookcentral.proquest.com Crump, B. C., Adams, H. E., Hobbie, J. E., & Kling, G. W. (2007). Biogeography of bacterioplankton in lakes and streams of an arctic tundra catchment. Ecology, 88(6), 1365-1378. doi:10.1890/06-0387 Darmody, R. G., Thorn, C. E., & Dixon, J. C. (2007). Pyrite-enhanced chemical weathering in Karkevagge, Swedish Lapland. Geological Society of America Bulletin, 119(11-12), 1477-1485. doi:10.1130/b26228.1 Deton’ Cho Stantec. 2015a. Lac de Gras Water Chemistry, Spatial Variability, and Temporal Trends: An Analysis of ‘Cumulative Effects’ in Lac de Gras Water Chemistry over the Period of Record. Prepared for Government of Northwest Territories. Prepared by Deton’ Cho Stantec, April 2015. Duff, K. E., Laing, T. E., Smol, J. P., & Lean, D. R. S. (1998). Limnological characteristics of lakes located across arctic treeline in northern Russia. Hydrobiologia, 391(1-3), 205-222. Ecofish Research Ltd. 2020. NWT Master Sample Design Pilot Study. Fischer, M. M., Getis, A., Fischer, M. M. e., Getis, A. e., & SpringerLink. (2009). Handbook of applied spatial analysis : software tools, methods and applications. French, T. D., Houben, A. J., Desforges, J. P. W., Kimpe, L. E., Kokelj, S. V., Poulain, A. J., . . . Blais, J. M. (2014). Dissolved Organic Carbon Thresholds Affect Mercury Bioaccumulation in Arctic Lakes. Environmental Science & Technology, 48(6), 3162-3168. doi:10.1021/es403849d Galuszka, A. (2007). A review of geochemical background concepts and an example using data from Poland. Environmental Geology, 52(5), 861-870. doi:10.1007/s00254-006-0528-2 Gordon, J., Quinton, W., Branfireun, B. A., & Olefeldt, D. (2016). Mercury and methylmercury biogeochemistry in a thawing permafrost wetland complex, Northwest Territories, Canada. Hydrological Processes, 30(20), 3627-3638. doi:10.1002/hyp.10911 Greenwald, M. J., Bowden, W. B., Gooseff, M. N., Zarnetske, J. P., McNamara, J. P., Bradford, J. H., & Brosten, T. R. (2008). Hyporheic exchange and water chemistry of two arctic tundra streams of contrasting geomorphology. Journal of Geophysical Research-Biogeosciences, 113(G2). doi:10.1029/2007jg000549 Griffiths, K., Thienpont, J., Jeziorski, A., & Smol, J. P. (2018). The impact of calcium-rich diamond mining effluent on downstream cladoceran communities in softwater lakes of the Northwest Territories, Canada. Canadian Journal of Fisheries and Aquatic Sciences, 75(12), 2221-2232. doi:10.1139/cjfas-2017-0469 Gustavsson, N., Loukola-Ruskeeniemi, K., & Tenhola, M. (2012). Evaluation of geochemical background levels around sulfide mines - A new statistical procedure with beanplots. Applied Geochemistry, 27(1), 240-249. doi:10.1016/j.apgeochem.2011.10.008 Hamed, K.H., Rao, A.R. (1998). A modified Mann-Kendall trend test for autocorrelation data. Journal of Hydrology, 204, 1-4, 182-196. Houben, A. J., French, T. D., Kokelj, S. V., Wang, X. W., Smol, J. P., & Blais, J. M. (2016). The impacts of permafrost thaw slump events on limnological variables in upland tundra lakes, Mackenzie Delta region. Fundamental and Applied Limnology, 189(1), 11-35. doi:10.1127/fal/2016/0921 Hussain et al., (2019). pyMannKendall: a python package for non-parametric Mann Kendall family of trend tests.. Journal of Open Source Software, 4(39), 1556, https://doi.org/10.21105/joss.01556 Hutchins, R. H. S., Tank, S. E., Olefeldt, D., Quinton, W. L., Spence, C., Dion, N., . . . Mengistu, S. G. Fluvial