Abstract
Abstract. The dominant modes of variability of precipitation for the whole of China over the past millennium and the mechanism governing their spatial structure remain unclear. This is mainly due to insufficient high-resolution proxy records of precipitation in western China. Numerous tree-ring chronologies have recently been archived in publicly available databases through PAGES2k activities, and these provide an opportunity to refine precipitation field reconstructions for China. Based on 479 proxy records, including 371 tree-ring width chronologies, a tree-ring isotope chronology, and 107 drought/flood indices, we reconstruct the precipitation field for China for the past half millennium using the optimal information extraction method. A total of 3631 of 4189 grid points in the reconstruction field passed the cross-validation process, accounting for 86.68 % of the total number of grid points. The first leading mode of variability of the reconstruction shows coherent variations over most of China. The second mode is a north–south dipole in eastern China characterized by variations of the same sign in western China and northern China (except for Xinjiang province). It is likely controlled by the El Niño–Southern Oscillation (ENSO) variability. The third mode is a sandwich triple mode in eastern China including variations of the same sign in western China and central China. The last two modes are reproduced by most of the six coupled climate models' last millennium simulations performed in the framework of the Paleoclimate Modelling Intercomparison Project Phase III (PMIP3). In particular, the link of the second mode with ENSO is confirmed by the models. However, there is a mismatch between models and proxy reconstructions in the time development of different modes. This mismatch suggests the important role of internal variability in the reconstructed precipitation mode variations of the past 500 years.
Subject
Paleontology,Stratigraphy,Global and Planetary Change
Reference126 articles.
1. Blarquez, O. and Carcaillet, C.: Fire, fuel composition and resilience threshold in subalpine ecosystem, PLoS One, 5, e12480, https://doi.org/10.1371/journal.pone.0012480, 2010.
2. Bradley, R. S.: The explosive volcanic eruption signal in Northern Hemisphere continental temperature records, Climatic Change, 12, 221–243, https://doi.org/10.1007/BF00139431, 1988.
3. Casty, C., Wanner, H., Luterbacher, J., Esper, J., and Bohm, R.: Temperature and precipitation variability in the european Alps since 1500, Int. J. Climatol., 25, 1855–1880, https://doi.org/10.1002/joc.1216, 2005.
4. Chinese Academy of Meteorological Science: China Meteorological Administration (CMA), Yearly charts of dryness/wetness in China for the last 500-year period, Cartological Press, Beijing, China, 1981 (in Chinese).
5. Christiansen, B.: Reconstructing the NH mean temperature: Can underestimation of trends and variability be avoided?, J. Climate, 24, 674–692, https://doi.org/10.1175/2010jcli3646.1, 2011.
Cited by
59 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献