首页> 外文期刊>Applied Geochemistry: Journal of the International Association of Geochemistry and Cosmochemistry >Removal of trace metals by coprecipitation with Fe, Al and Mn from natural waters contaminated with acid mine drainage in the Ducktown Mining District, Tennessee
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Removal of trace metals by coprecipitation with Fe, Al and Mn from natural waters contaminated with acid mine drainage in the Ducktown Mining District, Tennessee

机译:田纳西州达克敦矿区与酸性,酸性废水排放污染的天然水中的铁,铝和锰共沉淀去除痕量金属

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This study examined the sorption of trace metals to precipitates formed by neutralization of 3 natural waters contaminated with acid mine drainage (AMD) in the former Ducktown Mining District, Tennessee. The 3 water samples were strongly acidic (pH 2,2 to 3.4) but had distinctively different chemical signatures based on the mole fractions of dissolved Fe, Al and Mn. One sample was Fe-rich (Fe = 87.5%. Al = 11.3%, and Mn = 1.3%), another was Al-rich (Al = 79.4%, Mn = 18.0%. and Fe = 2.5%). and the other was Mn-rich (Mn = 51.4%. Al = 25.7%. and Fe = 22.9%). In addition, these waters had high concentrations of trace metals including Zn (37,700 to 17,400 mug/l), Cu (13,000 to 270 mug/l), Co (1,500 to 520 mug/l), Ni (360 to 75 mug/l). Pb (30 to 8 mug/l), and Cd (30 to 6 mug/l). Neutralization of the AMD-contaminated waters in the laboratory caused the formation of either schwertmannite at pH < 4 or ferrihydrite at pH > 4. Both phases were identified by XRD analyses of precipitates from the most Fc-rich water. At higher pH values (similar to5) Al-rich precipitates were formed. Manganese compounds were precipitated Lit pHsimilar to8. The removal of trace metals depended on the precipitation of these compounds. which acted as sorbents. Accordingly, the pH for 50% sorption (pH(50)) ranged from 5.6 to 7.5 for Zn, 4.6 to 6.1 for Cu. 5.4 to 7.7 for Ni, 5.9 to 7.9 for Co, 3,1 to 4.3 for Pb, and 5.5 to 7.7 for Cd. The pH dependence of sorption arose not only because of changes in the sorption coefficients of the trace metals but also because the formation and composition of the sorbent was controlled by the pH, the chemical composition of the water, and the solubilities of the oxyhydroxide-sulfate complexes of Fe. Al. and Mn. (C) 2002 Elsevier Science Ltd. All rights reserved. [References: 37]
机译:这项研究检查了田纳西州前鸭敦矿区的3种被酸性矿井排水(AMD)污染的天然水被中和而形成的沉淀物对痕量金属的吸附。 3个水样品为强酸性(pH为2.2至3.4),但根据溶解的Fe,Al和Mn的摩尔分数,具有明显不同的化学特征。一个样品富含铁(Fe = 87.5%。Al= 11.3%,Mn = 1.3%),另一个样品富含Al(Al = 79.4%,Mn = 18.0%,Fe = 2.5%)。另一个是富锰的(Mn = 51.4%,Al = 25.7%,Fe = 22.9%)。此外,这些水还含有高浓度的痕量金属,包括锌(37,700至17,400杯/升),铜(13,000至270杯/升),钴(1,500至520杯/升),镍(360至75杯/升)。 )。铅(30至8杯/升)和镉(30至6杯/升)。在实验室中对AMD污染的水进行中和会导致pH值小于4的Schwertmannite或pH值大于4的三水铁​​矿的形成。通过XRD分析来自最富Fc的水中的沉淀物,确定了两个相。在较高的pH值(类似于5)下,会形成富含Al的沉淀物。锰化合物的沉淀pH值接近8。痕量金属的去除取决于这些化合物的沉淀。充当吸附剂。因此,50%吸附的pH值(pH(50))对于Zn为5.6至7.5,对于Cu为4.6至6.1。镍为5.4至7.7,钴为5.9至7.9,铅为3,1至4.3,镉为5.5至7.7。吸附的pH依赖性不仅是由于痕量金属的吸附系数的变化引起的,而且还因为吸附剂的形成和组成受pH值,水的化学组成和硫酸氢氧根的溶解度的控制。铁的配合物。铝和Mn。 (C)2002 Elsevier ScienceLtd。保留所有权利。 [参考:37]

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