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The attenuation of particulate organic carbon (POC) flux with depth is a fundamental control on the efficiency of the marine biological pump and ocean carbon sequestration. 230Th normalization provides a powerful approach for estimating vertical POC flux profiles, but this method assumes that excess 230Th is primarily supplied through vertical scavenging from the overlying water column. However, this assumption may be violated in regions characterized by strong lateral particle transport, including boundary currents, nepheloid layers, and enhanced horizontal redistribution of particle-reactive elements. The potential influence of lateral 230Th scavenging on reconstructed POC flux profiles remains poorly quantified.
The eastern equatorial Pacific (EEP) provides an ideal setting to evaluate this effect because of pronounced gradients in particle export and intense lateral transport associated with deep-water circulation. Here, we apply a recently developed lateral scavenging correction approach to previously published 230Th-normalized POC flux profiles measured along the GP16 transect in the EEP. By incorporating lateral scavenging effects into the 230Th normalization framework, we compare conventional and corrected estimates of POC flux attenuation, evaluate implications for reconstructed particle transfer efficiency, and assess the spatial variability of lateral scavenging effects along the transect.
Our results reveal that lateral scavenging corrections introduce systematic spatial and depth-dependent changes in reconstructed POC flux profiles. The magnitude of the correction exhibits pronounced spatial variability among stations. The largest corrections occur within the upper and mesopelagic ocean, whereas reconstructed deep-water fluxes are comparatively less affected. Corrected POC flux profiles show modified attenuation patterns compared with conventional 230Th-based estimates, indicating that neglecting lateral 230Th transport may bias assessments of particle transfer efficiency. These findings highlight the importance of accounting for lateral scavenging when applying 230Th normalization to quantify vertical POC flux attenuation and particle transfer efficiency.
01月12日
2027
01月15日
2027
初稿截稿日期
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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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