Works matching IS 19940416 AND DT 2022 AND VI 16 AND IP 10
Results: 31
Ice fabrics in two-dimensional flows: beyond pure and simple shear.
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- Cryosphere, 2022, v. 16, n. 10, p. 4571, doi. 10.5194/tc-16-4571-2022
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Surface melt on the Shackleton Ice Shelf, East Antarctica (2003–2021).
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- Cryosphere, 2022, v. 16, n. 10, p. 4553, doi. 10.5194/tc-16-4553-2022
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Subglacial hydrology modulates basal sliding response of the Antarctic ice sheet to climate forcing.
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- Cryosphere, 2022, v. 16, n. 10, p. 4537, doi. 10.5194/tc-16-4537-2022
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Thermal regime of the Grigoriev ice cap and the Sary-Tor glacier in the inner Tien Shan, Kyrgyzstan.
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- Cryosphere, 2022, v. 16, n. 10, p. 4513, doi. 10.5194/tc-16-4513-2022
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The effect of hydrology and crevasse wall contact on calving.
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- Cryosphere, 2022, v. 16, n. 10, p. 4491, doi. 10.5194/tc-16-4491-2022
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A comparison between Envisat and ICESat sea ice thickness in the Southern Ocean.
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- Cryosphere, 2022, v. 16, n. 10, p. 4473, doi. 10.5194/tc-16-4473-2022
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Wave-triggered breakup in the marginal ice zone generates lognormal floe size distributions: a simulation study.
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- Cryosphere, 2022, v. 16, n. 10, p. 4447, doi. 10.5194/tc-16-4447-2022
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Exploring the capabilities of electrical resistivity tomography to study subsea permafrost.
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- Cryosphere, 2022, v. 16, n. 10, p. 4423, doi. 10.5194/tc-16-4423-2022
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A simple model for daily basin-wide thermodynamic sea ice thickness growth retrieval.
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- Cryosphere, 2022, v. 16, n. 10, p. 4403, doi. 10.5194/tc-16-4403-2022
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In situ measurements of meltwater flow through snow and firn in the accumulation zone of the SW Greenland Ice Sheet.
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- Cryosphere, 2022, v. 16, n. 10, p. 4379, doi. 10.5194/tc-16-4379-2022
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Ice ridge density signatures in high-resolution SAR images.
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- Cryosphere, 2022, v. 16, n. 10, p. 4363, doi. 10.5194/tc-16-4363-2022
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A generalized photon-tracking approach to simulate spectral snow albedo and transmittance using X-ray microtomography and geometric optics.
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- Cryosphere, 2022, v. 16, n. 10, p. 4343, doi. 10.5194/tc-16-4343-2022
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Understanding wind-driven melt of patchy snow cover.
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- Cryosphere, 2022, v. 16, n. 10, p. 4319, doi. 10.5194/tc-16-4319-2022
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Observed mechanism for sustained glacier retreat and acceleration in response to ocean warming around Greenland.
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- Cryosphere, 2022, v. 16, n. 10, p. 4305, doi. 10.5194/tc-16-4305-2022
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The predictive power of ice sheet models and the regional sensitivity of ice loss to basal sliding parameterisations: a case study of Pine Island and Thwaites glaciers, West Antarctica.
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- Cryosphere, 2022, v. 16, n. 10, p. 4291, doi. 10.5194/tc-16-4291-2022
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Glacier extraction based on high-spatial-resolution remote-sensing images using a deep-learning approach with attention mechanism.
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- Cryosphere, 2022, v. 16, n. 10, p. 4273, doi. 10.5194/tc-16-4273-2022
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On the evolution of an ice shelf melt channel at the base of Filchner Ice Shelf, from observations and viscoelastic modeling.
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- Cryosphere, 2022, v. 16, n. 10, p. 4107, doi. 10.5194/tc-16-4107-2022
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Effects of topographic and meteorological parameters on the surface area loss of ice aprons in the Mont Blanc massif (European Alps).
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- Cryosphere, 2022, v. 16, n. 10, p. 4251, doi. 10.5194/tc-16-4251-2022
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Impact of measured and simulated tundra snowpack properties on heat transfer.
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- Cryosphere, 2022, v. 16, n. 10, p. 4201, doi. 10.5194/tc-16-4201-2022
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Assessing bare-ice albedo simulated by MAR over the Greenland ice sheet (2000–2021) and implications for meltwater production estimates.
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- Cryosphere, 2022, v. 16, n. 10, p. 4185, doi. 10.5194/tc-16-4185-2022
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Antarctic surface climate and surface mass balance in the Community Earth System Model version 2 during the satellite era and into the future (1979–2100).
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- Cryosphere, 2022, v. 16, n. 10, p. 4163, doi. 10.5194/tc-16-4163-2022
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Evaluating simplifications of subsurface process representations for field-scale permafrost hydrology models.
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- Cryosphere, 2022, v. 16, n. 10, p. 4141, doi. 10.5194/tc-16-4141-2022
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Rain on snow (ROS) understudied in sea ice remote sensing: a multi-sensor analysis of ROS during MOSAiC (Multidisciplinary drifting Observatory for the Study of Arctic Climate).
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- Cryosphere, 2022, v. 16, n. 10, p. 4223, doi. 10.5194/tc-16-4223-2022
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An indicator of sea ice variability for the Antarctic marginal ice zone.
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- Cryosphere, 2022, v. 16, n. 10, p. 4087, doi. 10.5194/tc-16-4087-2022
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The Antarctic contribution to 21st-century sea-level rise predicted by the UK Earth System Model with an interactive ice sheet.
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- Cryosphere, 2022, v. 16, n. 10, p. 4053, doi. 10.5194/tc-16-4053-2022
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Variation in bacterial composition, diversity, and activity across different subglacial basal ice types.
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- Cryosphere, 2022, v. 16, n. 10, p. 4033, doi. 10.5194/tc-16-4033-2022
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Understanding model spread in sea ice volume by attribution of model differences in seasonal ice growth and melt.
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- Cryosphere, 2022, v. 16, n. 10, p. 4013, doi. 10.5194/tc-16-4013-2022
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Simulations of firn processes over the Greenland and Antarctic ice sheets: 1980–2021.
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- Cryosphere, 2022, v. 16, n. 10, p. 3971, doi. 10.5194/tc-16-3971-2022
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Quantifying the effects of background concentrations of crude oil pollution on sea ice albedo.
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- Cryosphere, 2022, v. 16, n. 10, p. 3949, doi. 10.5194/tc-16-3949-2022
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Drill-site selection for cosmogenic-nuclide exposure dating of the bed of the Greenland Ice Sheet.
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- Cryosphere, 2022, v. 16, n. 10, p. 3933, doi. 10.5194/tc-16-3933-2022
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Seasonal land-ice-flow variability in the Antarctic Peninsula.
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- Cryosphere, 2022, v. 16, n. 10, p. 3907, doi. 10.5194/tc-16-3907-2022
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