利用 PRIMARSMELT 估算火星原生岩浆:对某些火星岩石成岩学和火星热演化的启示

IF 3.9 1区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS Journal of Geophysical Research: Planets Pub Date : 2024-11-05 DOI:10.1029/2024JE008508
Juan David Hernández-Montenegro, Paul D. Asimow, Claude T. Herzberg
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引用次数: 0

摘要

原生岩浆是由地幔中的部分熔融形成的,是构建地壳的起始材料。原生岩浆的成分对于了解行星内部的热历史至关重要,因为它们可以用来估算地幔潜在温度(TP)并跟踪地幔部分熔化条件随时间的变化。在这里,我们介绍 PRIMARSMELT,它是 PRIMELT 软件家族的新成员,经过校准可用于估算火星原生岩浆的成分及其形成条件。我们将 PRIMARSMELT 应用于火星玄武岩成分综合数据库。我们的结果与它们的岩石学一致,需要添加橄榄石来将分馏成分恢复到它们的原生母岩,并从积聚岩中减去橄榄石。单个原生岩浆溶液为特定火星陨石的岩石成因提供了见解,并对一些原始陨石的近原生性质以及陨石 EETA 79001 中岩性 A 和 B 之间的关系产生了影响。总之,我们的研究结果表明,在整个火星地质历史中,地幔潜在温度几乎保持不变或有可能不断升高。年轻舍尔格特陨石的平均地幔势温度为 1,442 ± 40°C,与地球物理模型推断的环境地幔温度相似。相比之下,NWA 7034/7533 陨石中火成岩碎块的较老玄武岩记录的潜在温度低至 ∼ 1,320 ± 48°C。我们认为,舍尔格特陨石记录的是地幔环境温度,而不是与羽岩有关的岩浆活动,热演化趋势可能是由于热量损失效率低下造成的,这也是处于停滞模式的行星所预期的。
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Estimating Primary Magmas From Mars With PRIMARSMELT: Implications for the Petrogenesis of Some Martian Rocks and the Thermal Evolution of Mars

Primary magmas form by partial melting in the mantle of a terrestrial planet and represent the starting material for building its crust. The compositions of primary magmas are critical for understanding the thermal history of planetary interiors, as they can be used to estimate mantle potential temperatures (TP) and track changes in the conditions of mantle partial melting over time. Here, we introduce PRIMARSMELT, a new member of the PRIMELT software family, calibrated to estimate the composition of Martian primary magmas and their formation conditions. We applied PRIMARSMELT to a comprehensive database of basaltic compositions from Mars. Our results are consistent with their petrology, requiring olivine addition to restore fractionated compositions to their primary parents and olivine subtraction from cumulate rocks. Individual primary magma solutions provide insights into the petrogenesis of specific Martian meteorites, with implications for the near-primary nature of some primitive meteorites and the relationship between lithologies A and B in meteorite EETA 79001. Taken together, our results suggest nearly constant or potentially increasing mantle potential temperatures throughout the geological history of Mars. The average TP for young shergottite meteorites is ∼1,442 ± 40°C, similar to ambient mantle temperatures inferred from geophysical models. In contrast, older basaltic rocks record potential temperatures as low as ∼1,320 ± 48°C for igneous clasts in meteorites NWA 7034/7533. We suggest that, rather than plume-related magmatism, shergottite meteorites record ambient mantle temperatures, with the thermal evolution trend possibly resulting from inefficient heat loss, as expected for a planet in stagnant-lid mode.

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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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