Tracking isotopic sources of immiscible melts at the enigmatic magnetite-(apatite) deposit at El Laco, Chile, using Pb isotopes

GSA Bulletin Pub Date : 2023-04-10 DOI:10.1130/b36506.1
D. Pietruszka, J. Hanchar, F. Tornos, M. Whitehouse, F. Velasco
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引用次数: 1

Abstract

The long-standing controversy about the origin of magnetite-(apatite) mineral deposits pertains to how they form. The Pleistocene El Laco deposit in northern Chile is a critical location because the host andesite contains immiscible melt inclusions trapped in plagioclase and clinopyroxene phenocrysts that reveal the involvement of immiscible melts in the evolution of the El Laco Volcanic System hosting the magnetite-(apatite) mineralization. We present results from the first-ever whole-rock and in situ Pb isotope investigation at El Laco, which provides a better understanding of the relationships between immiscible melts preserved in the melt inclusions, the magnetite ore, and the host andesite, and helps identify sources of the ore metals by analyzing potential sources of crustal lead. Our study reveals that the phenocrysts and the melt inclusions contain homogenous Pb isotope compositions that overlap with the host andesite, which confirms that they are coeval and cogenetic. The magnetite ore, however, has significantly more primitive 206Pb/204Pb ratios, which points to Pb isotopic disequilibrium between the magnetite ore and host andesite. Model ages of 367−167 Ma for the magnetite ore suggest that the Pb was inherited from a U−Th-depleted reservoir that could be represented by sedimentary rocks found in the basement of the Andean Cordillera under El Laco, for example, the Palaeozoic P-rich ironstones sequence. These results are consistent with the major role of crustal contamination in the formation of magnetite-(apatite) mineralization elsewhere and suggest that the magnetite ore crystallized from immiscible Fe-rich melts contaminated by the underlying sedimentary sequences.
用Pb同位素追踪智利El Laco神秘磁铁矿(磷灰石)矿床非混溶熔体的同位素来源
关于磁铁矿(磷灰石)矿床成因的争论由来已久,争论的焦点在于它们是如何形成的。智利北部的更新世El Laco矿床是一个关键的位置,因为寄主安山岩含有被斜长石和斜辉石斑晶包裹的不混溶熔体,这表明在El Laco火山系统的演化中参与了承载磁铁矿(磷灰石)成矿作用的不混溶熔体。本文介绍了首次在El Laco进行全岩和原位Pb同位素研究的结果,该结果更好地了解了熔体包裹体中保存的不混溶熔体、磁铁矿和宿主安山岩之间的关系,并通过分析地壳铅的潜在来源,帮助确定矿石金属的来源。研究表明,斑晶和熔融包裹体的Pb同位素组成均与寄主安山岩重叠,证实了它们是同生同成的。而磁铁矿的206Pb/204Pb比值明显更原始,说明磁铁矿与主安山岩的Pb同位素不平衡。该磁铁矿的模式年龄为367 ~ 167 Ma,表明Pb继承自贫铀储层,贫铀储层可以由El Laco下安第斯山脉基底的沉积岩代表,例如古生代富磷铁矿层序。这些结果与地壳污染在其他地区磁铁矿(磷灰石)矿化形成中的主要作用一致,表明磁铁矿是由受下伏沉积序列污染的不混溶富铁熔体结晶而成的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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