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Journal Article

Quantifying the legacy of snowmelt timing on soil greenhouse gas emissions in a seasonally dry montane forest

Joseph C. Blankinship; Emma P. McCorkle; Matthew W. Meadows; Stephen C. Hart
Global Change Biology · Vol. 24, Issue 12 · pp. 5933-5947 · 2018

Abstract

The release of water during snowmelt orchestrates a variety of important belowground biogeochemical processes in seasonally snow‐covered ecosystems, including the production and consumption of greenhouse gases (GHGs) by soil microorganisms. Snowmelt timing is advancing rapidly in these ecosystems, but there is still a need to isolate the effects of earlier snowmelt on soil GHG fluxes. For an improved mechanistic understanding of the biogeochemical effects of snowmelt timing during the snow‐free period, we manipulated a high‐elevation forest that typically receives over two meters of snowfall but little summer precipitation to influence legacy effects of snowmelt timing. We altered snowmelt rates for two years using black sand to accelerate snowmelt and white fabric to postpone snowmelt, thus creating a two‐ to three‐week disparity in snowmelt timing. Soil microclimate and fluxes of carbon dioxide (CO 2 ), methane (CH 4 ), and nitrous oxide (N 2 O) were monitored weekly to monthly during the snow‐free period. Microbial abundances were estimated by potential assays near the end of each snow‐free period. Although earlier snowmelt caused soil drying, we found no statistically significant effects ( p 2 or N 2 O, or soil microbial abundances. Soil CH 4 fluxes, however, did respond to snowmelt timing, with 18% lower rates of CH 4 uptake in the earlier snowmelt treatment, but only after a dry winter. Cumulative CO 2 emission and CH 4 uptake were 43% and 88% greater, respectively, after the dry winter. We conclude that soil GHG fluxes can be surprisingly resistant to hydrological changes associated with earlier snowmelt, likely because of persistent moisture and microbial activities in deeper mineral soils. As a result, a drier California in the future may cause seasonally snow‐covered soils in the Sierra Nevada to emit more GHGs, not less.

Bibliographic Information

JournalGlobal Change Biology
PublisherWiley
Publication Date2018-12-01
Publication Year2018
Volume24
Issue12
Pages5933-5947
Document TypeJournal Article
Print ISSN1354-1013
eISSN1365-2486
DOI10.1111/gcb.14471
SubjectConservation Science

Access Information

NARA Access Coverage1997-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/13652486
Publisher PageOpen Publisher Page
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