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地质学报  2004 

西藏纳木错地区约120kaBP以来的古植被、古气候与湖面变化

, PP. 242-252

Keywords: 西藏纳木错,孢粉记录,古植被,古气候,湖面变化

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Abstract:

西藏纳木错湖相沉积的U系和^11C测年结果表明,湖泊沿岸的6级湖岸阶地及拔湖约48~139.2m的高位湖相沉积形成于约120kaBP以来的晚第四纪。本文根据该套湖相层的发育和其中的孢粉组合特征对纳木错地区约120kaBP以来的湖面变化与古植被、古气候变迁进行了探讨。结果表明,纳木错地区晚更新世以来经历了频繁的湖面波动、气候的冷暖与干湿变化以及森林―草原与草原植被的交替演化。其总体特征是:约115.9kaBP时,纳木错湖面最高。在116~78kaBP期间,该区气候温和凉爽或温和偏湿,植被以疏林草原与森林草原或森林的交替出现为特征,湖面经历了较大幅度的波动,但基本保持在拔湖140~88m之间。在78~53kaBP期间,该区气候干冷,植被以疏林草原为主,湖面大幅度下降,并在拔湖约36~48m之间波动。约53~32kaBP期间,气候转为温暖偏湿或温暖湿润,湖面波动于拔湖约15~28m之间,波动较为频繁。与阶地的发育相对应,该时期内包含了3次明显的暖期和湖面波动过程,区域植被主要以松、蒿、桦为主,为含一定量的冷杉的森林。其中36kaBP左右气候最温暖湿润,区域内可能出现针叶林或针阔混交林。约32~12kaBP期间,该区气候最为干冷,古植被以草原和疏林草原为主,湖面再次发生较大幅度的下降,最低可至拔湖约8m处,但通常维持在拔湖约12~17m之间。约11.8~4.2kaBP期间,气候整体较为暖湿,其中在约8.4~4.2kaBP期间气候最温暖湿润,该区可能发育针叶林或针阔混交林,湖面波动于拔湖2~9m之间,整体波动幅度较小,但波动最为频繁。区域气候对比发现,纳木错地区的冷、暖气候变化过程与整个青藏高原乃至北半球的气候变化基本是一致的,特别是阶地下切所反映的湖面退缩过程与北大西洋的Henrich冷事件之间具有很好的对应关系。

References

[1]  焦克勤,姚檀栋,李世杰.2000.西昆仑山32ka来的冰川与环境演变.冰川冻土,22(3):250~256.
[2]  沈才明,唐领余,王苏民.1996.若尔盖地区25万年以来的植被与气候.微体古生物学报,13(4):373~385.
[3]  施雅风.2002.中国第四纪冰期划分改进建议.冰川冻土,24(6):687~692.
[4]  吴中海,赵希涛,朱大岗,等.2002.念青唐古拉山西布冰川区的冰碛层.地球学报,23(4):343~348.
[5]  赵希涛,朱大岗,吴中海,等.2002.西藏纳木错晚更新世以来的湖泊发育.地球学报,23(4):329~334.
[6]  中国科学院青藏高原综合科学考察队.1982.西藏自然地理.北京:科学出版社.
[7]  Bond G, Broecker W, Johnsen S, et al. 1993. Correlations Between climate records from North Antarctic sediments and Greenland Ice. Nature, 365: 143~147.
[8]  Li Bing-yuan. 2000. The last greatest lakes on the Xizang (Tibetan)Plateau. Acta Geographica Sinica, 55(2): 174~182 (in Chinese with English abstract).
[9]  Shen Cai-ming, Tang Ling-yu, Wang Su-min. 1996. Vegetation and climate during the last 250 000 years in Zoige region. Acta Micropalaeontologica Sinica, 13(4): 373~385 (in Chinese with English abstract).
[10]  Wu Zhonghai, Zhao Xitao, Zhu Dagang. 2002. The Morains of Xibu glacier area in the Nyainqentanglha range. Acta Geoscientia Sinica, 23(4): 343~348 (in Chinese with English abstract).
[11]  Zhao Xitao, Zhu Dagang, Yan Fuhua, et al. 2003. Climate chang and lake-level vaiation of Nam Co, Xizang since the last interglacial stage. Quaternary Sciences, 23 (1): 41 ~ 52 (in Chinese with English abstract).
[12]  Comprehensive Scientific Expedition Group. 1982. Physical geography of Xizang (Tibet). Beijing: Science Press (in Chinese).
[13]  黄赐璇,王燕如,梁玉莲.1 983.试从孢粉分析论西藏中南部全新世自然环境的演变.中国科学院青藏高原综合科学考察队,西藏第四纪地质.北京:科学出版杜,179~192.
[14]  李炳元.2000.青藏高原大湖期.地理学报,55(2):174~182.
[15]  吕厚远,王苏民,吴乃琴,等.2001.青藏高原错鄂湖2.8Ma来的孢粉记录.中国科学(D辑),31(增刊):234~240.
[16]  孙湘君,杜乃秋,陈因硕,等.1993.西藏色林错湖相沉积物的花粉分析.植物学报,35(12):943~950.
[17]  姚檀栋,Thompson L G,施雅风,等.1997.古里雅冰心中末次间冰期以来气候变化记录研究.中国科学,27(5):447~452.
[18]  赵希涛,朱大岗,严富华,等.2003.西藏纳木错末次冰期以来的气候变迁与湖面变化.第四纪研究,23(1):41~52.
[19]  Jiao Keqin, Yao Tandong, Li Shijie. 2000. Evolution of glaciers and environment in the west kunlun mountains during the past 32ka.Journal of Glaciology and Geocryology, 22 (3): 250~ 256 (in Chinese with English abstract).
[20]  Lu Houyuan, Wang Sumin, Wu Naiqin, et al. 2001. A new pollen record of the last 2. 8Ma from the Co Ngoin, central Tibetan Plateau. Science in China, (Series D), 44 (Supp): 292~300.
[21]  Luo S D, Ku T L. 1991. U-series isochron dating: A generalized method employing total-sample dissolution. Geochimica et Cosmochimica Acta, 55: 555 ~ 564.
[22]  Shi Y F, Yu G, Liu X D, et al. 2001. Reconstruction of 30~40ka BP enhanced Indian monsoon climate based on geological records from the Tibetan Plateau. Palaeogeography, Palaeoclimate,Palaeoecology, 169: 69 ~ 83.
[23]  Shi Y F. 2002. A suggestion to improve the chronology of Quaternary glaciations in Chine. Journal of Glaciology and Geocryology. 24(6): 687~692 (in Chinese with English abstract).
[24]  Sun Xiang-jun, Du Nai-qiu, Chen Yin-shuo. 1993. Holocene palynological records in lake Selincuo, northern Xizang. Acta Botanica Sinica, 35 (12): 943 ~ 950 (in Chinese with English abstract).
[25]  Thompson L G, Yao T, Davies M E, et al. 1997. Tropical climate instability: The last glacial cycle from the Qinghai- Tibetan Plateau. Science, 276:1 821~1 825.
[26]  Yao Tandong, Thompson L G, Shi Yafeng, et al. 1997. A study of climatic variations since last interglaciation in the Guliya ice core.Science in China (Series D), 27(5): 447~452(in Chinese).
[27]  Zheng Mianping, Meng Yifeng, Wei Lejun. 2000. Evidence of the pan-lake stage in the period of 40~ 28ka BP on the Qinghai Tibet Plateau. Acta Geologica Sinica, 74 (2): 266 ~ 272.
[28]  吴中海,赵希涛,朱大岗.2003.1:25万当雄幅区域地质调查报告--第四纪地质.

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