Liu Fenghao, Du Jinlong, Huang Enqing, Ma Wentao, Ma Xiaolin, Lourens Lucas J, Tian Jun
State Key Laboratory of Marine Geology, Tongji University, Shanghai 200092, China.
State Key Laboratory of Marine Geology, Tongji University, Shanghai 200092, China.
Sci Bull (Beijing). 2024 Mar 30;69(6):823-832. doi: 10.1016/j.scib.2023.12.052. Epub 2024 Jan 2.
Global warming during the Miocene Climate Optimum (MCO, ∼17-14 million years ago) is associated with massive carbon emissions sourced from the flood basalt volcanism and ocean crustal production. However, the perturbation of tectonic carbon degassing on the interaction between climate change and carbon cycle remains unclear. Here, through time-evolutive phase analysis of new and published high-resolution benthic foraminiferal oxygen (δO) and carbon (δC) isotope records from the global ocean, we find that variations in the marine carbon cycle lead the climate-cryosphere system (δC-lead-δO) on 405,000-year eccentricity timescales during the MCO. This is in contrast to the previously reported climate-lead-carbon (δO-lead-δC) scenario during most of the Oligo-Miocene (∼34-6 million years ago). Further sensitivity analysis and model simulations suggest that the elevated atmospheric CO concentrations and the resulting greenhouse effect strengthened the low-latitude hydrological cycle during the MCO, accelerating the response of marine carbon cycle to eccentricity forcing. Tropical climate processes played a more important role in regulating carbon-cycle variations when Earth's climate was in a warm regime, as opposed to the dominant influence of polar ice-sheet dynamics during the Plio-Pleistocene (after ∼6 million years ago).
中新世气候适宜期(MCO,约1700万至1400万年前)的全球变暖与来自洪流玄武岩火山活动和洋壳生成的大量碳排放有关。然而,构造碳脱气对气候变化与碳循环之间相互作用的扰动仍不清楚。在此,通过对全球海洋新的和已发表的高分辨率底栖有孔虫氧(δO)和碳(δC)同位素记录进行时间演化阶段分析,我们发现,在MCO期间,海洋碳循环的变化在40.5万年的偏心率时间尺度上领先于气候 - 冰冻圈系统(δC领先δO)。这与之前报道的渐新世 - 中新世大部分时期(约3400万至600万年前)气候领先碳(δO领先δC)的情况形成对比。进一步的敏感性分析和模型模拟表明,MCO期间大气CO浓度升高以及由此产生的温室效应增强了低纬度水文循环,加速了海洋碳循环对偏心率强迫的响应。当地球气候处于温暖状态时,热带气候过程在调节碳循环变化中发挥了更重要的作用,这与上新世 - 更新世(约600万年前之后)极地冰盖动力学的主导影响相反。