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Insights into mantle-type volatiles contribution from dissolved gases in artesian waters of the Great Artesian Basin, Australia

机译:澳大利亚大自流盆地自流水中溶解气体对地幔型挥发物贡献的见解

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摘要

The geochemical features of the volatiles dissolved in artesian thermal waters discharged over three basins (Millungera, Galilee and Cooper basin) of the Australian Great Artesian Basin (GAB) consistently indicate the presence of fluids from multiple gas sources located in the crust (e.g. sediments, oil reservoirs, granites) as well as minor but detectable contributions of mantle/magma-derived fluids. The gases extracted from 19 water samples and analyzed for their chemical and isotopic composition exhibit amounts of CO up to about 340mlSTP/L marked by a δC (Total Dissolved Carbon) ranging from -16.9 to +0.18‰ vs PDB, while CH concentrations vary from 4.4×10 to 4.9mlSTP/L. Helium contents were between 9 and >2800 times higher than equilibrium with Air Saturated Water (ASW), with a maximum value of 0.12mlSTP/L. Helium isotopic composition was in the 0.02-0.21 Ra range (Ra = air-normalized He/He ratio). The three investigated basins differ from each other in terms of both chemical composition and isotopic signatures of the dissolved gases whose origin is attributed to both mantle and crustal volatiles. Mantle He is present in the west-central and hottest part of the GAB despite no evidence of recent volcanism. We found that the partial pressure of helium, significantly higher in crustal fluids than in mantle-type volatiles, enhances the crustal He signature in the dissolved gases, thus masking the original mantle contribution. Neotectonic activity involving deep lithospheric structures and magma intrusions, highlighted by recent geophysical investigations, is considered to be the drivers of mantle/magmatic volatiles towards the surface. The results, although pertaining to artesian waters from a vast area of >542,000km, provide new constraints on volatile injection, and show that fluidsu27 geochemistry can provide additional and independent information on the geo-tectonic settings of the Great Artesian Basin and its geothermal potential.
机译:在澳大利亚大自流盆地(GAB)的三个盆地(Millungera,Galilee和Cooper盆地)排放的自流热水中溶解的挥发物的地球化学特征始终表明,地壳中存在多种气体源的流体(例如沉积物,储油层,花岗岩)以及地幔/岩浆衍生流体的少量但可检测的贡献。从19个水样中提取的气体并对其化学和同位素组成进行了分析,其CO含量最高约为340mlSTP / L,其δC(总溶解碳)相对于PDB范围为-16.9至+ 0.18‰,而CH浓度变化范围为4.4×10至4.9mlSTP / L氦气含量比用空气饱和水(ASW)达到的平衡高9到> 2800倍之间,最大值为0.12mlSTP / L。氦同位素组成在0.02-0.21 Ra范围内(Ra =空气标准化He / He比)。三个被调查盆地在溶解气体的化学组成和同位素特征方面都互不相同,其起源均来自地幔和地壳挥发物。尽管没有最近火山爆发的迹象,但他还是出现在GAB的中西部和最热部分。我们发现,地壳流体中氦的分压明显高于地幔类型的挥发物,它增强了溶解气体中地壳He的特征,从而掩盖了最初的地幔贡献。最近的地球物理研究突显了涉及深层岩石圈结构和岩浆侵入的新构造活动,是地幔/岩浆挥发物向地表的驱动力。结果虽然与来自> 542,000 km的广阔区域的自流水有关,但为挥发物注入提供了新的约束条件,并表明流体地球化学可以提供有关大自流盆地及其大地构造环境的更多且独立的信息。地热潜力。

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