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| DOI | 10.1016/J.QUASCIREV.2019.106087 | ||||
| Año | 2020 | ||||
| Tipo | revisión |
Citas Totales
Autores Afiliación Chile
Instituciones Chile
% Participación
Internacional
Autores
Afiliación Extranjera
Instituciones
Extranjeras
It is widely documented that the Earth's surface temperatures have increased in recent decades. However, temperature increment patterns are not uniform around the globe, showing different or even contrasting trends. Here we present a mean maximum summer temperature record, based on tree-ring widths, over the past 5682 years (3672BC - 2009AD) for southern South America (SSA), covering from mid-Holocene to the present. This is the longest such record for the Southern Hemisphere (SH), and expands available annual proxy climate records for this region in more than 2060 years. Our record explains 49% of the temperature variation, and documents two major warm periods between 3140 -2800BC and 70BC - 150AD, which coincide with the lack of evidence of glacier advances in SSA. Recent decades in the reconstruction (1959-2009) show a warming trend that is not exceptional in the context of the last five millennia. The long-term relationship between our temperature reconstruction and a reconstructed total solar irradiance record, with coinciding cycles at 293, 372, 432-434, 512 and 746 years, indicate a persistent influence of solar forcing on centennial climate variability in SSA. At inter-annual to interdecadal scales, reconstructed temperature is mainly related to the internal climate variability of the Pacific Ocean, including El Nino Southern Oscillation (ENSO) and longer oscillations. Our study reveals the need to characterize regional-scale climate variability and its drivers, which in the context of global-scale processes such as anthropogenic warming, interact to modulate local climate affecting humans and ecosystems. (C) 2019 The Authors. Published by Elsevier Ltd.
| Ord. | Autor | Género | Institución - País |
|---|---|---|---|
| 1 | Lara-Aguilar, Antonio | Hombre |
Universidad Austral de Chile - Chile
Ctr Climate & Resilience Res CR2 - Chile Fdn Ctr Bosques Nativos FORECOS - Chile Center for Climate and Resilience Research (CR)2 - Chile Fundación Centro de los Bosques Nativos FORECOS - Chile Centro de Ciencia del Clima y la Resiliencia (CR)2 - Chile |
| 2 | Villalba, Ricardo | Hombre |
Inst Argentino Nivol Glaciol & Ciencias Ambiental - Argentina
Instituto Argentino de Nivología, Glaciología y Ciencias Ambientales - Argentina |
| 3 | URRUTIA-JALABERT, ROCIO BEATRIZ | Mujer |
Universidad Austral de Chile - Chile
Ctr Climate & Resilience Res CR2 - Chile Inst Forestal INFOR - Chile Center for Climate and Resilience Research (CR)2 - Chile Instituto Forest Biblioteca - Chile Centro de Ciencia del Clima y la Resiliencia (CR)2 - Chile |
| 4 | Gonzalez-Reyes, Alvaro | Hombre |
Universidad Austral de Chile - Chile
Ctr Climate & Resilience Res CR2 - Chile Universidad Mayor - Chile Center for Climate and Resilience Research (CR)2 - Chile Centro de Ciencia del Clima y la Resiliencia (CR)2 - Chile |
| 5 | ARAVENA-DONAIRE, JUAN CARLOS | Hombre |
Universidad de Magallanes - Chile
|
| 6 | Luckman, Brian | Hombre |
Univ Western Ontario - Canadá
Western University - Canadá The University of Western Ontario - Canadá |
| 7 | Cuq, E. | Hombre |
Universidad Austral de Chile - Chile
|
| 8 | Rodríguez, Carmen Gloria | Mujer |
Universidad Austral de Chile - Chile
|
| 9 | WOLODARSKY-FRANKE, ALEXIA | Mujer |
Cooperat Calahuala - Chile
Cooperativa Calahuala - Chile |
| Fuente |
|---|
| FONDECYT |
| CONICYT-PCHA |
| FONDECYT Postdoctoral |
| Fondo Nacional de Desarrollo Científico y Tecnológico |
| Comisión Nacional de Investigación Científica y Tecnológica |
| FONDECYT Postdoctoral grant |
| Center for Climate and Resilience Research (CR)2 |
| Center for Climate and Resilience Research |
| CONICET-Argentina |
| CONICYT/FONDAP/15110009 |
| International Association for Identification |
| Comision Nacional de Investigacion Cientifica y Tecnologica Programa de Capital Humano Avanzado (CONICYT-PCHA)/Doctorado Nacional |
| BNP-PARIBAS Foundation |
| Project PAI CONICYT |
| IAI grant |
| Chilean National Forest Service |
| Agradecimiento |
|---|
| This work was supported by FONDECYT Grants No 1130410 and 1171496, the Center for Climate and Resilience Research (CR)<SUP>2</SUP> funded by CONICYT/FONDAP/15110009, the IAI grant CRNII 2047b and BNP-PARIBAS Foundation. RV is supported by CONICET-Argentina, RUJ by the Fondecyt Postdoctoral Grant 3160258 and Project PAI CONICYT 7818120003. JCA acknowledges support from FONDECYT Grant 1130381 and AG from Comision Nacional de Investigacion Cientifica y Tecnologica Programa de Capital Humano Avanzado (CONICYT-PCHA)/Doctorado Nacional/2016-21160642) We thank the Chilean National Forest Service (CONAF), for their permission to work with Fitzroya trees within National Protected Areas and Ed Cook, for his support and commitment to adapt the RCSigFree tree-ring Standardization Program to run long tree-ring chronologies. |
| This work was supported by FONDECYT Grants N° 1130410 and 1171496, the Center for Climate and Resilience Research (CR) 2 funded by CONICYT/FONDAP/15110009, the IAI grant CRNII 2047b and BNP-PARIBAS Foundation. RV is supported by CONICET-Argentina, RUJ by the Fondecyt Postdoctoral Grant 3160258 and Project PAI CONICYT 7818I20003. JCA acknowledges support from FONDECYT Grant 1130381 and AG from Comisión Nacional de Investigación Científica y Tecnológica–Programa de Capital Humano Avanzado (CONICYT-PCHA)/Doctorado Nacional/2016-21160642) We thank the Chilean National Forest Service (CONAF), for their permission to work with Fitzroya trees within National Protected Areas and Ed Cook, for his support and commitment to adapt the RCSigFree tree-ring Standardization Program to run long tree-ring chronologies. |