Pb-210 Dating of Ice Scour in the Kara Sea
Abstract
:1. Introduction
2. Study Area
3. Materials and Methods
3.1. Multibeam Echo Sounding
3.2. Seismic Profiling
3.3. Sediment Cores
3.4. Grain Size Analysis
3.5. Radiometric Measurements 210Pb, 226Ra, 137Cs and 7Be
3.6. Calculation of the Calendar Age and the Sediment Accumulation Rates Based on the Results of Radiometric Measurements
3.7. Estimation of Ice Scour Age
4. Results
4.1. Ice Scour Structure
4.2. Sediment Grain Size Distribution
4.3. Distribution of 210Pb and 137Cs in Sediments of the Cores
4.4. The Calendar Age and the Sediment Accumulation Rates
5. Discussion
5.1. Estimation of Missing Inventory of 210Pb in the Ice Scour
5.2. Application of the Constant Flux Model in the Ice Scour Conditions
5.3. Verification of Results with 137Cs
5.4. Formation of Sediments and Dynamics of Their Accumulation
5.5. The Age of the Ice Scour
6. Conclusions
- The studied ice scour, located in front of the entrance to Baydaratskaya Bay of the Kara Sea at a sea depth of about 28–32 m, has a serpentine-shaped plan configuration, changing its direction 2–3 times and reaching a length of at least 30–35 km. The maximum visible depth reaches 3.2 m, and the maximum width is up to 35 m. At present, it is the largest ice scour among those known in this region of the Kara Sea.
- Two sediment cores were studied, which were taken on 2 November 2021 (2021.8 A.D.) using a gravity corer directly in the ice scour and on the “background” seabed surface, which was not processed via ice scouring, and 140 m south of the first one. At the core sampling site, the apparent depth of the ice scour cutting into the background seabed surface was about 2.4 m. According to the seismic profiles, the thickness of sediments filling the ice scour was estimated at about 0.6–0.8 m, whereby the top 30 cm of which was presented exclusively by clayey silt. The pelite content varied from 52.9 to 68.4%, the silt content varied from 23.4 to 29.5% and the heterogeneous sand content varied from 4.2 to 16.4%. Some layers contained gravel grains. The highest content of fine gravel inclusions occurred in the upper part of the core. On the “background” seabed surface, the upper 50 cm of sediments was also represented by clayey silt. The pelite content varied from 56.6 to 72.7%, the silt content varied from 27.1 to 39.4% and the inclusion of heterogeneous sand and gravel was not significant. The low content of the sand and gravel in the sediments of the background surface is explained by higher hydrodynamics outside of the ice scour, which leads to the periodic erosion of sediments and the removal of rare sand and gravel particles.
- The excess 210Pb was found in all of the analyzed layers (up to 43 cm) of the ice scour sediments, reaching maximum values of specific activity (108 Bq/kg) in the upper horizons and decreasing to 48–55.9 Bq/kg toward the lower ones. The equilibrium of 210Pb with the initial radionuclide 226Ra was not revealed at the layer of 42–43 cm, but there was a tendency to approach it. The technogenic radionuclide 137Cs below 36 cm was not detected, while above its content it ranged from 47.3 Bq/kg to values less than the minimum detectable activity (<0.2 Bq/kg).
- In deposits on the “background” seabed surface, the excess 210Pb was only found in the upper 25.5 cm. Its specific activity decreased from top to bottom from 60 Bq/kg to 26.7 Bq/kg. The equilibrium of 210Pb with the initial radionuclide 226Ra was observed in the layer of 19.5–21.5 cm. The 137Cs specific activity was below 0.2 Bq/kg at all horizons, except for the 1–2 cm and 10–11 cm layers. The low content of the technogenic radionuclide 137Cs also indicates the periodic erosion of sediments.
- Based on 210Pb dating, the time of the beginning of sediment accumulation in the ice scour at a depth of 15 cm was estimated to be around 2002 AD; at a depth of 38 cm—around 1934 AD; at a depth of 40 cm—around 1917 AD and at a depth of 43 cm—around 1900 AD. Thus, over the past 120 years, there has been an increase in the mean SARs: 0.79 cm/year for the 0–15 cm horizon, 0.43 cm/year for the 0–38 cm horizon, 0.38 cm/year for the 0–40 cm thickness and not less than 0.35 cm/year for the 0–43 cm horizon.
- On the “background” seabed surface outside of the ice scour, the mean sedimentation rate over the past 110 years has been two times lower. The time of the beginning of sediment accumulation outside of the ice scour at a depth of 17.5 cm is estimated to be around 1910 AD (0.16 cm/year). Fluctuations in the mean SARs are not pronounced, which may be due to the periodic erosion of sediments outside of the ice scour.
- There is a close correlation between the marine sedimentation rates and air temperature fluctuations, as well as the coastal retreat rates of Baydaratskaya Bay, whereby the erosion products of which are the main source of seabed sediments due to the absence of large rivers in the area. Thus, since 2002, in the Baydaratskaya Bay area, there has been a sharp increase in air temperature, the rate of coastal retreat and the rate of sedimentation in the largest ice scour of this region.
- According to the results of 210Pb dating, the studied ice scour was formed no later than the end of the Little Ice Age (LIA) in the Arctic (turn of the 19th and 20th centuries). The age of the ice scour is estimated to be 1810 ± 30 AD based on the extrapolation of possible sedimentation rates prior to 1917 (0.22–0.38 cm/year). The mean rate of ice scour filling with 70 cm thick sediments from the moment of its formation is around 0.33 cm/year. Assuming that after the end of the LIA, the size of icebergs decreased, their penetration into Baydaratskaya Bay improved. Therefore, the ice scours of Baydaratskaya Bay were probably formed mainly after the end of the LIA, i.e., in the 20th century.
