Simulated changes in extent of Georgian Bay low-marsh habitat under multiple lake levels

Springer Science and Business Media LLC - Tập 27 - Trang 483-495 - 2019
J. Daniel Weller1, Patricia Chow-Fraser1
1Department of Biology, McMaster University, Hamilton, Canada

Tóm tắt

The extent of coastal wetlands in Georgian Bay is controlled primarily by the water level of Lake Huron, which directly affects the amount of critical habitat available for fish and wildlife communities. Lake-levels have historically fluctuated by nearly 2 m and that range could increase in the future. This prompted us to investigate how quantity and quality of wetland habitat in Georgian Bay may be affected by different lake-level scenarios. The extent of low-marsh habitat was modeled with a generalized linear model that used hydrogeomorphic features (i.e. depth, slope, and exposure) as predictors. We simulated lake levels between 175.5 m and 177.5 m at 0.5 m-increments, and found that the total area of low marsh peaked at 176.0 m (7113 ha) and declined sharply as lake levels increased or decreased. In contrast, low-marsh volume was highest at 176.5 m (3.84 × 107 m3) but remained relatively stable across all modeled lake levels. We derived an average elevation profile for low-marsh habitat across the study area that showed a shallow “step” between 175.5 and 176.0 m, flanked by steeper upslope and downslope sections. At historically low lake levels low-marsh habitat would have been dominated by shallow water (< 0.5 m), whereas at higher lake levels it would have been dominated by deeper (0.5–2.0 m) water. The geomorphology at low lake levels (i.e. 176.0 m) appears to favour large areas of shallow habitat at the expense of deeper habitats that could have supported more structurally complex, submersed aquatic vegetation.

