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首页> 外文期刊>Journal of nanoscience and nanotechnology >Nano-Micron Exsolved Spinels in Titanomagnetite and Their Implications for the Formation of the Panzhihua Fe–Ti–V Oxide Deposit, Southwest China
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Nano-Micron Exsolved Spinels in Titanomagnetite and Their Implications for the Formation of the Panzhihua Fe–Ti–V Oxide Deposit, Southwest China

机译:纳米微米在泰坦诺镁石油系中的尖晶石及其对西南西南部攀枝花Fe-Ti-V氧化物矿床形成的影响

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摘要

The nano-micron exsolved spinels with various mineralogical characteristics in titanomagnetite from Fe–Ti oxide gabbros in the Panzhihua Fe–Ti–V oxide deposit, SW China, have been studied by field emission scanning electron microscopy (FE-SEM) and electron probe microanalysis(EPMA) based on comparisons of physical and chemical conditions at different stratigraphic heights to investigate the compositional inheritance between titanomagnetite and exsolved spinel and further explore the relationship between the morphology and growth of exsolved spinels. Restored chemicaldata for titanomagnetite combined with evidence from petrography and whole-rock geochemistry imply fractional crystallization of the Panzhihua Fe–Ti–V oxide deposit, where the titanomagnetite of thick massive oxides at the bottom of the No. VIII orebody represents the early crystallizingphase characterized by high temperature and oxygen fugacity. The chemical variation in the exsolved spinel, which has the same trend as the restored composition of titanomagnetite, represents inheritance from the parent rock within the Panzhihua deposit. Exsolved spinel continuously adjustsmorphology and grain size to decrease the total energy of the manganate-spinel system from fine-grained spinels parallel to the {100} plane of titanomagnetite to spinels with complex stellate morphology to bulky granular spinels with high degrees of idiomorphism. The unusual multiple magmareplenishment during the mineralizing process and at different stratigraphic heights in the Panzhihua intrusion had an important influence on the thermal evolution history of the orebody, resulting in the identifiable spatial distribution patterns of spinel morphology and grain size. Usingspinel exsolution as a discriminator for the provenance of magmatic ore deposits may provide intuitive and easy mineralogical evidence to qualitatively discuss the evolution of the metallogenetic environment and the ore-forming conditions for similar large mafic intrusions.
机译:攀枝花铁钛钒氧化物矿床铁钛氧化物辉长岩中钛磁铁矿中具有各种矿物学特征的纳米-微米出溶尖晶石,通过场发射扫描电子显微镜(FE-SEM)和电子探针显微分析(EPMA)对不同地层高度的物理和化学条件进行了比较,以研究钛磁铁矿和出溶尖晶石之间的成分遗传,并进一步探索出溶尖晶石的形态与生长之间的关系。恢复的钛磁铁矿化学数据,结合岩石学和全岩地球化学证据,表明攀枝花Fe–Ti–V氧化物矿床的分离结晶,其中第八号矿体底部厚块状氧化物的钛磁铁矿代表以高温和氧逸度为特征的早期结晶相。出溶尖晶石的化学变化与钛磁铁矿的恢复成分具有相同的趋势,代表了攀枝花矿床母岩的继承。出溶尖晶石不断调整形貌和晶粒尺寸,以降低锰酸盐-尖晶石系统的总能量,从平行于钛磁铁矿{100}平面的细粒尖晶石到具有复杂星状形貌的尖晶石,再到具有高度自形性的大块粒状尖晶石。攀枝花岩体在成矿过程中和不同地层高度的异常多次岩浆补给对矿体的热演化历史产生了重要影响,导致尖晶石形态和粒度的空间分布模式可识别。使用尖晶石出溶体作为岩浆矿床来源的判别器,可以提供直观、简单的矿物学证据,定性地讨论类似大型镁铁质侵入体的成矿环境演化和成矿条件。

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  • 作者单位

    Key Laboratory of Ministry of Education on Safe Mining of Deep Metal Mines and School of Resources and Civil Engineering Northeastern University;

    Key Laboratory of Ministry of Education on Safe Mining of Deep Metal Mines and School of Resources and Civil Engineering Northeastern University;

    Key Laboratory of Ministry of Education on Safe Mining of Deep Metal Mines and School of Resources and Civil Engineering Northeastern University;

    Key Laboratory of Ministry of Education on Safe Mining of Deep Metal Mines and School of Resources and Civil Engineering Northeastern University;

    Key Laboratory of Ministry of Education on Safe Mining of Deep Metal Mines and School of Resources and Civil Engineering Northeastern University;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 特种结构材料;
  • 关键词

    Ore Genesis; Panzhihua; Titanomagnetite; Exsolution; Mineralogy; Spinel;

    机译:矿石创世纪;潘志华;钛磁石;exsolution;矿物学;尖晶石;

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