Spatial distribution and post-depositional diffusion of stable water isotopes in East Antarctica release_dzrats6nanan7o4xrqunsqgauq

by Mahalinganathan Kanthanathan, Thamban Meloth, Tariq Ejaz, Bhikaji L. Redkar, Laluraj C. Madhavanpillai

References

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[b0]

via grobid
Continental-scale temperature variability in PMIP3 simulations and PAGES 2k regional temperature reconstructions over the past millennium
None
2015   Climate of the Past
doi:10.5194/cp-11-1673-2015 
web.archive.org [PDF]
[b1]

via fuzzy
Surface climate of the interior of the Lambert Glacier basin, Antarctica, from automatic weather station data
Ian Allison
1998   Annals of Glaciology
doi:10.3189/1998aog27-1-515-520 
web.archive.org [PDF]
[b2]

via grobid
Bertler, N., Mayewski, P., and Carter, L.: Cold conditions in Antarctica during the Little Ice Age-Implications for abrupt climate change mechanisms, Earth and Planetary Science Letters, 308, 41-51, 2011.
[b3]

via grobid
Deuterium and oxygen 18 in precipitation: Isotopic model, including mixed cloud processes
Philippe Ciais, Jean Jouzel
1994   Journal of Geophysical Research
doi:10.1029/94jd00412 
web.archive.org [PDF]
[b4]

via grobid
Isotopic Variations in Meteoric Waters
H. Craig
1961   Science
doi:10.1126/science.133.3465.1702  pmid:17814749 
[b5]

via grobid
Isotopic diffusion in polar firn: implications for interpretation of seasonal climate parameters in ice-core records, with emphasis on central Greenland
Kurt M. Cuffey, Eric J. Steig
1998   Journal of Glaciology
doi:10.3189/s0022143000002616 
web.archive.org [PDF]
[b6]

via grobid
Stable isotopes in precipitation
W. Dansgaard
1964   Tellus
doi:10.1111/j.2153-3490.1964.tb00181.x 
web.archive.org [PDF]
[b7]

via grobid
PRYSM: An open-source framework for PRoxY System Modeling, with applications to oxygen-isotope systems
S. Dee, J. Emile-Geay, M. N. Evans, A. Allam, E. J. Steig, D.M. Thompson
2015   Journal of Advances in Modeling Earth Systems
doi:10.1002/2015ms000447 
[b8]

via grobid
The surface energy balance at Panda 1 Station, Princess Elizabeth Land: a typical katabatic wind region in East Antarctica
Minghu Ding, Diyi Yang, Michiel van den Broeke, Ian Allison, Cunde Xiao, Dahe Qin, Huai Baojuan
2019   Journal of Geophysical Research - Atmospheres
doi:10.1029/2019jd030378 
[b9]

via grobid
EPICA, C. M.: One-to-one coupling of glacial climate variability in Greenland and Antarctica., Nature, 444, 195, 2006.
[b10]

via grobid
Isaksson, E. and Karlén, W.: Spatial and temporal patterns in snow accumulation, western Dronning Maud Land, Antarctica, Journal of Glaciology, 40, 399-409, 1994.
[b11]

via grobid
Johnsen, S.: Stable isotope homogenization of polar firn and ice, Isotopes and impurities in snow and ice, 118, 210-219, 1977. 280
[b12]

via grobid
Johnsen, S. J., Clausen, H. B., Cuffey, K. M., Hoffmann, G., and Creyts, T. T.: Diffusion of stable isotopes in polar firn and ice: the isotope effect in firn diffusion, in: Physics of Ice Core Records, edited by Hondoh, T., pp. 121-140, Hokkaido University Press, Sapporo, Japan, 2000.
[b13]

via grobid
Deuterium and oxygen 18 in precipitation: Modeling of the isotopic effects during snow formation
Jean Jouzel, Liliane Merlivat
1984   Journal of Geophysical Research
doi:10.1029/jd089id07p11749 
[b14]

via grobid
Jouzel, J., Merlivat, L., and Lorius, C.: Deuterium excess in an East Antarctic ice core suggests higher relative humidity at the oceanic surface during the last glacial maximum, Nature, 299, 688, 1982.
[b15]

