Long-term data show effects of atmospheric temperature anomaly and reservoir size on water temperature, thermal structure, and dissolved oxygen

被引:0
作者
Thomas M. Detmer
Joseph J. Parkos
David H. Wahl
机构
[1] Illinois Natural History Survey,
[2] Kaskaskia Biological Station,undefined
[3] Fernow Hall,undefined
来源
Aquatic Sciences | 2022年 / 84卷
关键词
Climate change; Temperature; Dissolved oxygen; Thermocline depth; Stratification; Reservoir;
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学科分类号
摘要
Predicting changes in reservoir conditions from climatic warming is hindered by the paucity of long-term data on temperature and thermal and oxygen structure replicated across a range of reservoir sizes. The present study characterizes seasonal patterns in temperature, thermal structure, and dissolved oxygen availability in reservoirs, and evaluates how critical periods for aquatic organisms (i.e., periods of maximum temperature and minimum oxygen) for these features are affected by atmospheric temperature anomalies at different time lags. Temperature and dissolved oxygen were measured from May through October at 1 m intervals from surface to bottom for 10 reservoirs sampled between 14 and 21 years during 1995–2016. For most temperature and oxygen metrics July was the period of thermal maxima and oxygen minima across reservoirs, exceptions were thermocline depth, which was static from May through October, and bottom water temperature which peaked in August. Surface water temperature of reservoirs increased 0.6 °C for every 1.0 °C increase in atmospheric temperature in July independent of reservoir area. Although the percentage of water that was oxic in July decreased with increasing July air temperatures, it increased with warming air temperatures from February to April. These long-term data derived patterns highlight the importance of reservoir size and lag periods in building a framework for predicting climate-induced changes in the thermal and oxygen environments of reservoirs, which have important implications for water quality and ecosystem processes and the associated dynamics of reservoir flora and fauna.
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  • [11] Weyhenmeyer GA(2017)Key differences between lakes and reservoirs modify climate signals: a case for a new conceptual model Limnol Oceanogr Lett 2 47-62
  • [12] Winder M(1973)On the concept of lake stability Limnol Oceanogr 18 681-683
  • [13] Brandt SB(2021)Widespread deoxygenation of temperate lakes Nature 594 66-70
  • [14] Constani M(2014)Climate change impacts on lakes: an integrated ecological perspective based on a multi-faceted approach, with special focus on shallow lakes J Limnol 73 84-107
  • [15] Kolesar S(2014)Evolution of land surface air temperature trend Nat Clim Change 4 462-466
  • [16] Ludsin SA(1999)Empirical links between thermal habitat, fish growth, and climate change T Am Fish Soc 128 656-665
  • [17] Mason DM(2003)Phytoplankton primary production and photosynthetic parameters in reservoirs along a gradient of watershed land use Limnol Oceanogr 48 608-617
  • [18] Rae CM(2007)A modeling approach to forecast the effect of long-term climate change on lake water quality Ecol Model 209 351-366
  • [19] Zhang H(2015)Morphometry and average temperature affect stratification responses to climate change Geophys Res Lett 42 4981-4988
  • [20] Butcher JB(2018)Thermal and hydrodynamic changes under a warmer climate in a variably stratified hypereutrophic reservoir Water 10 1284-2