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Restoring Historic Forest Disturbance Frequency Would Partially Mitigate Droughts in the Central Sierra Nevada Mountains

Journal Article · · Water Resources Research
DOI:https://doi.org/10.1029/2024WR039227· OSTI ID:2587274
 [1];  [2];  [2];  [3];  [4];  [5];  [1]
  1. University of Nevada, Reno, NV (United States)
  2. Pacific Northwest National Laboratory (PNNL), Richland, WA (United States)
  3. North Carolina State University, Raleigh, NC (United States)
  4. USDA Forest Service, Riverside, CA (United States). Pacific Southwest Research Station
  5. University of Nevada, Reno, NV (United States); NASA Goddard Space Flight Center (GSFC), Greenbelt, MD (United States)
Forest thinning and prescribed fire are expected to improve the climate resilience and water security of forests in the western U.S., but few studies have directly modeled the hydrological effects of multi-decadal landscape-scale forest disturbance. By updating a distributed process-based hydrological model (DHSVM) with vegetation maps from a distributed forest ecosystem model (LANDIS-II), we simulate the water resource impacts of forest management scenarios targeting partial or full restoration of the pre-colonial disturbance return interval in the central Sierra Nevada mountains. In a fully restored disturbance regime that includes fire, thinning, and insect mortality, reservoir inflow increases by 4%–9% total and 8%–14% in dry years. At sub-watershed scales (10–100 km2), thinning dense forests can increase streamflow by >20% in dry years. In a thinner forest, increased understory transpiration compensates for decreased overstory transpiration. Consequentially, 73% of streamflow gains are attributable to decreased overstory rain and snow interception loss. Thinner forests can increase headwater peak flows, but reservoir-scale peak flows are almost exclusively influenced by climate. Uncertainty in future precipitation causes high uncertainty in future water yield, but the additional water yield attributable to forest disturbance is about five times less sensitive to annual precipitation uncertainty. This partial decoupling of the streamflow disturbance response from annual precipitation makes disturbance especially valuable for water supply during dry years. Our study can increase confidence in the water resource benefits of restoring historic forest disturbance frequencies in the central Sierra Nevada mountains, and our modeling framework is widely applicable to other forested mountain landscapes.
Research Organization:
Pacific Northwest National Laboratory (PNNL), Richland, WA (United States)
Sponsoring Organization:
National Science Foundation (NSF); USDOE
Grant/Contract Number:
AC05-76RL01830
OSTI ID:
2587274
Report Number(s):
PNNL-SA--212259
Journal Information:
Water Resources Research, Journal Name: Water Resources Research Journal Issue: 4 Vol. 61; ISSN 0043-1397; ISSN 1944-7973
Publisher:
American Geophysical Union (AGU)Copyright Statement
Country of Publication:
United States
Language:
English

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