Glacier slowdown and rapid ice loss in the Tinguiririca and Cachapoal Basin, Central Andes of Chile
Tài liệu tham khảo
Altena, 2022, Correlation dispersion as a measure to better estimate uncertainty in remotely sensed glacier displacements, Cryosphere, 16, 2285, 10.5194/tc-16-2285-2022
Araneda, 2009, Historical records of Cipreses glacier (34°S): combining documentary-inferred ‘Little Ice Age’ evidence from Southern and Central Chile, The Holocene, 19, 1173, 10.1177/0959683609345079
Ayala, 2020, Glacier runoff variations since 1955 in the Maipo River Basin, semiarid Andes of Central Chile, Cryosphere, 14, 2005, 10.5194/tc-14-2005-2020
Bamber, 2002, Widespread complex flow in the interior of the Antarctic Ice Sheet, Science., 287, 1248, 10.1126/science.287.5456.1248
Barcaza, 2017, Glacier inventory and recent glacier variations in the Andes of Chile, South America, Ann. Glaciol., 58, 166, 10.1017/aog.2017.28
Bindschadler, 1991, Satellite-Image-Derived Velocity Field of an Antarctic Ice Stream, Science., 252, 242, 10.1126/science.252.5003.242
Braun, 2019, Constraining glacier elevation and mass changes in South America, Nat. Clim. Chang., 9, 130, 10.1038/s41558-018-0375-7
Bravo, 2017, Assessing glacier melt contribution to streamflow at Universidad Glacier, Central Andes of Chile, Hidrol. Earth Syst. Sci., 21, 3249, 10.5194/hess-21-3249-2017
Brown, 2002
Burger, 2019, Interannual variability in glacier contribution to runoff from a high-elevation Andean catchment: understanding the role of debris cover in glacier hydrology, Hydrol. Process., 33, 214, 10.1002/hyp.13354
Csathó, 1999, Surface velocities of a Greenland outlet glacier from high-resolution visible satellite imagery, Polar Geogr., 23, 71, 10.1080/10889379909377665
Cuffey, 2010
Dehecq, 2019, Twenty-first century glacier slowdown driven by mass loss in High Mountain Asia, Nat. Geosci., 12, 22, 10.1038/s41561-018-0271-9
Dirección General de Aguas (DGA), 2014, Unidad de Glaciología y Nieves, Estimación de volúmenes de hielo mediante sondajes de radar en zonas Norte, Central y Sur, Geoestudios (Chile), 31
Dussaillant, 2019, Two decades of glacier mass loss along the Andes, Nat. Geosci., 12, 802, 10.1038/s41561-019-0432-5
Falvey, 2009, Regional cooling in a warming world: recent temperature trends in the Southeast Pacific and along the west coast of subtropical South America (1979–2006), J. Geophys. Res. Atmos., 114
Farías-Barahona, 2019, Geodetic Mass Balances and Area changes of Echaurren Norte Glacier (Central Andes, Chile) between 1955 and 2015, Remote Sens., 11, 260, 10.3390/rs11030260
Farías-Barahona, 2020, 60 years of glacier elevation and mass changes in the Maipo River Basin, Central Andes of Chile, Remote Sens., 12, 1658, 10.3390/rs12101658
Farinotti, 2017, How accurate are estimates of glacier ice thickness? Results from ITMIX, the Ice Thickness Models Intercomparison eXperiment, Cryosphere, 11, 949, 10.5194/tc-11-949-2017
Farinotti, 2009, A method to estimate the ice volume and ice-thickness distribution of alpine glaciers, J. Glaciol., 55, 422, 10.3189/002214309788816759
Farinotti, 2019, A consensus estimate for the ice thickness distribution of all glaciers on Earth, Nat. Geosci., 12, 168, 10.1038/s41561-019-0300-3
Farr, 2000, Shuttle Radar Topography Mission produces a wealth of data, Eos. Trans. AGU, 81, 583, 10.1029/EO081i048p00583
Favier, 2009, Interpreting discrepancies between discharge and precipitation in high-altitude area of Chile’s Norte Chico region (26–32°S), Water Resour. Res., 45, W02424, 10.1029/2008WR006802
