A peat core with depths of 297 cm was obtained from the Dajiuhu Basin(31°29′27″N,109°59′45″E,1760 m)in Hubei Province,Central China.10 AMS ages provide a time control and reveal that this core spans the ...A peat core with depths of 297 cm was obtained from the Dajiuhu Basin(31°29′27″N,109°59′45″E,1760 m)in Hubei Province,Central China.10 AMS ages provide a time control and reveal that this core spans the past about 16.0 kaBP(calibrated age)(1 4C age:13.3 kaBP).Multi-proxy indexes analysis of geochemistry shows the following character of climate and environmental changes since about 16 kaBP:(1) The climate during the late-glacial period was cold and wet as a whole,but fluctuated continually.11.4- 12.6 cal.kaBP,12.6-15.2 cal.kaBP and 15.2-16 kaBP were corresponding respectively to the Younger Drays,Bφlling-Allerφd Warm Period and the Oldest Drays.(2)Inheriting the some climate characteristics of the late-glacial,the climate during the early-Holocene was wet and temperature increased gradually,during which an obvious dry event around 10.6 cal.kaB appeared.(3)The climate during the mid-Holocene was genarally warm and wet.During 9.2-7.5 kaBP,temperature increased gradually, precipitation was less comparatively and the 8.2 kaBP cold event which might be representative in the globe was reflected markedly.Then,multi-proxy records were relatively stable during 6.7-4.2 kaBP, which shows the best water and thermal condition in the Holocene Optimum.(4)Around 4.2 kaBP,the climate and environment transform from warm and wet to cool and dry,which may result in the collapse of the Neolithic Culture and midwifery the civilization of Xia Dynasty in this region.After 0.9 kaBP,the climate turned cool and wet.Climate and environmental changes archived in Dajiuhu peat respond to the global changes since the late-glacial period and can be contrasted to the changes recorded in other high-resolution archives from the East Asia Monsoon region,which take on the variety model that the monsoon strengthened abruptly after the late-glacial,was strong during the early Holocene,subse- quently declined and became weak after the middle Holocene with dry climate.According to our analysis,the driving mechanism should be the response of solar radiation changes in the East Asia Monsoon region at middle latitudes.展开更多
