Back to Search Start Over

Projecting the future vegetation–climate system over East Asia and its RCP-dependence.

Authors :
Liu, Weiguang
Wang, Guiling
Yu, Miao
Chen, Haishan
Jiang, Yelin
Yang, Meijian
Shi, Ying
Source :
Climate Dynamics; Nov2020, Vol. 55 Issue 9/10, p2725-2742, 18p
Publication Year :
2020

Abstract

The future vegetation–climate system over East Asia, as well as its dependence on Representative Concentration Pathways (RCPs), is investigated using a regional climate–vegetation model driven with boundary conditions from Flexible Global Ocean–Atmosphere–Land System Model: Grid-point Version 2. Over most of the region, due to the rising CO<subscript>2</subscript> concentration and climate changes, the model projects greater vegetation density (leaf area index) and gradual shifts of vegetation type from bare ground to grass or from grass to trees; the projected spatial extent of the vegetation shift increases from RCP2.6 to RCP8.5. Abrupt shifts are projected under RCP8.5 over northeast China (with grass replacing boreal needleleaf evergreen trees due to heat stress) and India (with tropical deciduous trees replacing grass due to increased water availability). The impact of vegetation feedback on future precipitation is relatively weak, while its impact on temperature is more evident, especially during DJF over northeast China and India with differing mechanisms. In northeast China, the projected forest loss induces a cooling through increased albedo, and daytime high temperature (T<subscript>max</subscript>) is influenced more than nighttime low temperature (T<subscript>min</subscript>); in India, increased vegetation cover induces an evaporative cooling that outweighs the warming effect of an albedo decrease in DJF, leading to a weaker impact on T<subscript>max</subscript> than on T<subscript>min</subscript>. Based on a single model, the qualitative aspects of these results may hold while quantitative assessment will benefit from a follow-up regional model ensemble study driven by multiple general circulation models. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09307575
Volume :
55
Issue :
9/10
Database :
Complementary Index
Journal :
Climate Dynamics
Publication Type :
Academic Journal
Accession number :
145976441
Full Text :
https://doi.org/10.1007/s00382-020-05411-2