Have a personal or library account? Click to login
Variation of OSL residual doses in terms of coarse and fine grain modern sediments along the Hungarian section of the Danube Cover

Variation of OSL residual doses in terms of coarse and fine grain modern sediments along the Hungarian section of the Danube

Open Access
|Dec 2017

References

  1. Aitken MJ, 1998. An Introduction to Optical Dating. Oxford University Press. London.
  2. Alexanderson H, 2007. Residual OSL signals from modern Greenlandic river sediments. Geochronometria 26: 1–9, 10.2478/v10003-007-0001-6.
  3. Bogárdi J, 1971. Sediment transport of streams. Academic Press, Budapest.
  4. Colls AE, Stokes S, Blum MD and Straffin E, 2001. Age limits on the Late Quaternary evolution of the upper Loire River. Quaternary Science Reviews 20: 743–750, 10.1016/S0277-3791(00)00048-2.
  5. Fiebig M and Preusser F, 2007. Investigating the amount of zeroing in modern sediments of River Danube, Austria. Quaternary Geochronology 2: 143–149, 10.1016/j.quageo.2006.09.001.
  6. Fuchs M and Lang A, 2001. OSL dating of coarse-grain fluvial quartz using single-aliquot protocols on sediments from NE Peloponnese, Greece. Quaternary Science Reviews 20: 783–787, 10.1016/S0277-3791(00)00040-8.
  7. Galbraith RF, 2005. Statistics for Fission Track Analysis. 240. p. Chapman and Hall, London.
  8. Galbraith RF, Roberts RG, Laslett GM, Yoshida H and Olley JM, 1999. Optical dating of single and multiple grains of quartz from Jinmium rock shelter, northern Australia. Part I: Experimental design and statistical models. Archeometry 41: 339–364, 10.1111/j.1475-4754.1999.tb00987.x.
  9. Hu G, Zhang J-F, Qui W-L and Zhou L-P, 2010. Residual OSL signals in modern fluvial sediments from Yellow River (HuangHe) and the implications for dating young sediments. Quaternary Geochronology 5: 187–193, 10.1016/j.quageo.2009.05.003.
  10. Jain M, Thomsen KJ, Botter-Jensen L and Murray AS, 2004. Thermal transfer and apparent-dose distribution in poorly bleached mortar samples: Results from single grains and small aliquots of quartz. Radiation Measurements 38: 101–109, 10.1016/j.radmeas.2003.07.002.
  11. Jaiswal MK, Chen YG, Kale VS and Achyuthan H, 2009. Residual luminescence in quartz from slack water deposits in Kaveri Basin, South India: a single aliquot approach. Geocronometria 33: 1–8, 10.2478/v10003-009-0009-1.
  12. Lepper K, Larsen NA and McKeever SWS, 2000. Equivalent dose distribution analysis of Holocene eolian and fluvial quartz sands from central Oklahoma. Radiation Measurements 32: 603–608, 10.1016/S1350-4487(00)00093-7.
  13. Li B and Li S-H, 2006. Correcting for thermal transfer in OSL measurements of young sediment samples. Radiation Measurements 41: 855–861, 10.1016/j.radmeas.2006.04.008.
  14. Mezősi G, 2011. Geography of Hungary. Academic Press, Budapest.
  15. Murray AS, Olley JM and Caitcheon GG, 1995. Measurements of equivalent doses in quartz from contemporary water-lain sediments using optically stimulated luminescence. Quaternary Science Reviews 14: 365–371, 10.1016/0277-3791(95)00030-5.
  16. Murray AS and Wintle AG, 2003. The single aliquot regenerative dose protocol: potential for improvements in reliability. Radiation Measurements 37(4): 377–381, 10.1016/S1350-4487(03)00053-2.
  17. Olley J, Caitcheon G and Murray A, 1998. The distribution of apparent dose as determined by optically stimulated luminescence in small aliquots of fluvial quartz: Implications for dating young sediments. Radiation Measurements 30: 207–217, 10.1016/S0277-3791(97)00090-5.
  18. Rittenour TM, 2008. Luminescence dating of fluvial deposits: applications to geomorphic palaeoseismic and archaeological research. Boreas 37: 613–635, 10.1111/j.1502-3885.2008.00056.x.
  19. Sipos G, Kiss T and Tóth O, 2016. Constraining the age of floodplain levels along the lower section of River Tisza, Hungary. Journal of Environmental Geography 9(1–2): 39–44.
  20. Stokes S, Bray HE and Blum MD, 2001. Optical resetting in large drainage basins: tests of zeroing assumptions using single-aliquot procedures. Quaternary Science Reviews 20: 879–885, 10.1016/S0277-3791(00)00045-7.
  21. Treulsen JL and Wallinga J, 2003. Zeroing of the OSL signal as a function of grain size: investigatting bleaching and thermal transfer for a young fluvial sample. Geochronometria 22: 1–8.
  22. Vandenberghe D, Derese C and Houbrechts G, 2007. Residual doses in recent alluvial sediments from Ardenne (S Belgium). Geochronometria 28: 1–8, 10.2478/v10003-007-0024-z.
  23. VITUKI – Vizgzdálkodási Tudományos Kutató Intézet (Hungarian Water Resources Research Centre), 1971. Hydrographic Atlas Series 11. Danube 4. (Hydrography, geomorphology). Budapest.
  24. Wallinga J, Murray AS, Duller GAT, Törnqvist TR, 2001. Testing optically stimulated luminescence dating of sand-sized quartz and feldspar from fluvial deposits. Earth and Planetery Science Letters 193: 617–630, 10.1016/S0012-821X(01)00526-X.
  25. Wang XL, Wintle AG and Lu YC, 2006. Thermally transferred luminescence in fine-grained quartz from Chinese loess: Basic observations. Radiation Measurements 41: 649–658, 10.1016/j.radmeas.2006.01.001.
  26. Ward S, Stokes S, Bailey R, Singarayer J, Goudie A and Bray H, 2003. Optical dating of quartz from young samples and the effects of pre-heat temperature. Radiation Measurements 37: 401–407, 10.1016/S1350-4487(03)00004-0.
  27. Wintle AG and Murray AS, 2006. A review of quartz optically stimulated luminescence characteristics and their relevance in single-aliquot regeneration dating protocols. Radiation Measurements 41: 369–391, 10.1016/j.radmeas.2005.11.001.
Language: English
Page range: 319 - 330
Submitted on: Jul 20, 2016
|
Accepted on: Sep 21, 2017
|
Published on: Dec 29, 2017
Published by: Sciendo
In partnership with: Paradigm Publishing Services
Publication frequency: 1 issue per year

© 2017 Orsolya Tóth, György Sipos, Tímea Kiss, Tamás Bartyik, published by Sciendo
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.