4.6 Article

Describing alpine lake influence on stream network temperatures: A statistical modelling approach

期刊

HYDROLOGICAL PROCESSES
卷 35, 期 3, 页码 -

出版社

WILEY
DOI: 10.1002/hyp.14072

关键词

stream temperature profile; stream‐ Lake network; water source mixing model

资金

  1. National Science Foundation [1145616]
  2. USDA National Institute of Food and Agriculture [1015745]
  3. Direct For Biological Sciences
  4. Division Of Environmental Biology [1145616] Funding Source: National Science Foundation

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This study investigated the complexity of temperature profiles in montane stream networks, finding that stream temperature patterns are influenced by hydrologic and atmospheric processes, and the varying contribution of lake water to stream flow. Using a source-water mixing model in summer and autumn provided a parsimonious explanation for complex temperature patterns, while simpler models without lake effects were more optimal in winter and spring, indicating temporal variations in stream temperature profiles across seasons.
Systematic variations in atmospheric heat exchange, surface residence time, and groundwater influx across montane stream networks commonly produce an increasing stream temperature trend with decreasing elevation. However, complex stream temperature profiles that differ from this common longitudinal trend also exist, suggesting that stream temperatures may be influenced by complex interactions among hydrologic and atmospheric processes. Lakes within stream networks form one potential source of temperature profile complexity due to the spatially variable contribution of lake-sourced water to stream flow. We investigated temperature profile complexity in a multi-season stream temperature dataset collected across a montane stream network containing many alpine lakes. This investigation was performed by making comparisons between multiple statistical models that used different combinations of stream and lake characteristics to represent specific hypotheses for the controls on stream temperature. The compared models included a set of models which used a topographically derived estimate of the hydrologic influence of lakes to separate and quantify the effects of stream elevation and lake source-water contributions to longitudinal stream temperature patterns. This source-water mixing model provided a parsimonious explanation for complex stream-network temperature patterns in the summer and autumn, and this approach may be further applicable to other systems where stream temperatures are influenced by multiple water sources. Simpler models that discounted lake effects were more optimal during the winter and spring, suggesting that complex patterns in stream temperature profiles may emerge and subside temporally, across seasons, in response to diversity of water temperatures from different sources.

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