High-resolution peat humification records were obtained from Dajiuhu of the Shennongjia Mountains and Qianmutian of the Tianmu Mountains to study climate changes in East China.The analyses of pollen,organic matters,TO...High-resolution peat humification records were obtained from Dajiuhu of the Shennongjia Mountains and Qianmutian of the Tianmu Mountains to study climate changes in East China.The analyses of pollen,organic matters,TOC,and Rb/Sr indicate a high degree of peat humification and thus strong decomposition of organic matter when climate was dry.Conversely,when climate was humid,the degree of humification is low because peat was preserved in a waterlogged condition.Peat humification from Dajiuhu occurred not only during the Younger Dryas(about 11.4-12.6 cal ka BP),the Blling-Allerd Warm Period(12.6-15.2 cal ka BP),and the Oldest Dryas(about 15.2-16.0 cal ka BP),but also during the early Holocene(about 11.4-9.4 cal ka BP),the 8.2 cal ka BP cold event,and the Holocene Optimum(about 7.0-4.2 cal ka BP).Both peat humification records since nearly 5 ka BP are consistent,showing that mountain peatland has synchronous responses to the East Asia monsoon-induced precipitation.The LOI data confirm the above observation.The monsoon precipitation since nearly 5 ka BP recorded in these two peat profiles can be divided into three phases.During 4.9-3.5 ka BP,precipitation amount was high but fluctuated greatly.During 3.5-0.9 ka BP,precipitation amount was low.During 0.9-0 ka BP,degree of humification reduced gradually,indicating the increase of monsoon precipitation.Contrast to other high-resolution records from East China monsoon region shows that the monsoon precipitation records of the two peat profiles since nearly 16 ka BP are controlled by a common forcing mechanism of summer solar radicalization in the Northern Hemisphere.展开更多
选择位于河西走廊的花海古湖泊沉积剖面作为研究对象,根据13个普通14C和5个AMS14C年代结果,以沉积物岩性特征为主要指标,建立了晚冰期以来花海湖泊沉积的年代框架及环境变化过程。结果表明:花海地区新仙女木期和晚冰期花海湖泊主要以芒...选择位于河西走廊的花海古湖泊沉积剖面作为研究对象,根据13个普通14C和5个AMS14C年代结果,以沉积物岩性特征为主要指标,建立了晚冰期以来花海湖泊沉积的年代框架及环境变化过程。结果表明:花海地区新仙女木期和晚冰期花海湖泊主要以芒硝沉积为主,指示了较低的温度环境。芒硝沉积中的淤泥细线为短暂升温标志,芒硝-淤泥-芒硝的沉积韵律揭示了晚冰期和新仙女木期气候的不稳定性和温度的周期性变化。根据沉积过程和岩性特征,全新世花海湖泊在千年尺度上存在干湿变化特征。10.47cal ka BP之前的早全新世气候较为干旱,以冲洪积和风成砂为主的沉积过程,10.47~8.87cal ka BP的早全新世湖相沉积所揭示的气候由干到湿的转变期,8.87~5.5cal ka BP存在深湖相沉积的气候湿润期,5.5cal ka BP至今沉积间断所揭示的中晚全新世气候呈现干旱化趋势,湖泊趋于萎缩干涸。展开更多
