Combining Eddy Covariance and Chamber Methods to Better Constrain CO2 and CH4 Fluxes Across a Heterogeneous Restored Tidal Wetland

被引:10
作者
Shahan, Julie [1 ]
Chu, Housen [2 ]
Windham-Myers, Lisamarie [3 ]
Matsumura, Maiyah [1 ]
Carlin, Joseph [4 ]
Eichelmann, Elke [5 ]
Stuart-Haentjens, Ellen [6 ]
Bergamaschi, Brian [6 ]
Nakatsuka, Kyle [6 ]
Sturtevant, Cove [7 ]
Oikawa, Patty [1 ]
机构
[1] Calif State Univ East Bay, Dept Earth & Environm Sci, Hayward, CA 94542 USA
[2] Lawrence Berkeley Natl Lab, Climate & Ecosyst Sci Div, Berkeley, CA USA
[3] US Geol Survey, Water Mission Area, 345 Middlefield Rd, Menlo Pk, CA 94025 USA
[4] Calif State Univ Fullerton, Dept Geol Sci, Fullerton, CA USA
[5] Univ Coll Dublin, Sch Biol & Environm Sci, Dublin, Ireland
[6] US Geol Survey, Calif Water Sci Ctr, Sacramento, CA USA
[7] Natl Ecol Observ Network NEON, Boulder, CO USA
关键词
tidal wetland; carbon dioxide; methane; ecosystem restoration; eddy covariance; chambers; NET ECOSYSTEM EXCHANGE; INTERTIDAL SALT MARSHES; CARBON-DIOXIDE FLUXES; ENVIRONMENTAL DRIVERS; PLANT-COMMUNITIES; INORGANIC CARBON; METHANE FLUXES; EMISSIONS; RESPIRATION; UNCERTAINTY;
D O I
10.1029/2022JG007112
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Tidal wetlands play an important role in global carbon cycling by storing carbon in sediment at millennial time scales, transporting dissolved carbon into coastal waters, and contributing significantly to global CH4 budgets. However, these ecosystems' greenhouse gas monitoring and predictions are challenging due to spatial heterogeneity and tidal flooding. We utilized eddy covariance and chamber measurements to quantify fluxes of CO2 and CH4 at a restored tidal saltmarsh across spatial and temporal scales. Eddy covariance data revealed that the site was a strong net sink for CO2 (-387 g C-CO2 m(-2) yr(-1), SD = 46) and a small net source of CH4 (0.7 g C-CH4 m(-2) yr(-1), SD = 0.4). After partitioning net ecosystem exchange of CO2 into gross primary production and ecosystem respiration, we found that high net uptake of CO2 was due to low respiration emissions rather than high photosynthetic rates. We also found that respiration rates varied between land covers with increased respiration in mudflats compared to vegetated areas. Daytime soil chamber measurements revealed that the greatest CO2 emission was from higher elevation mudflat soils (0.5 mu mol m(-2)s(-1), SE = 1.3) and CH4 emission was greatest from lower elevation Spartina foliosa soils (1.6 nmol m(-2)s(-1), SD = 8.2). Overall, these results highlight the importance of the relationships between wetland plant community and elevation, and inundation for CO2 and CH4 fluxes. Future research should include the use of high-resolution imagery, automated chambers, and a focus on quantifying carbon exported in tidal waters.
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页数:13
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