报告开始:2027年01月15日 14:45(Asia/Shanghai)
报告时间:15min
所在会场:[S65] Session 65 - Toward Evidence-Based Scaling of Coastal mCDR: Mesocosms, Engineering and Quantification [S65-1] Toward Evidence-Based Scaling of Coastal mCDR: Mesocosms, Engineering and Quantification
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River plume‐impacted shelf marginal seas exhibit strong carbon sequestration potential due to their high biological productivity. However, frequent coastal upwelling events complicate the carbon source‐sink dynamics because of the competing effects on seawater partial pressure of carbon dioxide (pCO2): the upwelling of dissolved inorganic carbon (DIC)‐rich deep waters initially elevate surface pCO2, while subsequent biological uptake lowers it. As a case study, we used a novel wave‐driven profiler to obtain high‐resolution vertical profiles in the Changjiang plume‐impacted shelf area (CPS) and to investigate upwelling‐induced variability in pCO2 and carbon source‐sink dynamics. The observations were conducted near Gouqi Island, where coastal upwelling frequently occurs. Based on a pCO2 mass balance model, we found that biological processes (contributing 30.6% to pCO2 increase) and physical transport (contributing 21.2% to pCO2 decrease) jointly dominated hourly mixed layer pCO2 variability in the study area. Importantly, we found that αSBW (shelf bottom water fraction) served as a good quantitative proxy for upwelling intensity, with each 1% increase in αSBW associated with a 6‐μatm increase in mixed layer.Given the significantly higher mean αSBW values during 20–22 August (34 ± 5%) than 28–30 August (11 ± 7%), we defined the former as the upwelling period and the latter as the post‐upwelling period. The air‐sea CO2 flux (FCO2) during the upwelling period (24.04 ± 16.24 mmol m
01月12日
2027
01月15日
2027
初稿截稿日期
注册截止日期
2024年12月11日 中国
第七届厦门海洋环境开放科学大会(XMAS 2025)2023年01月09日 中国 Xiamen
第六届厦门海洋环境科学开放大会
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