Tài liệu tham khảo

Angel JR, Kunkel KE (2010) The response of Great Lakes water levels to future climate scenarios with an emphasis on Lake Michigan-Huron. J Great Lakes Res 36:51–58 Baedke SJ, Thompson TA (2000) A 4,700-year record of lake level and isostasy for Lake Michigan. J Great Lakes Res 26(4):416–426 Boyd LM (2017) Monitoring wetlands during water-level transition periods. Master’s Thesis, McMaster University, Hamilton, Ontario Croft MV, Chow-Fraser P (2007) Use and development of the wetland macrophyte index to detect water quality impairment in fish habitat of Great Lakes coastal marshes. J Great Lakes Res 33(3):172–197 Cvetkovic M, Chow-Fraser P (2011) Use of ecological indicators to assess the quality of Great Lakes coastal wetlands. Ecol Indic 11(6):1609–1622 Cvetkovic M, Wei A, Chow-Fraser P (2010) Relative importance of macrophyte community versus water quality variables for predicting fish assemblages in coastal wetlands of the Laurentian Great Lakes. J Great Lakes Res 36(1):64–73 deCatanzaro R, Chow-Fraser P (2011) Effects of landscape variables and season on reference water chemistry of coastal marshes in eastern Georgian Bay. Can J Fish Aquat Sci 68(6):1009–1023 Dibble ED, Killgore KJ, Harrel SL (1997) Assessment of fish-plant interactions, Miscellaneous Paper A-97-6, U.S. Army Engineer Waterways Experiment Station, Vicksburg, MS. Management Guidelines, prepared June 23 Eadie J, Keast A (1984) Resource heterogeneity and fish species-diversity in lakes. Can J Zool 62(9):1689–1695 Environment Canada (2002) Where land meets water: understanding wetlands of the Great Lakes. Environment Canada, Toronto Fracz A, Chow-Fraser P (2013) Impacts of declining water levels on the quantity of fish habitat in coastal wetlands of eastern Georgian Bay. Lake Huron. Hydrobiol 702(1):151–169 Gathman JP, Albert DA, Burton TM (2005) Rapid plant community response to a water level peak in northern Lake Huron coastal wetlands. J Great Lakes Res 31:160–170 Gronewold AD, Clites AH, Smith JP, Hunter TS (2013) A dynamic graphical interface for visualizing projected, measured, and reconstructed surface water elevations on the earth’s largest lakes. Environ Modell Softw 49:34–39 Hanrahan JL, Kravtsov SV, Roebber PJ (2010) Connecting past and present climate variability to the water levels of Lakes Michigan and Huron. Geophys Res Lett 37:L01701 Hartmann H (1990) Climate change impacts on Laurentian Great-Lakes levels. Clim Change 17(1):49–67 Hebb AJ, Mortsch LD, Deadman PJ, Cabrera AR (2013) Modeling wetland vegetation community response to water-level change at Long Point, Ontario. J Great Lakes Res 39(2):191–200 Hudon C, Gagnon P, Amyot JP, Létourneau G, Jean M, Plante C, Rioux D, Deschênes M (2005) Historical changes in herbaceous wetland distribution induced by hydrological conditions in Lake Saint-Pierre (St. Lawrence River, Quebec, Canada). Hydrobiologia 539(1):205–224 Jude DJ, Pappas J (1992) Fish utilization of Great Lakes coastal wetlands. J Great Lakes Res 18(4):651–672 Kapuscinski KL, Farrell JM (2014) Habitat factors influencing fish assemblage at Muskellunge nursery sites. J Great Lakes Res 40(2):135–147 Keddy PA, Reznicek AA (1986) Great Lakes vegetation dynamics: the role of fluctuating water levels and buried seeds. J Great Lakes Res 12(1):25–36 Leblanc JP (2015) Managing spawning and nursery habitat of the Georgian Bay Muskellunge (Esox masquinongy). PhD Thesis, McMaster University, Hamilton, Ontario Leblanc JP, Weller JD, Chow-Fraser P (2014) Thirty-year update: changes in biological characteristics of degraded muskellunge nursery habitat in southern Georgian Bay, Lake Huron, Canada. J Great Lakes Res 40(4):870–878 Leira M, Cantonati M (2008) Effects of water-level fluctuations on lakes: an annotated bibliography. Hydrobiologia 613(1):171–184 Lishawa S, Albert D, Tuchman N (2010) Water level decline promotes Typha X glauca establishment and vegetation change in great lakes coastal wetlands. Wetlands 30(6):1085–1096 Lofgren BM, Rouhana J (2016) Physically plausible methods for projecting changes in Great Lakes Water Levels under climate change scenarios. J Hydrometeorol 17(8):2209–2223 Lofgren BM, Quinn FH, Clites AH, Assel RA, Eberhardt AJ, Luukkonen CL (2002) Evaluation of potential impacts on Great Lakes water resources based on climate scenarios of two GCMs. J Great Lakes Res 28(4):537–554 Midwood JD (2012) Assessing change in fish habitat and communities in coastal wetlands of Georgian Bay. PhD Thesis. McMaster University, Hamilton, Ontario