Geochemical, petrographic, and stratigraphic analyses of the Portage Lake Volcanics of the Keweenawan CFBP: implications for the evolution of main stage volcanism in continental flood basalt provinces
W. Davis, M. Collins, T. Rooney, Eric Brown, C. Stein, S. Stein, R. Moucha
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引用次数: 5
Abstract
Abstract Continental flood basalt provinces (CFBPs) are large igneous features formed by the extrusion of massive amounts of lavas that require significant evolution within the lithosphere. Although sequential lava flows are effective probes of magmatic systems, CFBPs are typically poorly preserved. We focus on lava flows from the well-preserved 1.1 Ga Keweenawan CFBP that erupted within the Midcontinent Rift System. We present a new geochemical, petrographic, and stratigraphic synthesis from the Main stage Portage Lake Volcanics (PLV). Flow-by-flow analysis of the PLV reveals that major element behaviour is decoupled from trace element behaviour; MgO exhibits limited variability, while compatible and incompatible trace elements deviate from high to low concentrations throughout the sequence. The concentrations of incompatible trace elements slightly decrease from the base of the sequence to the top. We investigate these observations by applying a recharge, evacuation, assimilation and fractional crystallization model to geochemical and petrographic data. Our modelling demonstrates a magmatic system experiencing increased evacuation rates while fractionation and assimilation rates decrease, indicating an increase in magmatic flux. The outcome of this modelling is a progressively more efficient magma system within the PLV. This study highlights the utility of joint petrographic and geochemical interpretation in constraining CFBP magma evolution.
大陆洪水玄武岩省(cfbp)是由大量熔岩挤压形成的大型火成岩特征,需要在岩石圈内进行重大演化。虽然序贯熔岩流是岩浆系统的有效探针,但cfbp通常保存较差。我们重点研究了保存完好的1.1 Ga Keweenawan CFBP在中大陆裂谷系喷发的熔岩流。本文提出了一种新的地球化学、岩石学和地层学合成方法。对PLV的逐流分析表明,主元素行为与微量元素行为是分离的;MgO表现出有限的变异性,而相容和不相容的微量元素在整个序列中从高浓度到低浓度偏离。不相容微量元素的浓度从序列底部到顶部略有下降。我们通过对地球化学和岩石学数据应用补给、疏散、同化和分数结晶模型来研究这些观察结果。我们的模拟表明,岩浆系统的疏散率增加,而分馏和同化率降低,表明岩浆通量增加。这种模拟的结果是,PLV内的岩浆系统逐渐变得更加有效。该研究突出了岩石学和地球化学联合解释在制约CFBP岩浆演化中的作用。