PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
December 5, 2025Ecosphere3 citationsOpen Access

Pre‐fire structure drives variability in post‐fire aboveground carbon and fuel profiles in wet temperate forests

View Full Paper
JMJenna E. MorrisMLMadison M. LaughlinLRLiliana K. Rangel-Parra

Key Points

  • Total post-fire carbon levels were substantially dictated by pre-fire ecosystem states, particularly in high-biomass forests.
  • The persistence of black carbon in charred wood biomass supports both carbon storage and ecosystem functioning in fire-affected areas.
  • Assessment focused on post-fire carbon and fuel dynamics across wet temperate forests in the Pacific Northwest of the USA.
  • Findings highlight essential management considerations for promoting post-fire recovery in productive forest ecosystems.

Abstract

Abstract Biological legacies (i.e., materials that persist following disturbance; “legacies”) shape ecosystem functioning and feedbacks to future disturbances, yet how legacies are driven by pre‐disturbance ecosystem state and disturbance severity is poorly understood—especially in ecosystems influenced by infrequent and severe disturbances. Focusing on wet temperate forests as an archetype of these ecosystems, we characterized live and dead aboveground biomass 2–5 years post‐fire in western Washington and northwestern Oregon, USA, to ask: How do pre‐fire stand age (i.e., pre‐disturbance ecosystem state) and burn severity drive variability in initial post‐fire legacies, specifically (1) aboveground biomass carbon and (2) fuel profiles? Dominant drivers of post‐fire legacies varied by response variable, with pre‐disturbance ecosystem state driving total legacy amounts and disturbance severity moderating legacy condition. Total post‐fire carbon was ~3–4 times greater in mid‐ and late‐seral stands compared to young stands. In unburned and low‐severity fire stands, >70% of post‐fire total carbon was live, and canopy fuel profiles were largely indistinguishable, suggesting greater continuity of structure and function following low‐severity fire. Conversely, in high‐severity stands, >95% of post‐fire total carbon was dead and sparse canopy fuel remained. Regardless of burn severity, most biomass present pre‐fire persisted following fire, suggesting high‐carbon pre‐fire stands lead to high‐carbon post‐fire stands (and vice versa). Persistence of legacy biomass in high‐severity stands, even as it decays, will therefore buffer total ecosystem carbon storage as live carbon recovers over time. Further, all burned stands had considerable production of black carbon in charred wood biomass which can support ecosystem functioning and promote long‐term carbon storage. Initial post‐fire fuel profiles are likely sufficient to support fire in all stands, but reburn potential may be greater in high‐severity stands due to rapid regeneration of flammable live surface vegetation and more exposed microclimatic conditions. Effects of fuel reduction from fire on mediating the occurrence and potential behavior of subsequent fires in high‐productivity systems therefore appear short‐lived. Our findings demonstrate the importance of pre‐disturbance ecosystem state in dictating many aspects of initial post‐disturbance structure and function, with important implications for managing post‐fire recovery trajectories in some of Earth's most productive and high‐biomass forests.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Morris et al. (2025) studied this question.

synapsesocial.com/papers/693231308e51979591dce804https://doi.org/10.1002/ecs2.70479
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Cross-system comparisons elucidate disturbance complexities and generalities2011 · 133 citations
  2. 2Conifer regeneration in stand-replacement portions of a large mixed-severity wildfire in the Klamath–Siskiyou Mountains2009 · 155 citations
  3. 3Biomass Consumption and Smoke Production by Prehistoric and Modern Forest Fires in Western Washington1983 · 55 citations
  4. 4The Pyrogenic Carbon Cycle2015 · 506 citations
  5. 5Fuel mass and forest structure following stand-replacement fire and post-fire logging in a mixed-evergreen forest2013 · 44 citations