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Petrologic History of Lunar Phosphates Accounts for the Water Content of the Moon’s Mare Basalts

机译:月球磷酸盐的疾病史占月球母马沼气的含水量

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We present reaction balancing and thermodynamic modeling based on microtextural observations and mineral chemistry, to constrain the history of phosphate crystallization within two lunar mare basalts, 10003 and 14053. Phosphates are typically found within intercumulus melt pockets (mesostasis), representing the final stages of basaltic crystallization. In addition to phosphates, these pockets typically consist of Fe-rich clinopyroxene, fayalite, plagioclase, ilmenite, SiO 2 , and a residual K-rich glass. Some pockets also display evidence for unmixing into two immiscible melts: A Si-K-rich and an Fe-rich liquid. In these cases, the crystallization sequence is not always clear. Despite petrologic complications associated with mesostasis pockets (e.g., unmixing), the phosphates (apatite and merrillite) within these areas have been recently used for constraining the water content in the lunar mantle. We compute mineral reaction balancing for mesostasis pockets from Apollo high-Ti basalt 10003 and high-Al basalt 14053 to suggest that their parental magmas have an H 2 O content of 25 ± 10 ppm, consistent with reported estimates based on directly measured H 2 O abundances from these samples. Our results permit to constrain in which immiscible liquid a phosphate of interest crystallizes, and allows us to estimate the extent to which volatiles may have partitioned into other phases such as K-rich glass or surrounding clinopyroxene and plagioclase using a non-destructive method.
机译:我们呈现基于微小局部观测和矿物化学的反应平衡和热力学建模,限制磷酸盐结晶的历史,在两个月球母马沼气中,10003和14053。磷酸盐通常被发现在脑脊粥熔体袋中(Mesostasis)内,代表玄武岩的最终阶段结晶。除了磷酸盐之外,这些袋通常包括Fe富含Fe的Clinopogogexene,Fayalite,Plagioclase,Ilmenite,SiO 2和富含残留的K-玻璃。一些口袋还显示出解密分为两个不混溶的熔体:富含Si-K-和富含Fe的液体。在这些情况下,结晶序列并不总是透明的。尽管与切片袋(例如,解密)相关的岩石菌并发症,但是最近这些区域内的磷酸盐(磷灰石和美发)用于约束月球地幔中的水含量。从Apollo高Ti玄武岩10003和High-Al玄武岩14053计算Mesostasis袋的矿物反应平衡,表明他们的父母岩浆的H 2 O含量为25±10 ppm,与报告的估计值一致,基于直接测量的H 2 O.来自这些样本的丰富。我们的结果允许约束其中不混溶的液体磷酸盐的磷酸盐结晶,并允许我们估计挥发物可以使用非破坏方法将挥发物分配给富含K的玻璃或周围的冠状蛋白酶和Plagioclase的程度。

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