CO2 and CH4 patterns across wildfire-disturbed ecozones of subarctic Canada: Current status and implications for future change. Global Change Biology. doi:10.1111/gcb.14960 Impact Assessment Agency of Canada. (2016). Cumulative Effects Assessment Practitioners' Guide. Indian Affairs and Northern Development. (1998). Coppermine River Overview of the Hydrology and Water Quality 1998. Ottawa: Minister of Indian Affairs and Northern Development. Kendrick, M. R., Huryn, A. D., Bowden, W. B., Deegan, L. A., Findlay, R. H., Hershey, A. E., . . . Schuett, E. B. (2018). Linking permafrost thaw to shifting biogeochemistry and food web resources in an arctic river. Global Change Biology, 24(12), 5738-5750. doi:10.1111/gcb.14448 Kokelj, S. V., Jenkins, R. E., Milburn, D., Burn, C. R., & Snow, N. (2005). The influence of thermokarst disturbance on the water quality of small upland lakes, Mackenzie Delta Region, Northwest Territories, Canada. Permafrost and Periglacial Processes, 16(4), 343-353. doi:10.1002/ppp.536 Kokelj, S. V., Zajdlik, B., & Thompson, M. S. (2009). The Impacts of Thawing Permafrost on the Chemistry of Lakes across the Subarctic Boreal-Tundra Transition, Mackenzie Delta Region, Canada. Permafrost and Periglacial Processes, 20(2), 185-199. doi:10.1002/ppp.641 Korhola, A., Weckstrom, J., & Nyman, M. (1999). Predicting the long-term acidification trends in small subarctic lakes using diatoms. Journal of Applied Ecology, 36(6), 1021-1034. doi:10.1046/j.1365-2664.1999.00461.x Lacelle, D., Doucet, A., Clark, I. D., & Lauriol, B. (2007). Acid drainage generation and seasonal recycling in disturbed permafrost near Eagle Plains, northern Yukon Territory, Canada. Chemical Geology, 243(1-2), 157-177. doi:10.1016/j.chemgeo.2007.05.021 Larouche, J. R., Abbott, B. W., Bowden, W. B., & Jones, J. B. (2015). The role of watershed characteristics, permafrost thaw, and wildfire on dissolved organic carbon biodegradability and water chemistry in Arctic headwater streams. Biogeosciences, 12(14), 4221-4233. doi:10.5194/bg-12- 4221-2015 Lynch, L. M., Machmuller, M. B., Boot, C. M., Covino, T. P., Rithner, C. D., Cotrufo, M. F., . . . Wallenstein, M. D. (2019). Dissolved Organic Matter Chemistry and Transport Along an Arctic Tundra Hillslope. Global Biogeochemical Cycles, 33(1), 47-62. doi:10.1029/2018gb006030 Matschullat, J., Ottenstein, R., & Reimann, C. (2000). Geochemical background - can we calculate it? Environmental Geology, 39(9), 990-1000. doi:10.1007/s002549900084 McCarthy, L. H., Williams, T. G., Stephens, G. R., Peddle, J., Robertson, K., & Gregor, D. J. (1997). Baseline studies in the Slave River, NWT, 1990-1994 .1. Evaluation of the chemical quality of water and suspended sediment from the Slave River (NWT). Science of the Total Environment, 197(1-3), 21-53. doi:10.1016/s0048-9697(96)05419-8 McEachern, P., Prepas, E. E., & Planas, D. (2002). Phytoplankton in boreal SubArctic lakes following enhanced phosphorus loading from forest fire: Impacts on species richness, nitrogen and light limitation. Lake and Reservoir Management, 18(2), 138-148. doi:10.1080/07438140209354144 Michelutti, N., Laing, T. E., & Smol, J. P. (2001). Diatom assessment of past environmental changes in lakes located near the Noril'sk (Siberia) smelters. Water Air and Soil Pollution, 125(1-4), 231-241. doi:10.1023/a:1005274007405 Millot, R., Gaillardet, J., Dupre, B., & Allegre, C. J. (2003). Northern latitude