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首页> 外文期刊>The American mineralogist >The behavior of Li and B in lunar mare basalts during crystallization, shock, and thermal metamorphism: Implications for volatile element contents of martian basalts
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The behavior of Li and B in lunar mare basalts during crystallization, shock, and thermal metamorphism: Implications for volatile element contents of martian basalts

机译:锂,硼在月球母玄武岩结晶,冲击和热变质过程中的行为:对火星玄武岩中挥发性元素含量的影响

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摘要

Late-stage rims of magmatic pyroxenes from some martian basalts show decreases in Li and B contents relative to earlier-formed pyroxene cores. This behavior is different than expected from their documented incompatible element behavior. Previous workers interpreted such depletions to reflect the loss of several wt% magmatic water during basalt crystallization. This interpretation has profound implications for the nature of the martian mantle and recent exchange of volatiles between the martian mantle and atmosphere. To assess alternative mechanisms that may influence the behavior of Li and B in the absence of aqueous fluid activity, the effects of changing pyroxene composition during crystallization, shock pressure, and shock-associated thermal metamorphism were studied. Lithium and B depletions are documented in late-stage rims of pyroxenes from anhydrous lunar basalts indicating that mechanisms other than aqueous fluid activity must have influenced Li and B partitioning in these pyroxenes. Depletions of Li and B are most likely associated with changing pyroxene composition during crystallization, and occur in lunar and martian pyroxenes with late-stage Fe-enrichment. It is interesting that pyroxenes without late-stage Fe-enrichment show no concomitant Li and B increases. Lithium loss may occur during breakdown of metastable pyroxferroite. Additionally, changes in Cr content may influence the substitution mechanism involved for incorporating Li. Shock does Dot redistribute Li or B but may facilitate subsequent thermally driven diffusion by the introduction of mechanical defects in grains. Thermally metamorphosed pyroxenes exhibit higher Li and lower B contents relative to unheated pyroxenes. It is likely, therefore, that Li and B are redistributed through interactions between pyroxenes and surrounding zones of mesostasis during thermal metamorphism.
机译:来自某些火星玄武岩的岩浆辉石的后期边缘相对于较早形成的辉石岩心,其Li和B含量降低。此行为与记录的不兼容元素行为不同。先前的工作人员将这种消耗解释为反映了玄武岩结晶过程中若干重量%的岩浆水的损失。这种解释对火星地幔的性质以及火星地幔与大气之间最近的挥发物交换具有深远的意义。为了评估在不存在含水流体活性的情况下可能影响Li和B行为的替代机制,研究了在结晶过程中改变辉石成分,冲击压力和与冲击相关的热变质作用。在无水玄武岩中辉石的后期边缘中记录了锂和B的消耗,这表明除含水流体活性以外的其他机理还必须影响这些辉石中Li和B的分配。 Li和B的耗尽最有可能与结晶过程中辉石的组成变化有关,并且发生在后期和富铁阶段的月球和火星辉石中。有趣的是,没有后期富铁的辉石没有伴随着Li和B的增加。在亚稳态焦亚铁酸盐分解过程中可能会发生锂损失。另外,Cr含量的变化可能影响引入Li所涉及的取代机理。冲击不会使Li或B重新分布,但可能会由于在晶粒中引入机械缺陷而促进随后的热驱动扩散。相对于未加热的辉石,热变质的辉石表现出更高的Li和更低的B含量。因此,很可能在热变质过程中,通过辉石与介晶的周围区域之间的相互作用来重新分布Li和B。

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