Midwood J, Chow-Fraser P (2010) Mapping floating and emergent aquatic vegetation in coastal wetlands of eastern Georgian Bay, Lake Huron, Canada. Wetlands 30(6):1141–1152 Midwood JD, Chow-Fraser P (2012) Changes in aquatic vegetation and fish communities following 5 years of sustained low water levels in coastal marshes of eastern Georgian Bay, Lake Huron. Glob Change Biol 18(1):93–105 Midwood J, Rokitnicki-Wojcik D, Chow-Fraser P (2012) Development of an inventory of coastal wetlands for eastern Georgian Bay, Lake Huron. ISRN Ecol 2012:1–13 Minc LD (1997) Great Lakes coastal wetlands: an overview of abiotic factors affecting their distribution, form, and species composition. Michigan Natural Features Inventory, Lansing Mortsch LD (1998) Assessing the impact of climate change on the Great Lakes shoreline wetlands. Clim Change 40(2):391–416 Mortsch LD, Quinn FH (1996) Climate change scenarios for Great Lakes Basin ecosystem studies. Limnol Oceanogr 41(5):903–911 Ontario Ministry of Natural Resources (2006) Wooded Area. [computer file]. Ontario Geospatial Data Exchange, Ministry of Natural Resources, Peterborough, Ontario, Canada. – original 1976, revised 2006 Ontario Ministry of Natural Resources (2009) Historic Ontario Road Network. [computer file]. Ontario Geospatial Data Exchange, Ministry of Natural Resources, Peterborough, Ontario, Canada. – original 1976, revised 2009 Ontario Ministry of Natural Resources (2010) Watershed, Tertiary. [computer file]. Ontario Geospatial Data Exchange, Ministry of Natural Resources, Peterborough Ontario, Canada. – original 2002, revised 2010 Ontario Ministry of Natural Resources (2014) Ontario Wetland Evaluation System Northern Manual. Technical Manual V1.3. Peterborough, ON, pp 40 Ontario Ministry of Natural Resources and Forestry (2016) Ontario Land Cover Compilation v2.0. [computer file]. Science and Research Branch, Natural Resources Information Unit, Forest Resource Inventory Unit. Accessed Feb 6, 2018 from Land Information Ontario data portal Quinlan C, Mulamoottil G (1987) The effects of water level fluctuations on three Lake Ontario shoreline marshes. Can Water Resour J 12(1):64–77 Quinn FH, Sellinger CE (2006) A reconstruction of Lake Michigan-Huron water levels derived from tree ring chronologies for the Period 1600–1961. J Great Lakes Res 32(1):29–39 Rokitnicki-Wojcik D, Wei A, Chow-Fraser P (2011) Transferability of object-based rule sets for mapping coastal high marsh habitat among different regions in Georgian Bay. Canada. Wetlands Ecology and Management 19(3):223–236 Sellinger CE, Stow CA, Lamon EC, Qian SS (2008) Recent water level declines in the Lake Michigan-Huron system. Environ Sci Technol 42(2):367–373 Smokorowski KE, Pratt TC (2007) Effect of a change in physical structure and cover on fish and fish habitat in freshwater ecosystems—a review and meta-analysis. Environmental Reviews 15:15–41 Trebitz AS (2006) Characterizing seiche and tide-driven daily water level fluctuations affecting coastal ecosystems of the Great Lakes. J Great Lakes Res 32(1):102–116 Tulbure M, Johnston C (2010) Environmental conditions promoting non-native Phragmites australis expansion in Great Lakes coastal wetlands. Wetlands 30(3):577–587 Wei A, Chow-Fraser P (2007) Use of IKONOS imagery to map coastal wetlands of Georgian Bay. Fisheries 32(4):167–173 Wei A, Chow-Fraser P, Albert D (2004) Influence of shoreline features on fish distribution in the Laurentian Great Lakes. Can J Fish Aquat Sci 61(7):1113–1123 Weller JD, Chow-Fraser P (2019) Hydrogeomorphic modelling of low-marsh habitat in coastal Georgian Bay. Wetlands Ecol Manage, Lake Huron. https://doi.org/10.1007/s11273-019-09655-6 Weller JD, Leblanc JP, Liskauskas A, Chow-Fraser P (2016) Spawning season distribution in subpopulations of muskellunge in Georgian Bay, Lake Huron. Trans Am Fish Soc 145(4):795–809 Wilcox D, Meeker J (1991) Disturbance effects on aquatic vegetation in regulated and unregulated lakes in northern Minnesota. Can J Bot-Revue Canadienne De Botanique 69(7):1542–1551 Wilcox D, Meeker J (1992) Implications for faunal habitat related to altered macrophyte structure. Wetlands 12(3):192–203 Wilcox DA, Nichols SJ (2008) The effects of water-level fluctuations on vegetation in a Lake Huron wetland. Wetlands 28(2):487–501 Wilcox DA, Kowalski KP, Hoare H, Carlson ML, Morgan H (2008) Cattail invasion of sedge/grass meadows and regulation of Lake Ontario water levels: photointerpretation analysis of sixteen wetlands over five decades. J Great Lakes Res 34:301–323