Orbital Pacing of the Oligocene–Miocene Carbon Cycle: A Weathering–Carbonate Burial Mechanism
编号:1525 访问权限:仅限参会人 更新:2026-09-01 01:13:15 浏览:0次 特邀报告

报告开始:暂无开始时间(Asia/Shanghai)

报告时间:暂无持续时间

所在会场:[暂无会议] [暂无会议段]

暂无文件

摘要
For much of the last 66 million years, Earth's climate and carbon cycle have varied in synchrony on eccentricity timescales. The signals of global temperature and ice volume (δ¹⁸O) and the ocean's carbon budget (δ¹³C), recorded in the shells of ancient deep-sea organisms, rose and fell in phase for tens of millions of years. Yet the mechanism behind this persistent relationship has remained one of paleoceanography's enduring puzzles.

Our study addresses this mystery through new ultra-high-resolution data from IODP Site U1505 in the South China Sea, spanning the Miocene epoch (24–13 Ma), a critical period when only Antarctica was glaciated and the climate was warmer than today. Using benthic foraminiferal B/Ca and Cd/Ca ratios, we reconstructed deep-sea carbonate ion saturation (Δ[CO₃²⁻]) and phosphate concentration ([PO₄³⁻]) across this interval. Our results reveal that these proxies pulse with the same 405-kyr and 100-kyr eccentricity cycles that dominate the isotopic records. Critically, Δ[CO₃²⁻] varies in phase with δ¹⁸O and δ¹³C: at eccentricity maxima, when climate was warmest, deep waters became more corrosive and recorded lighter carbon isotopic values. This pattern is mirrored in global deep-sea CaCO₃ records, which show intensified dissolution at the same warm peaks.

To explain these observations, we developed a biogeochemical model of the global carbon cycle forced by orbital variations. The model, combined with our proxy data, reveals a coherent mechanism: eccentricity maxima amplify monsoon rainfall and intensify continental chemical weathering. This process delivers large fluxes of dissolved inorganic carbon (DIC) and alkalinity to the ocean. Coupled with higher sea levels, this influx drives massive carbonate precipitation and burial on the newly submerged continental shelves. This shallow-water carbonate sink draws alkalinity from the ocean, leaving deep waters depleted in carbonate ions and with a lighter δ¹³C signature.

Our model confirms that riverine input of isotopically light carbon, combined with the preferential burial of ¹³C-enriched carbonates on shelves, fully accounts for the ~1‰ fluctuations observed in deep-sea δ¹³C. This "weathering and carbonate burial" hypothesis provides a unified framework explaining the in-phase correlation between temperature, the carbon cycle, and deep-sea carbonate chemistry on eccentricity timescales.

Importantly, this mechanism was not confined to the Miocene. Similar eccentricity-paced covariation in benthic isotopes and carbonate records from the Oligocene (~34–23 Ma) indicates that the same process was operative throughout unipolar-glaciated intervals. The system only fundamentally reorganized after ~6 Ma, when the onset of bipolar glaciation shifted the dominant carbon-cycle feedbacks from low-latitude weathering to high-latitude ice-sheet interactions, reversing the phase relationship between δ¹⁸O and δ¹³C. 
 
关键词
暂无
报告人
Enqing Huang
Prof. State Key Laboratory of Marine Geology, Tongji University

稿件作者
Enqing Huang State Key Laboratory of Marine Geology, Tongji University
发表评论
验证码 看不清楚,更换一张
全部评论
重要日期
  • 会议日期

    01月12日

    2027

    01月15日

    2027

  • 07月21日 2026

    初稿截稿日期

  • 01月15日 2027

    注册截止日期

主办单位
State Key Laboratory of Marine Environmental Science, Xiamen University (MEL)
Department of Earth Sciences, National Natural Science Foundation of China (NSFC)
联系方式
历届会议
移动端
在手机上打开
小程序
打开微信小程序
客服
扫码或点此咨询