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LONG-TERM CORROSION-INDUCED COPPER RUNOFF FROM NATURAL AND ARTIFICIAL PATINA AND ITS ENVIRONMENTAL IMPACT

机译:天然和人工铜长期腐蚀引起的铜径流及其环境影响

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The overall objective of this paper is to present an extensive set of data for corrosion-induced copper dispersion and its environmental interaction with solid surfaces in the near vicinity of buildings. Copper dispersion is discussed in terms of total copper flows, copper speciation and bioavailability at the immediate release situation, and its changes during transport from source to recipient. Presented results are based on extensive field exposures (eight years) at an urban site, laboratory investigations of the runoff process, published field data, generated predictive site-specific runoff rate models, and reactivity investigations toward various natural and manmade surfaces, such as those in soil, limestone, and concrete. Emphasis is placed on the interaction of copper-containing runoff water with different soil systems through long-term laboratory column investigations. The fate of copper is discussed in terms of copper retention, copper chemical speciation, breakthrough capacities, and future mobilization based on changes in copper concentrations in the percolate water, computer modeling using the Windermere Humic Aqueous Model, and sequential extractions. The results illustrate that, for scenarios where copper comes in extensive contact with solid surfaces, such as soil and limestone, a large fraction of released copper is retained already in the immediate vicinity of the building. In all, both the total copper concentration in runoff water and its bioavailable part undergo a significant and rapid reduction.
机译:本文的总体目标是提供大量有关腐蚀引起的铜扩散及其与建筑物附近固体表面的环境相互作用的数据。讨论了铜的分散情况,包括总铜流量,即刻释放情况下的铜形态和生物利用度,以及从源头到接收者的运输过程中铜的变化。给出的结果基于城市场地的广泛野外暴露(八年),径流过程的实验室调查,公开的野外数据,生成的特定地点预测性径流率模型以及对各种天然和人造表面(例如那些表面)的反应性调查在土壤,石灰石和混凝土中。通过长期的实验室柱研究,重点放在含铜的径流水与不同土壤系统的相互作用上。讨论了铜的命运,包括铜的保留率,铜的化学形态,突破的能力以及基于渗滤液水中铜浓度变化的未来动员,使用温德米尔腐殖酸水模型的计算机建模和顺序提取。结果表明,对于铜与固体表面(例如土壤和石灰石)广泛接触的场景,大部分释放的铜已经保留在建筑物的附近。总之,径流水中的总铜浓度及其可生物利用的部分都显着而迅速地减少。

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