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Geochemistry of granitic aplite-pegmatite sills and petrogenetic links with granites, Guarda-Belmonte area, central Portugal

机译:葡萄牙中部瓜尔达-贝尔蒙特地区花岗岩质云母-透辉石基岩的地球化学以及与花岗岩的成岩联系

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摘要

Granitic amblygonite-subtype and lepidolite-subtype, aplite-pegmatite sills intruded a biotite>muscovite granite (G1). Two other biotite>muscovite granites (G2 and G3) and a muscovite>biotite granite (G4) crop out in the area. Variation diagrams for major and trace elements of the Variscan rocks show fractionation trends for a) G1 and G4; b) G2, G3 and aplite-pegmatite sills. The two series are confirmed by the two trends defined by major elements of primary muscovite. The sills also contain Li-bearing muscovite, which has higher Mn, Li, F and paragonite contents and lower AlVI content than primary muscovite from G2, G3 and sills. All sills have pure albite and P2O5 content of K-feldspar and plagioclase increases in the series G2, G3 and sills. Beryl occurs in all sills, but lepidolite and a nearly pure petalite only occur in lepidolite-subtype sills, which are the most evolved sills. Primary topaz and amblygonite have a similar composition in all sills. Aplite-pegmatite sills contain cassiterite, which shows sequences of alternating darker and lighter zones. The former are richer in (Nb + Ta + Fe + Mn) than the latter. Manganocolumbite is common in all sills, but ferrocolumbite only appears in amblygonite-subtype sills and manganotantalite in lepidolite-subtype sills. The sills richest in Li contain reversely-zoned crystals with a homogeneous microlite core and a heterogeneous uranmicrolite rim. Least squares analysis of major elements shows that granite G3 and amblygonite-subtype and lepidolite-subtype aplite-pegmatite sills can be derived from granite G2 magma by fractional crystallization of quartz, plagioclase, K-feldspar, biotite and ilmenite. Modelling of trace elements shows good results for Sr, but magmatic fluids controlled the Rb and Ba contents of the aplite-pegmatite sills and probably also their Li, F, Sn and Ta contents and crystallization of lepidolite, cassiterite and Nb–Ta oxide mineral assemblage. Schorl from the lepidolite-subtype sills that cut granite G1 has higher Mg/(Mg + Fe) than schorl from metasomatised granite at sill walls and resulted from the mixing of magmatic fluids carrying B and some Fe with a meteoric fluid that has interacted with the host granite G1 and carried Fe and Mg. Schorl and dravite, respectively from metasomatised granite and micaschist at sill walls, were also formed from the mixing processes.
机译:花岗岩质闪长石亚型和锂云母亚型,磷灰石-透辉石门槛侵入黑云母>白云母花岗岩(G1)。该地区还种植了另外两个黑云母>白云母花岗岩(G2和G3)和白云母>黑云母花岗岩(G4)。 Variscan岩石主要元素和痕量元素的变化图显示了a)G1和G4的分馏趋势; b)G2,G3和磷灰石-芒硝门槛。由白云母的主要元素定义的两个趋势证实了这两个系列。窗台还包含含锂白云母,其锰,锂,氟和方解石的含量较高,而AlVI含量低于来自G2,G3和窗台的初生白云母。所有门槛都具有纯钠长石和P2O5的钾长石含量,斜长石在G2,G3和门槛系列中增加。在所有基石上均存在绿柱石,但仅在演化最快的基石-亚目基石中出现锂云母和近乎纯净的花瓣石。在所有窗台中,原石黄玉和a石均具有相似的成分。磷灰石-伟晶岩窗台包含锡石,其显示出交替出现的较暗和较亮区域的序列。前者比后者富含(Nb + Ta + Fe + Mn)。 Manganocolumbite在所有窗台中都很常见,但是铁锰矿仅出现在闪锌矿型窗台和Manganotantalite中。锂含量最高的窗槛包含反向分区的晶体,具有均匀的微晶岩芯和异质的铀微晶石边缘。对主要元素的最小二乘分析表明,花岗岩G3和闪锌矿亚型和锂云母亚种云母-斜辉石门槛可通过对石英,斜长石,钾长石,黑云母和钛铁矿进行分步结晶而从花岗岩G2岩浆中获得。微量元素的模拟显示出对Sr的良好结果,但是岩浆流体控制了斜长石-斜晶石窗台的Rb和Ba含量,也可能控制了它们的Li,F,Sn和Ta含量以及锂云母,锡石和Nb-Ta氧化物矿物组合的结晶。切割花岗岩G1的锂云母亚种基岩的Schorl的Mg /(Mg + Fe)高于基岩壁交代花岗岩的schorl,其原因是携带B和某些Fe的岩浆流体与已与B相互作用的陨石流体混合主花岗岩G1,并携带铁和镁。混合过程还形成了分别由基岩壁的交代花岗岩和云母片形成的Schorl和Dravite。

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