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A similar to 3.5 Ga record of water-limited, acidic weathering conditions on Mars

机译:与火星上受水限制,酸性风化条件的3.5 Ga记录相似

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The secondary mineral budget on Earth is dominated by clay minerals, Al-hydroxides, and Fe-oxides, which are formed under the moderate pH, high water-to-rock ratio conditions typical of Earth's near-surface environment. In contrast, geochemical analyses of rocks and soils from landed missions to Mars indicate that secondary mineralogy is dominated by Mg (+/- Fe, Ca)-sulfates and Fe-oxides. This discrepancy can be explained as resulting from differences in the chemical weathering environment of Earth and Mars. We suggest that chemical weathering processes on Mars are dominated by: (1) a low-pH, sulfuric acid-rich environment in which the stoichiometric dissolution of labile mineral phases such as olivine and apatite ( +/- Fe-Ti oxides) is promoted; and (2) relatively low water-to-rock ratio, such that other silicate phases with slower dissolution rates (e.g., plagioclase, pyroxene) do not contribute substantially to the secondary mineral budget at the Martian surface. Under these conditions, Al-mobilization is limited, and the formation of significant Al-bearing secondary phases (e.g., clays, Al-hydroxides, Al-sulfates) is inhibited. The antiquity of rock samples analyzed in-situ on Mars suggest that water-limited acidic weathering conditions have more than likely been the defining characteristic of the Martian aqueous environment for billions of years. (C) 2007 Elsevier B.V. All rights reserved.
机译:地球上的次要矿物资源主要是粘土矿物,氢氧化铝和铁氧化物,它们是在地球近地表环境典型的中等pH值,高水岩石比条件下形成的。相反,从着陆任务到火星的岩石和土壤的地球化学分析表明,次生矿物学主要是硫酸镁(+/- Fe,Ca)和氧化铁。可以解释这种差异是由于地球和火星的化学风化环境不同所致。我们认为,火星的化学风化过程受以下因素支配:(1)在低pH值,富含硫酸的环境中,促进了橄榄石和磷灰石(+/- Fe-Ti氧化物)等不稳定矿物相的化学计量溶解。 ; (2)相对较低的水岩石比,以致其他溶解速度较慢的硅酸盐相(例如斜长石,辉石)基本上不影响火星表面的次生矿物收支。在这些条件下,铝的迁移受到限制,并且显着抑制了含铝次生相的形成(例如,粘土,氢氧化铝,硫酸铝)。在火星上进行现场分析的古代岩石样品表明,数十亿年来,水限制的酸性风化条件很可能已成为火星水环境的定义特征。 (C)2007 Elsevier B.V.保留所有权利。

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