南岭东部定南大湖盆地湖沼相沉积高分辨率记录揭示了16.0cal ka BP以来的水文变化过程。由于该盆地主要以降水补给为主,故其水文变化过程是该地区气候与环境变化的忠实反映。多气候代用指标揭示晚冰期以来的Oldest Dryas、Blling、Old...南岭东部定南大湖盆地湖沼相沉积高分辨率记录揭示了16.0cal ka BP以来的水文变化过程。由于该盆地主要以降水补给为主,故其水文变化过程是该地区气候与环境变化的忠实反映。多气候代用指标揭示晚冰期以来的Oldest Dryas、Blling、Older Dryas、Allerd和Younger Dryas等短尺度气候快速变化事件。10.0~6.0cal ka BP期间,该地区降水最为丰沛,暗示了夏季风在该时期最强盛,但在约9.7~9.4cal ka BP和8.8~8.2calka BP前后出现过降水骤减事件;在6.0~3.0cal ka BP期间,研究区降水显著减少,夏季风势力明显减弱。大湖盆地全新世气候变化记录与我国低纬度区域近年来的研究记录具有很好的一致性,说明低纬地区全新世适宜期应在10.0~6.0cal ka BP期间。在全球气候变化对比上,大湖盆地降水减少时期大多对应于北大西洋深水流或温盐循环减弱时期,也对应于北大西洋浮冰砾高峰时期;早全新世(10.0~6.0cal ka BP)降水丰沛期对应于北大西洋深水流加强时期;表明北大西洋深水流变化所导致的高低纬地区热量差异与我国低纬季风区过去气候变化有某种遥相关。此外,大湖盆地晚冰期以来气候变化趋势与北半球夏季太阳辐射量变化趋势吻合。因此笔者认为东亚低纬季风区晚冰期以来气候变化机制与太阳辐射量变化、大洋温盐循环等有关。展开更多
通过分析河西走廊花海古湖泊沉积物中的盐类矿物组成,结合年代序列,重建了花海晚冰期以来湖泊演化过程及其对气候变化的响应。结果表明:晚冰期及新仙女木时期,花海湖泊以芒硝沉积为主,属硫酸盐型湖泊,湖水的盐度较高且周期性波动...通过分析河西走廊花海古湖泊沉积物中的盐类矿物组成,结合年代序列,重建了花海晚冰期以来湖泊演化过程及其对气候变化的响应。结果表明:晚冰期及新仙女木时期,花海湖泊以芒硝沉积为主,属硫酸盐型湖泊,湖水的盐度较高且周期性波动频繁;全新世早期(10.47 cal ka BP以前),湖泊以洪泛堆积和风成沉积为主,揭示了湖泊萎缩、甚至干涸;全新世早期至全新世中期(10.47~8.87 cal ka BP)盐类矿物以碳酸盐沉积为主,为碳酸盐型湖泊,湖水淡化,湖泊水位开始逐渐回升;全新世中期(8.87~5.50 cal ka BP)盐类矿物呈现一定的波动变化,其中,8.8 cal ka BP 时期盐类矿物以硫酸盐沉积为主,湖泊由碳酸盐型转化为硫酸盐型,湖水咸化,盐度升高;随后盐类矿物以碳酸盐沉积为主,湖泊由硫酸盐型转化为碳酸盐型,湖水盐度降低、湖泊扩张;全新世中晚期(5.50 cal ka BP以来)出现沉积间断,表明中晚全新世时期湖泊逐渐萎缩。在全新世期间,花海湖泊千年尺度演化过程揭示了该区域气候干湿状况受亚洲季风和西风共同控制的影响。展开更多
对位于北疆福海县的乌伦古湖Ulungur10B孔岩芯进行分析,以AMS^(14)C测年为年代框架,结合粒度、烧失量和色度指标重建了该地区12.3 cal ka BP以来的古环境演化。结果显示:12.3~11.2 cal ka BP期间,湖泊有机质含量较高,区域有效湿度较大;1...对位于北疆福海县的乌伦古湖Ulungur10B孔岩芯进行分析,以AMS^(14)C测年为年代框架,结合粒度、烧失量和色度指标重建了该地区12.3 cal ka BP以来的古环境演化。结果显示:12.3~11.2 cal ka BP期间,湖泊有机质含量较高,区域有效湿度较大;11.2~7.4 cal ka BP期间,沉积物平均粒径大,有机质含量低,色度a*值、b*值偏大,区域气候冷干,湖面水位较低;7.4~4.3 cal kaBP期间,沉积物平均粒径减小,有机质含量升高,色度a*值、b*值减小,区域气候暖湿,湖泊水位较高;4.3 cal ka BP以来指标在波动中变化,反映湖泊水位在波动中变化,区域有效湿度有所降低。乌伦古湖晚冰期以来古环境演化与周边环境记录一致,气候变化模式符合中亚干旱区全新世气候变化的西风模式。展开更多
选取青藏高原36条(34个地点)由孢粉已重建的降水序列(8条)和化石孢粉谱(28条),分别采用直接提取和现代类比法获得1852个具有年代的定量降水数据,以高原4个分区为单位,建立青藏高原晚冰期以来古降水数据集。构建分区古降水空间模拟-多区...选取青藏高原36条(34个地点)由孢粉已重建的降水序列(8条)和化石孢粉谱(28条),分别采用直接提取和现代类比法获得1852个具有年代的定量降水数据,以高原4个分区为单位,建立青藏高原晚冰期以来古降水数据集。构建分区古降水空间模拟-多区面积加权的集成方法,即借助GIS分析,基于现代高原降水空间分布的地理因子模拟,集成重建晚冰期以来高原古降水序列。结果表明:16~12 ka B.P.,高原总体降水量较少,其中16 ka B.P.不到200 mm,约为现代降水量的一半,15~13 ka B.P.后降水显著增长,较前期上升70 mm;13~12 ka B.P.,又跌至220 mm,较现代低100 mm。进入全新世后,降水量迅速增长,降水在全新世早期的9.2~8.7 ka B.P.即达到最大值,高出现代70 mm,9.2~5.0 ka B.P.为全新世湿润期,平均高出现代50 mm;5 ka B.P.之后,降水波动较小,与现代基本持平。集成降水与其他高低分辨率环境记录有很好的可比性,说明集成序列有很好的代表性和一定的准确性。此外,高原降水变化区域差异明显,全新世最大降水呈现出西早东晚,西南季风(ISM)区早于东南季风(EASM)区的特点,高原西部和南部全新世早期9 ka B.P.左右即达极大值,而高原东缘迟至全新世中期的8.0~7.5 ka B.P.;降水增加最为明显的是高原西北部,最盛期降水约高出为现代的1倍,高原东部和南部现季风控制区域,只比现代高出0.2倍。展开更多