- Further study of the sedimentation chronology in ice scours will help to establish the periods of active ice scouring on the glaciated continental margins and to supplement knowledge about sedimentation on the Arctic shelf.
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Lewis, C.F.M. Estimation of the frequency and magnitude of drift-ice groundings from the ice scour tracks in the Canadian Beaufort Sea. In Proceedings of the 4th International Conference on Port and Ocean Engineering under Arctic Conditions, St. John’s, NL, Canada, 26–30 September 1977; Volume 1, pp. 568–579. [Google Scholar]
- Barnes, P.W.; Rearic, D.M.; Reimnitz, E. Ice gouging characteristics and processes. In The Alaskan Beaufort Sea: Ecosystems and Environments; Barnes, P.W., Schell, D.M., Reimnitz, E., Eds.; Academic Press Inc.: Orlando, FL, USA, 1984; pp. 185–212. [Google Scholar]
- Woodworth-Lynas, C.M.T. The Geology of Ice Scour. Ph.D. Thesis, The University of Wales, Cardiff, UK, November 1992. [Google Scholar]
- Dowdeswell, J.A.; Villinger, H.; Whittington, R.J.; Marienfeld, P. Iceberg scouring in Scoresby Sund and on the East Greenland continental shelf. Mar. Geol. 1993, 111, 37–53. [Google Scholar] [CrossRef]
- Ogorodov, S.; Arkhipov, V.; Kokin, O.; Marchenko, A.; Overduin, P.; Forbes, D. Ice Effect on Coast and Seabed in Baydaratskaya Bay, Kara Sea. Geogr. Environ. Sustain. 2013, 6, 21–37. [Google Scholar] [CrossRef] [Green Version]
- Brown, C.S.; Newton, A.M.W.; Huuse, M.; Buckley, F. Iceberg scours, pits, and pockmarks in the North Falkland Basin. Mar. Geol. 2017, 386, 140–152. [Google Scholar] [CrossRef]
- Ananiev, R.; Dmitrevskiy, N.; Jakobsson, M.; Lobkovsky, L.; Nikiforov, S.; Roslyakov, A.; Semiletov, I. Sea-ice ploughmarks in the eastern Laptev Sea, East Siberian Arctic shelf. In Atlas of Submarine Glacial Landforms: Modern, Quaternary and Ancient; Dowdeswell, J.A., Canals, M., Jakobsson, M., Todd, B.J., Dowdeswell, E.K., Hogan, K.A., Eds.; Geological Society: London, UK, 2016; pp. 301–302. [Google Scholar] [CrossRef]
- Mironyuk, S.G.; Ivanova, A.A.; Kolyubakin, A.A. Extreme depths of modern ice gouging on the shelf of the northeastern part of the Barents Sea. Ross. Polyarn. Issled. 2018, 1, 12–14. [Google Scholar]
- Maznev, S.; Ogorodov, S.; Baranskaya, A.; Vergun, A.; Arkhipov, V.; Bukharitsin, P. Ice-Gouging Topography of the Exposed Aral Sea Bed. Remote Sens. 2019, 11, 113. [Google Scholar] [CrossRef] [Green Version]
- Bogoyavlensky, V.I.; Kishankov, A.V.; Kazanin, A.G. Heterogeneities in the Upper Part of the Section of the East Siberian Sea Sedimentary Cover: Gas Accumulations and Signs of Ice Gouging. Dokl. Earth Sc. 2022, 505, 411–415. [Google Scholar] [CrossRef]
- Ottesen, D.; Dowdeswell, J.A. Distinctive iceberg ploughmarks on the mid-Norwegian margin: Tidally influenced chains of pits with implications for iceberg drift. Arct. Antarct. Alp. Res. 2022, 54, 163–175. [Google Scholar] [CrossRef]
- Sokolov, S.Y.; Mazarovich, A.O.; Zakharov, V.G.; Zarayskaya, Y.A. Deep-Water Glacial Plow Marks in the Western Margin of the Barents Sea. Dokl. Earth Sc. 2022, 503, 75–80. [Google Scholar] [CrossRef]
- Crane, K.; Vogt, P.R.; Sundvor, E. Deep Pleistocene Iceberg Plowmarks on the Yermak Plateau. In Glaciated Continental Margins; Springer: Dordrecht, The Netherlands, 1997; pp. 140–141. [Google Scholar] [CrossRef]
- Arndt, J.E.; Niessen, F.; Jokat, W.; Dorschel, B. Deep Water Paleo-iceberg Scouring on Top of Hovgaard Ridge—Arctic Ocean. Geophys. Res. Lett. 2014, 41, 5068–5074. [Google Scholar] [CrossRef] [Green Version]
