首页> 外文期刊>Climate of the Past Discussions >Orbitally tuned timescale and astronomical forcing in the middle Eocene to early Oligocene
【24h】

Orbitally tuned timescale and astronomical forcing in the middle Eocene to early Oligocene

机译:在中间ocene到早期少茂的轨道调整时间尺度和天文强迫

获取原文
获取外文期刊封面目录资料

摘要

Deciphering the driving mechanisms of Earth system processes, including the climate dynamics expressed as paleoceanographic events, requires a complete, continuous, and high-resolution stratigraphy that is very accurately dated. In this study, a robust astronomically calibrated age model was constructed for the middle Eocene to early Oligocene interval (31–43 Ma) in order to permit more detailed study of the exceptional climatic events that occurred during this time, including the middle Eocene climate optimum and the Eocene–Oligocene transition. A goal of this effort is to accurately date the middle Eocene to early Oligocene composite section cored during the Pacific Equatorial Age Transect (PEAT, IODP Exp. 320/321). The stratigraphic framework for the new timescale is based on the identification of the stable long eccentricity cycle in published and new high-resolution records encompassing bulk and benthic stable isotope, calibrated XRF core scanning, and magnetostratigraphic data from ODP Sites 171B-1052, 189-1172, 199-1218, and 207-1260 as well as IODP Sites 320-U1333, and 320-U1334 spanning magnetic polarity Chrons C12n to C20n. Subsequently orbital tuning of the records to the La2011 orbital solution was conducted. The resulting new timescale revises and refines the existing orbitally tuned age model and the geomagnetic polarity timescale from 31 to 43 Ma. The newly defined absolute age for the Eocene–Oligocene boundary validates the astronomical tuned age of 33.89 Ma identified at the Massignano, Italy, global stratotype section and point. The compilation of geochemical records of climate-controlled variability in sedimentation through the middle-to-late Eocene and early Oligocene demonstrates strong power in the eccentricity band that is readily tuned to the latest astronomical solution. Obliquity driven cyclicity is only apparent during 2.4 myr eccentricity cycle minima around 35.5, 38.3, and 40.1 Ma.
机译:解密地球系统过程的驱动机制,包括作为古生美食事件的气候动态,需要一个非常准确地日期的完整,连续和高分辨率的地层。在这项研究中,为中期何种植物(31-43 mA)构建了一种稳健的天文校准年龄模型,以允许更详细地研究此时发生的特殊气候事件,包括中期气候最佳和群岛 - 寡核苷酸过渡。这项努力的目标是在太平洋赤道时代横断(PEAT,IODP EXP,320/321)中准确地将中期植入核心核心的早期寡核苷酸复合部分。新时间尺度的地层框架是基于出版和新的高分辨率记录中稳定的长偏心周期的识别,包括散装和弯曲的稳定同位素,校准XRF核心扫描和来自ODP站点171b-1052,189-的磁性数据库数据1172,19-1218和207-1260以及IODP站点320-U1333和320-U1334跨越磁极性计数C12N至C20N。随后进行了对La2011轨道溶液的记录的轨道调整。由此产生的新时间尺度改变并改进现有的轨道调谐年龄模型和从31到43 mA的地磁极性少量尺寸。新定定义的何寡核苷界界限的绝对年龄验证了Massignano,意大利,全球划线部分和点上鉴定的33.89 mA的天文调谐年龄。通过中期何期和早期寡烯植物沉淀地球化学记录的地球化学记录的汇编证明了偏心频段的强大力量,即最新的天文解决方案。在2.4 MYR偏心循环最小值左右,倾斜驱动的循环只有明显的35.5,38.3和40.1 mA。

著录项

获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号