Fractional Crystallization Scenario for Magma Evolution on Mercury Inferred From Geochemical Variation Around the Caloris Basin

IF 3.9 1区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS
K. Hirata, T. Usui, E. Caminiti, J. Wright, S. Besse
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Abstract

The observed geochemical heterogeneity on the surface of Mercury is key to understanding the planet's volcanic activity and mantle conditions. The Caloris basin shows a diversity in elemental composition, spectral properties, and geomorphology, both within and around it. However, the relationship among these characteristics has not been well understood due to the mismatch in spatial resolutions of the available observation data. This study investigates the geochemical end-members around the Caloris basin, overcoming the limitation of the low spatial resolution of MESSENGER's X-Ray Spectrometer (XRS) data. End-member units are defined using spectral and geomorphological units from MESSENGER's VIS-NIR spectral data and high-resolution images, with the assumption of homogeneous elemental compositions within each unit. A mixing model is constructed to reproduce the XRS data by mixing the end-members, and we solve the inverse problem to calculate the respective end-member compositions. Five end-member compositions were determined, including those corresponding to the post-Caloris volcanic smooth plains interior and exterior to the basin and surrounding pre-Caloris crust. Two smooth plains units, which are geomorphologically indistinguishable but spectrally distinct, showed a compositional variation consistent with magma evolution through fractional crystallization. This suggests that they originated from parent magmas with a common composition. The pre-Caloris crust units showed a large compositional variation, ranging from low- to high-Mg content, implying the potential existence of high-Mg crusts comparable to the HMR. The observed crustal diversity could be explained by relatively minor heterogeneity in source mantle compositions and/or conditions of partial melting within the mantle.

Abstract Image

从卡洛里斯盆地地球化学变化推断的汞岩浆演化的分晶化情景
观测到的水星表面地球化学非均质性是了解水星火山活动和地幔条件的关键。卡洛里斯盆地在其内部和周围都显示出元素组成、光谱特性和地貌的多样性。然而,由于现有观测数据的空间分辨率不匹配,这些特征之间的关系尚未得到很好的理解。该研究克服了信使号x射线光谱仪(XRS)数据空间分辨率低的限制,研究了卡洛里斯盆地周围的地球化学端元。端元单位是使用信使号VIS-NIR光谱数据和高分辨率图像中的光谱和地貌单位来定义的,假设每个单位内的元素组成均匀。建立了混合模型,通过混合端元来重现XRS数据,并通过求解反问题来计算各自的端元组成。确定了5种端元组成,包括对应于后卡乐里火山时期盆地内外光滑平原和周围前卡乐里时期地壳的端元组成。两个光滑的平原单元在地貌上难以区分,但在光谱上却截然不同,它们的成分变化与岩浆的分离结晶演化一致。这表明它们起源于具有共同成分的母岩浆。前卡乐斯地壳单元显示出较大的成分变化,从低到高mg含量不等,表明可能存在与HMR相当的高mg地壳。观测到的地壳多样性可以用源地幔成分相对较小的非均质性和/或地幔内部部分熔融的条件来解释。
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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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