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"Jansen, Daniela"
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Topographic Effect Creates Non‐climatic Variations in Ice‐Core Based Temperature Records of the Last Millennium in Dronning Maud Land, Antarctica
by
Laepple, Thomas
,
Behrens, Melanie
,
Jansen, Daniela
in
accumulation rate
,
Anomalies
,
antarctic isotope record
2025
Past temperature reconstructions from polar ice sheets are commonly based on stable water isotope records in ice‐cores. However, despite major efforts in the understanding of the ice‐core signal formation, the temperature reconstructions of the last millennium in Antarctica remain uncertain. Here, using a 100 km scale representative surface water isotope dataset, we show that the spatial variability of local surface topography and accumulation rate anomalies influences the isotopic composition of the upper‐meter snowpack. The magnitude of this non‐temperature effect on water isotopes is comparable to the changes observed over the last millennium. We demonstrate that these spatial anomalies are advected into the deeper firn and ice column, and can explain the diverging millennial water isotope trends observed in two ice‐cores near the EPICA Dronning Maud Land drilling site. Furthermore, we provide an estimation of areas where this topographic effect could impact temperature reconstructions over the last millenia. Plain Language Summary Stable water isotopes in ice cores are widely used as proxies for past temperatures. However, these records can be affected by multiple processes and their reliability is unclear, particularly for centennial to millennial time scales in Antarctica. We demonstrate that in low‐accumulation rate regions, local topography induces spatial isotope variability, which ice flow then translates into temporal anomalies in ice‐cores. This mechanism creating non‐temperature related water isotope variations on time‐scales from centuries to millennia might be omnipresent within the continent, potentially affecting numerous ice‐cores. We provide an initial assessment of areas potentially affected by this process, aiming to guide future coring and facilitate the careful interpretation of existing records. Key Points Variations in local topography are linked with anomalies in the isotopic composition of surface snow and in accumulation rates Windward slopes exhibit depleted isotopic values and increased accumulation, while leeward slopes show the opposite pattern This induces millennial scale non‐climatic variations in ice‐cores explaining differing isotopic histories in the nearby cores B31 and B32
Journal Article
Reactivation of a Subglacial Channel Around the Grounding Zone of Roi Baudouin Ice Shelf, Antarctica
by
Zhou, Yan
,
Kleiner, Thomas
,
Franke, Steven
in
active subglacial lakes
,
Airborne radar
,
Antarctic ice sheet
2025
Subglacial water beneath the Antarctic Ice Sheet is often funneled via subglacial channels, which inject freshwater into ice‐shelf cavities where it interacts with ocean water. The temporal variability of this system has been poorly observed, but its importance for ice dynamics is well recognized. Airborne radar data show a subglacial channel evolving within a decade near of the grounding zone of the Roi Baudouin Ice Shelf (East Antarctica), while topographic signatures on the ice shelf indicate prior inactivity for 60 years. Combining our observations with subglacial hydrological modeling, we suggest that the interplay between episodic subglacial water pulses and ocean water intrusion drive the opening and closing of the channels. Our findings illuminate the short‐term transient nature of subglacial channel activity. This impacts ice‐shelf–ocean processes, which are important for constraining increasing ocean warming onto ice‐shelf basal mass balance, but pose significant challenges for subglacial hydrological modeling at the grounding zone. Plain Language Summary This study explores how water moves under the ice in Antarctica and how it interacts at the ice–ocean boundary. Using radar, we studied a part of the Roi Baudouin Ice Shelf in East Antarctica and found that water channels under the ice have changed significantly over the last decades. The radar images from 2011 to 2019 showed that these channels open and close within a decade, likely due to changes in water supply from the inland and intrusion of ocean water. This means that the water flow under the ice is not steady, influencing melting at the underside and affecting its movement. These discoveries show that the subglacial water system under Antarctic Ice Sheet is more complicated, making it harder to project future changes in sea‐level rise and the effects of climate change on the polar regions. Key Points Subglacial channels near the grounding zone are stable in space but toggle activity within decades Ice‐shelf channel morphology identifies one water outlet as active for hundreds of years before it shut down 60 years ago Radio‐echo sounding documents the reactivation of a subglacial channel within eight years near the grounding zone
Journal Article
Sediment Freeze‐On and Transport Near the Onset of a Fast‐Flowing Glacier in East Antarctica
by
Bons, Paul D.
