Articles | Volume 13, issue 7
https://doi.org/10.5194/tc-13-1785-2019
© Author(s) 2019. This work is distributed under
the Creative Commons Attribution 4.0 License.
the Creative Commons Attribution 4.0 License.
https://doi.org/10.5194/tc-13-1785-2019
© Author(s) 2019. This work is distributed under
the Creative Commons Attribution 4.0 License.
the Creative Commons Attribution 4.0 License.
Spatiotemporal distributions of icebergs in a temperate fjord: Columbia Fjord, Alaska
Sarah U. Neuhaus
CORRESPONDING AUTHOR
Earth and Planetary Sciences, University of California Santa Cruz,
Santa Cruz, CA 95064, USA
Slawek M. Tulaczyk
Earth and Planetary Sciences, University of California Santa Cruz,
Santa Cruz, CA 95064, USA
Carolyn Branecky Begeman
Earth and Planetary Sciences, University of California Santa Cruz,
Santa Cruz, CA 95064, USA
Los Alamos National Laboratory, Los Alamos, NM 87545, USA
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Sarah U. Neuhaus, Slawek M. Tulaczyk, Nathan D. Stansell, Jason J. Coenen, Reed P. Scherer, Jill A. Mikucki, and Ross D. Powell
The Cryosphere, 15, 4655–4673, https://doi.org/10.5194/tc-15-4655-2021, https://doi.org/10.5194/tc-15-4655-2021, 2021
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We estimate the timing of post-LGM grounding line retreat and readvance in the Ross Sea sector of Antarctica. Our analyses indicate that the grounding line retreated over our field sites within the past 5000 years (coinciding with a warming climate) and readvanced roughly 1000 years ago (coinciding with a cooling climate). Based on these results, we propose that the Siple Coast grounding line motions in the middle to late Holocene were driven by relatively modest changes in regional climate.
Brent C. Christner, Heather F. Lavender, Christina L. Davis, Erin E. Oliver, Sarah U. Neuhaus, Krista F. Myers, Birgit Hagedorn, Slawek M. Tulaczyk, Peter T. Doran, and William C. Stone
The Cryosphere, 12, 3653–3669, https://doi.org/10.5194/tc-12-3653-2018, https://doi.org/10.5194/tc-12-3653-2018, 2018
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Solar radiation that penetrates into the glacier heats the ice to produce nutrient-containing meltwater and provides light that fuels an ecosystem within the ice. Our analysis documents a near-surface photic zone in a glacier that functions as a liquid water oasis in the ice over half the annual cycle. Since microbial growth on glacier surfaces reduces the amount of solar radiation reflected, microbial processes at depths below the surface may also darken ice and accelerate meltwater production.
Katherine Smith, Alice M. Barthel, LeAnn M. Conlon, Luke P. Van Roekel, Anthony Bartoletti, Jean-Christophe Golez, Chengzhu Zhang, Carolyn Branecky Begeman, James J. Benedict, Gautum Bisht, Yan Feng, Walter Hannah, Bryce E. Harrop, Nicole Jeffery, Wuyin Lin, Po-Lun Ma, Mathew E. Maltrud, Mark R. Petersen, Balwinder Singh, Qi Tang, Teklu Tesfa, Jonathan D. Wolfe, Shaocheng Xie, Xue Zheng, Karthik Balaguru, Oluwayemi Garuba, Peter Gleckler, Aixue Hu, Jiwoo Lee, Ben Moore-Maley, and Ana C. Ordonez
Geosci. Model Dev. Discuss., https://doi.org/10.5194/gmd-2024-149, https://doi.org/10.5194/gmd-2024-149, 2024
Revised manuscript under review for GMD
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Version 2.1 of the U.S. Department of Energy's Energy Exascale Earth System Model (E3SM) adds the Fox-Kemper et al. (2011) mixed layer eddy parameterization, which restratifies the ocean surface layer through an overturning streamfunction. Results include surface layer biases reduction in temperature, salinity, and sea-ice extent in the North Atlantic, a small strengthening of the Atlantic Meridional Overturning Circulation, and improvements in many atmospheric climatological variables.