- Condron, A.; Hill, J.C. Timing of iceberg scours and massive ice-rafting events in the subtropical North Atlantic. Nat. Commun. 2021, 12, 3668. [Google Scholar] [CrossRef]
- Barnes, P.W.; Rearic, D.M. Rates of sediment disruption by sea ice as determined from characteristics of dated ice gouges created since 1975 on the inner shelf of the Beaufort Sea, Alaska. In Open-File Report 85-463; U.S. Geological Survey: Reston, VA, USA, 1985; pp. 1–35. [Google Scholar] [CrossRef]
- Ogorodov, S.A.; Arkhipov, V.V.; Baranskaya, A.V.; Kokin, O.V.; Romanov, A.O. The Influence of Climate Change on the Intensity of Ice Gouging of the Bottom by Hummocky Formations. Dokl. Earth Sci. 2018, 478, 228–231. [Google Scholar] [CrossRef]
- Aliyev, R.; Kalmykov, S. Radioactivity: Tutorial; Lan: St. Petersburg, Russia, 2013; 304p. (In Russian) [Google Scholar]
- Environmental Conditions of the Baydaratskaya Bay: The Main Results of Investigations for the Construction of the Yamal-Center Submarin Gas Pipeline System Crossing; Baulin, V.V.; Dubikov, G.I.; Komarov, I.A.; Koreysha, M.M.; Parmuzin, S.Y.; Sovershaev, V.A.; Tuzhilkin, V.S. (Eds.) GEOS: Moscow, Russia, 1997; 432p. (In Russian) [Google Scholar]
- Ice Feartures of the Western Arctic Seas; Zubakin, E.K. (Ed.) AANII: St. Petersburg, Russia, 2006; 272p. (In Russian) [Google Scholar]
- Maznev, S.V.; Kokin, O.V.; Arkhipov, V.V.; Baranskaya, A.V. Modern and Relict Evidence of Iceberg Scouring at the Bottom of the Barents and Kara Seas. Oceanology 2023, 63, 84–94. [Google Scholar] [CrossRef]
- Ogorodov, S.A.; Arkhipov, V.V.; Kokin, O.V. Climate Change Effect on the Intensity of Seabed Gouging by Hummocky Ice Floes. In Arctic, Subarctic: Mosaic, Contrast, Variability of the Cryosphere: Proceedings of the International Conference; Melnikov, V.P., Drozdov, D.S., Eds.; Epoha Publishing House: Tyumen, Russia, 2015; pp. 269–271. (In Russian) [Google Scholar]
- Biryukov, V.Y.; Sovershaev, V.A. The relief of the bottom of the southwestern part of the Kara Sea and the history of its development in the Holocene. In Geology and Geomorphology of Shelves and Continental Slopes; Nauka: Moscow, Russia, 1985; pp. 89–95. (In Russian) [Google Scholar]
- Ogorodov, S.A. The Role of Sea Ice in Coastal Dynamics; Moscow University Press: Moscow, Russia, 2011; 173p. (In Russian) [Google Scholar]
- Ogorodov, S.A.; Arkhipov, V.V.; Kokin, O.V.; Marchenko, A.V. Comprehensive Monitoring of Ice Gouging Bottom Relief at Key Sites of Oil and Gas Development within the Coastal-Shelf Zone of the Yamal Peninsula, Kara Sea. In Proceedings of the International Conference on Port and Ocean Engineering under Arctic Conditions, POAC, Busan, Republic of Korea, 11–16 June 2017; pp. 123:1–123:12. [Google Scholar]
- Arkhipov, V.V.; Kokin, O.V.; Ogorodov, S.A.; Godetyskiy, S.V.; Tsvetsinskiy, A.S.; Onishchenko, D.A. The Yamal coast fast ice edge of the Baidaratskaya Bay of the Kara Sea in 2012–2016: Dynamics and role in formation of modern ice gouges on the sea-bed. Vesti Gazov. Nauk. 2017, 4, 129–136. (In Russian) [Google Scholar]
- Gurevich, V.I. Modern Sedimentogenesis and Geoecology of the Western Arctic Shelf of Eurasia; Nauchnyy Mir: Moscow, Russia, 2002; 135p. (In Russian) [Google Scholar]
- Polyak, L.; Levitan, M.; Khusid, T.; Merklin, L.; Mukhina, V. Variations in the influence of riverine discharge on the Kara Sea during the last deglaciation and the Holocene. Global Planet. Chang. 2002, 32, 291–309. [Google Scholar] [CrossRef]
