arrow
Return

CO2 physiological effect can cause rainfall decrease as strong as large-scale deforestation in the Amazon

delete2021-04-22
delete24
delete
OA
AI
G
Gilvan Sampaio
M
Marília Harumi Shimizu
C
Carlos A. Guimarães-Júnior
F
Felipe Alexandre
M
Marcelo Guatura
M
Manoel Cardoso
T
Tomas F. Domingues
A
Anja Rammig
C
Celso von Randow
L
L. F. C. Rezende
D
David M. Lapola *
DOI:10.5194/bg-18-2511-2021delete
deleteOriginal
deleteOriginal request for help
deleteShare
deleteSave
Abstract

Abstract

En 中文
The climate in the Amazon region is particularly sensitive to surface processes and properties such as heat fluxes and vegetation coverage. Rainfall is a key expression of the land surface-atmosphere interactions in the region due to its strong dependence on forest transpiration. While a large number of past studies have shown the impacts of large-scale deforestation on annual rainfall, studies on the isolated effects of elevated atmospheric CO2 concentrations (eCO(2)) on canopy transpiration and rainfall are scarcer. Here, for the first time, we systematically compare the plant physiological effects of eCO(2) and deforestation on Amazon rainfall. We use the CPTEC Brazilian Atmospheric Model (BAM) with dynamic vegetation under a 1.5 x CO2 experiment and a 100 % substitution of the forest by pasture grasslands, with all other conditions held similar between the two scenarios. We find that both scenarios result in equivalent average annual rainfall reductions (Physiology: -257 mm, -12 %; Deforestation: -183 mm, -9 %) that are above the observed Amazon rainfall interannual variability of 5 %. The rainfall decreases predicted in the two scenarios are linked to a reduction of approximately 20 % in canopy transpiration but for different reasons: the eCO(2)-driven reduction of stomatal conductance drives the change in the Physiology experiment, and the smaller leaf area index of pasturelands (-72 % compared to tropical forest) causes the result in the Deforestation experiment. The Walker circulation is modified in the two scenarios: in Physiology due to a humidity-enriched free troposphere with decreased deep convection due to the heightening of a drier and warmer (+2.1 degrees C) boundary layer, and in Deforestation due to enhanced convection over the Andes and a subsidence branch over the eastern Amazon without considerable changes in temperature (-0.2 degrees C in 2 m air temperature and +0.4 degrees C in surface temperature). But again, these changes occur through different mechanisms: strengthened west winds from the Pacific and reduced easterlies entering the basin affect the Physiology experiment, and strongly increased easterlies influence the result of the Deforestation experiment. Although our results for the Deforestation scenario agree with the results of previous observational and modelling studies, the lack of direct field-based ecosystem-level experimental evidence regarding the effect of eCO(2) on moisture fluxes in tropical forests confers a considerable level of uncertainty to any projections of the physiological effect of eCO(2) on Amazon rainfall. Furthermore, our results highlight the responsibilities of both Amazonian and non-Amazonian countries to mitigate potential future climatic change and its impacts in the region, driven either by local deforestation or global CO2 emissions.
Keywords:
WATER-USE EFFICIENCY
EARTH SYSTEM MODEL
STOMATAL CONDUCTANCE
ENRICHMENT FACE
CARBON BALANCE
CLIMATE-CHANGE
FOREST
FUTURE
PHOTOSYNTHESIS
FERTILIZATION

Journal

Biogeosciences cover
Biogeosciences
IF:
3.9
Papers:
6.4K
Citations:
2.4W

Organization

U
universidade estadual de campinas
Scholars:
3.3W
Papers: 2.3W
Citations: 19
T
Technical University of Munich
Scholars:
5.2W
Papers: 3.9W
Citations: 6.2W
I
instituto nacional de pesquisas espaciais (inpe)
Scholars:
3.0K
Papers: 2.1K
Citations: 3
U
universidade de sao paulo
Scholars:
10.6W
Papers: 6.7W
Citations: 93
researcher View more organizations
Cited Papers

Cited Papers

Remote tropical and sub-tropical responses to Amazon deforestation
err2015-07-16
err35
PREAI
errBadger, Andrew M.; Dirmeyer, Paul A.
errShare
errSave
Importance of carbon dioxide physiological forcing to future climate change
err2010-05-05
err252
errOAAI
errCao, Long; Bala, Govindasamy; Caldeira, Ken; Nemani, Ramakrishna; Ban-Weiss, George
errShare
errSave
Forest response to rising CO2 drives zonally asymmetric rainfall change over tropical land
err2018-04-27
err94
errOAAI
errKooperman, Gabriel J.; Chen, Yang; Hoffman, Forrest M.; Koven, Charles D.; Lindsay, Keith; Pritchard, Michael S.; Swann, Abigail L. S.; Randerson, James T.
errShare
errSave
The rotten apples of Brazil's agribusiness
errSCIENCE
IF45.8
err2020-07-17
err259
PREAI
errRajao, Raoni; Soares-Filho, Britaldo; Nunes, Felipe; Boerner, Jan; Machado, Lilian; Assis, Debora; Oliveira, Amanda; Pinto, Luis; Ribeiro, Vivian; Rausch, Lisa; Gibbs, Holly; Figueira, Danilo
errShare
errSave
Effects of tropical deforestation on climate and agriculture
err2014-12-18
err658
PREAI
errLawrence, Deborah; Vandecar, Karen
errShare
errSave
A case study of convective organization into precipitating lines in the Southwest Amazon during the WETAMC and TRMM-LBA
err2002-09-27
err35
errOAAI
errDias, MAFS; Petersen, W; Dias, PLS; Cifelli, R; Betts, AK; Longo, M; Gomes, AM; Fisch, GF; Lima, MA; Antonio, MA; Albrecht, RI
errShare
errSave
Preindustrial-Control and Twentieth-Century Carbon Cycle Experiments with the Earth System Model CESM1(BGC)
err2014-12-10
err159
errOAAI
errLindsay, Keith; Bonan, Gordon B.; Doney, Scott C.; Hoffman, Forrest M.; Lawrence, David M.; Long, Matthew C.; Mahowald, Natalie M.; Moore, J. Keith; Randerson, James T.; Thornton, Peter E.
errShare
errSave
Elevated-CO2 Response of Stomata and Its Dependence on Environmental Factors
err2016-05-13
err301
errOAAI
errXu, Zhenzhu; Jiang, Yanling; Jia, Bingrui; Zhou, Guangsheng
errShare
errSave
Risk Factor Modification in Atrial Fibrillation
err2017-05-01
err0
errOAAI
errNeal A. Chatterjee; Christine M. Albert
errShare
errSave
researcher View more