Irena Vaňková, Xylar Asay-Davis, Carolyn Branecky Begeman, Darin Comeau, Alexander Hager, Matthew Hoffman, Stephen F. Price, and Jonathan Wolfe
EGUsphere, https://doi.org/10.5194/egusphere-2024-2297, https://doi.org/10.5194/egusphere-2024-2297, 2024
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We study the effect of subglacial discharge on basal melting for Antarctic Ice Shelves. We find that the results from previous studies of vertical ice fronts and two-dimensional ice tongues do not translate to the rotating ice-shelf framework. The melt rate dependence on discharge is stronger in the rotating framework. Further, there is a substantial melt-rate sensitivity to the location of the discharge along the grounding line relative to the directionality of the Coriolis force.
Matthew J. Hoffman, Carolyn Branecky Begeman, Xylar S. Asay-Davis, Darin Comeau, Alice Barthel, Stephen F. Price, and Jonathan D. Wolfe
The Cryosphere, 18, 2917–2937, https://doi.org/10.5194/tc-18-2917-2024, https://doi.org/10.5194/tc-18-2917-2024, 2024
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The Filchner–Ronne Ice Shelf in Antarctica is susceptible to the intrusion of deep, warm ocean water that could increase the melting at the ice-shelf base by a factor of 10. We show that representing this potential melt regime switch in a low-resolution climate model requires careful treatment of iceberg melting and ocean mixing. We also demonstrate a possible ice-shelf melt domino effect where increased melting of nearby ice shelves can lead to the melt regime switch at Filchner–Ronne.
Gavin Piccione, Terrence Blackburn, Paul Northrup, Slawek Tulaczyk, and Troy Rasbury
EGUsphere, https://doi.org/10.5194/egusphere-2024-1359, https://doi.org/10.5194/egusphere-2024-1359, 2024
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Growth of microorganisms in the Southern Ocean is limited by low iron levels. Iron delivered from beneath the Antarctic Ice Sheet is one agent that fertilizes these ecosystems, but it is unclear how this nutrient source changes through time. Here, we measured the age and chemistry of a rock that records the iron concentration of Antarctic basal water. We show that increased dissolution of iron from rocks below the ice sheet can substantially enhance iron discharge during cold climate periods.
Ricardo Garza-Girón and Slawek M. Tulaczyk
The Cryosphere, 18, 1207–1213, https://doi.org/10.5194/tc-18-1207-2024, https://doi.org/10.5194/tc-18-1207-2024, 2024
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By analyzing temperature time series over more than 20 years, we have found a discrepancy between the 2 m temperature values reported by the ERA5 reanalysis and the automatic weather stations in the McMurdo Dry Valleys, Antarctica.
Hilary A. Dugan, Peter T. Doran, Denys Grombacher, Esben Auken, Thue Bording, Nikolaj Foged, Neil Foley, Jill Mikucki, Ross A. Virginia, and Slawek Tulaczyk
The Cryosphere, 16, 4977–4983, https://doi.org/10.5194/tc-16-4977-2022, https://doi.org/10.5194/tc-16-4977-2022, 2022
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In the McMurdo Dry Valleys of Antarctica, a deep groundwater system has been hypothesized to connect Don Juan Pond and Lake Vanda, both surface waterbodies that contain very high concentrations of salt. This is unusual, since permafrost in polar landscapes is thought to prevent subsurface hydrologic connectivity. We show results from an airborne geophysical survey that reveals widespread unfrozen brine in Wright Valley and points to the potential for deep valley-wide brine conduits.
