首页> 外文期刊>Mineralogical Magazine >Thermodynamic properties of mansfieldite (AlAsO4 center dot 2H(2)O), angelellite (Fe-4(AsO4)(2)O-3) and kamarizaite (Fe-3(AsO4)(2)(OH)(3)center dot 3H(2)O)
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Thermodynamic properties of mansfieldite (AlAsO4 center dot 2H(2)O), angelellite (Fe-4(AsO4)(2)O-3) and kamarizaite (Fe-3(AsO4)(2)(OH)(3)center dot 3H(2)O)

机译:Mansfieldite的热力学性质(Alaso4中心2H 2H(2)O),Angelellite(Fe-4(ASO4)(2)O-3)和Kamarizaite(Fe-3(ASO4)(2)(2)(OH)(3)中心点 3H(2)o)

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Thermodynamic data for the arsenates of various metals are necessary to calculate their solubilities and to evaluate their potential as arsenic storage media. If some of the less common arsenate minerals have been shown to be less soluble than the currently used options for arsenic disposal (especially scorodite and arsenical iron oxides), they should be further investigated as promising storage media. Furthermore, the health risk associated with arsenic minerals is a function of their solubility and bioavailability, not merely their presence. For all these purposes, solubilities of such minerals need to be known. In this work, a complete set of thennodynamic data has been determined for mansfieldite, AlAsO4 center dot 2H(2)O; angelellite. Fe-4(AsO4)(2)O-3; and kamarizaite, Fe-3(AsO4)(OH)(3)center dot 3H(2)O, using a combination of high-temperature oxide-melt calorimetry, relaxation calorimetry, solubility measurements, and estimates where possible and appropriate. Several choices for the reference compounds for As for the high-temperature oxide-melt calorimetry were assessed. Scorodite was selected as the best one. The calculated Gibbs free energy of formation (all data in kJ.mol (1)) is -1733.4 +/- 3.5 for mansfieldite, -2319.2 +/- 17.9 for angelellite and -3056.8 +/- 8.5 for kamarizaite. The solubility products for the dissolution reactions are -21.410.5 for mansfieldite. -43.4 +/- 1.5 for angelellite and -50.8 +/- 1.6 for kamarizaite. Available, but limited, chemical data for the natural scorodite-mansfieldite solid-solution series hint at a miscibility gap; hence the non-ideal nature of the series. However, no mixing parameters were derived because more data are needed. The solubility of mansfieldite is several orders of magnitude higher than that of scorodite. The solubility of kamarizaite, on the other hand, is comparable to that of scorodite, and kamarizaite even has a small stability field in a pH-pc diagram. It is predicted to form under mildly acidic conditions in acid drainage systems that are not subject to rapid neutralization and sudden strong supersaturation. The solubility of angelellite is high, and the mineral is obviously restricted to unusual environments, such as fumaroles. Its crystallization may be enhanced via its epitaxial relationship with the much more common hematite. The use of the scorodite-mansfieldite solid solution for arsenic disposal, whether the solid solution is ideal or not, is not practical. The difference in solubility products of the two end-members (scorodite and mansfieldite) is so large that almost any system will drive the precipitation of essentially pure scorodite, leaving the aluminium in the aqueous phase.
机译:用于计算它们的溶解度并评估其作为砷储存介质的潜力所必需的热力学数据是必要的。如果已显示出一些较少的常见的砷化物矿物质,则从目前使用的砷处理选项(特别是焦岩和砷铁氧化物)的可溶性不易易溶,则应进一步调查它们作为有前途的储存介质。此外,与砷矿物质相关的健康风险是它们的溶解度和生物利用度的函数,而不仅仅是它们的存在。对于所有这些目的,需要知道这种矿物质的溶解度。在这项工作中,已经确定了一套完整的单一动力学数据,用于Mansfieldite,Alaso4中心点2H(2)O;螂。 Fe-4(ASO4)(2)O-3;和Kamarizaite,Fe-3(ASO4)(OH)(3)中心点3H(2)O,使用高温氧化物 - 熔体量热法,弛豫量热法,溶解度测量和估算,在可能和适当的情况下。评估用于高温氧化物 - 熔岩热量的参考化合物的几种选择。 Scorodite被选为最好的。计算的GIBBS的形成能量(KJ.mol(1)中的所有数据)为Mansfieldite的-1733.4 +/- 3.5,为Angelellite为-2319.2 +/-17.9和Kamarizaite的-3056.8 +/- 8.5。溶解反应的溶解性产物为Mansfieldite为-21.410.5。 Angelellite的-43.4 +/- 1.5和Kamarizaite的-50.8 +/- 1.6。可用但有限,为天然太山铁矿 - 曼塞菲尔德固溶系列提示的有限的化学数据,处于混溶性差距;因此,该系列的非理想性质。但是,没有导出混合参数,因为需要更多数据。 Mansfieldite的溶解度比太阳岩的几个数量级。另一方面,Kamarizaite的溶解度与太阳岩的溶解度相当,并且Kamarizaite甚至在PH-PC图中具有小的稳定性场。预计在酸引流系统中的温和酸性条件下形成不受快速中和和突然强烈的过饱和度的形式。恐怖星的溶解度很高,矿物质明显仅限于异常的环境,例如富马族。可以通过与更常见的赤铁矿的外延关系来增强其结晶。使用臭臭 - 曼菲尔德固体解决方案进行砷处理,无论固体溶液是理想的还是不实用的。两个端构件(焦散和曼塞托地)的溶解性产物的差异如此之大,几乎任何系统都会驱动基本上纯的焦岩的沉淀,将铝留在水相中。

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