The IntCal20 Northern Hemisphere Radiocarbon Age Calibration Curve (0–55 cal kBP)
Калибровочная кривая возрастов по радиоуглероду IntCal20 для Северного полушария (0–55 тыс. калибр. лет до настоящего времени)
2020-08-01
SCID: 54.1/j8jxerwe
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IntCal20Northern Hemispheremarine reservoir ageradiocarbon calibration curvetree-ring chronology
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Abstract (AI)
ABSTRACT Radiocarbon ( 14 C) ages cannot provide absolutely dated chronologies for archaeological or paleoenvironmental studies directly but must be converted to calendar age equivalents using a calibration curve compensating for fluctuations in atmospheric 14 C concentration. Although calibration curves are constructed from independently dated archives, they invariably require revision as new data become available and our understanding of the Earth system improves. In this volume the international 14 C calibration curves for both the Northern and Southern Hemispheres, as well as for the ocean surface layer, have been updated to include a wealth of new data and extended to 55,000 cal BP. Based on tree rings, IntCal20 now extends as a fully atmospheric record to ca. 13,900 cal BP. For the older part of the timescale, IntCal20 comprises statistically integrated evidence from floating tree-ring chronologies, lacustrine and marine sediments, speleothems, and corals. We utilized improved evaluation of the timescales and location variable 14 C offsets from the atmosphere (reservoir age, dead carbon fraction) for each dataset. New statistical methods have refined the structure of the calibration curves while maintaining a robust treatment of uncertainties in the 14 C ages, the calendar ages and other corrections. The inclusion of modeled marine reservoir ages derived from a three-dimensional ocean circulation model has allowed us to apply more appropriate reservoir corrections to the marine 14 C data rather than the previous use of constant regional offsets from the atmosphere. Here we provide an overview of the new and revised datasets and the associated methods used for the construction of the IntCal20 curve and explore potential regional offsets for tree-ring data. We discuss the main differences with respect to the previous calibration curve, IntCal13, and some of the implications for archaeology and geosciences ranging from the recent past to the time of the extinction of the Neanderthals.
Key Findings
1
For older ages, IntCal20 integrates floating tree-ring chronologies, lacustrine and marine sediments, speleothems, and corals with statistical integration.
2
IntCal20 differs from IntCal13 in datasets, methods, and regional offset treatment, with implications for archaeological and geoscientific chronologies including Neanderthal extinction timing.
3
IntCal20 updates international 14C calibration curves for Northern and Southern Hemispheres and ocean surface layer, extending them to 55,000 cal BP.
4
Modeled marine reservoir ages from a 3D ocean circulation model replace constant regional offsets, enabling more appropriate reservoir corrections for marine 14C data.
5
New evaluation of dataset timescales and variable 14C offsets (reservoir age, dead carbon fraction) was implemented for each dataset.
6
New statistical methods refine calibration-curve structure while robustly treating uncertainties in 14C ages, calendar ages, and other corrections.
7
Tree-ring data now provide a continuous atmospheric 14C record in IntCal20 up to ~13,900 cal BP.
Research Object
The IntCal20 Northern Hemisphere radiocarbon (14C) age calibration curve for 0–55 cal kBP
Research Subject
Construction and refinement of the calibration curve including integration of new dated archives (tree rings, floating chronologies, lacustrine and marine sediments, speleothems, corals), improved timescale evaluation, reservoir/dead-carbon corrections, and statistical treatment of uncertainties and regional offsets
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2020-08-01
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