Carolyn Branecky Begeman, Xylar Asay-Davis, and Luke Van Roekel
The Cryosphere, 16, 277–295, https://doi.org/10.5194/tc-16-277-2022, https://doi.org/10.5194/tc-16-277-2022, 2022
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This study uses ocean modeling at ultra-high resolution to study the small-scale ocean mixing that controls ice-shelf melting. It offers some insights into the relationship between ice-shelf melting and ocean temperature far from the ice base, which may help us project how fast ice will melt when ocean waters entering the cavity warm. This study adds to a growing body of research that indicates we need a more sophisticated treatment of ice-shelf melting in coarse-resolution ocean models.
Sarah U. Neuhaus, Slawek M. Tulaczyk, Nathan D. Stansell, Jason J. Coenen, Reed P. Scherer, Jill A. Mikucki, and Ross D. Powell
The Cryosphere, 15, 4655–4673, https://doi.org/10.5194/tc-15-4655-2021, https://doi.org/10.5194/tc-15-4655-2021, 2021
Short summary
Short summary
We estimate the timing of post-LGM grounding line retreat and readvance in the Ross Sea sector of Antarctica. Our analyses indicate that the grounding line retreated over our field sites within the past 5000 years (coinciding with a warming climate) and readvanced roughly 1000 years ago (coinciding with a cooling climate). Based on these results, we propose that the Siple Coast grounding line motions in the middle to late Holocene were driven by relatively modest changes in regional climate.
Tun Jan Young, Carlos Martín, Poul Christoffersen, Dustin M. Schroeder, Slawek M. Tulaczyk, and Eliza J. Dawson
The Cryosphere, 15, 4117–4133, https://doi.org/10.5194/tc-15-4117-2021, https://doi.org/10.5194/tc-15-4117-2021, 2021
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If the molecules that make up ice are oriented in specific ways, the ice becomes softer and enhances flow. We use radar to measure the orientation of ice molecules in the top 1400 m of the Western Antarctic Ice Sheet Divide. Our results match those from an ice core extracted 10 years ago and conclude that the ice flow has not changed direction for the last 6700 years. Our methods are straightforward and accurate and can be applied in places across ice sheets unsuitable for ice coring.
Krista F. Myers, Peter T. Doran, Slawek M. Tulaczyk, Neil T. Foley, Thue S. Bording, Esben Auken, Hilary A. Dugan, Jill A. Mikucki, Nikolaj Foged, Denys Grombacher, and Ross A. Virginia
The Cryosphere, 15, 3577–3593, https://doi.org/10.5194/tc-15-3577-2021, https://doi.org/10.5194/tc-15-3577-2021, 2021
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Lake Fryxell, Antarctica, has undergone hundreds of meters of change in recent geologic history. However, there is disagreement on when lake levels were higher and by how much. This study uses resistivity data to map the subsurface conditions (frozen versus unfrozen ground) to map ancient shorelines. Our models indicate that Lake Fryxell was up to 60 m higher just 1500 to 4000 years ago. This amount of lake level change shows how sensitive these systems are to small changes in temperature.
Slawek M. Tulaczyk and Neil T. Foley
The Cryosphere, 14, 4495–4506, https://doi.org/10.5194/tc-14-4495-2020, https://doi.org/10.5194/tc-14-4495-2020, 2020
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Much of what we know about materials hidden beneath glaciers and ice sheets on Earth has been interpreted using radar reflection from the ice base. A common assumption is that electrical conductivity of the sub-ice materials does not influence the reflection strength and that the latter is controlled only by permittivity, which depends on the fraction of water in these materials. Here we argue that sub-ice electrical conductivity should be generally considered when interpreting radar records.
