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Laboratory Simulated Acid-Sulfate Weathering of Basaltic Materials: Implications for Formation of Sulfates at Meridiani Planum and Gusev Crater, Mars

机译:实验室模拟的玄武岩质材料的硫酸盐风化:在Meridiani Planum和Gusev Crater,火星上形成硫酸盐的含义

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摘要

Acid-sulfate weathering of basaltic materials is a candidate formation process for the sulfate-rich outcrops and rocks at the MER rover Opportunity and Spirit landing sites. To determine the style of acid-sulfate weathering on Mars, we weathered basaltic materials (olivine-rich glassy basaltic sand and plagioclase feldspar-rich basaltic tephra) in the laboratory under different oxidative, acid-sulfate conditions and characterized the alteration products. We investigated alteration by (1) sulfuric-acid vapor (acid fog), (2) three-step hydrothermal leaching treatment approximating an open system and (3) single-step hydrothermal batch treatment approximating a "closed system." In acid fog experiments, Al, Fe, and Ca sulfates and amorphous silica formed from plagioclase-rich tephra, and Mg and Ca sulfates and amorphous silica formed from the olivine-rich sands. In three-step leaching experiments, only amorphous Si formed from the plagioclase-rich basaltic tephra, and jarosite, Mg and Ca sulfates and amorphous silica formed from olivine-rich basaltic sand. Amorphous silica formed under single-step experiments for both starting materials. Based upon our experiments, jarosite formation in Meridiani outcrop is potential evidence for an open system acid-sulfate weathering regime. Waters rich in sulfuric acid percolated through basaltic sediment, dissolving basaltic phases (e.g., olivine) and forming jarosite, other sulfates, and iron oxides. Aqueous alteration of outcrops and rocks on the West Spur of the Columbia Hills may have occurred when vapors rich in SO2 from volcanic sources reacted with basaltic materials. Soluble ions from the host rock (e.g., olivine) reacted with S to form Ca-, Mg-, and other sulfates along with iron oxides and oxyhydroxides.
机译:玄武岩材料的酸性硫酸盐风化作用是MER流动站“机会”和“烈酒”着陆点富含硫酸盐的露头和岩石的候选形成过程。为了确定火星上酸性硫酸盐的风化方式,我们在不同的氧化,酸性硫酸盐条件下,在实验室中风化了玄武岩材料(富含橄榄石的玻璃状玄武岩和富含斜长石的长石玄武岩),并表征了蚀变产物。我们研究了以下变化:(1)硫酸蒸气(酸雾),(2)接近开放系统的三步水热浸出处理和(3)接近“封闭系统”的单步水热分批处理。在酸雾实验中,铝,铁和钙的硫酸盐和无定形二氧化硅是由富含斜长石的特非拉形成的,而镁和钙的硫酸盐和无定形二氧化硅是由富含橄榄石的砂形成的。在三步浸出实验中,仅由富含斜长石的玄武质特非拉形成了非晶硅,而由富含橄榄石的玄武质砂形成了黄铁矿,硫酸镁和硫酸钙以及无定形二氧化硅。在两种原料的一步法实验中形成的非晶态二氧化硅。根据我们的实验,梅里迪亚尼露头的黄钾铁矾形成是开放系统酸性硫酸盐风化机制的潜在证据。富含硫酸的水渗透到玄武质沉积物中,溶解玄武相(例如橄榄石)并形成黄钾铁矾,其他硫酸盐和氧化铁。当来自火山源的富含SO2的蒸气与玄武质发生反应时,可能会在哥伦比亚山的西马刺上发生露头和岩石的含水蚀变。来自基质岩石(例如橄榄石)的可溶性离子与S反应形成Ca-,Mg-和其他硫酸盐以及氧化铁和羟基氧化物。

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