- Stein, R.; Dittmers, K.; Niessen, F.; Fahl, K. Siberian river run-off and Late Quaternary glaciation in the southern Kara Sea, Arctic Ocean: Preliminary results. Rep. Polar Mar. Res. 2002, 21, 315–322. [Google Scholar] [CrossRef]
- Galimov, E.M.; Kodina, L.A.; Stepanets, O.V.; Korobeinik, G.S. Biogeochemistry of the Russian Arctic. Kara Sea: Research Results under the SIRRO Project, 1995–2003. Geochem. Int. 2006, 44, 1139–1191. [Google Scholar] [CrossRef]
- Stepanets, O.; Borisov, A.; Ligaev, A.; Galimov, E. The investigation of sedimentation rate of the Kara Sea modern sediments using radioactive tracer. Rep. Polar Mar. Res. 2001, 393, 205–212. [Google Scholar]
- Stepanets, O.V.; Borisov, A.P.; Travkina, A.V.; Soloveva, G.Y.; Vladimirov, M.V.; Aliev, R.A. Application of the 210Pb and 137Cs radionuclides in the geochronology of modern sediments at the storage sites of solid radioactive wastes in the Arctic Basin. Geochem. Int. 2010, 48, 398–402. [Google Scholar] [CrossRef]
- Rusakov, V.Y.; Borisov, A.P.; Solovieva, G.Y. Sedimentation rates in different facies–genetic types of bottom sediments in the Kara Sea: Evidence from the 210Pb and 137Cs radionuclides. Geochem. Int. 2019, 57, 1185–1200. [Google Scholar] [CrossRef]
- Nikiforov, S.L.; Sorokhtin, N.O.; Ananiev, R.A.; Dmitrevskiy, N.N.; Moroz, E.A.; Kokin, O.V. Research in Barents and Kara Seas during cruise 52 of the R/V Akademik Nikolaj Strakhov. Oceanology 2022, 62, 433–434. [Google Scholar] [CrossRef]
- Andreeva, I.A.; Lapina, N.N. Method of Grain-Size Analysis of Bottom Sediments of the World Ocean and Geological Interpretation of the Results of Laboratory Study; VNIIOkeangeologia: St. Petersburg, Russia, 1998. (In Russian) [Google Scholar]
- Klenova, M.V. Geology of the Seas; Uchpedgiz: Moscow, Russia, 1948; 495p. (In Russian) [Google Scholar]
- Appleby, P.G.; Nolan, P.J.; Gifford, D.W.; Godfrey, M.J.; Oldfield, F.; Anderson, N.J.; Battarbee, R.W. 210 Pb dating by low-background gamma. Hydrobiologia 1986, 143, 21–27. [Google Scholar] [CrossRef]
- Schelske, C.L.; Peplow, A.; Brenner, M.; Spencer, C.N. Low-background gamma counting: Applications for 210 Pb dating of sediments. J. Paleolimnol. 1994, 10, 115–128. [Google Scholar] [CrossRef]
- Appleby, P.G.; Piliposian, G.T. Efficiency corrections for variable sample height in well-type germanium gamma detectors. Nucl. Instrum. Methods Phys. Res. Sect. B Beam Interact. Mater. At. 2004, 225, 423–433. [Google Scholar] [CrossRef]
- Aliev, R.A.; Bobrov, V.A.; Kalmykov, S.N.; Melgunov, M.S.; Vlasova, I.E.; Shevchenko, V.P.; Novigatsky, A.N.; Lisitzin, A.P. Natural and artificial radionuclides as a tool for sedimentation studies in the Arctic region. J. Radioanal. Nucl. Chem. 2007, 274, 315–321. [Google Scholar] [CrossRef]
- Zaborska, A.; Carroll, J.; Papucci, C.; Torricelli, L.; Carroll, M.L.; Walkusz-Miotk, J.; Pempkowiak, J. Recent sediment accumulation rates for the Western margin of the Barents Sea. Deep.-Sea Res. 2008, 55, 2352–2360. [Google Scholar] [CrossRef]
- Kuzyk, Z.; Gobeil, C.; Macdonald, R. 210Pb and 137Cs in margin sediments of the Arctic Ocean: Controls on boundary scavenging. Glob. Biogeochem. Cycles 2013, 27, 422–439. [Google Scholar] [CrossRef]
- Goryachenkova, T.A.; Borisov, A.P.; Solov’eva, G.Y.; Lavrinovich, E.A.; Kazinskaya, I.E.; Ligaev, A.N.; Travkina, A.V.; Novikov, A.P. Content of Technogenic Radionuclides in Water, Bottom Sediments, and Benthos of the Kara Sea and Shallow Bays of the Novaya Zemlya Archipelago. Geochem. Int. 2019, 57, 1320–1326. [Google Scholar] [CrossRef]
