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Mechanisms and Implications of a-HCH Enrichment in Melt Pond Water on Arctic Sea Ice

机译:北极海冰融化池塘水中甲型六氯环己烷富集的机理及其意义

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摘要

During the summer of 2009, we sampled 14 partially refrozen melt ponds and the top 1 m of old ice in the pond vicinity for α- hexachlorocyclohexane (α-HCH) concentrations and enantiomer fractions (EFs) in the Beaufort Sea. α-HCH concentrations were 3 - 9 times higher in melt ponds than in the old ice. We identify two routes of α-HCH enrichment in the ice over the summer. First, atmospheric gas deposition results in an increase of α-HCH concentration from 0.07 ± 0.02 ng/L (old ice) to 0.34 ± 0.08 ng/L, or ~20% less than the atmosphere-water equilibrium partitioning concentration (0.43 ng/L). Second, late-season ice permeability and/or complete ice thawing at the bottom of ponds permit a-HCH rich seawater (~0.88 ng/L) to replenish pond water, bringing concentrations up to 0.75 ± 0.06 ng/L. α-HCH pond enrichment may lead to substantial concentration patchiness in old ice floes, and changed exposures to biota as the surface meltwater eventually reaches the ocean through various drainage mechanisms. Melt pond concentrations of α-HCH were relatively high prior to the late 1980- s, with a Melt pond Enrichment Factor >1 (MEF; a ratio of concentration in surface meltwater to surface seawater), providing for the potential of increased biological exposures.
机译:在2009年夏季,我们对14个部分重新融化的池塘和池塘附近1 m处的旧冰进行了采样,以获取Beaufort海中α-六氯环己烷(α-HCH)的浓度和对映体分数(EFs)。熔池中的六氯环己烷浓度比旧冰高3-9倍。我们确定了夏季冰中α-六氯环己烷富集的两种途径。首先,大气中的气体沉积导致α-六氯环己烷的浓度从0.07±0.02 ng / L(旧冰)增加到0.34±0.08 ng / L,比大气-水平衡分配浓度(0.43 ng / L)低约20%。 L)。其次,后期的冰渗透性和/或池塘底部的完全融冰使富含六氯环己烷的海水(约0.88 ng / L)可以补充池塘水,使浓度达到0.75±0.06 ng / L。甲型六氯环己烷的富集可能导致旧浮冰中大量的浓度不规则,并随着地表融水最终通过各种排水机制到达海洋而改变了对生物群系的接触。在1980年代末之前,熔池中的六氯环己烷浓度相对较高,熔池富集系数> 1(MEF;表层熔体水与表层海水的浓度之比),这提供了增加生物暴露的潜力。

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  • 来源
    《Environmental Science & Technology》 |2012年第21期|11862-11869|共8页
  • 作者单位

    Centre for Earth Observation Science, University of Manitoba, 460 Wallace Building, 125 Dysart Road, Winnipeg, R3T 2N2, Canada,Department of Fisheries and Oceans, Freshwater Institute, 501 University Crescent, Winnipeg, Manitoba, R3T 2N6, Canada,Department of Chemistry, Multanimal Modi (Postgraduate) College, Modinagar (UP), 201204 India;

    Centre for Earth Observation Science, University of Manitoba, 460 Wallace Building, 125 Dysart Road, Winnipeg, R3T 2N2, Canada,Department of Fisheries and Oceans, Freshwater Institute, 501 University Crescent, Winnipeg, Manitoba, R3T 2N6, Canada;

    Centre for Earth Observation Science, University of Manitoba, 460 Wallace Building, 125 Dysart Road, Winnipeg, R3T 2N2, Canada;

    Centre for Earth Observation Science, University of Manitoba, 460 Wallace Building, 125 Dysart Road, Winnipeg, R3T 2N2, Canada,Department of Fisheries and Oceans, Institute of Ocean Sciences, 9860 West Saanich Road, Sidney, British Columbia, Canada, V8L 4B2;

    Centre for Earth Observation Science, University of Manitoba, 460 Wallace Building, 125 Dysart Road, Winnipeg, R3T 2N2, Canada;

    Department of Fisheries and Oceans, Freshwater Institute, 501 University Crescent, Winnipeg, Manitoba, R3T 2N6, Canada;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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