The Role of Reducing and Acidic Hydrothermal Fluids in Forming Chloride Deposits in Terra Sirenum, Mars

IF 4 1区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS
David C. Fernández-Remolar, Wladyslaw Altermann, David Gomez-Ortiz, Brian Hynek, Matthew R. M. Izawa, Ernst Hauber, Solmaz Adeli, Ricardo Amils, Ting Huang, Nigel Blamey, Angelo Pio Rossi, Laetitia Le Deit
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Abstract

Orbital remote sensing has shown that some regions of the ancient Martian crust contain hundreds of discrete terrains covered by chloride-rich evaporites. In terrestrial evaporitic systems, evaporite sequences typically begin with the deposition of carbonates, followed by sulfates, and finally chlorides, a depositional sequence that has not yet been found on Mars. Instead, sulfate deposits are always separated spatially and temporally from chlorides, suggesting two different depositional regimes. Here, we present a model driven by the Martian chlorine geochemical cycle that allows the formation of chlorides whilst simultaneously inhibiting sulfate and carbonate precipitation. In this model, the chlorides are produced under reducing and acidic conditions. Chloride deposition was driven by hydrothermal alteration of the Martian crust associated with faults, followed by precipitation from ascending saline solutions along the tectonic conduits. These processes occurred under a relatively thick and reducing atmosphere (1–0.1 bar). The crustal circulation of chloride-precipitating fluids may have been driven by tectonic suction and pumping processes. Parental brines from hydrothermal activity sourcing chloride might also have contributed to the sulfates found in Cross and Columbus craters of Terra Sirenum. Our study integrates orbital imaging, topography, and spectroscopy with geochemical modeling and terrestrial analogs. We propose that the Terra Sirenum chloride deposits derive from subsurface brines, with deposition driven using tectonic and hydrothermal processes. Under inferred reducing and anoxic conditions, chloride formed with minimal co-precipitation of sulfates and carbonates. Unlike isolated chloride deposits confined to topographic lows, the Terra Sirenum chlorides are associated with linear features interpreted as faults.

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还原酸性热液在火星Sirenum中氯化物矿床形成中的作用
轨道遥感显示,古火星地壳的某些区域包含数百个被富含氯化物的蒸发岩覆盖的离散地形。在陆地蒸发系统中,蒸发岩序列通常从碳酸盐沉积开始,接着是硫酸盐,最后是氯化物,这是一种尚未在火星上发现的沉积序列。相反,硫酸盐沉积物总是在空间和时间上与氯化物分离,表明两种不同的沉积制度。在这里,我们提出了一个由火星氯地球化学循环驱动的模型,该模型允许氯化物的形成,同时抑制硫酸盐和碳酸盐的沉淀。在这个模型中,氯化物是在还原性和酸性条件下产生的。氯化物沉积是由与断层相关的火星地壳热液蚀变驱动的,随后是沿构造导管上升的盐溶液沉淀。这些过程发生在相对较厚的还原气氛下(1-0.1 bar)。氯化物沉淀流体的地壳循环可能是由构造吸入和泵送作用驱动的。来源于氯化物的热液活动的母体盐水也可能是在Terra Sirenum的Cross和Columbus陨石坑中发现的硫酸盐的来源。我们的研究将轨道成像、地形学和光谱学与地球化学建模和陆地模拟相结合。我们认为氯化硅土矿床来源于地下卤水,受构造和热液作用的驱动。在推断的还原和缺氧条件下,氯化物的形成与硫酸盐和碳酸盐的最小共沉淀。与局限于地形低洼的孤立氯化物矿床不同,Terra Sirenum氯化物与被解释为断层的线性特征有关。
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来源期刊
Journal of Geophysical Research: Planets
Journal of Geophysical Research: Planets Earth and Planetary Sciences-Earth and Planetary Sciences (miscellaneous)
CiteScore
8.00
自引率
27.10%
发文量
254
期刊介绍: The Journal of Geophysical Research Planets is dedicated to the publication of new and original research in the broad field of planetary science. Manuscripts concerning planetary geology, geophysics, geochemistry, atmospheres, and dynamics are appropriate for the journal when they increase knowledge about the processes that affect Solar System objects. Manuscripts concerning other planetary systems, exoplanets or Earth are welcome when presented in a comparative planetology perspective. Studies in the field of astrobiology will be considered when they have immediate consequences for the interpretation of planetary data. JGR: Planets does not publish manuscripts that deal with future missions and instrumentation, nor those that are primarily of an engineering interest. Instrument, calibration or data processing papers may be appropriate for the journal, but only when accompanied by scientific analysis and interpretation that increases understanding of the studied object. A manuscript that describes a new method or technique would be acceptable for JGR: Planets if it contained new and relevant scientific results obtained using the method. Review articles are generally not appropriate for JGR: Planets, but they may be considered if they form an integral part of a special issue.
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