Brent C. Christner, Heather F. Lavender, Christina L. Davis, Erin E. Oliver, Sarah U. Neuhaus, Krista F. Myers, Birgit Hagedorn, Slawek M. Tulaczyk, Peter T. Doran, and William C. Stone
The Cryosphere, 12, 3653–3669, https://doi.org/10.5194/tc-12-3653-2018, https://doi.org/10.5194/tc-12-3653-2018, 2018
Short summary
Short summary
Solar radiation that penetrates into the glacier heats the ice to produce nutrient-containing meltwater and provides light that fuels an ecosystem within the ice. Our analysis documents a near-surface photic zone in a glacier that functions as a liquid water oasis in the ice over half the annual cycle. Since microbial growth on glacier surfaces reduces the amount of solar radiation reflected, microbial processes at depths below the surface may also darken ice and accelerate meltwater production.
A. Damsgaard, D. L. Egholm, J. A. Piotrowski, S. Tulaczyk, N. K. Larsen, and C. F. Brædstrup
The Cryosphere, 9, 2183–2200, https://doi.org/10.5194/tc-9-2183-2015, https://doi.org/10.5194/tc-9-2183-2015, 2015
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This paper details a new algorithm for performing computational experiments of subglacial granular deformation. The numerical approach allows detailed studies of internal sediment and pore-water dynamics under shear. Feedbacks between sediment grains and pore water can cause rate-dependent strengthening, which additionally contributes to the plastic shear strength of the granular material. Hardening can stabilise patches of the subglacial beds with implications for landform development.
Related subject area
Discipline: Glaciers | Subject: Ocean Interactions
Review article: How does glacier discharge affect marine biogeochemistry and primary production in the Arctic?
Large spatial variations in the flux balance along the front of a Greenland tidewater glacier
Mark J. Hopwood, Dustin Carroll, Thorben Dunse, Andy Hodson, Johnna M. Holding, José L. Iriarte, Sofia Ribeiro, Eric P. Achterberg, Carolina Cantoni, Daniel F. Carlson, Melissa Chierici, Jennifer S. Clarke, Stefano Cozzi, Agneta Fransson, Thomas Juul-Pedersen, Mie H. S. Winding, and Lorenz Meire
The Cryosphere, 14, 1347–1383, https://doi.org/10.5194/tc-14-1347-2020, https://doi.org/10.5194/tc-14-1347-2020, 2020
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Here we compare and contrast results from five well-studied Arctic field sites in order to understand how glaciers affect marine biogeochemistry and marine primary production. The key questions are listed as follows. Where and when does glacial freshwater discharge promote or reduce marine primary production? How does spatio-temporal variability in glacial discharge affect marine primary production? And how far-reaching are the effects of glacial discharge on marine biogeochemistry?
Till J. W. Wagner, Fiamma Straneo, Clark G. Richards, Donald A. Slater, Laura A. Stevens, Sarah B. Das, and Hanumant Singh
The Cryosphere, 13, 911–925, https://doi.org/10.5194/tc-13-911-2019, https://doi.org/10.5194/tc-13-911-2019, 2019
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This study shows how complex and varied the processes are that determine the frontal position of tidewater glaciers. Rather than uniform melt or calving rates, a single (medium-sized) glacier can feature regions that retreat almost exclusively due to melting and other regions that retreat only due to calving. This has far-reaching consequences for our understanding of how glaciers retreat or advance.
Cited articles
Amundson, J. M., Fahnestock, M., Truffer, M., Brown, J., Lüthi, M. P.,
and Motyka, R. J.: Ice mélange dynamics and implications for terminus
stability, Jakobshavn Isbrse, Greenland, J. Geophys. Res.-Earth Surf.,
115, 1–12, https://doi.org/10.1029/2009JF001405, 2010.
Arimitsu, M., Piatt, J., and Heflin, B.: Pelagic Forage Fish Distribution
Abundance and Body Condition: U.S. Geological Survey data release,
https://doi.org/10.5066/F74J0C9Z, 2017.
Åström, J. A.: Statistical models of brittle fragmentation, Adv.
Phys., 55, 247–278, https://doi.org/10.1080/00018730600731907, 2006.
Bahr, D. B.: Simulating iceberg calving with a percolation model, J.
Geophys. Res., 100, 6225–6232, https://doi.org/10.1029/94JB03133, 1995.