Fernández, 2022, De-icing landsystem model for the Universidad Glacier (34° S) in the Central Andes of Chile during the past ∼660 years, Geomorphology., 400
Fernández-Navarro, 2023, Fluctuations of the Universidad Glacier in the Andes of Central Chile (34° S) during the latest Holocene derived from a 10Be moraine chronology, Quat. Sci. Rev., 300
Frezzotti, 1998, Comparison between glacier ice velocities inferred from GPS and sequential satellite images, Ann. Glaciol., 27, 54, 10.3189/1998AoG27-1-54-60
Gantayat, 2014, Estimation of ice thickness using surface velocities and slope: case study at Gangotri Glacier, India, J. Glaciol., 60, 277, 10.3189/2014JoG13J078
Garreaud, 2013, Warm Winter Storms in Central Chile, J. Hydrometeorol., 14, 1515, 10.1175/JHM-D-12-0135.1
Gussfeldt, 1883, Reisen in den Anden von Chiles und Argentiniens, Verhandlungen der Gessellschaft für Erdkunde zu Berlin, 8, 409
Heid, 2012, Repeat optical satellite images reveal widespread and long term decrease in land-terminating glacier speeds, Cryosphere, 6, 467, 10.5194/tc-6-467-2012
Hugonnet, 2021, Accelerated global glacier mass loss in the early twenty-first century, Nature, 592, 726, 10.1038/s41586-021-03436-z
Huss, 2012, Distributed ice thickness and volume of all glaciers around the globe, J. Geophys. Res. Earth, 117
Huss, 2018, Global-scale hydrological response to future glacier mass loss, Nat. Clim. Chang., 8, 135, 10.1038/s41558-017-0049-x
Immerzeel, 2020, Importance and vulnerability of the world’s water towers, Nature, 577, 364, 10.1038/s41586-019-1822-y
IPCC, 2019
Jó, 2021, 111
Joughin, 2004, Large fluctuations in speed on Greenland’s Jakobshavn Isbræ glacier, Nature., 432, 608, 10.1038/nature03130
Kamb, 1986, Stress-gradient coupling in glacier flow: I. Longitudinal averaging of the influence of ice thickness and surface slope, J. Glaciol., 32, 267, 10.3189/S0022143000015604
Kinnard, 2018, Mass balance and meteorological conditions at Universidad Glacier, Central Chile, 102
Le Quesne, 2009, Long-term glacier variations in the Central Andes of Argentina and Chile, inferred from historical records and tree-ring reconstructed precipitation, Palaeogeogr. Palaeoclimatol. Palaeoecol., 281, 334, 10.1016/j.palaeo.2008.01.039
Linsbauer, 2012, Modeling glacier thickness distribution and bed topography over entire mountain ranges with GlabTop: Application of a fast and robust approach, J. Geophys. Res. Earth, 117
Liu, 2007, Synergistic Fusion of Interferometric and Speckle-Tracking Methods for Deriving Surface Velocity from Interferometric SAR Data, IEEE Geosci. Remote Sens. Lett., 4, 102, 10.1109/LGRS.2006.885885
Lliboutry, 1958, Studies of the shrinkage after a sudden advance, blue bands and wave ogives on Glaciar Universidad (central Chilean Andes), J. Glaciol., 3, 261, 10.3189/S002214300002390X
Luckman, 2003, ERS SAR feature-tracking measurment of outlet glaciers velocities on a regional scale in East Greenland, Ann. Glaciol., 36, 129, 10.3189/172756403781816428
Meza, 2012, Impacts of climate change on irrigated agriculture in the Maipo basin, Chile: reliability of water rights and changes in the demand for irrigation, J. Water Resour. Plan. Manag., 138, 554, 10.1061/(ASCE)WR.1943-5452.0000216
Millan, 2019, Mapping surface flow velocity of glaciers at regional scale using a multiple sensors approach, Remote Sens., 11, 10.3390/rs11212498
Millan, 2021, Ice velocity and thickness of the world's glaciers, [Dataset]. Theia.