基金Supported by the Key Project of the National Natural Science Foundation of China(Grant No.90411015)the Project of the National Natural Science Foundation ofChina(Grant No.40701190)+3 种基金the University Doctoral Foundation(Grant No.20050284011)the Foundation of Important Basic Research at Nanjing University(Grant No.0209005206)the Open Foundation of the State Key Laboratory of Loessand Quaternary Geology from the Institute of Earth Environment,CAS(Grant No.SKLLQG0503)the Physical Geography of"985"Items and the Test Foundation ofModern Analyses Center of Nanjing University(Grant No.0209001309)
文摘A peat core with depths of 297 cm was obtained from the Dajiuhu Basin(31°29′27″N,109°59′45″E,1760 m)in Hubei Province,Central China.10 AMS ages provide a time control and reveal that this core spans the past about 16.0 kaBP(calibrated age)(1 4C age:13.3 kaBP).Multi-proxy indexes analysis of geochemistry shows the following character of climate and environmental changes since about 16 kaBP:(1) The climate during the late-glacial period was cold and wet as a whole,but fluctuated continually.11.4- 12.6 cal.kaBP,12.6-15.2 cal.kaBP and 15.2-16 kaBP were corresponding respectively to the Younger Drays,Bφlling-Allerφd Warm Period and the Oldest Drays.(2)Inheriting the some climate characteristics of the late-glacial,the climate during the early-Holocene was wet and temperature increased gradually,during which an obvious dry event around 10.6 cal.kaB appeared.(3)The climate during the mid-Holocene was genarally warm and wet.During 9.2-7.5 kaBP,temperature increased gradually, precipitation was less comparatively and the 8.2 kaBP cold event which might be representative in the globe was reflected markedly.Then,multi-proxy records were relatively stable during 6.7-4.2 kaBP, which shows the best water and thermal condition in the Holocene Optimum.(4)Around 4.2 kaBP,the climate and environment transform from warm and wet to cool and dry,which may result in the collapse of the Neolithic Culture and midwifery the civilization of Xia Dynasty in this region.After 0.9 kaBP,the climate turned cool and wet.Climate and environmental changes archived in Dajiuhu peat respond to the global changes since the late-glacial period and can be contrasted to the changes recorded in other high-resolution archives from the East Asia Monsoon region,which take on the variety model that the monsoon strengthened abruptly after the late-glacial,was strong during the early Holocene,subse- quently declined and became weak after the middle Holocene with dry climate.According to our analysis,the driving mechanism should be the response of solar radiation changes in the East Asia Monsoon region at middle latitudes.
