Articles | Volume 19, issue 11
https://doi.org/10.5194/tc-19-6059-2025
https://doi.org/10.5194/tc-19-6059-2025
Research article
 | 
21 Nov 2025
Research article |  | 21 Nov 2025

SnoTATOS: a low-cost, autonomous system for distributed snow depth measurements on sea ice

Ian A. Raphael, Donald K. Perovich, Christopher M. Polashenski, and Robert L. Hawley

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Cited articles

Augustin, A., Yi, J., Clausen, T., and Townsley, W. M.: A Study of LoRa: Long Range & Low Power Networks for the Internet of Things, Sensors-Basel, 16, 1466, https://doi.org/10.3390/s16091466, 2016. 
Backus, G.: Arctic 2030: What are the consequences of climate change?: The US response, B. Atom. Sci., 68, 9–16, https://doi.org/10.1177/0096340212451568, 2012. 
Barnhart, K. R., Overeem, I., and Anderson, R. S.: The effect of changing sea ice on the physical vulnerability of Arctic coasts, The Cryosphere, 8, 1777–1799, https://doi.org/10.5194/tc-8-1777-2014, 2014. 
Bystrowska, M.: The Impact of Sea Ice on Cruise Tourism on Svalbard, Arctic, 72, 151–165, 2019. 
Carman, J. C.: Economic and Strategic Implications of Ice-Free Arctic Seas, Globalization and Maritime Power, 171–188, 2002. 
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Short summary
Snow plays competing roles in the sea ice cycle by reflecting sunlight during summer (reducing melt) and insulating the ice from the cold atmosphere during winter (reducing growth). Observing where, when, and how much snow accumulates on sea ice is thus central to understanding the Arctic. Here, we describe a new snow depth observation system that is substantially cheaper and lighter than existing tools and present a study demonstrating its potential to improve snow measurements on sea ice.
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