- Demina, L.; Dara, O.; Aliev, R.; Alekseeva, T.; Budko, D.; Novichkova, E.; Politova, N.; Solomatina, A.; Bulokhov, A. Elemental and Mineral Composition of the Barents Sea Recent and Late Pleistocene−Holocene Sediments: A Correlation with Environmental Conditions. Minerals 2020, 10, 593. [Google Scholar] [CrossRef]
- Robbins, J.A.; Edgington, D.N. Determination of recent sedimentation rates in Lake Michigan using Pb-210 and Cs-137. Geochim. Cosmochim. Acta 1975, 39, 285–304. [Google Scholar] [CrossRef] [Green Version]
- von Gunten, H.R.; Moser, R.N. How reliable is the 210Pb dating method? Old and new results from Switzerland. J. Paleolimnotogy 1993, 9, 161–178. [Google Scholar] [CrossRef]
- Kirchner, G. 210Pb as a tool for establishing sediment chronologies: Examples of potentials and limitations of conventional dating models. J. Environ. Radioact. 2011, 102, 490–494. [Google Scholar] [CrossRef]
- Pittauerova, D.; Hettwig, B.; Fischer, H.W. Pb-210 sediment chronology: Focused on supported lead. Radioprotection 2011, 46, S277–S282. [Google Scholar] [CrossRef] [Green Version]
- Sanchez-Cabeza, J.A.; Ruiz-Fernández, A.C. 210Pb sediment radiochronology: An integrated formulation and classification of dating models. Geochim. Cosmochim. Acta 2012, 82, 183–200. [Google Scholar] [CrossRef]
- Mabit, L.; Benmansour, M.; Abril, J.M.; Walling, D.E.; Meusburger, K.; Iurian, A.R. Fallout 210Pb as a soil and sediment tracer in catchment sediment budget investigations: A review. Earth-Sci. Rev. 2014, 138, 335–351. [Google Scholar] [CrossRef]
- Gharibreza, M.; Zaman, M.; Arabkhedri, M.S.-Z. The off-site implications of deforestation on sedimentation rates and pollution in Abkenar open water (Anzali Lagoon, Caspian Sea) using radionuclide techniques and sediment quality indices. Int. J. Sediment Res. 2021, 37, 370–382. [Google Scholar] [CrossRef]
- Appleby, P.G. Chronostratigraphic techniques in recent sediments. In Tracking Environmental Change Using Lake Sediments, Volume I: Basin Analysis, Coring, and Chronological Techniques; Last, W.S., Smol, J.P., Eds.; Springer: Dordrecht, The Netherlands, 2002; pp. 171–203. [Google Scholar] [CrossRef]
- Longmore, M.E. The caesium-137 dating technique and associated applications in Australiaea review. In Archaeometry: An Australasian Perspective; Ambrose, B.W., Duerden, P., Eds.; Australian National University Press: Canberra, Australia, 1982; pp. 310–321. [Google Scholar]
- Khalturin, V.I.; Rautian, T.G.; Richards, P.G.; Leith, W.S. A Review of Nuclear Testing by the Soviet Union at Novaya Zemlya, 1955–1990. Sci. Glob. Secur. 2005, 13, 1–42. [Google Scholar] [CrossRef]
- Norris, R.S.; Arkin, W.M. Known Nuclear Tests Worldwide, 1945–1994. Bull. At. Sci. 1995, 51, 70–71. [Google Scholar] [CrossRef]
- Bergqvist, N.-O.; Ferm, R. Nuclear Explosions 1945–1998 (FOA-R-00-01572-180); Defence Research Establishment: Stocholm, Sweden, 2000; 43p. [Google Scholar]
- Kautsky, H. Determination of distribution processes, transport routes and transport times in the North Sea and the northern Atlantic using artificial radionuclides as tracers. In Radionucludes: A Tool for Oceanography; Guary, B.J.C., Guegueniat, P., Pentreath, R.J., Eds.; Elsevier Applied Science: London, UK, 1988; pp. 271–280. [Google Scholar]
- Kamalov, A.M.; Ogorodov, S.A.; Birukov, V.Y.; Sovershaeva, G.D.; Tsvetsinsky, A.S.; Arkhipov, V.V.; Belova, N.G.; Noskov, A.I.; Solomatin, V.I. Coastal and seabed morpholithodynamics of the Baydaratskaya bay at the route of gas pipeline crossing. Earth’s Cryosphere 2006, 10, 3–14. (In Russian) [Google Scholar]