Bartholomaus, T. C., Larsen, C. F., and O'Neel, S.: Does calving matter?
Evidence for significant submarine melt, Earth Planet. Sci. Lett., 380,
21–30, https://doi.org/10.1016/j.epsl.2013.08.014, 2013.
Bigg, G. R., Wadley, M. R., Stevens, D. P., and Johnson, J. A.: Modelling the
dynamics and thermodynamics of icebergs, Cold Reg. Sci. Technol., 26,
113–135, https://doi.org/10.1016/S0165-232X(97)00012-8, 1997.
Bouhier, N., Tournadre, J., Rémy, F., and Gourves-Cousin, R.: Melting and fragmentation laws from the evolution of two large Southern Ocean icebergs estimated from satellite data, The Cryosphere, 12, 2267–2285, https://doi.org/10.5194/tc-12-2267-2018, 2018.
Carroll, D., Sutherland, D. A., Shroyer, E. L., Nash, J. D., Catania, G. A.,
and Stearns, L. A.: Modeling Turbulent Subglacial Meltwater Plumes:
Implications for Fjord-Scale Buoyancy-Driven Circulation, J. Phys.
Oceanogr., 45, 2169–2185, https://doi.org/10.1175/JPO-D-15-0033.1, 2015.
Chapuis, A. and Tetzlaff, T.: The variability of tidewater-glacier calving:
Origin of event-size and interval distributions, J. Glaciol., 60,
622–634, https://doi.org/10.3189/2014JoG13J215, 2014.
Crawford, A. J., Mueller, D., Desjardins, L., and Myers, P. G.: The Aftermath
of Petermann Glacier Calving Events (2008–2012): Ice Island Size
Distributions and Meltwater Dispersal, J. Geophys. Res.-Ocean., 123,
8812–8827, https://doi.org/10.1029/2018JC014388, 2018.
Dowdeswell, J. A. and Forsberg, C. F.: The size and frequency of icebergs
and bergy bits derived from tidewater glaciers in Kongsfjorden, northwest
Spitsbergen, Polar Res., 11, 81–91,
https://doi.org/10.1111/j.1751-8369.1992.tb00414.x, 1992.
Enderlin, E. M. and Hamilton, G. S.: Estimates of iceberg submarine melting
from high-resolution digital elevation models: Application to Sermilik
Fjord, East Greenland, J. Glaciol., 60, 1111–1116,
https://doi.org/10.3189/2014JoG14J085, 2014.
Enderlin, E. M., Hamilton, G. S., Straneo, F., and Sutherland, D. A.: Iceberg
meltwater fluxes dominate the freshwater budget in Greenland's
iceberg-congested glacial fjords, Geophys. Res. Lett., 43,
11287–11294, https://doi.org/10.1002/2016GL070718, 2016.
Gardner, A. S., Moholdt, G., Cogley, J. G., Wouters, B., Arendt, A. a., Wahr,
J., Berthier, E., Hock, R., Pfeffer, W. T., Kaser, G., Ligtenberg, S. R. M.,
Bolch, T., Sharp, M. J., Hagen, J. O., van den Broeke, M. R., and Paul, F.: A
reconciled estimate of glacier contributions to sea level rise: 2003 to
2009, Science, 340, 852–857, https://doi.org/10.1126/science.1234532, 2013.
Gladstone, R. M., Bigg, G. R., and Nicholls, K. W.: Iceberg trajectory
modeling and meltwater injection in the Southern Ocean, J. Geophys. Res.,
106, 19903–19915, https://doi.org/10.1029/2000JC000347, 2001.
Helly, J. J., Kaufmann, R. S., Stephenson, G. R., and Vernet, M.: Cooling,
dilution and mixing of ocean water by free-drifting icebergs in the Weddell
Sea, Deep. Res. Part II Top. Stud. Oceanogr., 58, 1346–1363,
https://doi.org/10.1016/j.dsr2.2010.11.010, 2011.
