4.7 Article

A Changing Hydrological Regime: Trends in Magnitude and Timing of Glacier Ice Melt and Glacier Runoff in a High Latitude Coastal Watershed

Journal

WATER RESOURCES RESEARCH
Volume 57, Issue 7, Pages -

Publisher

AMER GEOPHYSICAL UNION
DOI: 10.1029/2020WR027404

Keywords

Coastal hydrology; glaciers; high latitude; Northern Pacific temperate rainforest; peak water; regime change

Funding

  1. Department of Interior Alaska Climate Adaptation Science Center graduate fellowship [G17AC00213]
  2. NASA [NASANNX16AQ88G]
  3. National Science Foundation [OIA-1208927]
  4. State of Alaska (Experimental Program for Stimulating Competitive Research-Alaska Adapting to Changing Environments award)
  5. University of Alaska Fairbanks Resilience and Adaptation Program

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The study suggests that glacier runoff and total watershed runoff in the western Juneau Icefield are increasing due to sustained glacier mass loss. Moreover, the timing of maximum glacier ice melt is occurring earlier, potentially affecting downstream water resources and ecosystems. This highlights ongoing hydrological regime changes in high latitude coastal watersheds driven by glacier mass loss.
With a unique biogeophysical signature relative to other freshwater sources, meltwater from glaciers plays a crucial role in the hydrological and ecological regime of high latitude coastal areas. Today, as glaciers worldwide exhibit persistent negative mass balance, glacier runoff is changing in both magnitude and timing, with potential downstream impacts on infrastructure, ecosystems, and ecosystem resources. However, runoff trends may be difficult to detect in coastal systems with large precipitation variability. Here, we use the coupled energy balance and water routing model SnowModel-HydroFlow to examine changes in timing and magnitude of runoff from the western Juneau Icefield in Southeast Alaska between 1980 and 2016. We find that under sustained glacier mass loss (-0.57 +/- 0.12 m w. e. a(-1)), several hydrological variables related to runoff show increasing trends. This includes annual and spring glacier ice melt volumes (+10% and +16% decade(-1)) which, because of higher proportions of precipitation, translate to smaller increases in glacier runoff (+3% and +7% decade(-1)) and total watershed runoff (+1.4% and +3% decade(-1)). These results suggest that the western Juneau Icefield watersheds are still in an increasing glacier runoff period prior to reaching peak water. In terms of timing, we find that maximum glacier ice melt is occurring earlier (2.5 days decade(-1)), indicating a change in the source and quality of freshwater being delivered downstream in the early summer. Our findings highlight that even in maritime climates with large precipitation variability, high latitude coastal watersheds are experiencing hydrological regime change driven by ongoing glacier mass loss.

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