Coastal dynamics and submarine permafrost in shallow water of the central Laptev Sea, East Siberia
Coastal erosion and flooding transform terrestrial landscapes into marine environments. In the Arctic, these processes inundate terrestrial permafrost with seawater and create submarine permafrost. Permafrost begins to warm under marine conditions, which can destabilize the sea floor and may release...
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doaj-063b0ca42c854c7ebf1b137953ce40da2020-11-25T00:21:35ZengCopernicus PublicationsThe Cryosphere1994-04161994-04242016-07-011041449146210.5194/tc-10-1449-2016Coastal dynamics and submarine permafrost in shallow water of the central Laptev Sea, East SiberiaP. P. Overduin0S. Wetterich1F. Günther2M. N. Grigoriev3G. Grosse4L. Schirrmeister5H.-W. Hubberten6A. Makarov7Alfred Wegener Institute Helmholtz Center for Polar and Marine Research, Potsdam, GermanyAlfred Wegener Institute Helmholtz Center for Polar and Marine Research, Potsdam, GermanyAlfred Wegener Institute Helmholtz Center for Polar and Marine Research, Potsdam, GermanyMel'nikov Permafrost Institute, SB RAS, Yakutsk, RussiaAlfred Wegener Institute Helmholtz Center for Polar and Marine Research, Potsdam, GermanyAlfred Wegener Institute Helmholtz Center for Polar and Marine Research, Potsdam, GermanyAlfred Wegener Institute Helmholtz Center for Polar and Marine Research, Potsdam, GermanyArctic and Antarctic Research Institute, St. Petersburg, RussiaCoastal erosion and flooding transform terrestrial landscapes into marine environments. In the Arctic, these processes inundate terrestrial permafrost with seawater and create submarine permafrost. Permafrost begins to warm under marine conditions, which can destabilize the sea floor and may release greenhouse gases. We report on the transition of terrestrial to submarine permafrost at a site where the timing of inundation can be inferred from the rate of coastline retreat. On Muostakh Island in the central Laptev Sea, East Siberia, changes in annual coastline position have been measured for decades and vary highly spatially. We hypothesize that these rates are inversely related to the inclination of the upper surface of submarine ice-bonded permafrost (IBP) based on the consequent duration of inundation with increasing distance from the shoreline. We compared rapidly eroding and stable coastal sections of Muostakh Island and find permafrost-table inclinations, determined using direct current resistivity, of 1 and 5 %, respectively. Determinations of submarine IBP depth from a drilling transect in the early 1980s were compared to resistivity profiles from 2011. Based on borehole observations, the thickness of unfrozen sediment overlying the IBP increased from 0 to 14 m below sea level with increasing distance from the shoreline. The geoelectrical profiles showed thickening of the unfrozen sediment overlying ice-bonded permafrost over the 28 years since drilling took place. We use geoelectrical estimates of IBP depth to estimate permafrost degradation rates since inundation. Degradation rates decreased from over 0.4 m a<sup>−1</sup> following inundation to around 0.1 m a<sup>−1</sup> at the latest after 60 to 110 years and remained constant at this level as the duration of inundation increased to 250 years. We suggest that long-term rates are lower than these values, as the depth to the IBP increases and thermal and porewater solute concentration gradients over depth decrease. For the study region, recent increases in coastal erosion rate and changes in benthic temperature and salinity regimes are expected to affect the depth to submarine permafrost, leading to coastal regions with shallower IBP.http://www.the-cryosphere.net/10/1449/2016/tc-10-1449-2016.pdf |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
P. P. Overduin S. Wetterich F. Günther M. N. Grigoriev G. Grosse L. Schirrmeister H.-W. Hubberten A. Makarov |
spellingShingle |
P. P. Overduin S. Wetterich F. Günther M. N. Grigoriev G. Grosse L. Schirrmeister H.-W. Hubberten A. Makarov Coastal dynamics and submarine permafrost in shallow water of the central Laptev Sea, East Siberia The Cryosphere |
author_facet |
P. P. Overduin S. Wetterich F. Günther M. N. Grigoriev G. Grosse L. Schirrmeister H.-W. Hubberten A. Makarov |
author_sort |
P. P. Overduin |
title |
Coastal dynamics and submarine permafrost in shallow water of the central Laptev Sea, East Siberia |
title_short |
Coastal dynamics and submarine permafrost in shallow water of the central Laptev Sea, East Siberia |
title_full |
Coastal dynamics and submarine permafrost in shallow water of the central Laptev Sea, East Siberia |
title_fullStr |
Coastal dynamics and submarine permafrost in shallow water of the central Laptev Sea, East Siberia |
title_full_unstemmed |
Coastal dynamics and submarine permafrost in shallow water of the central Laptev Sea, East Siberia |
title_sort |
coastal dynamics and submarine permafrost in shallow water of the central laptev sea, east siberia |
publisher |
Copernicus Publications |
series |
The Cryosphere |
issn |
1994-0416 1994-0424 |
publishDate |
2016-07-01 |
description |
Coastal erosion and flooding transform terrestrial landscapes into marine
environments. In the Arctic, these processes inundate terrestrial permafrost
with seawater and create submarine permafrost. Permafrost begins to warm
under marine conditions, which can destabilize the sea floor and may release
greenhouse gases. We report on the transition of terrestrial to submarine
permafrost at a site where the timing of inundation can be inferred from the
rate of coastline retreat. On Muostakh Island in the central Laptev Sea,
East Siberia, changes in annual coastline position have been measured for decades and vary highly spatially. We hypothesize that these rates are inversely
related to the inclination of the upper surface of submarine ice-bonded
permafrost (IBP) based on the consequent duration of inundation with
increasing distance from the shoreline. We compared rapidly eroding and
stable coastal sections of Muostakh Island and find permafrost-table
inclinations, determined using direct current resistivity, of 1 and 5 %,
respectively. Determinations of submarine IBP depth from a drilling transect
in the early 1980s were compared to resistivity profiles from 2011. Based on
borehole observations, the thickness of unfrozen sediment overlying the IBP
increased from 0 to 14 m below sea level with increasing distance from
the shoreline. The geoelectrical profiles showed thickening of the unfrozen
sediment overlying ice-bonded permafrost over the 28 years since drilling
took place. We use geoelectrical estimates of IBP depth to estimate
permafrost degradation rates since inundation. Degradation rates decreased
from over 0.4 m a<sup>−1</sup> following inundation to around 0.1 m a<sup>−1</sup> at
the latest after 60 to 110 years and remained constant at this level as the
duration of inundation increased to 250 years. We suggest that long-term
rates are lower than these values, as the depth to the IBP increases and
thermal and porewater solute concentration gradients over depth decrease.
For the study region, recent increases in coastal erosion rate and changes in
benthic temperature and salinity regimes are expected to affect the depth to
submarine permafrost, leading to coastal regions with shallower IBP. |
url |
http://www.the-cryosphere.net/10/1449/2016/tc-10-1449-2016.pdf |
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