- Romanenko, F.A.; Garankina, E.V.; Shilova, O.S. Loose deposits stratigraphy and the formation of the relief of Western Yamal in the late Pleistocene–Holocene. In Fundamental Problems of the Quarter: Results of the Study and the Main Directions of Further Research, Proceedings of the VI All-Russian Meeting of the Quaternary Period Research, Novosibirsk, Russia, 19–23 October 2009; SO RAN: Novosibirsk, Russia, 2009; pp. 505–508. (In Russian) [Google Scholar]
- Kopa-Ovdienko, N.V.; Ogorodov, S.A. Peculiarities of dynamics of thermoabrasional coasts of the Baydaratskaya Bay (Kara Sea) today. Geomorfologiya 2016, 3, 12–21. (In Russian) [Google Scholar] [CrossRef]
- Romanenko, F.A.; Belova, N.G.; Nikolaev, V.I.; Olyunina, O.S. Features of the loose deposits structure of the Yugra coast of the Baydaratskaya Bay, the Kara Sea. In Fundamental Problems of the Quarter: Results of the Study and the Main Directions of Further Research, Proceedings of the V All-Russian Meeting of the Quaternary Period Research, Moscow, Russia, 7–9 November 2007; GEOS: Moscow, Russia, 2007; pp. 348–351. (In Russian) [Google Scholar]
- Strakhov, N.M. Types of Lithogenesis and Their Evolution in the History of the Earth; Gosgeoltekhizdat: Moscow, Russia, 1963; 535p. (In Russian) [Google Scholar]
- Meshcheryakov, N.I.; Usyagina, I.S.; Sharin, V.V.; Dauvalter, V.A.; Dukhno, G.N. Chronology of sedimentation in Colesbukta, Spitsbergen (Svalbard Archipelago): The results of the 2018 expedition. IOP Conf. Ser. Earth Environ. Sci. 2021, 937, 042081. [Google Scholar] [CrossRef]
- Shabanova, N.; Ogorodov, S.; Shabanov, P.; Baranskaya, A. Hydrometeorological forcing of Western Russian arctic coastal dynamics: XX-century history and current state. Geogr. Environ. Sustain. 2018, 11, 113–129. [Google Scholar] [CrossRef] [Green Version]
- Kennedy, J.J.; Rayner, N.A.; Atkinson, C.P.; Killick, R.E. An ensemble data set of sea surface temperature change from 1850: The Met Office Hadley Centre HadSST. 4.0.0.0 data set. J. Geophys. Res. Atmos. 2019, 124, 7719–7763. [Google Scholar] [CrossRef]
- Morice, C.P.; Kennedy, J.J.; Rayner, N.A.; Winn, J.P.; Hogan, E.; Killick, R.E. An updated assessment of near-surface temperature change from 1850: The HadCRUT5 data set. J. Geophys. Res. Atmos. 2021, 126, e2019JD032361. [Google Scholar] [CrossRef]
- Osborn, T.J.; Jones, P.D.; Lister, D.H.; Morice, C.P.; Simpson, I.R.; Winn, J.P. Land surface air temperature variations across the globe updated to 2019: The CRUTEM5 data set. J. Geophys. Res. Atmos. 2021, 126, e2019JD032352. [Google Scholar] [CrossRef]
Sediment Core | Position | Sampler | Latitude (°N) | Longitude (°E) | Cruise | Water Depth, m | Length, cm |
---|---|---|---|---|---|---|---|
ANS-52-16 | Ice scour | 147 mm gravity corer | 69.797683 | 65.40115 | ANS-52 | 33.6 | 43 |
ANS-52-17 | Background | 147 mm gravity corer | 69.796467 | 65.40185 | ANS-52 | 31.6 | 271 |
Layer, cm | Thickness, cm | >1 | 1–0.5 | 0.5–0.25 | 0.25–0.1 | 0.1–0.05 | 0.05–0.01 | <0.01 | W, % |
---|---|---|---|---|---|---|---|---|---|
0–1 | 1 | 0 | 0 | 2.1 | 4.2 | 10.1 | 26.4 | 57.2 | 130 |
1–2 | 1 | 12.5 | 0.4 | 0.4 | 4.7 | 5.7 | 23.4 | 52.9 | 90 |
2–3 | 1 | 0 | 0 | 0.5 | 2.8 | 3.7 | 26.2 | 66.8 | 122 |
3–4 | 1 | 0 | 0 | 1.0 | 4.0 | 6.5 | 29.5 | 59.0 | 101 |
4–5 | 1 | 0 | 0 | 0 | 3.3 | 3.7 | 28.6 | 64.4 | 94 |
5–6 | 1 | 0 | 0 | 0.5 | 3.75 | 7.5 | 29.25 | 59.0 | 94 |
6–7 | 1 | 0 | 0 | 0.3 | 3.2 | 6.3 | 28.4 | 61.8 | 90 |
