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Forest fire size amplifies postfire land surface warming

  • Jie Zhao
  • , Chao Yue*
  • , Jiaming Wang
  • , Stijn Hantson
  • , Xianli Wang
  • , Binbin He
  • , Guangyao Li
  • , Liang Wang
  • , Hongfei Zhao
  • , Sebastiaan Luyssaert
  • *Corresponding author for this work

Research output: Contribution to JournalArticleAcademicpeer-review

Abstract

Climate warming has caused a widespread increase in extreme fire weather, making forest fires longer-lived and larger1–3. The average forest fire size in Canada, the USA and Australia has doubled or even tripled in recent decades4,5. In return, forest fires feed back to climate by modulating land–atmospheric carbon, nitrogen, aerosol, energy and water fluxes6–8. However, the surface climate impacts of increasingly large fires and their implications for land management remain to be established. Here we use satellite observations to show that in temperate and boreal forests in the Northern Hemisphere, fire size persistently amplified decade-long postfire land surface warming in summer per unit burnt area. Both warming and its amplification with fire size were found to diminish with an increasing abundance of broadleaf trees, consistent with their lower fire vulnerability compared with coniferous species9,10. Fire-size-enhanced warming may affect the success and composition of postfire stand regeneration11,12 as well as permafrost degradation13, presenting previously overlooked, additional feedback effects to future climate and fire dynamics. Given the projected increase in fire size in northern forests14,15, climate-smart forestry should aim to mitigate the climate risks of large fires, possibly by increasing the share of broadleaf trees, where appropriate, and avoiding active pyrophytes.

Original languageEnglish
Pages (from-to)828-834
Number of pages7
JournalNature
Volume633
Early online date25 Sept 2024
DOIs
Publication statusPublished - 26 Sept 2024

Bibliographical note

Publisher Copyright:
© The Author(s) 2024.

Funding

We thank N. Andela for developing the fire event dataset; the MODIS team that provided the core datasets for this analysis; J. Canadell for helping retrieve the Australian fire data; and R. Scholten for comments that improved the quality of this study. C.Y. was funded by the National Key Research and Development Program of China (2023YFB3907403), the National Science Foundation of China (U20A2090), the Second Tibetan Plateau Scientific Expedition and Research Program (2022QZKK0101) and the Strategic Priority Research Program of the Chinese Academy of Sciences (XDB40000000). S.L. was funded by Horizon 2020, HoliSoils (SEP-210673589) and Horizon Europe INFORMA (101060309).

FundersFunder number
European Commission101060309
Horizon Europe INFORMA101060309
Chinese Academy of SciencesXDB40000000
National Natural Science Foundation of China2022QZKK0101, U20A2090
Horizon 2020, HoliSoilsSEP-210673589
National Key Research and Development Program of China2023YFB3907403

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