基金Supported by National Key Technology R&D Program (Grant No.2006BAK21B02)the National Natural Science Foundation of China (Grant No.40701190)+2 种基金the Key Project of the National Natural Science Foundation of China (Grant No.90411015)the University Doctoral Foundation of China (Grant No.20070284067)the Test Foundation of Modern Analyses Center of Nanjing University
文摘High-resolution peat humification records were obtained from Dajiuhu of the Shennongjia Mountains and Qianmutian of the Tianmu Mountains to study climate changes in East China.The analyses of pollen,organic matters,TOC,and Rb/Sr indicate a high degree of peat humification and thus strong decomposition of organic matter when climate was dry.Conversely,when climate was humid,the degree of humification is low because peat was preserved in a waterlogged condition.Peat humification from Dajiuhu occurred not only during the Younger Dryas(about 11.4-12.6 cal ka BP),the Blling-Allerd Warm Period(12.6-15.2 cal ka BP),and the Oldest Dryas(about 15.2-16.0 cal ka BP),but also during the early Holocene(about 11.4-9.4 cal ka BP),the 8.2 cal ka BP cold event,and the Holocene Optimum(about 7.0-4.2 cal ka BP).Both peat humification records since nearly 5 ka BP are consistent,showing that mountain peatland has synchronous responses to the East Asia monsoon-induced precipitation.The LOI data confirm the above observation.The monsoon precipitation since nearly 5 ka BP recorded in these two peat profiles can be divided into three phases.During 4.9-3.5 ka BP,precipitation amount was high but fluctuated greatly.During 3.5-0.9 ka BP,precipitation amount was low.During 0.9-0 ka BP,degree of humification reduced gradually,indicating the increase of monsoon precipitation.Contrast to other high-resolution records from East China monsoon region shows that the monsoon precipitation records of the two peat profiles since nearly 16 ka BP are controlled by a common forcing mechanism of summer solar radicalization in the Northern Hemisphere.
文摘选择位于河西走廊的花海古湖泊沉积剖面作为研究对象,根据13个普通14C和5个AMS14C年代结果,以沉积物岩性特征为主要指标,建立了晚冰期以来花海湖泊沉积的年代框架及环境变化过程。结果表明:花海地区新仙女木期和晚冰期花海湖泊主要以芒硝沉积为主,指示了较低的温度环境。芒硝沉积中的淤泥细线为短暂升温标志,芒硝-淤泥-芒硝的沉积韵律揭示了晚冰期和新仙女木期气候的不稳定性和温度的周期性变化。根据沉积过程和岩性特征,全新世花海湖泊在千年尺度上存在干湿变化特征。10.47cal ka BP之前的早全新世气候较为干旱,以冲洪积和风成砂为主的沉积过程,10.47~8.87cal ka BP的早全新世湖相沉积所揭示的气候由干到湿的转变期,8.87~5.5cal ka BP存在深湖相沉积的气候湿润期,5.5cal ka BP至今沉积间断所揭示的中晚全新世气候呈现干旱化趋势,湖泊趋于萎缩干涸。
