B048-0015
Porewater exchange driven inorganic carbon export from intertidal salt marshes

Thursday, 10 December 2020
Poster
Joseph Tamborski1, Meagan Eagle Eagle2, Barret Kurylyk3, Kevin D Kroeger4, Aleck Zhaohui Wang5, Paul Henderson6 and Matthew A Charette6, (1)Old Dominion University, Norfolk, VA, United States, (2)USGS, Woods Hole Coastal and Marine Science Center, Woods Hole, MA, United States, (3)Dalhousie University, Department of Civil and Resource Engineering, Halifax, NS, Canada, (4)USGS, Woods Hole, MA, United States, (5)Marine Chemistry and Geochemistry, Woods Hole, MA, United States, (6)Woods Hole Oceanographic Institution, Marine Chemistry & Geochemistry, Woods Hole, MA, United States
Abstract:
Respiration in intertidal salt marshes generates dissolved inorganic carbon (DIC) that is exported to the coastal ocean by tidal exchange with the marsh platform. Understanding the link between physical drivers of water exchange and chemical flux is key to constraining coastal wetland contributions to regional carbon budgets. The spatial and temporal (seasonal, annual) variability of marsh porewater exchange (PEX) and DIC export was assessed from a micro-tidal salt marsh (Sage Lot Pond, MA). Spatial variability was constrained from 224Ra:228Th disequilibria across two hydrologic units within the marsh sediments. Disequilibrium between the more soluble 224Ra and its sediment-bound parent 228Th reveals significant PEX in the upper five cm of the marsh surface (0 – 36 L m-2 d-1) that is most intense in low marsh elevation zones, driven by tidal overtopping. Surficial sediment DIC transport ranges from 0.0 to 0.7 g C m-2 d-1. The sub-surface sediment horizon intersected by mean low tide was disproportionately impacted by tidal pumping (20 – 80 L m-2 d-1) and supplied a seasonal DIC flux of 1.7 – 5.4 g C m-2 d-1. Export exceeded 10 g C m-2 d-1 for another marsh unit, demonstrating that fluxes can vary substantially across salt marshes under similar conditions within the same estuary. Seasonal and annual variability in marsh PEX, constrained from tidal time-series of radium isotopes, was driven in part by variability in mean sea-level. Rising sea-levels will further inundate high marsh elevation zones, which may lead to greater DIC export and less blue carbon storage.