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首页> 外文期刊>Contributions to Mineralogy and Petrology >Pre-eruptive magma mixing in ash-flow deposits of the Tertiary Rum Igneous Centre, Scotland
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Pre-eruptive magma mixing in ash-flow deposits of the Tertiary Rum Igneous Centre, Scotland

机译:苏格兰第三朗姆酒火成岩中心火山灰流沉积物中的喷发前岩浆混合

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The Northern Marginal Zone of the Rum Igneous Centre is a remnant of an early caldera and its infill. It is composed of intra-caldera breccias and various small-volume pyroclastic deposits, overlain by prominent rhyodacite ash-flow sheets of up to 100 m thickness. The ash-flows were fed from a feeder system near the caldera ring-fault, and intrusive rhyodacite can locally be seen grading into extrusive deposits. A variety of features suggest that the ash-flows were erupted from a magma chamber that contemporaneously hosted felsic and mafic magmas: (i) chilled basaltic inclusions in rhyodacite; (ii) formerly glassy basaltic to andesitic enclaves with fluid-fluid relationships; (iii) feldspars with thick reaction rims enclosed in the basaltic to andesitic inclusions, yet with cores chemically resembling those of the rhyodacite: (iv) trace element compositions of the rhyodacite and the mafic enclaves form a mixing line between the end-member rhyodacite and basalt compositions. Additionally, textural and chemical features in the rhyodacite feldspar phenocrysts are consistent with magma mixing; (v) feldspars with resorption embayments cutting through internal zonation of the crystals; (vi) complexly zoned crystals with sieve-textured zones that are overgrown with euhedral zones; (vii) oscillatory zonation of feldspar phenocrysts in the rhyodacite, showing sharp increases in anorthite (ΔAn ≥ 10%) followed by gradual decrease in An-content (ΔAn ≤ 4%). This evidence points to eruption of ash-flows from a felsic magma chamber that was periodically replenished by injection of mafic magma. Diffusional mixing between the two magmas was permitted by temperature and compositional differences, but was slow due to the contrast in viscosities and densities. The Fe–Ti–P-enriched basic magma that replenished the chamber was degassing on entering the lower temperature environment and soon equilibrated thermally, followed by chemical exchange between the two end-member magmas. This process formed hybrid andesite enclaves enriched in trace elements beyond that caused by simple mixing, implying trace element diffusion in addition to bulk mixing. Eruption was caused by replenishment with, and degassing of, the basic magma and the chamber partially evacuated while the process of hybridisation was underway. The erupted products record magma mixing by chamber replenishment, blending of two magmas and elemental exchange in the magma chamber, and also physical mingling in the eruptive conduit.
机译:朗姆酒火成中心的北部边缘带是早期破火山口及其填充物的残留物。它由破火山口内角砾岩和各种小体积的火山碎屑沉积物组成,上面覆盖着厚达100 m的突出的流纹岩灰流板。灰分流是从破火山口环形断层附近的进料器系统进料的,在局部可以看到侵入性的流纹岩逐渐变成挤出的沉积物。多种特征表明,灰烬流是由同时容纳长英质和镁铁质岩浆的岩浆室喷出的:(i)流纹岩中的冷玄武质包裹体; (ii)以前为玻璃质玄武岩至安山岩,具有流体-流体关系; (iii)在玄武岩至安山岩包裹体中具有厚的反应边缘的长石,但在化学上类似于流纹岩的长石:(iv)流纹岩和镁铁矿群的痕量元素组成在端粒型流纹岩与硅镁石之间形成了一条混合线玄武岩成分。另外,流纹长石长晶石的结构和化学特征与岩浆混合一致。 (v)具有吸收吸附的长石穿过晶体的内部区域; (vi)复杂分区的晶体,其中筛子纹理化的区域被长满了正反面的区域所覆盖; (vii)菱锰矿中长石隐晶的振荡带,钙长石的急剧增加(ΔAn≥10%),随后An含量逐渐降低(ΔAn≤4%)。该证据表明,来自长岩浆岩室的火山灰喷发,并通过注入镁铁质岩浆来定期补充。温度和成分的差异允许两个岩浆之间的扩散混合,但由于粘度和密度的对比而缓慢。富含Fe-Ti-P的基本岩浆在进入较低温度的环境时就脱气,并很快达到热平衡,然后在两个末端成员岩浆之间进行化学交换。此过程形成的安山岩混合飞地中,痕量元素的富集超出了简单混合所引起的痕量,这意味着除了大量混合外,痕量元素的扩散。爆发是由于在进行杂交过程中补充基本的岩浆并对其进行脱气,并且使腔室部分抽真空。喷出的产物记录了岩浆的混合,包括充填室,两个岩浆的混合以及岩浆室中的元素交换,以及喷管中的物理混合。

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