Western amazon 2020 extreme heatwave

Abstract Between September and November 2020, an extreme climate event characterized by the co-occurrence of severe drought, extreme heat stress, widespread burning, and respiratory health impacts affected southwestern Amazonia. This study investigated the event using an integrated framework combining meteorological observations, reanalysis products, burned area data, climate attribution methods, and health records. Heat extremes were characterized using the CTX90pct index and Wet Bulb Globe Temperature (WBGT), while drought conditions were assessed using the 3-month Standardized Precipitation–Evapotranspiration Index (SPEI-3). Anthropogenic influence was quantified using HadGEM3-A attribution experiments and CMIP6 simulations through probability ratio (PR) and Fraction of Attributable Risk (FAR) metrics. Results showed persistent drought conditions and WBGT anomalies exceeding the 95th percentile during September to November 2020. Attribution analyses consistently indicated a strong anthropogenic contribution to the event, with PR estimates ranging from approximately 129 to values exceeding 1000 across climate-model ensembles and FAR values approaching unity. Wildfire activity was strongly concentrated in non-forest land cover classes, which accounted for approximately 80% of the total burned area, while forest formations represented about 20%. Health records indicated 39,453 respiratory disease notifications during the peak fire season, corresponding to 5.4% of Acre’s population, with substantial spatial heterogeneity among municipalities and 159 reported deaths in Rio Branco. Spatial analyses revealed that respiratory outcomes were associated with multiple environmental drivers, including atmospheric pollution from fires and meteorological conditions, although these relationships varied considerably across municipalities. The results demonstrate that anthropogenic climate change substantially increased the likelihood of the 2020 extreme heat event and contributed to environmental conditions favorable to wildfire activity and smoke exposure. These findings highlight the importance of integrated adaptation strategies combining climate-risk management, wildfire prevention, air-quality monitoring, and public health preparedness in this region.

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Publication Details

Journal
Regional Environmental Change
Published
2026-09-16
DOI
https://doi.org/10.1007/s10113-026-02681-0
Primary Topic
Fire effects on ecosystems
Type
article
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article

Western amazon 2020 extreme heatwave

Gisleine Cunha‐Zeri, Débora Joana Dutra, Pedro Noronha, Rafaela Quintella Veiga et al.
Regional Environmental Change
Fire effects on ecosystems
article

Western amazon 2020 extreme heatwave

Gisleine Cunha‐Zeri, Débora Joana Dutra, Pedro Noronha, Rafaela Quintella Veiga, Fraser C. Lott, Luiz Felipe Goulart Fiscina, Paulo Henrique Alves Leão, Janaína Cassiano dos Santos, Renata Pacheco Quevedo, Iara Stéfani Carneiro da Silva, Liana O. Anderson, Wan Ting Katty Huang, Rafael Cesário de Abreu, Alex Ovando, Sarah Sparrow, Ylza Marluce Silva, Edvan Ferreira de Meneses, Rafael Alexandre Ferreira Luiz, Larissa Antunes da Silva, Christopher Cunningham, Bianca Nunes Calado, Sihan Li, Marcos Sousa, Queren-Hapuque Rodrigues de Luna Francisco
article en

Abstract

Abstract Between September and November 2020, an extreme climate event characterized by the co-occurrence of severe drought, extreme heat stress, widespread burning, and respiratory health impacts affected southwestern Amazonia. This study investigated the event using an integrated framework combining meteorological observations, reanalysis products, burned area data, climate attribution methods, and health records. Heat extremes were characterized using the CTX90pct index and Wet Bulb Globe Temperature (WBGT), while drought conditions were assessed using the 3-month Standardized Precipitation–Evapotranspiration Index (SPEI-3). Anthropogenic influence was quantified using HadGEM3-A attribution experiments and CMIP6 simulations through probability ratio (PR) and Fraction of Attributable Risk (FAR) metrics. Results showed persistent drought conditions and WBGT anomalies exceeding the 95th percentile during September to November 2020. Attribution analyses consistently indicated a strong anthropogenic contribution to the event, with PR estimates ranging from approximately 129 to values exceeding 1000 across climate-model ensembles and FAR values approaching unity. Wildfire activity was strongly concentrated in non-forest land cover classes, which accounted for approximately 80% of the total burned area, while forest formations represented about 20%. Health records indicated 39,453 respiratory disease notifications during the peak fire season, corresponding to 5.4% of Acre’s population, with substantial spatial heterogeneity among municipalities and 159 reported deaths in Rio Branco. Spatial analyses revealed that respiratory outcomes were associated with multiple environmental drivers, including atmospheric pollution from fires and meteorological conditions, although these relationships varied considerably across municipalities. The results demonstrate that anthropogenic climate change substantially increased the likelihood of the 2020 extreme heat event and contributed to environmental conditions favorable to wildfire activity and smoke exposure. These findings highlight the importance of integrated adaptation strategies combining climate-risk management, wildfire prevention, air-quality monitoring, and public health preparedness in this region.

Regional Environmental ChangeVol. 26(4)
Climate action
Openalex Percentile: Top 14%
Fire effects on ecosystems
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