重庆金佛洞石笋记录的410 ka弱季风事件

许奕滨, 杨勋林, 袁道先, 胡明广, 葛晓艳, 龚萌. 重庆金佛洞石笋记录的410 ka弱季风事件[J]. 中国岩溶, 2024, 43(2): 219-227. doi: 10.11932/karst2024y019
引用本文: 许奕滨, 杨勋林, 袁道先, 胡明广, 葛晓艳, 龚萌. 重庆金佛洞石笋记录的410 ka弱季风事件[J]. 中国岩溶, 2024, 43(2): 219-227. doi: 10.11932/karst2024y019

重庆金佛洞石笋记录的410 ka弱季风事件

  • 基金项目: 国家自然科学基金项目(41971109,41572158);国家重点研发计划子课题项目(2016YFC0502301-1)
详细信息
    作者简介: 许奕滨(1998-),男,硕士研究生,研究方向:石笋古气候研究。E-mail: xyb1881@163.com
    通讯作者: 杨勋林(1974-),男,博士,教授,主要从事石笋古气候研究。E-mail: xlyang@swu.edu.cn
  • 中图分类号: P532

  • 冰消期或冰期由于冰盖消融引起淡水排放,容易造成不同纬度之间海洋-大气传输的异常,由此引发一系列或明显或不明显的千年级气候突变事件,如Younger Dryas(YD,新仙女木)和类似YD事件。MIS11c(深海氧同位素11阶段)作为当前全新世的最佳参照物之一,对期间可能发生的类YD事件及触发机制的研究有助于认识极端气候事件的发生规律。文章通过对重庆金佛洞石笋J33 δ18O序列记录的研究结果显示:(1)在MIS11间冰期盛期之前,亚洲季风气候区石笋揭示了一次发生于410 ka BP左右的千年尺度弱季风事件;(2) 410 ka弱季风事件与YD事件均发生于间冰期盛期之前季风逐渐增强过程中以及北半球夏季太阳辐射上升阶段,期间都发生了AMOC(大西洋经向翻转环流)扰动,除了在变化幅度、冰量条件等方面有些差异,事件的持续时间、内部结构、变化模式相似; (3) 410 ka弱季风事件主要受太阳辐射和AMOC共同驱动主导,持续较强的变暖进程加速了格陵兰冰盖融化并导致了冰盖的不稳定,淡水持续注入北大西洋,造成短暂的AMOC振荡。AMOC的减弱使得北大西洋上空产生了冷异常,通过大气遥相关作用导致了较弱的ASM(亚洲夏季风)。

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  • 图 1  金佛洞洞穴位置图

    Figure 1. 

    图 2  石笋J33剖面(A)和年龄模型(B)

    Figure 2. 

    图 3  金佛洞石笋J33 δ18O与三宝洞石笋SB14 δ18O对比

    Figure 3. 

    图 4  410 ka BP弱季风事件

    Figure 4. 

    图 5  410 ka弱季风事件与YD事件对比(改编自张日萍[38])

    Figure 5. 

    图 6  410 ka弱季风事件与YD事件期间全球部分记录的对比

    Figure 6. 

    表 1  石笋J33 230Th 测年结果(“*”指示新测得的数据)

    Table 1.  230Th date results for stalagmite J33 (‘*’ indicates the new measured data)

    样品
    编号
    深度
    /mm
    238U
    /×10−9
    232Th
    /×10−6
    230Th / 232Th
    /atomic×10−6
    δ234U
    /measured
    230Th / 238U
    /activity
    Age (ka BP)
    /uncorrected
    Age (ka BP)
    /corrected
    δ234UInitial
    /corrected
    J33-1 144.9 2516.4±0.1 884.9±10.2 72003.1±832.5 424.5±0.3 1.536±0.001 393.5±2.0 393.5±2.0 1288.5±7.5
    J33-2 185.7 2875.4±0.1 429.4±10.7 167329.4±4184.0 406.4±0.3 1.516±0.001 400.6±1.5 400.6±1.5 1258.9±5.3
    J33-3 196.9 2158.7±0.1 2182.9±11.0 24635.3±127.0 402.8±0.3 1.511±0.002 400.9±3.2 400.9±3.2 1248.6±11.2
    J33-4 230.9 3113.8±0.2 1397.6±9.8 55814.2±391.3 406.0±0.3 1.519±0.001 409.4±1.6 409.4±1.6 1288.8±5.9
    J33-5 268.7 2791.5±0.2 738.7±28.7 95730.9±3715.6 416.4±0.3 1.536±0.001 415.6±1.6 415.6±1.6 1345.7±6.1
    J33-6 301.2 2906.0±0.1 479.0±8.4 154689.1±2718.8 422.2±0.3 1.546±0.001 420.5±1.8 420.5±1.8 1383.2±7.1
    J33-7* 306.0 3621.9±8.7 672.0±1.6 137821.0±39.0 425.2±0.3 1.551±0.000 421.1±1.3 421.1±1.3 1395.4±5.3
    J33-8* 333.0 3173.3±7.7 607.6±1.5 134437.0±38.0 431.6±0.4 1.561±0.000 425.2±1.5 425.2±1.5 1432.7±6.2
    U 衰变常数: λ238 = 1.55125×10−10[13] 和 λ234 = 2.82206×10−6[11].衰减常数: λ230 = 9.1705×10−6[11]. δ234U = ([234U/238U] 活度 – 1) ×1000. δ234Uinitial was calculated based on 230Th age (T), i.e., δ234Uinitial = δ234Umeasured×eλ234×T. Corrected 230Th ages assume the initial 230Th/232Th atomic ratio of 4.4±2.2×10−6. Those are the values for a material at secular equilibrium, with the bulk earth 232Th/238U value of 3.8. The errors are arbitrarily assumed to be 50%. “BP” stands for “Before Present” where the “Present” is defined as the year 1950 CE.
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出版历程
收稿日期:  2023-04-14
修回日期:  2023-11-13
录用日期:  2024-01-09
刊出日期:  2024-04-25

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