Contributions of terrestrial and oceanic moisture sources to orbital-scale precipitation variations over the northern East Asian monsoon region

被引:3
|
作者
Xie, Xiaoxun [1 ]
Liu, Xiaodong [1 ,2 ]
机构
[1] Chinese Acad Sci, Inst Earth Environm, State Key Lab Loess & Quaternary Geol, Xian 710061, Peoples R China
[2] Univ Chinese Acad Sci, Coll Earth & Planetary Sci, Beijing 100049, Peoples R China
基金
中国国家自然科学基金;
关键词
Moisture sources; Precipitation; Orbital scale; Transient simulation; Asian monsoon; CHINESE CAVE RECORDS; WATER-VAPOR SOURCES; SUMMER MONSOON; INDIAN MONSOON; MODEL; TRANSPORT; RAINFALL; CLIMATE; PRECESSION; SIMULATION;
D O I
10.1016/j.gloplacha.2023.104244
中图分类号
P9 [自然地理学];
学科分类号
0705 ; 070501 ;
摘要
Water vapor is the material basis of precipitation and an important component of the global hydrological cycle. Quantifying the contributions of terrestrial and oceanic moisture sources is crucial for comprehending regional precipitation and hydroclimate changes. Previous studies have extensively investigated the East Asian summer monsoon and its precipitation changes using geological climate records, but it remains unclear how water vapor from different source regions affects the orbital-scale precipitation change in East Asia. In this study, a long-term transient simulation using a climate model with a water-tagging scheme was conducted for the past 300 kyr to explore the contributions of terrestrial and oceanic moisture sources to precipitation changes in the northern East Asian monsoon region (NEA, 35-45 degrees N, 105-120 degrees E). The results showed that for the climatologically annual NEA precipitation, the global land source was the primary moisture source, accounting for approximately 57.6% of the total precipitation, followed by Pacific Ocean source contributing 20.9%, while other sources had a minor contribution. The orbital-scale changes of annual NEA precipitation, dominated by the precipitation of the rainy season from May to September, were mainly characterized by a significant 23-kyr cycle and a weak 100-kyr cycle. Analyses of water vapor sources found that the significant 23-kyr cycle in NEA precipitation was caused by the superposition of the synchronous 23-kyr cycles of precipitations from the land and Pacific Ocean sources, while the nonsynchronous 100-kyr cyclic changes of precipitations from the land and Pacific Ocean sources led to the weak 100-kyr cycle of NEA total precipitation. Further analysis of water vapor flux showed that the orbital-scale NEA precipitation changes were mainly controlled by the precession-induced Northern Hemisphere summer insolation variations, while changes in the global ice volume also had a certain modulation effect on NEA precipitation by regulating the contribution rates of land and Pacific moisture sources. This study highlights the importance of terrestrial and oceanic moisture sources associated with external forcings in understanding the orbital-scale East Asian monsoon precipitation changes.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] Orbital-scale Asian summer monsoon variations: Paradox and exploration
    Hai Cheng
    Haiwei Zhang
    Yanjun Cai
    Zhengguo Shi
    Liang Yi
    Chenglong Deng
    Qingzhen Hao
    Youbing Peng
    Ashish Sinha
    Hanying Li
    Jingyao Zhao
    Ye Tian
    Jonathan Baker
    Carlos Perez-Mejías
    Science China Earth Sciences, 2021, 64 : 529 - 544
  • [2] Orbital-scale Asian summer monsoon variations: Paradox and exploration
    Cheng, Hai
    Zhang, Haiwei
    Cai, Yanjun
    Shi, Zhengguo
    Yi, Liang
    Deng, Chenglong
    Hao, Qingzhen
    Peng, Youbing
    Sinha, Ashish
    Li, Hanying
    Zhao, Jingyao
    Tian, Ye
    Baker, Jonathan
    Perez-Mejias, Carlos
    SCIENCE CHINA-EARTH SCIENCES, 2021, 64 (04) : 529 - 544
  • [3] Orbital-scale Asian summer monsoon variations:Paradox and exploration
    Hai CHENG
    Haiwei ZHANG
    Yanjun CAI
    Zhengguo SHI
    Liang YI
    Chenglong DENG
    Qingzhen HAO
    Youbing PENG
    Ashish SINHA
    Hanying LI
    Jingyao ZHAO
    Ye TIAN
    Jonathan BAKER
    Carlos PEREZ-MEJíAS
    ScienceChina(EarthSciences), 2021, 64 (04) : 529 - 544
  • [4] The Tibetan Plateau as amplifier of orbital-scale variability of the East Asian monsoon
    Liu, XD
    Kutzbach, JE
    Liu, ZY
    An, ZS
    Li, L
    GEOPHYSICAL RESEARCH LETTERS, 2003, 30 (16)
  • [5] Millennial- and orbital-scale changes in the East Asian monsoon over the past 224,000 years
    Yongjin Wang
    Hai Cheng
    R. Lawrence Edwards
    Xinggong Kong
    Xiaohua Shao
    Shitao Chen
    Jiangyin Wu
    Xiouyang Jiang
    Xianfeng Wang
    Zhisheng An
    Nature, 2008, 451 : 1090 - 1093
  • [6] Millennial- and orbital-scale changes in the East Asian monsoon over the past 224,000 years
    Wang, Yongjin
    Cheng, Hai
    Edwards, R. Lawrence
    Kong, Xinggong
    Shao, Xiaohua
    Chen, Shitao
    Wu, Jiangyin
    Jiang, Xiouyang
    Wang, Xianfeng
    An, Zhisheng
    NATURE, 2008, 451 (7182) : 1090 - 1093
  • [7] Model-based orbital-scale precipitation δ18O variations and distinct mechanisms in Asian monsoon and arid regions
    Liu, Xiaodong
    Xie, Xiaoxun
    Guo, Zhengtang
    Yin, Zhi-Yong
    Chen, Guangshan
    NATIONAL SCIENCE REVIEW, 2022, 9 (11)
  • [8] Model-based orbital-scale precipitation δ18O variations and distinct mechanisms in Asian monsoon and arid regions
    Xiaodong Liu
    Xiaoxun Xie
    Zhengtang Guo
    Zhi-Yong Yin
    Guangshan Chen
    NationalScienceReview, 2022, 9 (11) : 131 - 148
  • [9] A data base of contributions of major oceanic and terrestrial moisture sources on continental daily extreme precipitation
    Vazquez, Marta
    Nieto, Raquel
    Liberato, Margarida L. R.
    Gimeno, Luis
    DATA IN BRIEF, 2021, 35
  • [10] Orbital-scale nonlinear response of East Asian summer monsoon to its potential driving forces in the late Quaternary
    Yi, Liang
    Shi, Zhengguo
    Tan, Liangcheng
    Deng, Chenglong
    CLIMATE DYNAMICS, 2018, 50 (5-6) : 2183 - 2197