GNSS signal-based snow water equivalent determination for different snowpack conditions along a steep elevation gradient
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Published:2022-02-11
Issue:2
Volume:16
Page:505-531
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ISSN:1994-0424
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Container-title:The Cryosphere
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language:en
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Short-container-title:The Cryosphere
Author:
Capelli AchilleORCID, Koch FranziskaORCID, Henkel PatrickORCID, Lamm Markus, Appel FlorianORCID, Marty ChristophORCID, Schweizer JürgORCID
Abstract
Abstract. Snow water equivalent (SWE) can be measured using low-cost Global
Navigation Satellite System (GNSS) sensors with one antenna placed below the
snowpack and another one serving as a reference above the snow. The
underlying GNSS signal-based algorithm for SWE determination for dry- and
wet-snow conditions processes the carrier phases and signal strengths and
additionally derives liquid water content (LWC) and snow depth (HS). So far,
the algorithm was tested intensively for high-alpine conditions with
distinct seasonal accumulation and ablation phases. In general, snow
occurrence, snow amount, snow density and LWC can vary considerably with
climatic conditions and elevation. Regarding alpine regions, lower
elevations mean generally earlier and faster melting, more rain-on-snow
events, and shallower snowpack. Therefore, we assessed the applicability of
the GNSS-based SWE measurement at four stations along a steep elevation
gradient (820, 1185, 1510 and 2540 m a.s.l.) in the eastern Swiss Alps
during two winter seasons (2018–2020). Reference data of SWE, LWC and HS
were collected manually and with additional automated sensors at all
locations. The GNSS-derived SWE estimates agreed very well with manual
reference measurements along the elevation gradient, and the accuracy
(RMSE = 34 mm, RMSRE = 11 %) was similar under wet- and dry-snow
conditions, although significant differences in snow density and
meteorological conditions existed between the locations. The GNSS-derived
SWE was more accurate than measured with other automated SWE sensors.
However, with the current version of the GNSS algorithm, the determination
of daily changes of SWE was found to be less suitable compared to manual
measurements or pluviometer recordings and needs further refinement. The
values of the GNSS-derived LWC were robust and within the precision of the
manual and radar measurements. The additionally derived HS correlated well
with the validation data. We conclude that SWE can reliably be determined
using low-cost GNSS sensors under a broad range of climatic conditions, and
LWC and HS are valuable add-ons.
Publisher
Copernicus GmbH
Subject
Earth-Surface Processes,Water Science and Technology
Reference65 articles.
1. Appel, F., Koch, F., Rösel, A., Klug, P., Henkel, P., Lamm, M., Mauser,
W., and Bach, H.: Advances in snow hydrology using a combined approach of
GNSS in situ stations, hydrological modelling and Earth observation: a case
study in Canada, Geosciences, 9, 44,
https://doi.org/10.3390/geosciences9010044, 2019. 2. Avanzi, F., Bianchi, A., Cina, A., De Michele, C., Maschio, P., Pagliari,
D., Passoni, D., Pinto, L., Piras, M., and Rossi, L.: Centimetric accuracy
in snow depth using unmanned aerial system photogrammetry and a
MultiStation, Remote Sensing, 10, 765, https://doi.org/10.3390/rs10050765, 2018. 3. Bojinski, S., Verstraete, M., Peterson, T. C., Richter, C., Simmons, A., and
Zemp, M.: The concept of essential climate variables in support of climate
research, applications, and policy, B. Am. Meteorol.
Soc., 95, 1431–1443, https://doi.org/10.1175/bams-d-13-00047.1, 2014. 4. Boniface, K., Braun, J. J., McCreight, J. L., and Nievinski, F. G.:
Comparison of snow data assimilation system with GPS reflectometry snow
depth in the Western United States, Hydrol. Process., 29, 2425–2437,
https://doi.org/10.1002/hyp.10346, 2015. 5. Botteron, C., Dawes, N., Leclere, J., Skaloud, J., Weijs, S. V., and Farine,
P. A.: Soil moisture & snow properties determination with GNSS in Alpine
environments: Challenges, status, and perspectives, Remote Sensing, 5,
3516–3543, https://doi.org/10.3390/rs5073516, 2013.
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