chemical weathering rates: Clues from the Mackenzie River Basin, Canada. Geochimica Et Cosmochimica Acta, 67(7), 1305-1329. doi:10.1016/s0016-7037(02)01207-3 Moiseenko, T. I., Dinu, M. I., Gashkina, N. A., Jones, V., Khoroshavin, V. Y., & Kremleva, T. A. (2018). Present status of water chemistry and acidification under nonpoint sources of pollution across European Russia and West Siberia. Environmental Research Letters, 13(10). doi:10.1088/1748- 9326/aae268 Moiseenko, T. I., & Gashkina, N. A. (2011). Zonal Features of Lake Acidification. Water Resources, 38(1), 47-62. doi:10.1134/s0097807811010076 Moore, M. L., von der Porten, S., Plummer, R., Brandes, O., & Baird, J. (2014). Water policy reform and innovation: A systematic review. Environmental Science & Policy, 38, 263-271. doi:10.1016/j.envsci.2014.01.007 Morison, M. Q., Macrae, M. L., Petrone, R. M., & Fishback, L. (2017a). Capturing temporal and spatial variability in the chemistry of shallow permafrost ponds. Biogeosciences, 14(23), 5471-5485. doi:10.5194/bg-14-5471-2017 Morison, M. Q., Macrae, M. L., Petrone, R. M., & Fishback, L. (2017b). Seasonal dynamics in shallow freshwater pond-peatland hydrochemical interactions in a subarctic permafrost environment. Hydrological Processes, 31(2), 462-475. doi:10.1002/hyp.11043 Morison, M. Q., Volik, O., Hall, R. I., Wiklund, J. A., Macrae, M. L., & Petrone, R. M. (2019). Effects of shoreline permafrost thaw on nutrient dynamics and diatom ecology in a subarctic tundra pond. Journal of Paleolimnology, 62(2), 151-163. doi:10.1007/s10933-019-00082-4 Mueller, L., Sheudshen, A. K., Syso, A., Barsukov, P., Smolentseva, E. N., Khodzher, T., . . . Eulenstein, F. (2016). Land and Water Resources of Siberia, Their Functioning and Ecological State. In L. Mueller, A. K. Sheudshen, & F. Eulenstein (Eds.), Novel Methods for Monitoring and Managing Land and Water Resources in Siberia (pp. 3-73). Pienitz, R., Smol, J. P., & Lean, D. R. S. (1997). Physical and chemical limnology of 24 lakes located between Yellowknife and Contwoyto Lake, Northwest Territories (Canada). Canadian Journal of Fisheries and Aquatic Sciences, 54(2), 347-358. doi:10.1139/cjfas-54-2-347 Prowse, T. D., Wrona, F. J., Reist, J. D., Gibson, J. J., Hobbie, J. E., Levesque, L. M. J., & Vincent, W. F. (2006). Climate change effects on hydroecology of Arctic freshwater ecosystems. Ambio, 35(7), 347-358. doi:10.1579/0044-7447(2006)35[347:cceoho]2.0.co;2 Puznicki, W. S. (1997). Regional patterns of selected water parameters in the Slave Geological Province, Northwest Territories. In D. Milburn (Ed.), Proceedings of the Hydro-Ecology Workshop on the Arctic Environmental Strategy Action on Water (pp. 215-232). Raudina, T. V., Loiko, S. V., Lim, A. G., Krickov, I. V., Shirokova, L. S., Istigechev, G. I., . . . Pokrovsky, O. S. (2017). Dissolved organic carbon and major and trace elements in peat porewater of sporadic, discontinuous, and continuous permafrost zones of western Siberia. Biogeosciences, 14(14), 3561-3584. doi:10.5194/bg-14-3561-2017 Reimann, C., & Filzmoser, P. (2000). Normal and lognormal data distribution in geochemistry: death of a myth. Consequences for the statistical treatment of geochemical and environmental data. Environmental Geology, 39(9), 1001-1014. doi:10.1007/s002549900081 Reimann, C., Filzmoser, P., & Garrett, R. G. (2005). Background and threshold: critical comparison of methods of