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Response of water temperatures and stratification to changing climate in three lakes with different morphometry

机译:不同形态学的三湖水温度与改变气候的响应

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Water temperatures and stratification are important drivers for ecological and water quality processes within lake systems, and changes in these with increases in air temperature and changes to wind speeds may have significant ecological consequences. To properly manage these systems under changing climate, it is important to understand the effects of increasing air temperatures and wind speed changes in lakes of different depths and surface areas. In this study, we simulate three lakes that vary in depth and surface area to elucidate the effects of the observed increasing air temperatures and decreasing wind speeds on lake thermal variables (water temperature, stratification dates, strength of stratification, and surface heat fluxes) over a century (19112014). For all three lakes, simulations showed that epilimnetic temperatures increased, hypolimnetic temperatures decreased, the length of the stratified season increased due to earlier stratification onset and later fall overturn, stability increased, and longwave and sensible heat fluxes at the surface increased. Overall, lake depth influences the presence of stratification, Schmidt stability, and differences in surface heat flux, while lake surface area influences differences in hypolimnion temperature, hypolimnetic heating, variability of Schmidt stability, and stratification onset and fall overturn dates. Larger surface area lakes have greater wind mixing due to increased surface momentum. Climate perturbations indicate that our larger study lakes have more variability in temperature and stratification variables than the smaller lakes, and this variability increases with larger wind speeds. For all study lakes, Pearson correlations and climate perturbation scenarios indicate that wind speed has a large effect on temperature and stratification variables, sometimes greater than changes in air temperature, and wind can act to either amplify or mitigate the effect of warmer air temperatures on lake thermal structur
机译:水温和分层是湖泊系统内生态和水质过程的重要驱动因素,随着气温的升高和风速的变化,这些变化可能会产生重大的生态后果。为了在不断变化的气候下正确管理这些系统,了解不同深度和表面区域的湖泊中气温升高和风速变化的影响非常重要。在这项研究中,我们模拟了三个深度和表面积不同的湖泊,以阐明观察到的气温升高和风速降低对湖泊热变量(水温、分层日期、分层强度和表面热通量)的影响,这些变量在过去一个世纪(19112014)中有所变化。对于所有三个湖泊,模拟结果表明,湖水表层温度升高,湖水下层温度降低,分层季节的长度增加,这是由于早期的分层开始和后来的秋季翻转,稳定性增加,地表的长波和感热通量增加。总的来说,湖泊深度影响分层的存在、施密特稳定性和地表热通量的差异,而湖泊表面积影响低湖水温度、低湖水加热、施密特稳定性的变化以及分层开始和秋季翻转日期的差异。由于表面动量增加,较大表面积的湖泊有较大的风混合。气候扰动表明,与较小的湖泊相比,我们研究的较大湖泊在温度和分层变量方面具有更多的可变性,并且这种可变性随着风速的增大而增加。对于所有研究湖泊,皮尔逊相关性和气候扰动情景表明,风速对温度和分层变量的影响很大,有时大于气温的变化,风可以放大或减轻较暖空气温度对湖泊热结构的影响

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