多种钾质矿物的精确40Ar/39Ar定年限制了西澳大利亚金伯利地区Walgidee Hills煌石管的年龄和快速冷却历史,时间为17.49 Ma

IF 3.6 2区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS
Simon A. Wilde , Fred Jourdan , Lynda Frewer , Monika A. Kusiak
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引用次数: 0

摘要

为了确定西澳大利亚金伯利地区Walgidee Hills煌石岩管初始喷发期的位置年龄,采用40Ar/39Ar定年法对非标准含钾矿物钾辉石岩、钾辉石岩、钾辉石岩和钾辉石岩进行了多矿物定年法的准确性测试,同时采用更传统的富钾矿物绿云母进行了测试。所有矿物的单晶平台年龄在17.82±0.53 ~ 17.0±1.6 Ma (2σ)之间,年龄不确定度在±0.14 ~±1.6 Ma之间。精度的变化取决于所分析晶体的体积和K2O含量。合并数据集的平均年龄为17.487±0.083 Ma[±0.086;包括所有不确定性来源](n = 10;mswd = 0.50;P = 0.87),代表了Walgidee Hills闪辉岩的初始结晶年龄,这是世界上已知的最大和最年轻的钻石煌斑岩。尽管矿物闭合温度可能存在变化,但缺乏年龄差异,证实了快速冷却。虽然所分析的大部分矿物在普通岩浆岩中罕见或不存在,但有些矿物广泛分布于碱性杂岩和煌斑岩、卡马布长岩和金伯利岩侵入体中。结果表明,这些富k矿物具有良好的40Ar/39Ar定年能力,可以单独或组合使用,以获得精确的岩浆结晶年龄和超经典岩石的可能冷却速率。对于羽流环境中产生的一组钾质岩石,他们可以追踪板块运动的速度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Precise 40Ar/39Ar dating of multiple potassic minerals constrain the age and rapid cooling history of the Walgidee Hills lamproite pipe, Kimberley Region, Western Australia, at 17.49 Ma
To determine the emplacement age of the initial eruptive phase of the Walgidee Hills lamproite pipe in the Kimberley region of Western Australia, the veracity of utilizing multi-mineral dating of the non-standard potassium-bearing minerals potassic richterite, wadeite, jeppeite, and priderite and was tested by 40Ar/39Ar dating, along with the more traditionally-utilized potassium-rich mineral phlogopite. All minerals give excellent single-crystal plateau ages ranging from 17.82 ± 0.53 to 17.0 ± 1.6 Ma (2σ), and with age uncertainties ranging from ±0.14 Ma to ±1.6 Ma. The variation in precision is dependent on both the volume and K2O content of the crystal analyzed. The mean age of the combined data set is 17.487 ± 0.083 Ma [± 0.086; inclusive of all sources of uncertainties] (n = 10; MSWD = 0.50; P = 0.87) and represents the initial crystallization age of the Walgidee Hills diatreme, the largest known and youngest diamondiferous lamproite in the world. The lack of age difference, despite the probable variation in mineral closure temperatures, confirms rapid cooling. Although most of the minerals analyzed are rare to absent in common magmatic rocks, some are widely distributed in alkaline complexes and in lamproite, kamapugite and kimberlite intrusions. Our results show these K-rich minerals are excellent for 40Ar/39Ar dating and can be used singly or in combination to obtain precise magmatic crystallization ages, and possible cooling rates, of ultrapotassic rocks. For a suite of potassic rocks generated in a plume setting, they can track the rate of plate motion.
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来源期刊
Chemical Geology
Chemical Geology 地学-地球化学与地球物理
CiteScore
7.20
自引率
10.30%
发文量
374
审稿时长
3.6 months
期刊介绍: Chemical Geology is an international journal that publishes original research papers on isotopic and elemental geochemistry, geochronology and cosmochemistry. The Journal focuses on chemical processes in igneous, metamorphic, and sedimentary petrology, low- and high-temperature aqueous solutions, biogeochemistry, the environment and cosmochemistry. Papers that are field, experimentally, or computationally based are appropriate if they are of broad international interest. The Journal generally does not publish papers that are primarily of regional or local interest, or which are primarily focused on remediation and applied geochemistry. The Journal also welcomes innovative papers dealing with significant analytical advances that are of wide interest in the community and extend significantly beyond the scope of what would be included in the methods section of a standard research paper.
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