Higgins, A. K.: North Greenland glacier velocities and calf ice production,
Polarforschung, 60, 1–23, 1991.
Howat, I. M., Ahn, Y., Joughin, I., Van Den Broeke, M. R., Lenaerts, J. T.
M., and Smith, B.: Mass balance of Greenland's three largest outlet glaciers,
2000–2010, Geophys. Res. Lett., 38, 1–5, https://doi.org/10.1029/2011GL047565,
2011.
Hughes, T.: Calving bays, Quaternary Sci. Rev., 21, 267–282,
https://doi.org/10.1016/S0277-3791(01)00092-0, 2002.
Kirkham, J. D., Rosser, N. J., Wainwright, J., Vann Jones, E. C., Dunning,
S. A., Lane, V. S., Hawthorn, D. E., Strzelecki, M. C., and Szczuciński,
W.: Drift-dependent changes in iceberg size-frequency distributions, Sci.
Rep., 7, 1–10, https://doi.org/10.1038/s41598-017-14863-2, 2017.
Klinck, J. M., O'Brien, J. J., and Svendsen, H.: A Simple Model of Fjord and
Coastal Circulation Interaction, J. Phys. Oceanogr., 11, 1612–1626,
https://doi.org/10.1175/1520-0485(1981)011<1612:ASMOFA>2.0.CO;2,
1981.
Kubat, I., Sayed, M., Savage, S. B., Carrieres, T., and Crocker, G. B.: An
Operational Iceberg Deterioration Model, Proc. Seventeenth Int. Offshore
Polar Eng. Conf., 652–657, available at:
http://nparc.cisti-icist.nrc-cnrc.gc.ca/npsi/ctrl?action=rtdoc&an=12327569 (last access: 13 November 2014),
2007.
Larsen, C. F., Motyka, R. J., Arendt, A. A., Echelmeyer, K. A., and Geissler,
P. E.: Glacier changes in southeast Alaska and northwest British Columbia
and contribution to sea level rise, J. Geophys. Res.-Earth Surf., 112,
1–11, https://doi.org/10.1029/2006JF000586, 2007.
Luckman, A., Benn, D. I., Cottier, F., Bevan, S., Nilsen, F., and Inall, M.:
Calving rates at tidewater glaciers vary strongly with ocean temperature,
Nat. Commun., 6, 1–7, https://doi.org/10.1038/ncomms9566, 2015.
McNabb, R. W. and Hock, R.: Variations in Alaska tidewater glacier frontal
ablation, 1985–2013, J. Geophys. Res.-Earth Surf., 119, 153–167,
https://doi.org/10.1002/2014JF003276, 2014.
McNabb, R. W., Hock, R., O'Neel, S., Rasmussen, L. A., Ahn, Y., Braun, M.,
Conway, H., Herreid, S., Joughin, I., Pfeffer, W. T., Smith, B. E., and
Truffer, M.: Using surface velocities to calculate ice thickness and bed
topography: A case study at Columbia Glacier, Alaska, USA, J. Glaciol.,
58, 1151–1164, https://doi.org/10.3189/2012JoG11J249, 2012a.
McNabb, R. W., Hock, R., O'Neel, S., Rasmussen, L. A., Ahn, Y., Braun, M.,
Conway, H., Herreid, S., Joughin, I., Pfeffer, W. T., Smith, B. E., and
Truffer, M.: Using surface velocities to calculate ice thickness and bed
topography: A case study at Columbia Glacier, Alaska, USA, J. Glaciol.,
58, 1151–1164, https://doi.org/10.3189/2012JoG11J249, 2012b.
Meier, M. F. and Post, A.: Columbia Glacier Progress Report (December
1977), available at: http://dggs.alaska.gov/webpubs/usgs/of/text/of78-0264.pdf
(last access: 6 March 2017), 1978.
