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Trace Metals in Arctic Fast Ice

机译:北极速冻冰中的痕量金属

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摘要

Trace metals in the marine environment are found in trace amounts, but are important tracers of oceanographic processes, and bioactive trace metals can impact ocean biogeochemistry through their nutrient or toxic influence of microbial populations. Sea ice is an intrinsic feature of the Arctic Ocean that likely plays a key role in the cycling of trace metals, given that this substrate can concentrate, alter, and transport these elements. Warming conditions in the Arctic have decreased sea ice cover over the past decades and the loss of sea ice threatens to drastically change the Arctic ecosystem, but the implications are not entirely understood. The scarcity of studies on Arctic sea ice entrained trace metals is due in part to the lack of commercially available sampling equipment capable of collecting sea ice without introducing contamination, and in part to the logistic and economic difficulties in accessing remote Arctic sea ice sites. Natural heterogeneity related to large sediment loads incorporated in uneven patches across Arctic fast ice poses a challenge when designing observational studies of trace metals in sea ice. The scope of this thesis is on the study of trace metals in Alaskan Beaufort Sea fast ice environment. The study includes snow, sea ice and seawater under the ice. Analysis of dissolved (Mn, Fe, Cu and Zn) and particulate (Al, Mn, Fe, Cu and Zn) phases was carried out from 50 ice cores collected with a trace metal clean ice corer developed at the University of Alaska Fairbanks. The results of this study indicated that the ice corer developed at UAF was able to collect uncontaminated samples. Highly variable and elevated concentrations of particulate (> 0.2 ?m) trace elements were observed due to the notable variability in the amount of sediment incorporated within ice cores, but surprisingly dissolved (< 0.2 ?m) metal concentrations were relatively low and consistent. The observed low dissolved metal concentrations, along with low bulk salinity and low percent leachable particulate trace metal fractions, suggest that desalination removed reactive metals from the ice matrix prior to sampling. Spatial variability of dissolved and particulate trace metals was statistically analyzed and indicated generally negligible variability on the meter scale, but significant variability on the kilometer scale, for both size classes. These results emphasize that future studies of trace metals in sea ice should include temporal and spatial considerations.
机译:在海洋环境中发现的痕量金属微量,但是海洋学过程的重要示踪剂,生物活性痕量金属可通过其营养或微生物种群的毒性影响海洋生物地球化学。海冰是北冰洋的一个固有特征,可能在痕量金属的循环中起关键作用,因为这种底物可以浓缩,改变和运输这些元素。在过去的几十年中,北极的变暖条件减少了海冰的覆盖范围,海冰的损失有可能极大地改变北极的生态系统,但其影响尚不完全清楚。北极海冰中夹带的痕量金属的研究稀缺,部分原因是缺乏可在不引入污染的情况下收集海冰的商用采样设备,部分是由于在访问偏远的北极海冰场所的后勤和经济困难。在设计对海冰中痕量金属的观测研究时,与北极快速冰上不平坦斑块中所含大量沉积物负荷相关的自然异质性提出了挑战。本文的研究范围是在阿拉斯加博福特海快速冰环境中研究微量金属。研究包括雪,海冰和冰下的海水。使用由阿拉斯加费尔班克斯大学开发的痕量金属清洁冰芯收集器收集的50个冰芯进行了溶解相(Mn,Fe,Cu和Zn)和颗粒相(Al,Mn,Fe,Cu和Zn)的分析。这项研究的结果表明,UAF开发的冰芯收集器能够收集未污染的样品。由于引入到冰芯中的沉积物数量存在显着变化,因此观察到了高度变化和升高的微粒(> 0.2 µm)痕量元素浓度,但令人惊讶的是,溶解的金属浓度(<0.2 µm)相对较低且稳定。观察到的低溶解金属浓度,以及低盐度和低百分率的可浸出微粒痕量金属分数,表明脱盐在采样之前从冰基质中去除了活性金属。对溶解和微粒状痕量金属的空间变异性进行了统计分析,结果表明,对于两种尺寸类别,米级的变异性通常可以忽略不计,而公里级的变异性却可以忽略不计。这些结果强调,未来对海冰中微量金属的研究应包括时间和空间方面的考虑。

著录项

  • 作者

    Domena, Vincent.;

  • 作者单位

    University of Alaska Fairbanks.;

  • 授予单位 University of Alaska Fairbanks.;
  • 学科 Chemical oceanography.
  • 学位 M.S.
  • 年度 2017
  • 页码 59 p.
  • 总页数 59
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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