via grobid
Surface studies of water isotopes in Antarctica for quantitative interpretation of deep ice core data
Amaelle Landais, Mathieu Casado, Frédéric Prié, Olivier Magand, Laurent Arnaud, Alexey Ekaykin, Jean-Robert Petit, Ghislain Picard (+ more)
2017   Comptes rendus Geoscience
doi:10.1016/j.crte.2017.05.003 
web.archive.org [PDF]
[b16]

via fuzzy
Potential genesis and implications of calcium nitrate in Antarctic snow
Kanthanathan Mahalinganathan, Meloth Thamban
2016   The Cryosphere
doi:10.5194/tc-10-825-2016 
web.archive.org [PDF]
[b17]

via grobid
Mahalinganathan, K., Thamban, M., Laluraj, C. M., and Redkar, B. L.: Relation between surface topography and sea-salt snow chemistry 295 from Princess Elizabeth Land, East Antarctica, The Cryosphere, 6, 505-515, 2012.
[b18]

via grobid
Masson-Delmotte, V., Hou, S., Ekaykin, A., Jouzel, J., Aristarain, A., Bernardo, R., Bromwich, D., Cattani, O., Delmotte, M., Falourd, S., et al.: A review of Antarctic surface snow isotopic composition: Observations, atmospheric circulation, and isotopic modeling, Journal of climate, 21, 3359-3387, 2008.
[b19]

via grobid
Twentieth-century sea ice variability in the Weddell Sea and its effect on moisture transport: Evidence from a coastal East Antarctic ice core record
Waliur Rahaman, Meloth Thamban, CM Laluraj
2016   The Holocene
doi:10.1177/0959683615609749 
[b20]

via grobid
Isotopic exchange on the diurnal scale between near-surface snow and lower atmospheric water vapor at Kohnen station, East Antarctica
François Ritter, Hans Christian Steen-Larsen, Martin Werner, Valérie Masson-Delmotte, Anais Orsi, Melanie Behrens, Gerit Birnbaum, Johannes Freitag (+ more)
2016   The Cryosphere
doi:10.5194/tc-10-1647-2016 
web.archive.org [PDF]
[b21]

via grobid
Sodemann, H. and Stohl, A.: Asymmetries in the moisture origin of Antarctic precipitation, Geophysical Research Letters, 36, 320
[b22]

via grobid
Asymmetries in the moisture origin of Antarctic precipitation
Harald Sodemann, Andreas Stohl
2009   Geophysical Research Letters
doi:10.1029/2009gl040242 
web.archive.org [PDF]
[b23]

via grobid
Sokratov, S. A. and Golubev, V. N.: Snow isotopic content change by sublimation, Journal of Glaciology, 55, 823-828, 2009.
[b24]

via grobid
What controls the isotopic composition of Greenland surface snow?
H. C. Steen-Larsen, V. Masson-Delmotte, M. Hirabayashi, R. Winkler, K. Satow, F. Prié, N. Bayou, E. Brun (+ more)
2014   Climate of the Past
doi:10.5194/cp-10-377-2014 
web.archive.org [PDF]
[b25]

via grobid
Stichler, W., Schotterer, U., Fröhlich, K., Ginot, P., Kull, C., Gäggeler, H., and Pouyaud, B.: Influence of sublimation on stable isotope records recovered from high-altitude glaciers in the tropical Andes, Journal of Geophysical Research: Atmospheres, 106, 22 613-22 620, 2001.
[b26]

via grobid
Thomas, E. R., Bracegirdle, T. J., Turner, J., and Wolff, E. W.: A 308 year record of climate variability in West Antarctica, Geophysical Research Letters, 40, 5492-5496, 2013.
[b27]

via grobid
Effect of atmospheric water vapor on modification of stable isotopes in near-surface snow on ice sheets
Michael S. Town, Stephen G. Warren, Von P. Walden, Edwin D. Waddington
2008   Journal of Geophysical Research
doi:10.1029/2008jd009852 
web.archive.org [PDF]
[b28]

via fuzzy
The Dominant Role of Extreme Precipitation Events in Antarctic Snowfall Variability
John Turner, Tony Phillips, Meloth Thamban, Waliur Rahaman, Gareth J. Marshall, Jonathan D. Wille, Vincent Favier, Holly Winton (+ more)
2019   Geophysical Research Letters
doi:10.1029/2018gl081517 
web.archive.org [PDF]
[b30]

via grobid
Preprint. Discussion started: 7 April 2020 c Author(s) 2020. CC BY 4.0 License.