文摘南岭东部定南大湖盆地湖沼相沉积高分辨率记录揭示了16.0cal ka BP以来的水文变化过程。由于该盆地主要以降水补给为主,故其水文变化过程是该地区气候与环境变化的忠实反映。多气候代用指标揭示晚冰期以来的Oldest Dryas、Blling、Older Dryas、Allerd和Younger Dryas等短尺度气候快速变化事件。10.0~6.0cal ka BP期间,该地区降水最为丰沛,暗示了夏季风在该时期最强盛,但在约9.7~9.4cal ka BP和8.8~8.2calka BP前后出现过降水骤减事件;在6.0~3.0cal ka BP期间,研究区降水显著减少,夏季风势力明显减弱。大湖盆地全新世气候变化记录与我国低纬度区域近年来的研究记录具有很好的一致性,说明低纬地区全新世适宜期应在10.0~6.0cal ka BP期间。在全球气候变化对比上,大湖盆地降水减少时期大多对应于北大西洋深水流或温盐循环减弱时期,也对应于北大西洋浮冰砾高峰时期;早全新世(10.0~6.0cal ka BP)降水丰沛期对应于北大西洋深水流加强时期;表明北大西洋深水流变化所导致的高低纬地区热量差异与我国低纬季风区过去气候变化有某种遥相关。此外,大湖盆地晚冰期以来气候变化趋势与北半球夏季太阳辐射量变化趋势吻合。因此笔者认为东亚低纬季风区晚冰期以来气候变化机制与太阳辐射量变化、大洋温盐循环等有关。
文摘通过分析河西走廊花海古湖泊沉积物中的盐类矿物组成,结合年代序列,重建了花海晚冰期以来湖泊演化过程及其对气候变化的响应。结果表明:晚冰期及新仙女木时期,花海湖泊以芒硝沉积为主,属硫酸盐型湖泊,湖水的盐度较高且周期性波动频繁;全新世早期(10.47 cal ka BP以前),湖泊以洪泛堆积和风成沉积为主,揭示了湖泊萎缩、甚至干涸;全新世早期至全新世中期(10.47~8.87 cal ka BP)盐类矿物以碳酸盐沉积为主,为碳酸盐型湖泊,湖水淡化,湖泊水位开始逐渐回升;全新世中期(8.87~5.50 cal ka BP)盐类矿物呈现一定的波动变化,其中,8.8 cal ka BP 时期盐类矿物以硫酸盐沉积为主,湖泊由碳酸盐型转化为硫酸盐型,湖水咸化,盐度升高;随后盐类矿物以碳酸盐沉积为主,湖泊由硫酸盐型转化为碳酸盐型,湖水盐度降低、湖泊扩张;全新世中晚期(5.50 cal ka BP以来)出现沉积间断,表明中晚全新世时期湖泊逐渐萎缩。在全新世期间,花海湖泊千年尺度演化过程揭示了该区域气候干湿状况受亚洲季风和西风共同控制的影响。
文摘对位于北疆福海县的乌伦古湖Ulungur10B孔岩芯进行分析,以AMS^(14)C测年为年代框架,结合粒度、烧失量和色度指标重建了该地区12.3 cal ka BP以来的古环境演化。结果显示:12.3~11.2 cal ka BP期间,湖泊有机质含量较高,区域有效湿度较大;11.2~7.4 cal ka BP期间,沉积物平均粒径大,有机质含量低,色度a*值、b*值偏大,区域气候冷干,湖面水位较低;7.4~4.3 cal kaBP期间,沉积物平均粒径减小,有机质含量升高,色度a*值、b*值减小,区域气候暖湿,湖泊水位较高;4.3 cal ka BP以来指标在波动中变化,反映湖泊水位在波动中变化,区域有效湿度有所降低。乌伦古湖晚冰期以来古环境演化与周边环境记录一致,气候变化模式符合中亚干旱区全新世气候变化的西风模式。
文摘选取青藏高原36条(34个地点)由孢粉已重建的降水序列(8条)和化石孢粉谱(28条),分别采用直接提取和现代类比法获得1852个具有年代的定量降水数据,以高原4个分区为单位,建立青藏高原晚冰期以来古降水数据集。构建分区古降水空间模拟-多区面积加权的集成方法,即借助GIS分析,基于现代高原降水空间分布的地理因子模拟,集成重建晚冰期以来高原古降水序列。结果表明:16~12 ka B.P.,高原总体降水量较少,其中16 ka B.P.不到200 mm,约为现代降水量的一半,15~13 ka B.P.后降水显著增长,较前期上升70 mm;13~12 ka B.P.,又跌至220 mm,较现代低100 mm。进入全新世后,降水量迅速增长,降水在全新世早期的9.2~8.7 ka B.P.即达到最大值,高出现代70 mm,9.2~5.0 ka B.P.为全新世湿润期,平均高出现代50 mm;5 ka B.P.之后,降水波动较小,与现代基本持平。集成降水与其他高低分辨率环境记录有很好的可比性,说明集成序列有很好的代表性和一定的准确性。此外,高原降水变化区域差异明显,全新世最大降水呈现出西早东晚,西南季风(ISM)区早于东南季风(EASM)区的特点,高原西部和南部全新世早期9 ka B.P.左右即达极大值,而高原东缘迟至全新世中期的8.0~7.5 ka B.P.;降水增加最为明显的是高原西北部,最盛期降水约高出为现代的1倍,高原东部和南部现季风控制区域,只比现代高出0.2倍。