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Snow-eater heat waves of the western United States
- Rhoades, Alan M;
- North, Joshua Snowball;
- Rudisill, William;
- Hatchett, Benjamin J;
- Risser, Mark;
- Beltran-Peña, Areidy;
- Heggli, Anne;
- Hotaling, Scott;
- Huning, Laurie S;
- Joros, Andrew;
- LaPlante, Matthew;
- Mahesh, Ankur;
- Marshall, Adrienne M;
- McCrary, Rachel;
- McEvoy, Daniel;
- Rahimi, Stefan;
- Raleigh, Mark S;
- Randall, Calen;
- Srivastava, Abhishekh;
- Wehner, Michael;
- Zhou, Yang;
- Jones, Andrew D
Published Web Location
https://doi.org/10.1126/sciadv.aeb3361Abstract
Abrupt snowmelt, triggered by rain-on-snow events or "snow-eater heat waves," can cause flooding, initiate or accelerate snow drought, and affect water availability. However, the characteristics (e.g., area, duration, and frequency), impacts, and trends of snow-eater heat waves have received little attention. To address this gap, we developed a method to identify snow-eater heat waves and estimate their melt potential using 20th Century Reanalysis version 3 air temperature data, the TempestExtremes algorithm, and an operational snowmelt model (SNOW-17) across 1850-2015. Melt season snow-eater heat waves typically last 3 to 5 days, with three to five events, doubling snowmelt rates. Seven of 11 spring superfloods are shown to coincide with snow-eater heat waves. Since the 1850s, snow-eater heat waves have increased in area and frequency, decreased in duration, and shifted earlier in the melt season. Incorporating snow-eater heat-wave impacts into SNOW-17 enhances extreme melt estimates, improving water management support tools.
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