,
Matsuoka, Kenichi
,
Franke, Steven
in
Antarctic ice sheet
,
Backscatter
,
Backscattering
2024
Understanding the material properties and physical conditions of basal ice is crucial for a comprehensive understanding of Antarctic ice‐sheet dynamics. Yet, direct data are sparse and difficult to acquire. Here, we employ ultra‐wideband radar to map high‐backscatter zones near the glacier bed within East Antarctica's Jutulstraumen drainage basin. Our backscatter analysis reveals that the basal ice in an area of ∼10,000 km2 is composed of along‐flow oriented sediment‐laden basal ice units connected to the basal substrate, extending up to several hundred meters thick. Three‐dimensional thermomechanical modeling supports that these units form via basal freeze‐on of subglacial water that originated from further upstream. Our findings suggest that basal freeze‐on, and the entrainment and transport of subglacial material play a significant role in an accurate representation of material, physical, and rheological properties of the Antarctic ice sheet's basal ice, ultimately enhancing the accuracy and reliability of ice‐sheet modeling. Plain Language Summary We investigate the lowermost portion of the ice column of the Antarctic ice sheet, known as basal ice. This part holds crucial information about how the ice sheet behaves when it flows. Using the principle of echo‐location, we use radar technology to scan the ice in East Antarctica's Jutulstraumen drainage basin. We discover that a significant portion of the basal ice in this region is filled with sediment and can be several hundred meters thick. To better understand how this distinctive type of ice forms, we used a mathematical model that suggested that these ice units likely form when water underneath the ice is transported and refreezes at particular locations. Our findings highlight the importance of these freezing and mixing of materials from beneath the ice. Understanding where these ice units are located provides important information for ice‐flow models to ultimately better understand how the Antarctic ice sheet behaves in the future. Key Points We have identified high‐scattering basal ice in Jutulstraumen Glacier's onset region using radar, reaching several hundred meters from the bed Backscatter analysis suggests that the basal ice units contain unstratified point scatters and cause little radio‐glaciological loss 3D thermo‐mechanical modeling implies that freeze‐on of basal meltwater generated upstream likely initially formed the basal ice units
Journal Article
Crystal orientation fabric anisotropy causes directional hardening of the Northeast Greenland Ice Stream
2023
The dynamic mass loss of ice sheets constitutes one of the biggest uncertainties in projections of ice-sheet evolution. One central, understudied aspect of ice flow is how the bulk orientation of the crystal orientation fabric translates to the mechanical anisotropy of ice. Here we show the spatial distribution of the depth-averaged horizontal anisotropy and corresponding directional flow-enhancement factors covering a large area of the Northeast Greenland Ice Stream onset. Our results are based on airborne and ground-based radar surveys, ice-core observations, and numerical ice-flow modelling. They show a strong spatial variability of the horizontal anisotropy and a rapid crystal reorganisation on the order of hundreds of years coinciding with the ice-stream geometry. Compared to isotropic ice, parts of the ice stream are found to be more than one order of magnitude harder for along-flow extension/compression while the shear margins are potentially softened by a factor of two for horizontal-shear deformation.
This study uses radio-echo sounding measurements, ice-core data and models to map the spatial variation in ice-crystal orientation in the northeast Greenland Ice Stream and shows how it potentially affects the ice-flow dynamics in this region.
Journal Article
Shear margins in upper half of Northeast Greenland Ice Stream were established two millennia ago
by
Jansen, Daniela
,
Zhang, Yu
,
Kerch, Johanna
in
704/106/125
,
704/2151/213/536
,
Dimensional analysis
2024
Only a few localised ice streams drain most of the ice from the Greenland Ice Sheet. Thus, understanding ice stream behaviour and its temporal variability is crucially important to predict future sea-level change. The interior trunk of the 700 km-long North-East Greenland Ice Stream (NEGIS) is remarkable due to the lack of any clear bedrock channel to explain its presence. Here, we present a 3-dimensional analysis of the folding and advection of its stratigraphic horizons, which shows that the localised flow and shear margins in the upper NEGIS were fully developed only ca 2000 years ago. Our results contradict the assumption that the ice stream has been stable throughout the Holocene in its current form and show that upper NEGIS-type development of ice streaming, with distinct shear margins and no bed topography relationship, can be established on time scales of hundreds of years, which is a major challenge for realistic mass-balance and sea-level rise projections.
The flow of ice streams leaves traces in the stratigraphy of the ice sheets. Made visible by radar, they reveal the history of the upper North East Greenland Ice Stream. The ice stream is found to have existed in its current form for only about the last 2000 years.
Journal Article
A stratigraphy-based method for reconstructing ice core orientation
2021
Ever since the first deep ice cores were drilled, it has been a challenge to determine their original, in-situ orientation. In general, the orientation of an ice core is lost as the drill is free to rotate during transport to the surface. For shallow ice cores, it is usually possible to match the adjacent core breaks, which preserves the orientation of the ice column. However, this method fails for deep ice cores, such as the EastGRIP ice core in Northeast Greenland. We provide a method to reconstruct ice core orientation using visual stratigraphy and borehole geometry. As the EastGRIP ice core is drilled through the Northeast Greenland Ice Stream, we use information about the directional structures to perform a full geographical re-orientation. We compared the core orientation with logging data from core break matching and the pattern of the stereographic projections of the crystals’ c-axis orientations. Both comparisons agree very well with the proposed orientation method. The method works well for 441 out of 451 samples from a depth of 1375–2120 m in the EastGRIP ice core. It can also be applied to other ice cores, providing a better foundation for interpreting physical properties and understanding the flow of ice.
