Pular para o conteúdo principal

ETHNOS_APP

Início • Busca • Periódicos • Lista 0

Climate change impact assessment on the potential rubber cultivating area in the Greater Mekong Subregion

Dados Bibliográficos

ID15544489
AutoresReza Golbon (0000-0001-8703-7778, University of Hohenheim, autor correspondente), Marc Cotter (0000-0001-5004-654X, University of Hohenheim), Joachim Sauerborn (0000-0002-4334-946X, University of Hohenheim)
Ano2018
Volume13
Fascículo8
Páginas084002-084002
Data de publicação2018-07-06
Peer ReviewedSim
Open AccessSim
TipoARTICLE
PeriódicoEnvironmental Research Letters (JOURNAL)
Identificadores do periódicoISSN: 1748-9326 • E-ISSN: 1748-9326
EditoraIOP Publishing (PUBLISHER • GB)
DOI10.1088/1748-9326/aad1d1
OpenAlexW2874770803
IdiomaEN
Citações recebidas1
Referências citadas80

In order to map potential shifts of rubber ( Hevea brasiliensis ) cultivation as a consequence of the ongoing climate change in the Greater Mekong Subregion (GMS), we applied rule-based classifications to a selection of nine gridded climatic data projections (precipitation and temperature, and global circulation models (GCMs)). These projections were used to form an ensemble model set covering the representative concentration pathways (RCPs) 4.5 and 8.5 of the Fifth Assessment Report of the Intergovernmental Panel on Climate Change at three future time sections: 2030, 2050 and 2070. We used a post classification ensemble formation technique based on a majority outcome of the classification to not only provide an ensemble projection but also to spatially track and weight the disagreements between the classified GCMs. A similar approach was used to form an ensemble model aggregating the involved climatic factors. The level of agreement between the ensemble projections and GCM products was assessed for each climatic factor separately, and also at the aggregate level. Shifting zones with high confidence were clustered based on their land use composition, physiographic attributes and proximity. Following the same ensemble formation technique and by setting a 28 °C threshold for annual mean temperature, we mapped areas prone to exposure to potentially excessive heat levels. Almost the entire shift projected with high certainty was in the form of expansion, associated with temperature components of climate and temporally limited to the 2030 time window where the total area conducive to rubber cultivation in the GMS is projected to exceed 50% by 2030 (from 44.3% at the turn of the century). The largest detected cluster (41% of the total shifting area), which also is the most ecologically degraded, corresponds to Northern Vietnam and Guangxi Autonomous Region of China. The area exposed to potentially excessive heat is projected to undergo a 25-fold increase under RCP4.5 by 2030 from 14568 km ^2 at the baseline

Climate change · Climatology · GCM transcription factors · General Circulation Model · Geography · Meteorology · Natural rubber · Precipitation · Projection (relational algebra · Representative Concentration Pathways · Conservation, Biodiversity, and Resource Management · Environmental Science · Mathematics · Geology

  • Focus on land use cover changes and environmental impacts in South/Southeast Asia

    Open Access•Krishna Prasad Vadrevu, Toshimasa Ohara•Environmental Research Letters•2020

  • Very high resolution interpolated climate surfaces for global land areas

    Open Access•Robert J Hijmans, Susan E Cameron et al.•International Journal of…•2005

  • Climate change projections using the IPSL-CM5 Earth System Model

    Open Access•Jean-Louis Dufresne, M-A Foujols et al.•Climate Dynamics•2013

  • Has land use pushed terrestrial biodiversity beyond the planetary boundary? A global assessment

    Open Access•Tim Newbold, Lawrence N Hudson et al.•Science•2016

  • Estimating regression models with unknown break‐points

    Open Access•Vito M R Muggeo•Statistics in Medicine•2003

  • Rcp4.5

    Open Access•Allison M Thomson, Katherine Calvin et al.•Climatic Change•2011

  • RCP 8.5—A scenario of comparatively high greenhouse gas emissions

    Open Access•Keywan Riahi, Shilpa Rao et al.•Climatic Change•2011

  • The Rubber Juggernaut

    Open Access•Alan D Ziegler, Jefferson Fox et al.•Science•2009

  • WorldClim 2

    Open Access•Stephen E Fick, Robert J Hijmans•International Journal of…•2017

  • Biodiversity hotspots for conservation priorities

    Open Access•Norman Myers, Russell A Mittermeier et al.•Nature•2000

  • Planetary boundaries

    Open Access•Will Steffen, Katherine Richardson et al.•Science•2015

  • Consensus on consensus

    Open Access•John Cook, Naomi Oreskes et al.•Environmental Research Letters•2016

  • Communicating probabilistic information from climate model ensembles—lessons from numerical weather prediction

    Open Access•Elisabeth Stephens, Tamsin Edwards et al.•Wiley Interdisciplinary Reviews…•2012

  • Willingness of smallholder rubber farmers to participate in ecosystem protection

    Open Access•Shi Min, Junfei Bai et al.•Forest Policy and Economics•2017

  • Current trends of rubber plantation expansion may threaten biodiversity and livelihoods

    Open Access•Antje Ahrends, Peter Hollingsworth et al.•Global Environmental Change•2015

  • The implications of fossil fuel supply constraints on climate change projections

    Open Access•Jianliang Wang, Lianyong Feng et al.•Futures•2017

Obras citantes distintas1
Citações por ano0,17
Intervalo de citações2020 - 2020 (1)
Velocidade de citaçãohistorical
Altamente citadoNão
Tipos de citaçãoNeutras: 1
Ethnos_APP • Projeto Open Source • Licença MIT • Frontend v2.0.0 • Privacidade e Cookies • Documentação da API: api.ethnos.app/docs • Código da API: GitHub • DOI: 10.5281/zenodo.17049435 • Código do Frontend: GitHub • DOI: 10.5281/zenodo.17050053 • cruz.rio.br • Expectantes Misericordiae