Changing Arctic snow cover: A review of recent developments and assessment of future needs for observations, modelling, and impacts

S Bokhorst, SH Pedersen, L Brucker, O Anisimov… - Ambio, 2016 - Springer
Snow is a critically important and rapidly changing feature of the Arctic. However, snow-
cover and snowpack conditions change through time pose challenges for measuring and …

Climate change decisive for Asia's snow meltwater supply

PDA Kraaijenbrink, EE Stigter, T Yao… - Nature Climate …, 2021 - nature.com
Streamflow in high-mountain Asia is influenced by meltwater from snow and glaciers, and
determining impacts of climate change on the region's cryosphere is essential to understand …

[HTML][HTML] Estimating snow accumulation and ablation with L-band interferometric synthetic aperture radar (InSAR)

J Tarricone, RW Webb, HP Marshall, AW Nolin… - The …, 2023 - tc.copernicus.org
Snow is a critical water resource for the western United States and many regions across the
globe. However, our ability to accurately measure and monitor changes in snow mass from …

Verification of the multi-layer SNOWPACK model with different water transport schemes

N Wever, L Schmid, A Heilig, O Eisen, C Fierz… - The …, 2015 - tc.copernicus.org
The widely used detailed SNOWPACK model has undergone constant development over
the years. A notable recent extension is the introduction of a Richards equation (RE) solver …

Retrieval of snow water equivalent, liquid water content, and snow height of dry and wet snow by combining GPS signal attenuation and time delay

F Koch, P Henkel, F Appel, L Schmid… - Water Resources …, 2019 - Wiley Online Library
For numerous hydrological applications, information on snow water equivalent (SWE) and
snow liquid water content (LWC) are fundamental. In situ data are much needed for the …

Monitoring wet snow over an alpine region using sentinel-1 observations

F Karbou, G Veyssière, C Coleou, A Dufour… - Remote Sensing, 2021 - mdpi.com
The main objective of this study was to monitor wet snow conditions from Sentinel-1 over a
season, to examine its variation over time by cross-checking wet snow with independent …

Spatially extensive ground‐penetrating radar snow depth observations during NASA's 2017 SnowEx campaign: Comparison with in situ, airborne, and satellite …

D McGrath, R Webb, D Shean… - Water Resources …, 2019 - Wiley Online Library
Seasonal snow is an important component of Earth's hydrologic cycle and climate system,
yet it remains challenging to consistently and accurately measure snow depth and snow …

Observations of capillary barriers and preferential flow in layered snow during cold laboratory experiments

F Avanzi, H Hirashima, S Yamaguchi… - The …, 2016 - tc.copernicus.org
Data of liquid water flow around a capillary barrier in snow are still limited. To gain insight
into this process, we carried out observations of dyed water infiltration in layered snow at 0∘ …

Collaborative wildlife–snow science: Integrating wildlife and snow expertise to improve research and management

AK Reinking, S Højlund Pedersen, K Elder… - …, 2022 - Wiley Online Library
For wildlife inhabiting snowy environments, snow properties such as onset date, depth,
strength, and distribution can influence many aspects of ecology, including movement …

A time series of snow density and snow water equivalent observations derived from the integration of GPR and UAV SfM observations

D McGrath, R Bonnell, L Zeller… - Frontiers in Remote …, 2022 - frontiersin.org
Snow depth can be mapped from airborne platforms and measured in situ rapidly, but
manual snow density and snow water equivalent (SWE) measurements are time consuming …