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首页> 外文期刊>Lithos: An International Journal of Mineralogy, Petrology, and Geochemistry >The provenance of sub-cratonic mantle beneath the Limpopo Mobile Belt (South Africa)
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The provenance of sub-cratonic mantle beneath the Limpopo Mobile Belt (South Africa)

机译:林波波河移动带之下的亚克拉通地幔源(南非)

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Petrological, whole rock major element and mineral chemical analysis of mantle xenoliths from the Venetia kimberlite pipes (533 Ma) in South Africa reveals an apparently stratified cratonic mantle beneath the Central Zone of the Limpopo Mobile Belt (LMB) that separates the Kaapvaal and Zimbabwe Cratons. Combined pressure-temperature (P-T) data and petrographic observations indicate that the mantle consists of an upper layer of Low-T coarse-equant garnet + spinel lherzolite (~50 to-130 km depth). This layer is underlain by a region of mixed garnet harzburgites and garnet lherzolites that are variably deformed (-130 to -235 km depth). An equilibrated geotherm did not exist at the time of kimberlite eruption (533 Ma) and a localised heating event involving the introduction of asthenospheric material to the High-T lithosphere below 130 km is inferred. Low-T garnet-spinel lherzolites are highly melt depleted (40% on average). In contrast, the High-T lithosphere (mostly at diamond stable conditions) consists of a mixed zone of variably sheared and melt depleted (30% on average) garnet harzburgite and mildly melt depleted (20% on average) garnet lherzolite. The chemistry of the High-T xenoliths contrasts with that of minerals included in diamond originating from the same depth. Inclusions suggest diamond crystallisation in a more melt depleted lithosphere than represented by either Low- or High-T xenoliths. High-T xenoliths are proposed to represent formerly melt depleted lithosphere, refertilised by asthenosphere-derived melts during the diapiric rise of a proto-kimberlitic melt pocket This process is coupled to the positive temperature perturbation observed in the High-T xenoliths and may represent a common process in the lower lithosphere related to localised but intense tectono-magmatic events immediately preceding kimberlite eruption. The presence of clinopyroxene, garnet and abundant orthopyroxene in the Low-T lherzolite implies a history of melt depletion followed by metasomatic addition of Si-Al-Ca, forming high-temperature orthopyroxene from which clinopyroxene and garnet exsolved. Si enrichment is a characteristic feature of the majority of the Kaapvaal Craton to the south of the LMB but not of the Zimbabwe Craton to the north, implying a Kaapvaal origin. The provenance of the High-T lithosphere beneath the LMB is less well constrained as it is intensely modified by kimberlitic magmatism and diamond inclusion chemistry does not show significant systematic variation across the cratons. The presence of rare, mildly silica enriched high-temperature harzburgites suggests that a Kaapvaal origin for the entire lithosphere beneath the LMB is most likely.
机译:南非Venetia金伯利岩管(533 Ma)的地幔异岩的岩石学,全岩石主要元素和矿物化学分析显示,林波波移动带(LMB)中心区下方有明显分层的克拉通地幔,将Kaapvaal和津巴布韦Cratons分开。结合压力-温度(P-T)数据和岩石学观测表明,地幔由低T粗当量石榴石+尖晶石锂铁矿的上层组成(深度约50至-130 km)。该层的底部是混合变形的石榴石哈兹伯格岩和石榴石锂铁矿(深度为-130至-235 km)。在金伯利岩喷发(533 Ma)时不存在平衡的地热,并推断出涉及将软流层物质引入130 km以下的High-T岩石圈的局部加热事件。低T石榴石-尖晶石锂铁矿的熔体高度贫化(平均40%)。相比之下,High-T岩石圈(主要在金刚石稳定的条件下)由石榴石钙长石和剪切变稀的石榴石棒晶石(平均占20%)和贫熔的贫化(平均占20%)的混合带组成。高T异种岩的化学性质与钻石中包含相同深度的矿物的化学性质形成对比。夹杂物表明,与低T或高T异种岩相比,金刚石在更贫化的岩石圈中结晶。提议使用高T异种岩来代表以前的熔融贫化岩石圈,在原金伯利特岩熔岩坑的二尖峰上升期间由软流圈衍生的熔体替代。这一过程与在高T异种岩中观察到的正温度扰动有关,并且可能代表在金伯利岩喷发之前,下部岩石圈的常见过程与局部但强烈的构造岩浆事件有关。低T锂铁矿中存在斜cl,石榴石和丰富的邻苯二甲酚,表明存在熔体耗竭的历史,随后交代添加了Si-Al-Ca,形成高温邻苯二酚,从中溶解了斜ino石和石榴石。硅富集是LMB南部的大部分Kaapvaal Craton的特征特征,而不是北部的津巴布韦Craton的特征,这意味着Kaapvaal的起源。 LMB下方的高T岩石圈的起源受到金伯利岩岩浆作用强烈修饰,金刚石夹杂物化学在整个克拉通上没有显示出明显的系统变化,因此受到的约束较少。稀有的,轻度二氧化硅富集的高温哈兹伯格岩的存在表明,LMB下方整个岩石圈的Kaapvaal成因最有可能。

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