首页> 外文期刊>Economic geology and the bulletin of the Society of Economic Geologists >DIFFERENTIATING TOURMALINE SPECIES VIA CHEMISTRY AND REFLECTANCE SPECTROSCOPY AT THE GIANT COPPER PORPHYRY DEPOSIT AND ASSOCIATED TOURMALINE BRECCIA PIPES: TESTING TOURMALINE AS A MINERAL VECTOR
【24h】

DIFFERENTIATING TOURMALINE SPECIES VIA CHEMISTRY AND REFLECTANCE SPECTROSCOPY AT THE GIANT COPPER PORPHYRY DEPOSIT AND ASSOCIATED TOURMALINE BRECCIA PIPES: TESTING TOURMALINE AS A MINERAL VECTOR

机译:通过巨型铜斑岩矿床和相关碧玺角砾岩管的化学和反射光谱区分碧玺种类:测试碧玺作为矿物载体

获取原文
获取原文并翻译 | 示例
       

摘要

The A.M. breccia is part of the Giant Copper porphyry deposit in southern British Columbia. It is the only well-defined zoned tourmaline breccia pipe in the Canadian Cordillera. Tourmaline is a common alteration mineral within the A.M. breccia and is spatially associated with Cu mineralization. Observed changes in tour?maline chemistry range from alkali (schorlitic-dravitic) to calcic (feruvitic-uvitic). Tourmaline subspecies vary based on their spatial location within the A.M. breccia. Tourmaline outside of the pipe contains higher concen?trations of Mg, whereas tourmaline preferentially incorporates Fe within the pipe. These chemical variations are indistinguishable in hand specimens. Spectral reflectance data were collected from 587 tourmaline grains to determine if discerning chemical changes in tourmaline can be made field-based and thus more cost-effec?tive. Spectral reflectance differentiates tourmaline associated with mineralization and breccia textures from tourmaline occurring distal to the pipe contact or within barren tourmaline breccia pipes. Fe-rich tourmaline within the A.M. breccia shows spectral characteristics of end-member schorl (Fe-rich) spectra. Tourmaline distal to the A.M. breccia and within barren pipes demonstrates spectra of end-member dravite (Mg-rich). This grouping suggests that tourmaline subspecies can be inferred by spectral reflectance, enhancing the effi?ciency of tourmaline as a mineral vector. Tourmaline was also identified via airborne spectral surveys. However, the airborne spectral survey did not identify the end-member spectral properties identified by in situ analysis. Airborne spectral surveys can rap?idly identify tourmaline breccia pipe exposures and expedite early stages of exploration in ore districts where tourmaline is a known gangue mineral.
机译:A.M.角砾岩是不列颠哥伦比亚省南部巨型铜斑岩矿床的一部分。它是加拿大科迪勒拉山脉中唯一定义明确的分区碧玺角砾岩管。碧玺是 AM 角砾岩中常见的蚀变矿物,在空间上与铜矿化有关。观察到的游轮化学变化范围从碱(schorlitic-dravitic)到钙质(feruvitic-uvitic)。碧玺亚种根据它们在 AM 角砾岩中的空间位置而有所不同。管道外的碧玺含有较高的镁浓度,而碧玺优先在管道内掺入铁。这些化学变化在手标本中是无法区分的。从 587 个碧玺颗粒中收集光谱反射率数据,以确定是否可以在现场进行辨别碧玺的化学变化,从而更具成本效益。光谱反射率将与矿化和角砾岩纹理相关的碧玺与出现在管道接触远端或贫瘠的碧玺角砾岩管道内的碧玺区分开来。A.M.角砾岩中的富铁碧玺显示出端元scholl(富铁)光谱的光谱特征。A.M.角砾岩远端和贫瘠管道内的碧玺显示出端段长云母(富含镁)的光谱。这种分组表明,碧玺亚种可以通过光谱反射率来推断,从而提高了碧玺作为矿物载体的有效性。碧玺也是通过航空光谱调查确定的。然而,机载光谱调查并未确定原位分析确定的端构件光谱特性。机载光谱调查可以准确识别碧玺角砾岩管道的暴露情况,并加快在电气石是已知脉石矿物的矿区的勘探早期阶段。

著录项

相似文献

  • 外文文献
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号