Detection of spatial and temporal hydro-meteorological trends in Lake Michigan, Lake Huron and Georgian Bay

IF 0.8 4区 环境科学与生态学 Q4 ENVIRONMENTAL SCIENCES Aquatic Ecosystem Health & Management Pub Date : 2019-01-02 DOI:10.1080/14634988.2018.1500850
A. Javed, Vincent Cheng, G. Arhonditsis
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引用次数: 10

Abstract

The Laurentian Great Lakes represent the largest freshwater basin on Earth, containing 21% of the world's surface fresh water by volume. Water level fluctuations are an on-going concern and have received considerable attention in the area. We present a trend analysis of meteorological (air temperature, cloud cover, and wind speed) and hydrological (precipitation, runoff, and evaporation) variables for Lake Michigan, Lake Huron, and Georgian Bay. Using the non-parametric Mann-Kendall test, our analysis identified significant upward trends in daily minimum air temperature, whereas daily maximum air temperature demonstrated weakly decreasing trends in space and time. Evaporation was found to be increasing from late spring until early fall and this pattern may be explained by the shortening of the ice/snow cover period, which results in faster warming of lake surface due to the induced variations in albedo feedback. Time-series analysis of the over-lake precipitation revealed mostly non-significant statistical trends. Recent temperature increases may have led to elevated winter runoff in the Great Lakes region, given that precipitation falls mainly as rain instead of snow. We also provide clear evidence of reduced cloud cover and wind speed. Our study offers critical insights into the patterns of within- and among-year variability of hydro-meteorological variables useful in elucidating the mechanisms that modulate water levels in the Great Lakes.
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密歇根湖、休伦湖和乔治亚湾水文气象趋势的时空探测
劳伦斯五大湖是地球上最大的淡水盆地,其地表淡水占世界淡水总量的21%。水位波动是一个持续关注的问题,在该地区受到了相当大的关注。我们对密歇根湖、休伦湖和乔治亚湾的气象(气温、云量和风速)和水文(降水、径流和蒸发)变量进行了趋势分析。使用非参数Mann-Kendall检验,我们的分析确定了日最低气温的显著上升趋势,而日最高气温在空间和时间上表现出微弱的下降趋势。从春末到初秋,蒸发量一直在增加,这种模式可以通过缩短冰雪覆盖期来解释,由于反照率反馈的诱导变化,导致湖面变暖更快。对湖上降水量的时间序列分析显示,大多数统计趋势并不显著。最近的气温上升可能导致五大湖地区冬季径流增加,因为降水主要以雨而非雪的形式减少。我们还提供了云量和风速减少的明确证据。我们的研究为水文气象变量的年内和年间变化模式提供了重要的见解,有助于阐明调节五大湖水位的机制。
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来源期刊
Aquatic Ecosystem Health & Management
Aquatic Ecosystem Health & Management 环境科学-海洋与淡水生物学
CiteScore
1.70
自引率
0.00%
发文量
1
审稿时长
18-36 weeks
期刊介绍: The journal publishes articles on the following themes and topics: • Original articles focusing on ecosystem-based sciences, ecosystem health and management of marine and aquatic ecosystems • Reviews, invited perspectives and keynote contributions from conferences • Special issues on important emerging topics, themes, and ecosystems (climate change, invasive species, HABs, risk assessment, models)
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