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首页> 外文期刊>Applied Geochemistry: Journal of the International Association of Geochemistry and Cosmochemistry >Coupled chemistry and transport modelling of sulphidic waste rock dumps at the Aitik mine site, Sweden
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Coupled chemistry and transport modelling of sulphidic waste rock dumps at the Aitik mine site, Sweden

机译:瑞典Aitik矿场中硫化废石堆的化学和运输耦合模型

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The recently developed geochemical modelling code, SULFIDOX, has been applied to simulate weathering of a waste rock dump at the Aitik mine site, Sweden. SULFIDOX models the key chemical and physical processes in the dump temporally and spatially (in two dimensions). The following processes are represented: gas and heat transport; water infiltration; aqueous speciation; mineral dissolution/oxidation and precipitation.Field observations at the site suggest that sulphide oxidation rates within the dump are variable. Although the major part of the dump is oxidising slowly, there are pockets of more highly oxidising material, particularly toward the dump edges. Using SULFIDOX, several models of the dump were investigated: (i) a dump wholly comprised of slowly oxidising material (representing a case where water flow paths are such that no rapidly oxidising regions are accessed); (ii) a dump wholly comprised of the more rapidly oxidising material (representing the opposite (and probably unlikely) extreme, where water flows only through rapidly oxidising regions in the dump); and (iii) a dump comprising a mixture of both slowly and more rapidly oxidising material, that more closely represents the mix of material in the dump.All the models studied gave O-2 depth profiles consistent with those observed in probe holes at the site, and confirmed that only a minimal amount of heat production would be expected in the dump due to the role of exothermic sulphide oxidation reactions. The models suggested that a medium-term steady-state, with respect to effluent chemistry, would be achieved after 3-4 years. Based on sulphide consumption rates during this steady-state period, the time periods required to consume all the sulphide in the dump range from a few hundred to many thousands of years. Using the mixed model, and based on a mixture containing 86% slowly and 14% rapidly oxidising material, the calculated effluent chemistry was in good agreement with the observed effluent chemistry. Improvements with respect to the K concentrations were possible by including precipitation of a K-bearing secondary mineral such a K-jarosite in the model. Results from the more rapidly oxidising model suggested that gypsum precipitation might be expected in those regions of the dump containing this material.In summary, the SULFIDOX modelling code has been used successfully to reproduce observed data for the Aitik waste-rock dump. Using SULFIDOX, valuable insight was gained in relation to the temporal and spatial evolution of the dump. (C) 2004 Elsevier Ltd. All rights reserved.
机译:最近开发的地球化学建模代码SULFIDOX已被用于模拟瑞典Aitik矿场的废石堆的风化。 SULFIDOX对垃圾场中的关键化学和物理过程进行了时间和空间建模(二维)。代表以下过程:气体和热传输;水渗透;水性物种矿物溶解/氧化和沉淀。现场的现场观察表明,垃圾场内的硫化物氧化速率是可变的。尽管排料场的主要部分氧化缓慢,但仍有一些袋装的高氧化性物质,尤其是朝向排料场的边缘。使用SULFIDOX,对垃圾场的几种模型进行了研究:(i)完全由缓慢氧化的物质组成的垃圾场(代表水流路径使得无法进入快速氧化区域的情况); (ii)完全由氧化速度更快的物质组成的垃圾场(代表相反的极端情况(可能不大可能),其中水仅流过垃圾场中快速氧化的区域); (iii)包含缓慢和较快氧化物质的混合物的废料堆,它更紧密地代表废料堆中的物质混合物。所有研究的模型给出的O-2深度剖面与在现场探针孔中观察到的一致,并确认由于放热的硫化物氧化反应的作用,料堆中只会产生极少量的热量。这些模型表明,在3-4年后,就废水化学而言,将达到中期稳态。根据此稳态期间的硫化物消耗率,消耗转储中所有硫化物所需的时间范围为数百年至数千年。使用混合模型,并基于包含86%缓慢氧化物质和14%快速氧化物质的混合物,计算出的废水化学成分与观察到的废水化学成分非常吻合。通过在模型中包括含K的次生矿物(如K-黄铁矿)的沉淀,可以改善K的浓度。氧化速度更快的模型的结果表明,在含有这种材料的垃圾场中可能会出现石膏沉淀。总之,SULFIDOX建模代码已成功用于重现Aitik废石垃圾场的观测数据。使用SULFIDOX,获得了有关垃圾场时间和空间演变的宝贵见解。 (C)2004 Elsevier Ltd.保留所有权利。

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