Reducing Disparity in Radio-Isotopic and Astrochronology-Based Time Scales of the Late Eocene and Oligocene

D. Sahy, D. Condon, F. Hilgen, K. Kuiper
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引用次数: 19

Abstract

A significant discrepancy of up to 0.6 Myr exists between radio-isotopically calibrated and astronomically tuned time scales of the late Eocene-Oligocene. We explore the possible causes of this discrepancy through the acquisition of “high-precision” 206Pb/238U dating of zircons from 11 volcanic ash beds from the Umbria-Marche sedimentary succession, which hosts the Global Stratotype Section and Point for the base of the Oligocene. Our results indicate that the four 40Ar/39Ar dates from the Umbria-Marche succession, which underpin the late Eocene-Oligocene portion of the Paleogene geomagnetic polarity time scale in the 2012 edition of the Geological Time Scale, are anomalously old by up to 0.5 Myr. Conversely, when integrated with the established magnetic polarity record of the Umbria-Marche succession, 206Pb/238U (zircon) data from this study result in Oligocene magnetic reversal ages that are generally equivalent to those obtained through the tuning of Ocean Drilling Program (ODP) Site 1218 (equatorial Pacific). Furthermore, our results indicate that the late Eocene tuning of ODP Site 1218, and International Ocean Discovery Program (IODP) Sites U1333–1334 (equatorial Pacific), to the 405 kyr eccentricity signal is accurate, at least back to 36 Ma. Propagating the full uncertainty of our radio-isotopic data set and, where appropriate, taking into account locally derived astronomical time scales, we arrive at an age of 34.09 ± 0.08 Ma for the Eocene-Oligocene boundary and 28.11 ± 0.17 Ma for the base of the Chattian.
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缩小晚始新世和渐新世放射性同位素和天体年代学时间尺度的差异
晚始新世—渐新世的放射性同位素校准时间尺度与天文校正时间尺度的差异高达0.6 Myr。我们通过对Umbria-Marche沉积序列中11个火山灰层的锆石进行“高精度”206Pb/238U测年,探讨了这种差异的可能原因。Umbria-Marche沉积序列是渐新世基底的全球层型剖面和点。结果表明,支撑2012年版古近系地磁极性时间尺度晚始新世-渐新世部分的Umbria-Marche演替中的4个40Ar/39Ar年代,其异常年龄高达0.5 Myr。相反,与已建立的翁布里亚-马尔切演替磁极记录相结合,本研究得到的206Pb/238U(锆石)数据得到的渐新世地磁反转年龄与ODP 1218(赤道太平洋)测点调优结果大致相当。此外,我们的结果表明,ODP站点1218和IODP站点U1333-1334(赤道太平洋)的晚始新世校正到405 kyr的偏心率信号是准确的,至少可以追溯到36 Ma。考虑到我们的放射性同位素数据集的全部不确定性,在适当的情况下,考虑到当地导出的天文时间尺度,我们得出始新世-渐新世边界的年龄为34.09±0.08 Ma, Chattian基底的年龄为28.11±0.17 Ma。
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Paleoceanography
Paleoceanography 地学-地球科学综合
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