首页> 外文学位 >Mercury methylation beneath an in-situ sediment cap.
【24h】

Mercury methylation beneath an in-situ sediment cap.

机译:在原位沉积物帽下方的汞甲基化。

获取原文
获取原文并翻译 | 示例

摘要

The production of methyl mercury, an acute neurotoxin which readily accumulates in the tissue of organisms, is a biologically mediated process facilitated by sulfate reducing bacteria in aquatic sediments. In-situ capping is a frequently considered risk management strategy for contaminated sediments. Since placement of an in-situ cap will induce anaerobic conditions that are known to be favorable for the growth of sulfate reducing bacteria, there is justifiable concern that capping could increase mercury methylation in underlying sediments. This research builds an understanding of the effects of in-situ capping on underlying biogeochemical processes and elucidates their importance in controlling methyl mercury production. Laboratory experiments and mathematical models were implemented to simulate mercury methylation in redox conditions likely to be induced by capping using sediment from different environments. Mathematical descriptions of processes known to be involved in methylation were incorporated into the model to quantify the effects of these processes.;Observations in both well-mixed slurry conditions and intact sediment columns showed that methyl mercury concentrations are strongly dependent upon biogeochemical conditions. Results from experiments with sediment spanning a range of redox conditions and organic contents suggested that sulfate reduction rates, aqueous speciation, and solid phase partitioning are involved in limiting methylation depending on bulk geochemical characteristics. A model with a mechanistic basis that incorporates the effects of these processes provides a useful means of qualitatively and quantitatively considering their cumulative impact in limiting methyl mercury production. High methyl mercury concentrations observed in some lab experiments suggest that there is reason to be concerned about anoxic conditions induced by capping; however, not all anoxic conditions led to equivalent increases in methyl mercury. Experimental and modeling results suggest that in a high organic environment, in-situ capping may produce conditions which accelerate methylation in (formerly) surficial sediment while in a low organic environment, with an overall lower potential for methylation, capping can be expected to have a less dramatic effect. Over time, two processes will temper cap-induced increases in methyl mercury. Increases will only last until sulfide builds up to inhibitory levels in underlying sediment or until organic carbon is depleted and overall bacterial activity slows. By providing a more fundamental understanding of the effects of capping on mercury methylation, the results of this research will aid in identifying situations and conditions in which cap-induced increases in methyl mercury have the potential to limit the effectiveness of the management strategy.
机译:甲基汞(一种易于在生物组织中累积的急性神经毒素)的产生是一种生物介导的过程,其通过硫酸盐还原水生沉积物中的细菌得以促进。现场封顶是被污染的沉积物经常被认为是风险管理策略。由于放置在原位的帽盖会导致厌氧条件,已知该条件有利于减少硫酸盐的细菌的生长,因此有理由担心帽盖会增加下层沉积物中的汞甲基化。这项研究建立了对原位封顶对潜在生物地球化学过程的影响的理解,并阐明了它们在控制甲基汞生产中的重要性。实施了实验室实验和数学模型来模拟在氧化还原条件下汞甲基化,这很可能是由于使用不同环境的沉积物进行封盖而引起的。对已知参与甲基化过程的数学描述已纳入模型中,以量化这些过程的影响。在充分混合的浆液条件和完整沉积物柱中的观察结果表明,甲基汞浓度强烈依赖于生物地球化学条件。沉积物在一系列氧化还原条件和有机物含量范围内的实验结果表明,硫酸盐还原速率,水溶液形态和固相分配与限制甲基化有关,具体取决于整体地球化学特征。具有机理基础的模型结合了这些过程的影响,为定性和定量地考虑它们在限制甲基汞生产中的累积影响提供了一种有用的手段。在一些实验室实验中观察到的高甲基汞浓度表明,有理由要关注加帽引起的缺氧条件。然而,并非所有缺氧条件都导致甲基汞的同等增加。实验和建模结果表明,在高有机环境中,原位封盖可能会产生加速(以前)表层沉积物中甲基化的条件,而在低有机环境中,甲基化的总体可能性较低,可以预期封盖具有戏剧效果较差。随着时间的流逝,有两个过程将抑制上限诱导的甲基汞增加。这种增加只会持续到硫化物在下层沉积物中积聚到抑制水平,或者直到有机碳耗尽并且整体细菌活动变慢为止。通过对封顶对汞甲基化的影响提供更基本的了解,这项研究的结果将有助于确定封顶诱导的甲基汞增加可能限制管理策略有效性的情况和条件。

著录项

  • 作者

    Johnson, Nathan William.;

  • 作者单位

    The University of Texas at Austin.;

  • 授予单位 The University of Texas at Austin.;
  • 学科 Engineering Geological.;Geochemistry.;Engineering Environmental.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 159 p.
  • 总页数 159
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号