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首页> 外文期刊>Chemical geology >Geochemical processes following freshwater reflooding of acidified inland acid sulfate soils: An in situ mesocosm experiment
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Geochemical processes following freshwater reflooding of acidified inland acid sulfate soils: An in situ mesocosm experiment

机译:酸化内陆酸性硫酸盐土壤的淡水再驱后的地球化学过程:原位中观实验

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摘要

In their oxidised form, inland acid sulfate soils (IASS) with sulfuric horizons (pH <= 3.5) contain substantial acidity and pose a number of threats to surrounding ecosystems. In their reduced form, IASS with sulfidic material are relatively benign. Freshwater reflooding has the potential to return oxidised IASS with sulfuric horizons to a reduced and benign state. This study uses mesocosms installed in situ to simulate reflooding in two sulfuric IASS profiles, one sandy textured and the other a cracking clay, and to document key geochemical consequences resulting from their reflooding. During the assessed period of 200 days of subaqueous conditions, reducing conditions were established in parts of the former sulfuric horizons in both the sandy textured and clayey textured IASS. In the permeable sandy IASS, acidity was removed from the sulfuric horizon and displaced downward in the profile by advective piston flow, and thus not completely neutralised. The removal of acidity away from the soil surface was critical in preventing surface water acidification. In contrast, solute transport in the less permeable clayey IASS was diffusion dominated and acidity was not removed from the sulfuric horizon following reflooding and no increase in pH was observed. In the absence of piston flow, a diffusive flux of acidity, from the soil to surface water, resulted in surface water acidification. In the acidic porewaters of the reflooded sulfuric horizons, results indicated dissolved aluminium was controlled by an aluminium species with stoichiometry Al:OH:SO4 (e.g. jurbanite). In the same acidic porewaters, iron and sulfate activity appeared to be regulated by the dissolution of natrojarosite. Following the establishment of reducing conditions, the reductive dissolution of natrojarosite and schwertmannite was responsible for large increases in total dissolved iron. We did not observe any indirect evidence indicating the existence of sulfate reduction during the assessed period. It is likely that insufficiently reducing conditions, competitive exclusion by iron-reducing bacteria, and persisting low pH inhibited sulfate reduction during the assessed period. With insufficient in situ alkalinity generation, IASS are likely to continue to pose an environmental hazard following reflooding and remediation is likely to be slow. A number of geochemical processes involved in the remediation of sulfuric horizons were observed in this study. The key geochemical and physical processes affecting porewater chemistry, in particular Fe and Al, are summarised in a conceptual hydrogeochemical model, so that observations made in this study may be applied to other regions containing IASS with sulfuric horizons that are expected to be reflooded with freshwater. (C) 2015 Elsevier B.V. All rights reserved.
机译:内陆酸性硫酸盐土壤(IASS)的硫酸盐层层(pH <= 3.5)含有大量酸性物质,会对周围的生态系统构成威胁。 IASS与硫化物材料的还原形式相对较温和。淡水驱除有可能使含硫层的氧化IASS返回到还原和良性状态。这项研究使用现场安装的中观空间模拟了两种含硫IASS剖面的回采,其中一个是砂质纹理,另一个是裂化粘土,并记录了因回采而产生的关键地球化学后果。在200天的水下条件评估期间,在砂质纹理和黏土质IASS中,在以前的含硫层中部分地区建立了还原条件。在渗透性砂质IASS中,酸度已从硫酸盐层中去除,并由于对流活塞流而在剖面中向下移位,因此没有完全中和。从土壤表面去除酸度对于防止地表水酸化至关重要。相反,在渗透性较低的黏土IASS中,溶质的运移以扩散为主,并且在重新注水后没有从硫酸层中除去酸度,也没有观察到pH值的增加。在没有活塞流的情况下,酸度从土壤到地表水的扩散通量导致地表水酸化。结果表明,在硫磺化层的酸性孔隙水中,溶解的铝受化学计量比为Al:OH:SO4的铝物质(例如钠铝榴石)控制。在相同的酸性孔隙水中,铁和硫酸盐的活性似乎受钠铁矾的溶解所调节。建立还原条件后,钠铁矾和schwertmannite的还原溶解导致总溶解铁的大量增加。我们没有观察到任何间接证据表明在评估期间硫酸盐还原的存在。在评估期内,还原条件不足,铁还原菌竞争性排斥以及持续的低pH值可能会抑制硫酸盐的还原。如果原位碱度不足,则IASS在注水后可能会继续对环境造成危害,并且修复可能会变慢。在这项研究中,观察到许多涉及硫化层的地球化学过程。在概念性水文地球化学模型中总结了影响孔隙水化学的关键地球化学和物理过程,尤其是铁和铝,因此,本研究中的观察结果可能会应用于含IASS且含硫层的其他地区,预计这些区域将被淡水驱替。 。 (C)2015 Elsevier B.V.保留所有权利。

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