Journal Article
Radar internal reflection horizons from multisystem data reflect ice dynamic and surface accumulation history along the Princess Ragnhild Coast, Dronning Maud Land, East Antarctica
by
Muhle, Leah Sophie
,
Oraschewski, Falk Marius
,
Višnjević, Vjeran
in
Accumulation
,
airborne electromagnetic soundings
,
Airborne radar
2024
Ice shelves, which regulate ice flow from the Antarctic ice sheet towards the ocean, are shaped by spatiotemporal patterns of surface accumulation, surface/basal melt and ice dynamics. Therefore, an ice dynamic and accumulation history are imprinted in the internal ice stratigraphy, which can be imaged by radar in the form of internal reflection horizons (IRHs). Here, IRHs were derived from radar data combined across radar platforms (airborne and ground-based) in coastal eastern Dronning Maud Land (East Antarctica), comprising three ice rises and adjacent two ice shelves. To facilitate interpretation of dominant spatiotemporal patterns of processes shaping the local IRH geometry, traced IRHs are classified into three different types (laterally continuous, discontinuous or absent/IRH-free). Near-surface laterally continuous IRHs reveal local accumulation patterns, reflecting the mean easterly wind direction, and correlate with surface slopes. Areas of current and past increased ice flow and internal deformation are marked by discontinuous or IRH-free zones, and can inform about paleo ice-stream dynamics. The established IRH datasets extend continent-wide mapping efforts of IRHs to an important and climatically sensitive ice marginal region of Antarctica and are ready for integration into ice-flow models to improve predictions of Antarctic ice drainage.
Journal Article
Marine ice regulates the future stability of a large Antarctic ice shelf
by
Luckman, Adrian J.
,
Jansen, Daniela
,
Kulessa, Bernd
in
704/106/125
,
704/2151/2809
,
Climate change
2014
The collapses of the Larsen A and B ice shelves on the Antarctic Peninsula in 1995 and 2002 confirm the impact of southward-propagating climate warming in this region. Recent mass and dynamic changes of Larsen B’s southern neighbour Larsen C, the fourth largest ice shelf in Antarctica, may herald a similar instability. Here, using a validated ice-shelf model run in diagnostic mode, constrained by satellite and
in situ
geophysical data, we identify the nature of this potential instability. We demonstrate that the present-day spatial distribution and orientation of the principal stresses within Larsen C ice shelf are akin to those within pre-collapse Larsen B. When Larsen B’s stabilizing frontal portion was lost in 1995, the unstable remaining shelf accelerated, crumbled and ultimately collapsed. We hypothesize that Larsen C ice shelf may suffer a similar fate if it were not stabilized by warm and mechanically soft marine ice, entrained within narrow suture zones.
Signs of instability in the Antarctic Larsen C ice shelf have raised concerns that it might soon collapse like its northern neighbour Larsen B. Kulessa
et al.
combine an ice-shelf model with satellite and geophysical data to show that despite dynamic similarities, Larsen C is presently stabilized by marine ice.
Journal Article
Massive subsurface ice formed by refreezing of ice-shelf melt ponds
by
Luckman, Adrian
,
Kuipers Munneke, Peter
,
Jansen, Daniela
in
704/106/125
,
704/2151/213
,
704/2151/2809
2016
Surface melt ponds form intermittently on several Antarctic ice shelves. Although implicated in ice-shelf break up, the consequences of such ponding for ice formation and ice-shelf structure have not been evaluated. Here we report the discovery of a massive subsurface ice layer, at least 16 km across, several kilometres long and tens of metres deep, located in an area of intense melting and intermittent ponding on Larsen C Ice Shelf, Antarctica. We combine borehole optical televiewer logging and radar measurements with remote sensing and firn modelling to investigate the layer, found to be ∼10 °C warmer and ∼170 kg m
−3
denser than anticipated in the absence of ponding and hitherto used in models of ice-shelf fracture and flow. Surface ponding and ice layers such as the one we report are likely to form on a wider range of Antarctic ice shelves in response to climatic warming in forthcoming decades.
The influence of surface ponding on the interior of ice shelves is currently unknown. Here, the authors combine surface and borehole geophysics on the Larsen C Ice Shelf, Antarctica, with remote sensing and modelling and show how pond refreezing increases ice shelf density and temperature.
Journal Article
Bed topography and subglacial landforms in the onset region of the Northeast Greenland Ice Stream
2020
The Northeast Greenland Ice Stream (NEGIS) is an important dynamic component for the total mass balance of the Greenland ice sheet, as it reaches up to the central divide and drains 12% of the ice sheet. The geometric boundary conditions and in particular the nature of the subglacial bed of the NEGIS are essential to understand its ice flow dynamics. We present a record of more than 8000 km of radar survey lines of multi-channel, ultra-wideband radio echo sounding data covering an area of 24 000 km2, centered on the drill site for the East Greenland Ice-core Project (EGRIP), in the upper part of the NEGIS catchment. Our data yield a new detailed model of ice-thickness distribution and basal topography in the region. The enhanced resolution of our bed topography model shows features which we interpret to be caused by erosional activity, potentially over several glacial–interglacial cycles. Off-nadir reflections from the ice–bed interface in the center of the ice stream indicate a streamlined bed with elongated subglacial landforms. Our new bed topography model will help to improve the basal boundary conditions of NEGIS prescribed for ice flow models and thus foster an improved understanding of the ice-dynamic setting.
Journal Article