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  4. Identifying dominant environmental predictors of freshwater wetland methane fluxes across diurnal to seasonal time scales
 
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Identifying dominant environmental predictors of freshwater wetland methane fluxes across diurnal to seasonal time scales

ISSN
1354-1013
Date Issued
2021
Author(s)
Christin-Feron, S 
Departamento de Física 
Alekseychik, Pavel
Alto, Tuula
Aurela, Mika
Baldocchi, Dennis
Bansal, Sheel
Bohrer, Gil
Campbell, David, I
Chen, Jiquan
Chu, Housen
Dalmagro, Higo J.
Delwiche, Kyle
Desai, Ankur R.
Euskirchen, Eugenie
Feron, Sarah
Fluet-Chouinard, Etienne
Goeckede, Mathias
Goodrich, Jordan P.
Gottschalk, Pia
Hirano, Takashi
Iwata, Hiroki
Jackson, Robert B.
Jurasinski, Gerald
Kang, Minseok
Knox, Sara H.
Koebsch, Franziska
Liu, Jinxun
Lohila, Annalea
Malhotra, Avni
Mammarella, Ivan
McNicol, Gavin
Melling, Lulie
Melton, Joe R.
Nilsson, Mats B.
Ono, Keisuke
Ouyang, Zutao
Peichl, Matthias
Peltola, Olli
Poulter, Benjamin
Riley, William
Runkle, Benjamin R. K.
Ryu, Youngryel
Sachs, Torsten
Sakabe, Ayaka
Schafer, Karina
Sonnentag, Oliver
Sparks, Jed P.
Sturtevant, Cove
Tuittila, Eeva-Stiina
Turner, Jessica
Ueyama, Masahito
Valach, Alex C.
Vargas, Rodrigo
Vesala, Timo
Vourlitis, George L.
Ward, Eric
Windham-Myers, Lisamarie
Wong, Guan X.
Zhang, Zhen
Zhu, Qing
DOI
https://doi.org/10.1111/gcb.15661
Abstract
While wetlands are the largest natural source of methane (CH4) to the atmosphere, they represent a large source of uncertainty in the global CH4 budget due to the complex biogeochemical controls on CH4 dynamics. Here we present, to our knowledge, the first multi-site synthesis of how predictors of CH4 fluxes (FCH4) in freshwater wetlands vary across wetland types at diel, multiday (synoptic), and seasonal time scales. We used several statistical approaches (correlation analysis, generalized additive modeling, mutual information, and random forests) in a wavelet-based multi-resolution framework to assess the importance of environmental predictors, nonlinearities and lags on FCH4 across 23 eddy covariance sites. Seasonally, soil and air temperature were dominant predictors of FCH4 at sites with smaller seasonal variation in water table depth (WTD). In contrast, WTD was the dominant predictor for wetlands with smaller variations in temperature (e.g., seasonal tropical/subtropical wetlands). Changes in seasonal FCH4 lagged fluctuations in WTD by ~17 ± 11 days, and lagged air and soil temperature by median values of 8 ± 16 and 5 ± 15 days, respectively. Temperature and WTD were also dominant predictors at the multiday scale. Atmospheric pressure (PA) was another important multiday scale predictor for peat-dominated sites, with drops in PA coinciding with synchronous releases of CH4. At the diel scale, synchronous relationships with latent heat flux and vapor pressure deficit suggest that physical processes controlling evaporation and boundary layer mixing exert similar controls on CH4 volatilization, and suggest the influence of pressurized ventilation in aerenchymatous vegetation. In addition, 1- to 4-h lagged relationships with ecosystem photosynthesis indicate recent carbon substrates, such as root exudates, may also control FCH4. By addressing issues of scale, asynchrony, and nonlinearity, this work improves understanding of the predictors and timing of wetland FCH4 that can inform future studies and models, and help constrain wetland CH4 emissions. © 2021 John Wiley & Sons Ltd
Subjects

eddy covariance

generalized additive ...

lags

methane

mutual information

predictors

random forest

synthesis

time scales

wetlands

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