Moon, T., Sutherland, D. A., Carroll, D., Felikson, D., Kehrl, L., and
Straneo, F.: Subsurface iceberg melt key to Greenland fjord freshwater
budget, Nat. Geosci., 11, 49–54, https://doi.org/10.1038/s41561-017-0018-z, 2018a.
Moon, T., Sutherland, D. A., Carroll, D., Felikson, D., Kehrl, L., and
Straneo, F.: Subsurface iceberg melt key to Greenland fjord freshwater
budget, Nat. Geosci., 11, 49–54, https://doi.org/10.1038/s41561-017-0018-z, 2018b.
Mortensen, J., Rysgaard, S., Arendt, K. E., Juul-Pedersen, T., Søgaard,
D. H., Bendtsen, J., and Meire, L.: Local coastal water masses control heat
levels in a West Greenland tidewater outlet glacier fjord, J. Geophys. Res.-Ocean., 123, 1–16, https://doi.org/10.1029/2018JC014549, 2018.
Motyka, R. J., Hunter, L., Echelmeyer, K. A., and Connor, C.: Submarine
melting at the terminus of a temperate tidewater glacier, LeConte Glacier,
Alaska, U.S.A, Ann. Glaciol., 36, 57–65, https://doi.org/10.3189/172756403781816374,
2003.
O'Leary, M. and Christoffersen, P.: Calving on tidewater glaciers amplified by submarine frontal melting, The Cryosphere, 7, 119–128, https://doi.org/10.5194/tc-7-119-2013, 2013
O'Neel, S., Echelmeyer, K. A., and Motyka, R. J.: Short-term variations in
calving of a tidewater glacier: LeConte Glacier, Alaska, U.S.A, J. Glaciol.,
49, 587–598, https://doi.org/10.3189/172756503781830430, 2003.
Payne, R. E.: Albedo of the Sea Surface, J. Atmos. Sci., 29, 959–970,
https://doi.org/10.1175/1520-0469(1972)029<0959:AOTSS>2.0.CO;2,
1972.
Pfeffer, W. T.: Report to Prince William Sound Citizen's Regional Advisory
Council: Future Iceberg Discharge from Columbia Glacier, Alaska – Report 1
(December), 1–46, 2012.
Pfeffer, W. T.: Report to Prince William Sound Citizen's Regional Advisory
Council: Future Iceberg Discharge from Columbia Glacier, Alaska – Report 2
(June), 1–20, 2013a.
Pfeffer, W. T.: Report to Prince William Sound Citizen's Regional Advisory
Council: Future Iceberg Discharge from Columbia Glacier, Alaska – Report 3
(November), 1–22, 2013b.
Pfeffer, W. T.: Report to Prince William Sound Citizen's Regional Advisory
Council: Future Iceberg Discharge from Columbia Glacier, Alaska – Report 4
(October), 1–10, 2014a.
Pfeffer, W. T.: Report to Prince William Sound Citizen's Regional Advisory
Council: Future Iceberg Discharge from Columbia Glacier, Alaska – Report 5 (October), 1–8, 2014b.
Pfeffer, W. T.: Report to Prince William Sound Citizen's Regional Advisory
Council: Future Iceberg Discharge from Columbia Glacier, Alaska – Final
Report (June), 1–20, 2015.
PGC: Polar Geospatial Center, Mapping the Earth's polar regions, available at: https://www.pgc.umn.edu/, last access: 14 August 2014.
Post, A.: Preliminary hydrography and historic terminal changes of Columbia
Glacier, Alaska, available at:
http://pubs.er.usgs.gov/publication/ha559 (last access: 10 March 2017), 1975.
Pritchard, H. D., Arthern, R. J., Vaughan, D. G., and Edwards, L. A.:
Extensive dynamic thinning on the margins of the Greenland and Antarctic ice
sheets, Nature, 461, 971–975, https://doi.org/10.1038/nature08471, 2009.