determination. Science of the Total Environment, 346(1-3), 1-16. doi:10.1016/j.scitotenv.2004.11.023 Reimann, C., & Garrett, R. G. (2005). Geochemical background - concept and reality. Science of the Total Environment, 350(1-3), 12-27. doi:10.1016/j.scitotenv.2005.01.047 Rigina, O. (1998). GIS analysis of surface water chemistry susceptibility and response to industrial air pollution in the Kola Peninsula, northern Russia. Water Air and Soil Pollution, 105(1-2), 73-82. doi:10.1023/a:1005071429123 Sahoo, P. K., Dall'Agnol, R., Salomao, G. N., Junior, J. D. F., Silva, M. S., Souza, P., . . . Siqueira, J. O. (2019). High resolution hydrogeochemical survey and estimation of baseline concentrations of trace elements in surface water of the Itacaiunas River Basin, southeastern Amazonia: Implication for environmental studies. Journal of Geochemical Exploration, 205. doi:10.1016/j.gexplo.2019.06.003 Sivarajah, B., Korosi, J. B., Blais, J. M., & Smol, J. P. (2019). Multiple environmental variables influence diatom assemblages across an arsenic gradient in 33 subarctic lakes near abandoned gold mines. Hydrobiologia, 841(1), 133-151. doi:10.1007/s10750-019-04014-1 Spence, C., Kokelj, S. V., Kokelj, S. A., McCluskie, M., & Hedstrom, N. (2015). Evidence of a change in water chemistry in Canada's subarctic associated with enhanced winter streamflow. Journal of Geophysical Research-Biogeosciences, 120(1), 113-127. doi:10.1002/2014jg002809 Stantec Consulting Ltd. (2015). Status and Trends of Water Chemistry and Flow in the Coppermine and Lockhart River Basins. Project No. 1449-30003. St-Gelais, N. F., Jokela, A., & Beisner, B. E. (2018). Limited functional responses of plankton food webs in northern lakes following diamond mining. Canadian Journal of Fisheries and Aquatic Sciences, 75(1), 26-35. doi:10.1139/cjfas-2016-0418 Sun, L. H. (2015). Environmental baseline evaluation of lead in shallow groundwater based on statistical and spatial outlier identification. Acta Geochimica, 34(3), 416-421. doi:10.1007/s11631-015-0050-x Urresti-Estala, B., Carrasco-Cantos, F., Vadillo-Perez, I., & Jimenez-Gavilan, P. (2013). Determination of background levels on water quality of groundwater bodies: A methodological proposal applied to a Mediterranean River basin (Guadalhorce River, Malaga, southern Spain). Journal of Environmental Management, 117, 121-130. doi:10.1016/j.jenvman.2012.11.042 Wedel, J.H., Olding, B.J., and Palmer, M. (1988). An Overview of the Coppermine River Basin. Inland Waters Directorate, Western and Northern Region, Environment Canada. Yellowknife , NT. Wong, L., Noble, B., & Hanna, K. (2019). Water Quality Monitoring to Support Cumulative Effects Assessment and Decision Making in the Mackenzie Valley, Northwest Territories, Canada. Integrated Environmental Assessment and Management, 15(6), 988-999. doi:10.1002/ieam.4179 Yunker, M. B., Backus, S. M., Graf Pannatier, E., Jeffries, D. S., & Macdonald, R. W. (2002). Sources and significance of alkane and PAH hydrocarbons in Canadian arctic rivers. Estuarine Coastal and Shelf Science, 55(1), 1-31. doi:10.1006/ecss.2001.0880 Zajdlik. (2016). Detecting Cumulative Aquatic Effects in Lac de Gras. Zajdlik & Associates Inc. Zhu, L., Anello, R., Ruhland, K. M., Pisaric, M. F. J., Kokelj, S. V., Prince, T., & Smol, J. P. (2019). Impacts of Road Dust on Small Subarctic Lake Systems. Arctic, 72(4), 434-457. doi:10.14430/arctic69527 [Index](/MWS-Report/)