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Future Projections of Burned Area in Europe Highlight the Importance of Human Action

  • Maik Billing*
  • , Matthew Forrest
  • , Simon P.K. Bowring
  • , Luke Oberhagemann
  • , Alex N. Neidermeier
  • , Jessica Hetzer
  • , Werner von Bloh
  • , Christoph Müller
  • , Susanne Rolinski
  • , Thomas Hickler
  • , Kirsten Thonicke
  • *Corresponding author for this work

Research output: Contribution to JournalArticleAcademicpeer-review

Abstract

Wildfires are often a natural part of many European ecosystems, but human activities through land use, other socio-economic factors and climate change have significantly changed how fires behave. Anthropogenic climate change is already intensifying fire-prone weather and increasing wildfire risk across Europe with risk expected to grow sharply in coming decades. Past experience suggests that human action, such as fuel management and improved fire suppression capacity, can reduce wildfire spread and intensity. However, whether current or future efforts can counter rising risks under continued climate change remains uncertain. In this study, we assess the role of socio-economic factors and biophysical factors in shaping future fire regimes across Europe. Using two fire models (SPITFIRE and BASE) coupled with the fire-enabled Dynamic Global Vegetation Model LPJmL, we simulate future burned area under two socio-economic and greenhouse gas concentration pathways (SSP1-2.6 and SSP3-7.0). We also run experiments where socio-economic factors are held constant to isolate their influence. Our findings show that both biophysical and socio-economic factors strongly affect future wildfire activity. Fire weather and fire management capacity are important drivers, while population density, vegetation shifts and land use matter more at regional scales. By the end of the century, intensified fire weather alone could increase annual burned area by approximately +39% under a low emission scenario (SSP1-2.6) and by nearly +192% under a high emission scenario (SSP3-7.0). Continued improvements in fire management capacity could substantially moderate these increases, reducing burned area by 72%–92% compared to scenarios without these improvements. However, under strong climate change, fire activity still rises in about 55% of Europe's fire prone regions, even if investments in fire management capacity continue at current levels. Overall, improved wildfire management capacity has the potential to greatly limit impacts of worsening fire weather, but may not fully offset strong climate change impacts.

Original languageEnglish
Article numbere71043
Pages (from-to)1-19
Number of pages19
JournalGlobal Change Biology
Volume32
Issue number8
Early online date20 Aug 2026
DOIs
Publication statusPublished - Aug 2026

Bibliographical note

Publisher Copyright:
© 2026 The Author(s). Global Change Biology published by John Wiley & Sons Ltd.

Keywords

  • burned area
  • climate change
  • coupled fire-vegetation modelling
  • Europe
  • fire weather
  • socio-economics
  • wildfires

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