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Magnetite Geochemistry of the Jinchuan Ni-Cu-PGE Deposit, NW China: Implication for Its Ore-Forming Processes

机译:金川市镍铜矿矿床的磁铁矿地球化学,NW中国:矿石成矿过程的含义

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摘要

The Jinchuan Ni-Cu-PGE deposit is the single largest magmatic Ni-sulfide deposit in the world, with three different hypotheses on its ore-forming processes (e.g., in-situ sulfide segregation of sulfide-bearing magma, deep segregation with multiple injections of magma, and hydrothermal superimposition) mainly based on study of whole-rock geochemistry and isotopes (e.g., S-Sr-Nd-Hf). In this study, we mainly concentrated on magnetite textural and geochemical characteristics from different sulfide ores to clarify the genetic types and geochemical difference of the Jinchuan magnetite, and to explore a new credible ore-forming process by magnetite formation process when combined with detailed deposit geology. Three types of magnetite from massive and disseminated sulfide ores were observed by different textural analysis, and they were shown to have different genetic types (mainly in geochemistry) and trace elemental features. Type I magnetite is subhedral to anhedral from massive Ni- (or Fe-) and Cu-rich sulfide ores, with apparent magmatic origin, whereas Type II (dendritic or laminar crystals) and III magnetite (granular crystals as disseminated structures) from disseminated Cu-rich sulfide ores may have precipitated from late stage of melts evolved from a primitive Fe-rich and sulfide-bearing system with magmatic origin, but their geochemistry being typical of hydrothermal magnetite, videlicet, depletions of Ti (< 20 ppm), Al (< 51 ppm), Zr (0.01−0.57 ppm), Hf (0.03−0.06 ppm), Nb (0.01−0.14 ppm), and Ta (0.01−0.21 ppm). Such different types of magnetite can be clearly distinguished from concentrations and ratios of their trace elements, such as Ti, V, Co, Ni, Zn, Zr, Sn, Ga, and Ni/Cr. Those different types of Jinchuan magnetite crystallized from (evolved) sulfide-bearing systems and their geochemistries in trace elements are controlled mainly by evolution of ore-related systems and geochemical parameters (e.g., T and fO2), with the former playing a predominant role. Combining the previous literature with this study, we propose that the Jinchuan deposit formed by multiple pluses of sulfide-bearing magma during fractional crystallization, with the emplacing of more fractionated and sulfide-bearing magma during sulfide segregation playing a predominant role. During this multiple emplacement and evolving of sulfide-bearing systems, Type I magmatic magnetite crystallized from primitive and evolved Fe-rich MSS (monosulfide solid solution), while Type II and III magnetite crystallized from evolved Fe-rich MSS to Cu-rich ISS (intermediate solid solution) during sulfide fractionation, with those Type II and III magnetite having much higher Cu contents compared with that of Type I magnetite.
机译:金川镍 - 铜 - PGE矿床是世界上最大的单一岩浆镍硫化物矿床,在其矿石形成过程(三个不同的假设例如,在原位含硫化物岩浆,深隔离用多次注射的硫化物偏析岩浆和热液叠加)的主要是基于全岩地球化学和同位素(例如,S-SR-的Nd-Hf)的研究。在这项研究中,我们主要集中在从不同的硫化物矿石磁铁矿质地和地球化学特征澄清遗传类型和金川磁铁矿的地球化学差,并探索通过磁铁矿形成处理的新的可信的矿石形成过程时有详细的存款地质组合。由不同的纹理分析,观察到从大规模和浸染硫化物矿石三种类型的磁铁矿,并且它们被示出为具有不同的遗传类型(主要在地球化学)和痕量元素的特征。 I型磁铁矿半自形,以反角从弥散性铜块状Ni基(或铁 - )和Cu-富含硫化物矿石,具有明显的岩浆成因,而II型(树枝状或层状晶体)和III磁铁矿(粒状晶体作为播散结构)富含硫化物矿石可能已经从由原始的富铁和含硫化物系统岩浆演变熔体的后期沉淀的,但它们的地球化学是典型的水热磁铁矿,换言之,钛(<20ppm)的,铝的耗竭(的<51ppm的),锆(0.01-0.57 PPM),铪(0.03-0.06 ppm的),铌(0.01-0.14 ppm的),和Ta(0.01-0.21 ppm)表示。例如不同类型的磁铁矿可以从他们的微量元素,如Ti,V,钴,镍,锌,锆,锡,镓,和镍/铬的浓度和比例可以清楚地区别。微量元素从(演进的)含硫化物系统及其地球化学制约结晶那些不同类型的金川磁铁矿的主要由矿石相关系统和地球化学参数(例如,T和FO2)的演化的控制,与前播放一个主导作用。与本研究结合以往的文献中,我们提出,金川矿床的含硫化物的岩浆多长处分步结晶过程中形成的,更多的进行分馏,含硫化物的岩浆硫化物分离过程中安放发挥了主导作用。在此多个安置和含硫化物系统的不断发展,I型岩浆磁铁矿从原始结晶和演进富Fe MSS(兰姆固溶体),而II型和III磁铁矿演变而来的富Fe MSS结晶,富 - 铜ISS(中间固溶体)硫醚分离期间,用与I型磁铁矿相比具有高得多的Cu含量的那些类型II和III磁铁矿。

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