Millan, 2022, Ice velocity and thickness of the world’s glaciers, Nat. Geosci., 15, 124, 10.1038/s41561-021-00885-z
Minora, 2015, 2008–2011 snow covered area (SCA) variability over 18 watersheds of the Central Chile through MODIS data, Geogr. Fis. Din. Quat., 38, 169
Mohr, 1998, Three-dimensional glacial flow and surface elevation measured with radar interferometry, Nature., 391, 273, 10.1038/34635
Pellicciotti, 2008, A study of the energy balance and melt regime on Juncal Norte Glacier, semi-arid Andes of Central Chile, using melt models of different complexity, Hydrol. Process., 22, 3980, 10.1002/hyp.7085
Pellicciotti, 2014, Changes of glaciers in the Andes of Chile and priorities for future work, Sci. Total Environ., 493, 1197, 10.1016/j.scitotenv.2013.10.055
Pena, 1987, 166, 161
Ragettli, 2012, Calibration of a physically-based, fully distributed hydrological model in a glacierised basin: on the use of knowledge from glacio-meteorological processes to constrain model parameters, Water Resour. Res., 48, W03509, 10.1029/2011WR010559
Raup, 2007, The GLIMS geospatial glacier database: a new tool for studying glacier change, Glob. Planet. Chang., 56, 101, 10.1016/j.gloplacha.2006.07.018
RGI Consortium, 2017
Rivera, 2006, Glacier variations in central Chile (32°S–41°S), 246
Rolstad, 1997, Visible and near-infrared digital images for determination of ice velocities and surface elveation during a surge on Osbornebreen, a tidewater glacier in Svalbard, Ann. Glaciol., 24, 255, 10.3189/S026030550001226X
Sen, 1968, Estimates of the regression coefficient based on Kendall’s Tau, J. Am. Stat. Assoc., 63, 1379, 10.1080/01621459.1968.10480934
Short, 2004, Potential for RADARSAT-2 interferometry:glacier monitoring using speckle tracking, Can. J. Remote. Sens., 30, 504, 10.5589/m03-071
Theil, 1950, A rank-invariant method of linear and polynomial regression analysis, 53, 386
Valdés-Pineda, 2014, Water governance in Chile: availability, management and climate change, J. Hydrol., 519, 2538, 10.1016/j.jhydrol.2014.04.016
Vincent, 2009, Glacier thickening and decay analysis from 50 years of glaciological observations performed on Glacier d’Argentie’re. Mont Blanc area, France, Ann. Glaciol., 50, 73, 10.3189/172756409787769500
Viviroli, 2007, Mountains of the world, water towers for humanity: Typology, mapping, and global significance, Water Resour. Res., 43, 10.1029/2006WR005653
Wilson, 2016, Surface velocity fluctuations for Glaciar Universidad, Central Chile, between 1967 and 2015, J. Glaciol., 62, 847, 10.1017/jog.2016.73
Wyk, 2021, Glacier image velocimetry: an open-source toolbox for easy and rapid calculation of high-resolution glacier velocity fields, Cryosphere, 15, 2115, 10.5194/tc-15-2115-2021
Wyk, 2022, Glacier thickness and ice volume of the Northern Andes, Sci. Data., 9, 342, 10.1038/s41597-022-01446-8
Zheng, 2023, GLAcier Feature Tracking testkit (GLAFT): A statistically- and physically-based framework for evaluating glacier velocity products derived from satellite image feature tracking, The Cryosphere Discuss., 10.5194/tc-17-4063-2023
Zhou, 2021, Glacier velocity changes in the Himalayas in relation to ice mass balance, Remote Sens., 13, 3825, 10.3390/rs13193825
Zorzut, 2020, Slope estimation influences on ice thickness inversion models: a case study for Monte Tronador glaciers, North Patagonian Andes, J. Glaciol., 66, 996, 10.1017/jog.2020.64