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Calibration of the Radiocarbon Time Scale for the Southern Hemisphere: Ad 1850–950

Published online by Cambridge University Press:  18 July 2016

F G McCormac*
Affiliation:
School of Archaeology and Palaeoecology, The Queen's University of Belfast, Belfast BT7 1NN, Northern Ireland.
P J Reimer
Affiliation:
Center for Accelerator Mass Spectrometry L-397, Lawrence Livermore National Laboratory, P.O. Box 808, Livermore, California 94550, USA.
A G Hogg
Affiliation:
Radiocarbon Dating Laboratory, University of Waikato, Private Bag 3105, Hamilton, New Zealand.
T F G Higham
Affiliation:
Oxford Radiocarbon Accelerator Unit, Oxford University, 6 Keble Rd, Oxford, OX1 3QJ, England.
M G L Baillie
Affiliation:
School of Archaeology and Palaeoecology, The Queen's University of Belfast, Belfast BT7 1NN, Northern Ireland.
J Palmer
Affiliation:
School of Archaeology and Palaeoecology, The Queen's University of Belfast, Belfast BT7 1NN, Northern Ireland.
M Stuiver
Affiliation:
Quaternary Isotope Laboratory, University of Washington, Seattle, Washington 98195-1360, USA.
*
Corresponding author. Email: [email protected].
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Abstract

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We have conducted a series of radiocarbon measurements on decadal samples of dendrochronologically dated wood from both hemispheres, spanning 1000 years (McCormac et al. 1998; Hogg et al. this issue). Using the data presented in Hogg et al., we show that during the period AD 950–1850 the 14C offset between the hemispheres is not constant, but varies periodically (∼130 yr periodicity) with amplitudes varying between 1 and 10% (i.e. 8–80 yr), with a consequent effect on the 14C calibration of material from the Southern Hemisphere. A large increase in the offset occurs between AD 1245 and 1355. In this paper, we present a Southern Hemisphere high-precision calibration data set (SHCal02) that comprises measurements from New Zealand, Chile, and South Africa. This data, and a new value of 41 ± 14 yr for correction of the IntCal98 data for the period outside the range given here, is proposed for use in calibrating Southern Hemisphere 14C dates.

Type
Articles
Copyright
Copyright © The Arizona Board of Regents on behalf of the University of Arizona 

References

Braziunas, TF, Fung, IY, Stuiver, M. 1995. The preindustrial atmospheric 14CO2 latitudinal gradient as related to exchanges among atmospheric, oceanic, and terrestrial reservoirs. Global Biogeochemical Cycles 9(4):565–84.CrossRefGoogle Scholar
Dettinger, MD, Ghil, M, Strong, CM, Keppenne, CL. 1995. Interannual and interdecadal variability in United States surface-air temperatures 1910–87. Climatic Change 31:3566.CrossRefGoogle Scholar
Hogg, AG, McCormac, FG, Higham, TFG, Reimer, PG, Baillie, MGL, Palmer, JG. 2002. High-precision 14C measurements of contemporaneous tree-ring dated wood from the British Isles and New Zealand: AD 1850–950. Radiocarbon. This issue.CrossRefGoogle Scholar
Lerman, JC, Mook, WG, Vogel, JC. 1970. 14C in tree-rings from different localities. In: Olsson, IU, editor. Radiocarbon variations and absolute chronology: proceedings of the Twelfth Nobel Symposium held at the Institute of Physics at Uppsala University. Stockholm: Almquist and Wiksell. 652 p.Google Scholar
Levin, I, Kromer, B, Wagenbach, D, Munnich, KO. 1987. Tellus 39B:8995.CrossRefGoogle Scholar
McCormac, FG, Hogg, AG, Higham, TFG, Lynch-Stieglitz, J, Broecker, WS, Baillie, MGL, Palmer, J, Xiong, L, Pilcher, JR, Brown, D, Hoper, ST. 1998. Variations of radiocarbon in tree rings: Southern Hemisphere offset preliminary results. Radiocarbon 40(3):1153–59.CrossRefGoogle Scholar
McCormac, FG, Baillie, MGL, Pilcher, JR, Kalin, RM. 1995. Location-dependent differences in the 14C content of wood. Radiocarbon 37(2):395407.CrossRefGoogle Scholar
Mitchell, et al. 1966. World Meteorological Organization. Technical Note 79. 79 p.Google Scholar
Reimer, PJ, McCormac, FG, Reimer, RW, Braziunas, TF, Hogg, AG, Higham, TFG. Forthcoming. Interhemispheric variation in the response to solar forcing over the past 1000 yr. Science. Google Scholar
Sparks, RJ, Melhuish, H, McKee, JWA, Ogden, J, Palmer, JG, Molloy, BPJ. 1995. 14C calibration in the Southern Hemisphere and the date of the last Taupo eruption: evidence from tree-ring sequences. Radiocarbon 37(2):155–63.CrossRefGoogle Scholar
Stuiver, M, Braziunas, TF. 1998. Anthropogenic and solar components of hemispheric 14C. Geophysical Research Letters 25:329–32.CrossRefGoogle Scholar
Stuiver, M, Pearson, GW. 1986. High-precision calibration of the Radiocarbon time scale, AD 1950–500 BC. Radiocarbon 28(2B):805–38.Google Scholar
Stuiver, M, Reimer, PJ, Bard, E, Beck, JW, Burr, GS, Hughen, KA, Kromer, B, McCormac, FG, van der Plicht, J, Spurk, M. 1998. INTCAL98 radiocarbon age calibration, 24,000–0 cal BP. Radiocarbon 40(3):1041–83.CrossRefGoogle Scholar
Vautard, R, Yiou, P, Ghil, M. 1992. Singular-spectrum analysis—a toolkit for short, noisy chaotic signals. Physica D 58:95126.CrossRefGoogle Scholar
Vogel, JC, Fuls, A, Visser, E, Becker, B. 1993. Pretoria calibration curve for short-lived samples 1930–3350 BC. In: Stuiver, M, Kra, RS, editors. Calibration 1993 issue. Radiocarbon 35(1):7385.CrossRefGoogle Scholar