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Composition of the Marginal Rocks and Sills of the Rustenburg Layered Suite, Bushveld Complex, South Africa: Implications for the Formation of the Platinum-Group Element Deposits

机译:南非布什维尔德综合体,鲁斯滕堡层状套房的边缘岩石和基石的组成:对铂族元素矿床形成的启示

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The Bushveld Complex contains large ore deposits of platinum-group elements (PGE), V, and Cr. Understanding how these deposits formed is in part dependent on estimates of the compositions of the magmas that filled the Bushveld chamber. Over the past 20 years, estimates for the major oxides and some trace elements in the magmas have been made using the marginal rocks of the intrusion. However, data for most of the trace elements have not been available. This paper presents the results for a full range of trace elements, including the platinum-group elements.The marginal rocks of the Lower and lower Critical zones (B-1 magmas) are tholeiitic Mg-rich basaltic andesites with Mg# 71. It had been suggested that they are boninites but their mantle-normalized incompatible lithophile trace element patterns (spidergrams) resemble those of the upper continental crust and the concentrations of the elements are much higher than those of boninites. The patterns resemble siliceous high magnesium basalts. An unusual feature is that the Pt/Pd ratios are >1.5. The Pt contents of the B-1 rocks (15–25 ppb) are slightly higher than those observed in most primary mantle melts, suggesting that the high Pt/Pd ratio is due to Pt enrichment rather than Pd depletion. The crystallization order and composition of the minerals formed in equilibrium with the B-1 magma matches that of the Lower and lower Critical zones and thus this magma appears to be representative of the parental magma of these zones.The marginal rocks to the upper Critical zone (B-2) are tholeiitic basalts in terms of major element composition,with Mg# 55. The spidergrams show some similarities with E-MORB; however, the B-2 rocks have strong positive Ba and Pb anomalies and negative P, Ti, Hf, and Zr anomalies, and thus they more closely resemble lower continental crust. The B-2 rocks have lower and more variable Pt + Pd contents than the B-1 magma, suggesting that some of the samples have experienced sulfide saturation, but in common with the B- 1 magmas, the Pt/Pd ratios are high, in excess of 1.5. The crystallization order of the Upper Critical zone cannot be modelled by the B-2 magma alone. However, mixtures of B-2 magma and B-1 magma satisfy the crystallization order and mineral composition of the upper Critical zone.The marginal rocks of the Main zone (B-3) are also tholeiitic basalts in terms of major element composition but have a higher Mg# (62) than the B-2 rocks. Trace element patterns in part resemble those of B-2 magmas but are depleted in most incompatible elements with large positive Ba, Pb, and Eu anomalies and negative Nb,Ta, Hf, and Zr anomalies, suggesting the rocks contain a plagioclase component. The PGE contents of the B-3 rocks are lower than those of the B-1 magma and less variable than those of the B-2 magma, but in common with both the other magmas, they have high Pt/Pd. The crystallization order and composition of the minerals in equilibrium with the B-3 magma matches that of the Main zone.Two processes have been suggested to explain the compositions of the Bushveld magmas: mixing of primitive mantle melts with partial melts of continental crust and mixing of primitive mantle melts with melts derived from the subcontinental lithospheric mantle (SCLM). The trace element concentrations of the magmas can be modelled by crustal contamination. This interpretation is supported by oxygen isotopes, initial ~(87)Sr/~(86)Sr ratios and ε_(Nd) of the cumulate rocks. However, the high Pt/Pd ratios of all of the magmas and the overall higher than normal Pt concentrations of the B-1 magma are difficult to explain by mixing of primary mantle melt with crustal components. The SCLM has high Pt/Pd ratios and mixing of primary mantle magma with SCLMderived magma could account for the high Pt concentrations and high Pt/Pd ratios. This interpretation is supported by recent work on Os isotopes of the Kaapvaal SCLM. It should be kept in mind that the two processes are not necessarily
机译:布什维尔德综合体包含大量的铂族元素(PGE),V和Cr矿床。了解这些沉积物的形成方式部分取决于对填充Bushveld室的岩浆成分的估计。在过去的20年中,岩浆中主要氧化物和一些微量元素的估算是利用侵入岩的边缘岩石进行的。但是,大多数跟踪元素的数据均不可用。本文介绍了包括铂族元素在内的所有痕量元素的结果。下和下临界区(B-1岩浆)的边缘岩石是富镁质富镁玄武质安山岩,含Mg#71。有人认为它们是邦尼特岩,但它们的地幔归一化不相容的嗜石微量元素模式(蜘蛛图)类似于大陆上地壳,元素的浓度远高于邦尼特岩。图案类似于硅质高镁玄武岩。一个不寻常的特征是Pt / Pd比> 1.5。 B-1岩石中的Pt含量(15–25 ppb)略高于大多数原始地幔熔体中观察到的含量,这表明高Pt / Pd比是由于Pt富集而不是Pd的消耗。与B-1岩浆平衡形成的矿物的结晶顺序和成分与下,下临界区的岩浆相匹配,因此该岩浆似乎代表了这些区的母岩浆。 (B-2)是主要元素成分上的高脂玄武岩,Mg#55。蜘蛛图显示出与E-MORB的相似之处;但是,B-2岩石具有强的Ba和Pb正异常,以及负的P,Ti,Hf和Zr异常,因此它们更类似于下部大陆壳。与B-1岩浆相比,B-2岩石的Pt + Pd含量更低且更多,这表明某些样品已发生硫化物饱和,但与B-1岩浆相同,Pt / Pd比率很高,超过1.5。不能单独用B-2岩浆模拟上临界区的结晶顺序。但是,B-2岩浆和B-1岩浆的混合物满足了上临界区的结晶顺序和矿物组成。就主要元素组成而言,主区(B-3)的边缘岩也是生玄武岩,但具有Mg#(62)比B-2岩石高。痕量元素形态在某种程度上类似于B-2岩浆,但在大部分不相容元素中被耗尽,这些元素具有大的正Ba,Pb和Eu异常以及负Nb,Ta,Hf和Zr异常,表明岩石中含有斜长石成分。 B-3岩浆的PGE含量低于B-1岩浆的PGE含量,并且比B-2岩浆的PGE含量变化少,但与其他两个岩浆相同,它们的Pt / Pd较高。与B-3岩浆处于平衡状态的矿物的结晶顺序和组成与主区相符。有人建议用两种方法解释Bushveld岩浆的组成:原始地幔熔体与大陆壳部分熔体的混合和混合。原始地幔熔体与来自次大陆岩石圈地幔(SCLM)的熔体。岩浆中痕量元素的浓度可以通过地壳污染来模拟。氧同位素,堆积岩石的初始〜(87)Sr /〜(86)Sr比和ε_(Nd)支持了这种解释。然而,很难通过将原始地幔熔体与地壳成分混合来解释所有岩浆的高Pt / Pd比以及总体上高于正常B-1岩浆的Pt浓度。 SCLM具有较高的Pt / Pd比,并且原始地幔岩浆与SCLM衍生的岩浆混合可以解释高Pt浓度和高Pt / Pd比。 Kaapvaal SCLM的Os同位素的最新研究支持了这种解释。应该记住,这两个过程并不一定

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