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An Observation-Driven Framework for Modeling Post-Fire Hydrologic Response: Evaluation for Two Central California Case StudiesIn a warming climate, wildfires are becoming increasingly common, especially in semi-arid environments. Wildfires can disrupt forest ecosystems and induce changes to the land surface. Collectively, these impacts can alter the hydrologic response of a catchment following a fire, resulting in increased potential for surface runoff, reduced evapotranspiration, and, ultimately, a higher risk for flash flooding and mass wasting. The timescale of post-fire recovery of hydrological processes to return to pre-fire conditions is not well established due to the lack of ground measurements. Accurate characterization of the impacts of fire on hydrologic response is also challenging to simulate, given the complex interplay of various processes. Here, we present a generalized framework to quantify the impacts of wildfire on runoff generation. We consider the disturbances in the vegetation and soil as the two main factors contributing to post-fire floods. Using an ensemble modeling structure to account for parameter uncertainty, remotely sensed leaf area index (LAI) is assimilated into a land surface model (LSM) to simulate vegetation disturbance, and the maximum land surface saturation LSM parameter is decreased to parameterize the soil disturbance following observed fires. We consider the impacts of fire-induced changes to LAI and soil saturation on hydrologic states like runoff and evapotranspiration for two case studies. These case studies demonstrate the general applicability of hydrophobicity formulation to serve as a guideline for exploring the range of hydrologic responses post-fire.
Document ID
20250001343
Acquisition Source
Goddard Space Flight Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
Timothy M Lahmers
(Goddard Space Flight Center Greenbelt, United States)
Sujay V Kumar
(Goddard Space Flight Center Greenbelt, United States)
Shahryar Khalique Ahmad
(Science Applications International Corporation (United States) McLean, Virginia, United States)
Thomas Holmes
(Goddard Space Flight Center Greenbelt, United States)
Augusto Getirana
(Science Applications International Corporation (United States) McLean, Virginia, United States)
Elijah Orland ORCID
(University of Maryland, Baltimore County (UMBC) Baltimore, MD, United States)
Kim Locke
(Science Applications International Corporation (United States) McLean, Virginia, United States)
Nishan Kumar Biswas
(University of Maryland, Baltimore County Baltimore, Maryland, United States)
Wanshu Nie ORCID
(Science Applications International Corporation (United States) McLean, Virginia, United States)
Justin Pflug
(University of Maryland, College Park College Park, United States)
Kristen Whitney
(University of Maryland College Park, MD)
Martha Anderson ORCID
(United States Department of Agriculture Washington, United States)
Yun Yang
(Cornell University Ithaca, United States)
Date Acquired
February 4, 2025
Publication Date
February 28, 2025
Publication Information
Publication: Water Resources Research
Publisher: John Wiley & Sons (United States)
ISSN: 0043-1397
e-ISSN: 1944-7973
Subject Category
Meteorology and Climatology
Earth Resources and Remote Sensing
Funding Number(s)
WBS: 348016.05.03.01.01
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
Keywords
Fire Hydrology
Data Assimilation
Land Surface Modeling
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