7–8 | 1 | 0 | 0 | 0 | 3.8 | 6.6 | 28.4 | 61.2 | 94 |
8–9 | 1 | 0 | 0 | 0 | 1.3 | 3.7 | 28.0 | 67.0 | 94 |
9–10 | 1 | 0 | 0 | 0 | 1.7 | 3.0 | 26.9 | 68.4 | 90 |
10–11 | 1 | 0 | 0 | 0 | 1.6 | 2.6 | 27.9 | 67.9 | 94 |
11–12 | 1 | 0 | 0 | 0 | 2.0 | 3.5 | 27.3 | 67.2 | 98 |
12–15 | 3 | 0 | 0 | 1.0 | 2.8 | 4.9 | 25.4 | 65.9 | 86 |
15–17 | 2 | 0.5 | 0.2 | 0.8 | 4.4 | 3.9 | 33.8 | 56.4 | 81 |
17–19 | 2 | 0.2 | 0.2 | 0.7 | 3.0 | 2.2 | 33.0 | 60.7 | 69 |
19–21 | 2 | 0 | 0 | 0.8 | 3.1 | 3.1 | 30.1 | 62.9 | 67 |
21–23 | 2 | 0.2 | 0.2 | 0.8 | 3.6 | 3.1 | 26.5 | 65.6 | 63 |
23–25 | 2 | 0 | 0 | 0.6 | 2.9 | 3.0 | 25.5 | 68.0 | 69 |
25–27 | 2 | 0.1 | 0.1 | 0.8 | 3.8 | 3.8 | 26.9 | 64.5 | 67 |
27–30 | 3 | 0 | 0 | 0.4 | 2.7 | 5.2 | 28.0 | 62.7 | 71 |
Layer, cm | Thickness, cm | >1 | 1–0.5 | 0.5–0.25 | 0.25–0.1 | 0.1–0.05 | 0.05–0.01 | <0.01 | W, % |
---|---|---|---|---|---|---|---|---|---|
0–2 | 2 | 0 | 0 | 0 | 0 | 1.2 | 36.3 | 62.5 | 77 |
2–5 | 3 | 0 | 0 | 0 | 0 | 1.9 | 34.5 | 63.5 | 68 |
5–8 | 3 | 0 | 0 | 0.3 | 2.3 | 3.5 | 30.5 | 63.4 | 71 |
8–11 | 3 | 0.4 | 0.1 | 0.4 | 2.5 | 4.0 | 36.0 | 56.6 | 69 |
11–15 | 4 | 0 | 0 | 0 | 0.8 | 1.7 | 32.7 | 64.8 | 70 |
15–16 | 1 | 3.8 | 0 | 0 | 0 | 1.3 | 27.0 | 67.9 | 72 |
16–17 | 1 | 0 | 0 | 0 | 1.0 | 1.5 | 30.6 | 66.9 | 72 |
17–18 | 1 | 0 | 0 | 0 | 0 | 1.1 | 27.1 | 71.8 | 65 |
18–19 | 1 | 0 | 0 | 0 | 1.0 | 2.1 | 28.1 | 68.9 | 69 |
19–20 | 1 | 0 | 0 | 0 | 0.9 | 2.1 | 30.0 | 67.0 | 67 |
20–21 | 1 | 0 | 0 | 0 | 0 | 1.9 | 31.8 | 64.3 | 65 |
21–22 | 1 | 0 | 0 | 0 | 0.8 | 1.7 | 33.3 | 64.2 | 66 |
22–23 | 1 | 0 | 0 | 0 | 0 | 1.5 | 31.0 | 67.5 | 72 |
23–24 | 1 | 0 | 0 | 0 | 0 | 0.7 | 27.6 | 71.7 | 67 |
24–25 | 1 | 0 | 0 | 0 | 0 | 1.4 | 26.2 | 72.4 | 71 |
25–26 | 1 | 0 | 0 | 0 | 0.5 | 1.5 | 23.5 | 74.5 | 68 |
26–27 | 1 | 0 | 0 | 0 | 0.9 | 1.9 | 24.5 | 72.7 | 72 |
27–30 | 3 | 0 | 0 | 0 | 1.3 | 4.0 | 38.7 | 55.8 | 69 |
30–35 | 5 | 0 | 0 | 0.1 | 1.2 | 2.2 | 37.5 | 59.0 | 48 |
35–40 | 5 | 0 | 0 | 0.3 | 2.0 | 2.3 | 39.4 | 56.0 | 55 |
40–45 | 5 | 0 | 0 | 0.3 | 1.5 | 2.3 | 36.9 | 59.0 | 55 |
45–50 | 5 | 0.6 | 0.2 | 0.2 | 1.7 | 2.4 | 36.7 | 58.2 | 63 |
Layer, cm | Thickness, cm | 137Cs | U 1 (137Cs) | 210Pb | U 1 (210Pb) | 226Ra | U 1 (226Ra) | Ci | U 1 (Ci) |
---|---|---|---|---|---|---|---|---|---|
0–1 | 1 | 6.0 | 2.4 | 93.7 | 9.2 | 22.1 | 5.6 | 71.6 | 10.8 |
1–2 | 1 | 9.3 | 0.4 | 74.8 | 3.0 | 24.2 | 2.7 | 50.6 | 4.0 |
2–3 | 1 | 10.3 | 0.6 | 107.0 | 4.9 | 24.1 | 5.4 | 82.9 | 7.3 |
3–4 | 1 | 11.3 | 0.8 | 90.7 | 5.4 | 31.3 | 3.8 | 59.4 | 6.6 |
4–5 | 1 | 10.9 | 0.8 | 73.1 | 5.4 | 28.0 | 3.7 | 45.1 | 6.5 |
5–6 | 1 | 11.6 | 0.7 | 78.9 | 5.1 | 30.0 | 3.6 | 48.9 | 6.2 |
6–7 | 1 | 9.1 | 0.8 | 73.0 | 5.6 | 17.7 | 3.8 | 55.3 | 6.8 |
7–8 | 1 | 10.6 | 0.8 | 87.7 | 6.0 | 35.4 | 4.3 | 52.3 | 7.4 |
8–9 | 1 | 12.6 | 0.8 | 92.7 | 5.4 | 34.9 | 4.0 | 57.8 | 6.7 |
9–10 | 1 | 13.7 | 0.9 | 108.0 | 6.3 | 43.2 | 4.6 | 64.8 | 7.8 |
10–11 | 1 | 14.9 | 0.9 | 102.0 | 5.9 | 39.5 | 4.6 | 62.5 | 7.5 |
11–12 | 1 | 12.1 | 0.5 | 82.4 | 4.0 | 45.7 | 4.3 | 36.7 | 5.9 |
12–13 | 1 | 11.8 | 0.9 | 83.9 | 6.2 | 41.9 | 4.6 | 42.0 | 7.7 |
13–14 | 1 | 9.4 | 1.4 | 83.8 | 10.3 | 25.5 | 5.0 | 58.3 | 11.4 |
14–15 | 1 | 13.6 | 0.9 | 72.5 | 6.4 | 31.0 | 4.3 | 41.5 | 7.7 |
15–16 | 1 | 15.3 | 2.2 | 83.0 | 14.7 | 20.8 | 5.9 | 62.2 | 15.8 |
16–17 | 1 | 17 | 1.1 | 92.3 | 8.2 | 23.2 | 4.1 | 69.1 | 9.2 |
17–18 | 1 | 17.4 | 1.8 | 89.4 | 12.1 | 26.1 | 5.3 | 63.3 | 13.2 |
18–19 | 1 | 13.4 | 0.9 | 84.9 | 6.7 | 27.9 | 3.6 | 57.0 | 7.6 |
19–20 | 1 | 11.9 | 1.8 | 66.1 | 12.7 | 22.7 | 4.6 | 43.4 | 13.5 |
