MIS3以来黄土高原东南部石笋阶段性沉积记录的夏季风演化

董进国, 董梦彩, 熬贵福, 黄姜楠. MIS3以来黄土高原东南部石笋阶段性沉积记录的夏季风演化[J]. 海洋地质与第四纪地质, 2018, 38(5): 171-177. doi: 10.16562/j.cnki.0256-1492.2018.05.016
引用本文: 董进国, 董梦彩, 熬贵福, 黄姜楠. MIS3以来黄土高原东南部石笋阶段性沉积记录的夏季风演化[J]. 海洋地质与第四纪地质, 2018, 38(5): 171-177. doi: 10.16562/j.cnki.0256-1492.2018.05.016
DONG Jinguo, DONG Mengcai, AO Guifu, HUANG Jiangnan. Variation of East Asian summer monsoon since MIS3 recorded by an absolutely-dated stalagmite from north China[J]. Marine Geology & Quaternary Geology, 2018, 38(5): 171-177. doi: 10.16562/j.cnki.0256-1492.2018.05.016
Citation: DONG Jinguo, DONG Mengcai, AO Guifu, HUANG Jiangnan. Variation of East Asian summer monsoon since MIS3 recorded by an absolutely-dated stalagmite from north China[J]. Marine Geology & Quaternary Geology, 2018, 38(5): 171-177. doi: 10.16562/j.cnki.0256-1492.2018.05.016

MIS3以来黄土高原东南部石笋阶段性沉积记录的夏季风演化

  • 基金项目:
    国家自然科学基金项目“黄土高原末次冰期以来气候变化模式及突变事件的高分辨率石笋记录研究”(41472317);江苏省高校优秀中青年教师和校长境外研修计划
详细信息
    作者简介: 董进国(1978—),男,副教授,第四纪年代学与环境演变专业,E-mail:dongjinguo1111@163.com
  • 中图分类号: P534.63

  • 蔡秋蓉编辑

Variation of East Asian summer monsoon since MIS3 recorded by an absolutely-dated stalagmite from north China

  • 基于山西龙洞8个铀钍年代和100个氧同位素数据(δ18O)重建了深海氧同位素(MIS)3阶段以来东亚夏季风演化历史。石笋L8沉积并不连续,主要生长在58.0~54.5, 27.1~18.0和6.8~3.9kaBP 3个阶段。不同于季风边缘区其他洞穴记录,石笋δ18O值在24.5kaBP突然增加1‰,表明MIS2早期内陆地区经历了一次显著的弱季风过程,可能响应于北大西洋Heinrich 2事件。石笋δ18O序列伴随着轨道尺度太阳辐射的变化,晚全新世δ18O值持续偏重意味着低纬热带辐合带逐步南移,导致北方地区夏季风降水持续减少。Dansgaard-Oeschger(D-O)15事件具有明显的双峰结构,与格陵兰冰心记录的亚千年尺度温度波动几乎同步变化。

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  • 图 1  山西龙洞石笋年龄-深度与岩心图

    Figure 1. 

    图 2  山西龙洞(黑色)和江苏葫芦洞(灰色)石笋δ18O记录对比

    Figure 2. 

    图 3  山西龙洞、江苏葫芦洞、贵州雾露洞和格陵兰NGRIP冰心δ18O记录对比

    Figure 3. 

    表 1  石笋L8的ICP-MS测年结果

    Table 1.  The results of ICP-MS 230Th dating for stalagmite L8

    样品号-深度 238U ×10-9 232Th ×10-12 234U测量值a [230Th/238U]活度比c 未校正年龄(aBP) 校正年龄(aBP)c, d δ234Uinitial校正初始值b
    L8-3 621±1 70±5 3718±6.0 0.1693±0.0008 3905±19 3905±19 3760±6
    L8-20 492±1 2897±19 3716±12 0.2455±0.0016 5730±41 5679±44 3777±12
    L8-26 476±1 1540±6 3701±4 0.2886±0.0013 6794±33 6776±34 3773±5
    L8-36 1194±2 51±5 3528±7 0.7362±0.0016 18861±54 18859±54 3722±7
    L8-52 1614±2 238±7 3522.8±6 0.8688±0.0020 22580±64 22579±64 3755±6
    L8-71 903±1 87±4 3491.2±5 1.0168±0.0019 27027±67 27027±67 3769±6
    L8-79 2117±4 208±18 2997.0±8 1.6756±0.0038 55079±201 55079±201 3502±9
    L8-92 1177±12 68±5 2959.7±6 1.7070±0.0036 57015±177 57013±177 3477±7
    注:a.δ234U=([δ234U/δ238U]activity-1)x1000;b.δ234Uinitial校正初始值计算是依据公式δ234Uinitial234Umeasured×eλ234*T; T是校正年龄; c.[230Th/238U]活度计算为[230Th/238U]activity=1-e-λ230T+(δ234Umeasured/1000)[λ230/(λ230234)](1-e-(λ230-λ234)T); 230Th, 234U, 及238U半衰期沿用Shen等的使用值[10]; d.校正年龄假设的初始230Th/232Th原子数比值为4±2×10-6; 年龄(aBP)以相对公元1950年表示
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出版历程
收稿日期:  2017-06-19
修回日期:  2018-01-23
刊出日期:  2018-10-28

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