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陆海相互作用影响下东海溶解态元素汞的时空变化:驱动力、收支与影响

Spatiotemporal Variations in Dissolved Elemental Mercury in the River-Dominated and Monsoon-Influenced East China Sea: Drivers, Budgets, and Implications.

机构信息

Institute of Oceanography, National Taiwan University, Taipei 10617, Taiwan, Republic of China.

Department of Environmental Sciences, Rutgers University, New Brunswick, New Jersey 08901, United States.

出版信息

Environ Sci Technol. 2020 Apr 7;54(7):3988-3995. doi: 10.1021/acs.est.9b06092. Epub 2020 Mar 23.

DOI:10.1021/acs.est.9b06092
PMID:32157880
Abstract

Distinct spatiotemporal distributions of sea surface dissolved elemental mercury (DEM) and its air-sea exchange flux were observed in the river-dominated and monsoon-influenced East China Sea (ECS). Spatially, DEM concentrations were higher in the nearshore Changjiang diluted water (90 ± 20 to 260 ± 40 fM) than in the offshore Kuroshio water (60 ± 10 to 160 ± 40 fM) and correlated with salinity and total Hg concentrations, suggesting that the total Hg discharged from the Changjiang river is a controlling factor. In summer, monsoon-driven coastal upwelling formed a transient nearshore water mass with very elevated DEM concentrations (290 ± 20 to 320 ± 70 fM). Seasonally, DEM concentrations in all water masses were the highest in summer (120 ± 30 to 320 ± 70 fM). Estimated rate coefficients for DEM production varied seasonally and strongly correlated with sea surface temperature (SST). Hg evasion fluxes also peaked in summer (670 ± 380 pmol m day), while in winter, DEM was close to equilibrium with gaseous elemental mercury in the atmosphere. Based on the air-sea Hg fluxes for all four seasons from this study and regional atmospheric deposition fluxes from others, we conclude that the ECS is a net sink of Hg annually, but it is a source of Hg to the atmosphere in summer. Moreover, the contribution of the ECS to Hg evasion may increase as a result of flood-associated high Changjiang discharge and rising SST.

摘要

东海(ECS)受到河流和季风的影响,其海水表面溶解态元素汞(DEM)及其气海交换通量呈现出明显的时空分布特征。从空间上看,近岸长江稀释水(90±20 至 260±40 fM)中的 DEM 浓度高于外海水(60±10 至 160±40 fM),与盐度和总汞浓度相关,表明长江排放的总汞是一个控制因素。夏季,季风驱动的沿海上升流形成了一个暂时的近岸水团,其 DEM 浓度非常高(290±20 至 320±70 fM)。季节性地,所有水团中的 DEM 浓度在夏季最高(120±30 至 320±70 fM)。DEM 的生成率系数随季节变化而变化,与海表温度(SST)密切相关。Hg 逸出通量也在夏季达到峰值(670±380 pmol m day),而在冬季,大气中 DEM 与气态元素汞接近平衡。基于本研究四个季节的气海 Hg 通量和其他研究的区域大气沉积通量,我们得出结论,东海每年是 Hg 的汇,但在夏季是大气 Hg 的源。此外,由于与洪水相关的长江高流量和不断上升的 SST,东海对 Hg 逸出的贡献可能会增加。

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