Rasmussen, L. A., Conway, H., Krimmel, R. M., and Hock, R.: Surface mass
balance, thinning and iceberg production, Columbia Glacier, Alaska,
1948–2007, J. Glaciol., 57, 431–440, https://doi.org/10.3189/002214311796905532,
2011.
Rignot, E., Koppes, M., and Velicogna, I.: Rapid submarine melting of the
calving faces of West Greenland glaciers, Nat. Geosci., 3, 187–191,
https://doi.org/10.1038/ngeo765, 2010.
Spahn, F., Vieira Neto, E., Guimarães, A. H. F., Gorban, A. N., and
Brilliantov, N. V.: A statistical model of aggregate fragmentation, New J.
Phys., 16, 013031, https://doi.org/10.1088/1367-2630/16/1/013031, 2014.
Sulak, D. J., Sutherland, D. A., Enderlin, E. M., Stearns, L. A., and
Hamilton, G. S.: Iceberg properties and distributions in three Greenlandic
fjords using satellite imagery, Ann. Glaciol., 58, 92–106,
https://doi.org/10.1017/aog.2017.5, 2017.
Sutherland, D. A., Roth, G. E., Hamilton, G. S., Mernild, S. H., Stearns, L.
A., and Straneo, F.: Quantifying flow regimes in a Greenland glacial fjord
using iceberg drifters, Geophys. Res. Lett., 41, 8411–8420,
https://doi.org/10.1002/2014GL062256, 2014.
Tournadre, J., Bouhier, N., Girard-Ardhuin, F., and Rémy, F.: Antarctic
iceberg distributions 1992–2014, J. Geophys. Res.-Ocean., 121, 327–349,
https://doi.org/10.1002/2015JC011178, 2016.
Van Der Veen, C. J.: Fracture mechanics approach to penetration of surface
crevasses on glaciers, Cold Reg. Sci. Technol., 27, 31–47,
https://doi.org/10.1016/S0165-232X(97)00022-0, 1998.
Vijay, S. and Braun, M.: Seasonal and interannual variability of Columbia
Glacier, Alaska (2011–2016): Ice Velocity, Mass Flux, surface elevation and
front position, Remote Sens., 9, 1–18, https://doi.org/10.3390/rs9060635, 2017.
Walter, J. I., Box, J. E., Tulaczyk, S., Brodsky, E. E., Howat, I. M., Ahn,
Y., and Brown, A.: Oceanic mechanical forcing of a marine-terminating
greenland glacier, Ann. Glaciol., 53, 181–192,
https://doi.org/10.3189/2012AoG60A083, 2012.
Walters, R. A., Josberger, E. G., and Driedger, C. L.: Columbia Bay, Alaska:
an “upside down” estuary, Estuar. Coast. Shelf Sci., 26, 607–617 1988.
Warren, C., Benn, D., Winchester, V., and Harrison, S.: Buoyancy-driven
lacustrine calving, Glaciar Nef, Chilean Patagonia, J. Glaciol., 47,
135–146, https://doi.org/10.3189/172756501781832403, 2001.
Weertman, J.: Can a water-filled crevasse reach the bottom surface of a
glacier?, Symp. Cambridge 1969, Hydrol. Glaciers, 95, 139–145,
https://doi.org/10.1017/CBO9781107415324.004, 1973.
Zeng, Q., Meisheng, C., Xuezhi, F., Fengxian, L., Xianzhang, C., and Wenkun,
S.: Study on spectral reflection characteristics of snow, ice and water of
northwest China, Sci. Sin. Ser. B, 27, 647–656, 1984.
Short summary
Relatively few studies have been carried out on icebergs inside fjords, despite the fact that the majority of recent sea level rise has resulted from glaciers terminating in fjords. We examine the size and spatial distribution of icebergs in Columbia Fjord, Alaska, over a period of 8 months to determine their influence on fjord dynamics.
Relatively few studies have been carried out on icebergs inside fjords, despite the fact that...