Samail蛇绿岩中亲铜元素行为揭示的俯冲起爆成矿作用

IF 4.8 1区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS
Thomas M. Belgrano , James A. Milton , Larryn W. Diamond , Robin C. Wolf , Yuki Kusano , Damon A.H. Teagle
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引用次数: 0

摘要

洋内俯冲起始标志着威尔逊旋回成熟的辐散期和辐合期的过渡,每个阶段都有相对较好的成矿作用。然而,这一转变的成矿系统尚不清楚,存在火山块状硫化物(VMS)矿床中贵金属富集和新生弧中岩浆-热液成矿潜力的不确定性。Samail蛇绿岩越来越多地被认为是俯冲起始时形成的“原弧”。该蛇绿岩具有岩浆作用的火山玻璃记录和VMS矿床的资源估计,很适合阐明该成矿作用。对这些火山玻璃的新分析表明,在蛇绿岩岩浆作用过程中,熔体亲铜元素系统富集,并富集Au >;Cu≈Ag >;锌与硫化物熔体亲和力相关。这种富集可以通过原弧地幔的连续重熔来解释,初始熔融将金富集为残余硫化物,随后重熔将金提取为硫化物不饱和熔体。随后的熔体分馏进一步提高了相对于硫化物饱和的早期熔体的Au/Cu比率。尽管有明显的板块污染,但向地幔转移的俯冲S极少。这些结果表明,构造-岩浆演化驱动了原弧熔岩及其承载的VMS矿床的耦合富金,下盘熔岩组成控制了这些矿床的金属禀赋。尽管晚期硼岩质熔体h2o饱和,但其低S含量和弱Cl流体/熔体分配抑制了岩浆热液金属的提取,限制了高硫化矿化的潜力。俯冲成熟是触发这种矿化的必要条件,如在太平洋洋内弧系统中所见。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Metallogeny of subduction initiation revealed by chalcophile element behaviour in the Samail ophiolite
Intra-oceanic subduction initiation marks the transition between the mature divergent and convergent stages of the Wilson cycle, each with its relatively well understood metallogeny. The metallogenic systematics of this transition are less clear, however, with uncertainties regarding precious metal enrichment in volcanogenic massive sulfide (VMS) deposits and the potential for magmatic-hydrothermal mineralization in nascent arcs. The Samail ophiolite is increasingly accepted to represent a ‘proto-arc’ formed during subduction initiation. Due to its volcanic glass record of magmatism and resource estimates for its VMS deposits, this ophiolite is well suited for elucidating this metallogeny. New analyses of these volcanic glasses reveal a systematic enrichment in melt chalcophile elements over the course of ophiolite magmatism, with enrichment of Au > Cu ≈ Ag > Zn correlated with sulfide-melt affinity. This enrichment can be explained by sequential remelting of the proto-arc mantle, with initial melting concentrating Au into residual sulfide and later remelting extracting this Au into sulfide-undersaturated melts. Subsequent melt fractionation further increased Au/Cu ratios relative to sulfide-saturated early melts. Despite clear slab contamination, transfer of subducted S into the mantle was minimal. These observations demonstrate that tectono-magmatic evolution drives the coupled Au-enrichment of proto-arc lavas and the VMS deposits they host, with footwall lava composition controlling the metal endowment of these deposits. Despite H2O-saturation of late boninitic melts, their low S contents and weak Cl fluid/melt partitioning inhibited magmatic-hydrothermal metal extraction, limiting potential for high-sulfidation mineralization. Subduction maturation is necessary to trigger such mineralization, as seen in Pacific intra-oceanic arc systems.
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来源期刊
Earth and Planetary Science Letters
Earth and Planetary Science Letters 地学-地球化学与地球物理
CiteScore
10.30
自引率
5.70%
发文量
475
审稿时长
2.8 months
期刊介绍: Earth and Planetary Science Letters (EPSL) is a leading journal for researchers across the entire Earth and planetary sciences community. It publishes concise, exciting, high-impact articles ("Letters") of broad interest. Its focus is on physical and chemical processes, the evolution and general properties of the Earth and planets - from their deep interiors to their atmospheres. EPSL also includes a Frontiers section, featuring invited high-profile synthesis articles by leading experts on timely topics to bring cutting-edge research to the wider community.
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