20–21 | 1 | 2.9 | 0.6 | 71.5 | 5.5 | 24.4 | 3.5 | 47.1 | 6.5 |
21–22 | 1 | <MDA | - | 66.7 | 4.7 | 25.8 | 3.9 | 40.9 | 6.1 |
22–23 | 1 | <MDA | - | 57.3 | 5.9 | 22.4 | 4.8 | 34.9 | 7.6 |
23–24 | 1 | <MDA | - | 47.3 | 4.9 | 17.4 | 4.5 | 29.9 | 6.7 |
24–25 | 1 | <MDA | - | 43.7 | 4.9 | 14.4 | 3.5 | 29.3 | 6.0 |
25–26 | 1 | <MDA | - | 40.0 | 4.8 | 17.9 | 3.3 | 22.1 | 5.8 |
26–27 | 1 | 8.1 | 0.4 | 45.5 | 2.9 | 21.0 | 3.4 | 24.5 | 4.5 |
27–28 | 1 | <MDA | - | 56.8 | 5.9 | 26.4 | 4.2 | 30.4 | 7.2 |
28–30 | 2 | <MDA | - | 52.1 | 4.9 | 26.6 | 4.1 | 25.5 | 6.4 |
30–32 | 2 | 47.3 | 0.9 | 56.1 | 3.6 | 22.5 | 2.4 | 33.6 | 4.3 |
32–34 | 2 | 2.4 | 0.6 | 59.3 | 4.1 | 24.2 | 2.7 | 35.1 | 4.9 |
34–36 | 2 | 2.3 | 0.4 | 41.7 | 3.5 | 19.3 | 2.7 | 22.4 | 4.4 |
36–38 | 2 | <MDA | - | 43.9 | 6.3 | 23.7 | 3.3 | 20.2 | 7.1 |
38–40 | 2 | <MDA | - | 48.0 | 4.8 | 20.0 | 2.1 | 28.0 | 5.2 |
40–42 | 2 | <MDA | - | 55.9 | 4.8 | 25.0 | 3.9 | 30.9 | 6.2 |
42–43 | 1 | <MDA | - | 52.5 | 4.0 | 24.5 | 4.4 | 28.0 | 5.9 |
Layer, cm | Thickness, cm | 137Cs | U 1 (137Cs) | 210Pb | U 1 (210Pb) | 226Ra | U 1 (226Ra) | Ci | U 1 (Ci) |
---|---|---|---|---|---|---|---|---|---|
0–1 | 1 | <MDA | - | 60.0 | 0.8 | 26.2 | 6.0 | 33.8 | 6.1 |
1–2 | 1 | 2.2 | 0.3 | 50.1 | 1.5 | 24.2 | 3.4 | 25.9 | 3.7 |
2–3 | 1 | <MDA | - | 36.0 | 5.0 | 25.3 | 4.9 | 10.7 | 7.0 |
3–4 | 1 | <MDA | - | 55.4 | 6.0 | 20.7 | 4.9 | 34.7 | 7.7 |
4–5 | 1 | <MDA | - | 35.5 | 3.6 | 16.1 | 4.3 | 19.4 | 5.6 |
5–6 | 1 | <MDA | - | 49.9 | 6.6 | 28.0 | 3.3 | 21.9 | 7.4 |
6–7 | 1 | <MDA | - | 49.3 | 4.6 | 28.0 | 5.2 | 21.3 | 6.9 |
7–8 | 1 | <MDA | - | 27.6 | 6.1 | 22.3 | 4.2 | 5.3 | 7.4 |
8–9 | 1 | <MDA | - | 45.3 | 3.6 | 21.5 | 5.0 | 23.8 | 6.2 |
9–10 | 1 | <MDA | - | 54.6 | 6.6 | 23.7 | 4.0 | 30.9 | 7.7 |
10–11 | 1 | 1.1 | 0.3 | 53.9 | 3.3 | 21.9 | 5.1 | 32.0 | 6.1 |
11–12 | 1 | <MDA | - | 47.0 | 7.3 | 30.4 | 4.4 | 16.6 | 8.5 |
12–13 | 1 | <MDA | - | 32.2 | 5.8 | 25.9 | 5.6 | 6.3 | 8.1 |
13–14 | 1 | <MDA | - | 30.1 | 4.7 | 25.9 | 5.5 | 4.2 | 7.2 |
14–15.5 | 1.5 | <MDA | - | 28.0 | 3.5 | 21.2 | 3.9 | 6.8 | 5.2 |
15.5–17.5 | 2 | <MDA | - | 34.6 | 2.5 | 25.5 | 3.9 | 9.1 | 4.6 |
17.5–19.5 | 2 | <MDA | - | 26.7 | 2.0 | 21.7 | 2.0 | 5.0 | 2.8 |
19.5–21.5 | 2 | <MDA | - | 32.9 | 3.2 | 31.1 | 3.0 | 1.8 | 4.4 |
21.5–23.5 | 2 | <MDA | - | 33.4 | 3.9 | 28.8 | 2.3 | 4.6 | 4.5 |
23.5–25.5 | 2 | <MDA | - | 28.6 | 3.0 | 23.7 | 2.7 | 4.9 | 4.0 |
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Kokin, O.; Usyagina, I.; Meshcheriakov, N.; Ananiev, R.; Arkhipov, V.; Kirillova, A.; Maznev, S.; Nikiforov, S.; Sorokhtin, N. Pb-210 Dating of Ice Scour in the Kara Sea. J. Mar. Sci. Eng. 2023, 11, 1404. https://doi.org/10.3390/jmse11071404
Kokin O, Usyagina I, Meshcheriakov N, Ananiev R, Arkhipov V, Kirillova A, Maznev S, Nikiforov S, Sorokhtin N. Pb-210 Dating of Ice Scour in the Kara Sea. Journal of Marine Science and Engineering. 2023; 11(7):1404. https://doi.org/10.3390/jmse11071404
Chicago/Turabian StyleKokin, Osip, Irina Usyagina, Nikita Meshcheriakov, Roman Ananiev, Vasiliy Arkhipov, Aino Kirillova, Stepan Maznev, Sergey Nikiforov, and Nikolay Sorokhtin. 2023. "Pb-210 Dating of Ice Scour in the Kara Sea" Journal of Marine Science and Engineering 11, no. 7: 1404. https://doi.org/10.3390/jmse11071404
APA StyleKokin, O., Usyagina, I., Meshcheriakov, N., Ananiev, R., Arkhipov, V., Kirillova, A., Maznev, S., Nikiforov, S., & Sorokhtin, N. (2023). Pb-210 Dating of Ice Scour in the Kara Sea. Journal of Marine Science and Engineering, 11(7), 1404. https://doi.org/10.3390/jmse11071404