期刊文献+

Intermediately Complex Models for the Hydrological Interactions in the Atmosphere-Vegetation-Soil System 被引量:3

Intermediately Complex Models for the Hydrological Interactions in the Atmosphere-Vegetation-Soil System
下载PDF
导出
摘要 This paper investigates the hydrological interactions in the atmosphere-evegetation-soil system by using the bucket model and several new simplified intermediately complex models. The results of mathematical analysis and numerical simulations show that these models, despite their simplicity, can very clearly reveal the essential features of the rather complex hydrological system of atmosphere-ecosystem-soil. For given atmospheric variables, these models clearly demonstrate multiple timescales, the "red shift" of response spectra, multi-equilibria and limit cycles, bifurcation, abrupt change, self-organization, recovery, "desertification", and chaos. Most of these agree with observations. Especially, the weakening of "shading effect" of living canopy and the wilted biomass might be a major mechanism leading to the desertification in a relatively short period due to overgrazing, and the desertification in a relatively long period or in climate of change might be due to both Charney's mechanism and the shading effect. These ideas could be validated with further numerical simulations. In the paper, some methods for improving the estimation of timescales in the soil water evolution responding to the forcing are also proposed. This paper investigates the hydrological interactions in the atmosphere-evegetation-soil system by using the bucket model and several new simplified intermediately complex models. The results of mathematical analysis and numerical simulations show that these models, despite their simplicity, can very clearly reveal the essential features of the rather complex hydrological system of atmosphere-ecosystem-soil. For given atmospheric variables, these models clearly demonstrate multiple timescales, the "red shift" of response spectra, multi-equilibria and limit cycles, bifurcation, abrupt change, self-organization, recovery, "desertification", and chaos. Most of these agree with observations. Especially, the weakening of "shading effect" of living canopy and the wilted biomass might be a major mechanism leading to the desertification in a relatively short period due to overgrazing, and the desertification in a relatively long period or in climate of change might be due to both Charney's mechanism and the shading effect. These ideas could be validated with further numerical simulations. In the paper, some methods for improving the estimation of timescales in the soil water evolution responding to the forcing are also proposed.
出处 《Advances in Atmospheric Sciences》 SCIE CAS CSCD 2006年第1期127-140,共14页 大气科学进展(英文版)
基金 This work was supported by the China National Science foundation (Grant No, 40233027) N0AA 0ffice of Global Programs, NASA (NAGA-13322) the U. S. National Science foundation (ATM 0301188) the Chinese Academy of Sciences' 0verseas Assessor's Grant and Well-Known 0verseas Chinese Scholar Grant.
关键词 Atmosphere-vegetation-soil system hydrological process multi-equilibria CHAOS DESERTIFICATION shading effect Atmosphere-vegetation-soil system, hydrological process, multi-equilibria, chaos, desertification, shading effect
  • 相关文献

参考文献1

二级参考文献8

  • 1Bonan,G.B.,K.W.Oleson,M.Vertenstein,S.Levis,X.Zeng,Y.Dai,R.E.Dickinson,and Z.-L.Yang,2002:The land surface climatology of the community land model coupled to the NCAR community climate model. J. Climate, 15, 3123-3149.
  • 2Delworth, T. L., and S. Manabe, 1989: The influence of soil wetness on near-surface atmospheric variability.J. Climate, 2, 1447-1462.
  • 3Koster, R. D., and M. J. Suarez, 1996: The influence of land surface moisture retention on precipitation statistics. J. Climate, 9, 2697-2715.
  • 4Koster, R. D., and M. J. Suarez, 1999: A simple framework for examining the interannual variability of land surface moisture fluxes. J. Climate, 12, 1911-1917.
  • 5Koster, R. D., and M. J. Suarez, 2001: Soil moisture memory in climate models. J. Hydromet., 2, 558-570.
  • 6Koster, R. D., P. A. Dirmeyer, A. N. Hahmann, R. Ijpelaar,L. Tyahla, P. Cox, and M. J. Suarez, 2002: Comparing the degree of land-atmosphere interaction in four atmospheric general circulation models. J. Hydromet.,3, 363-375.
  • 7Manabe, S., 1969: Climate and the ocean circulation, Ⅰ: The atmospheric circulation and the hydrology of the earth's surface. Mon. Wea. Rev., 97, 739-774.
  • 8Zeng, X., M. Shaikh, Y. Dai, and R. E. Dickinson, 2002: Coupling of the common land model to the NCAR Community Climate Model. J. Climate, 15, 1832-1854.

共引文献8

同被引文献82

引证文献3

二级引证文献34

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部