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东天山吐哈盆地南缘二叠纪幔源岩浆杂岩:中亚地区陆壳垂向生长的地质记录 被引量:61
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作者 李锦轶 宋彪 +3 位作者 王克卓 李亚萍 孙桂华 齐得义 《地球学报》 EI CAS CSCD 北大核心 2006年第5期424-446,共23页
吐哈盆地南缘土屋铜矿以西侵入泥盆纪火山沉积岩系的海豹滩环状杂岩体,由纯橄榄岩、含长橄榄岩、橄长岩、斜长岩、辉石橄榄岩、橄榄辉长岩、辉长岩和闪长岩等组成,其中蚀变辉长岩中的锆石SHRIMP U-Pb年龄为269.2±3.2 Ma,斜长岩中... 吐哈盆地南缘土屋铜矿以西侵入泥盆纪火山沉积岩系的海豹滩环状杂岩体,由纯橄榄岩、含长橄榄岩、橄长岩、斜长岩、辉石橄榄岩、橄榄辉长岩、辉长岩和闪长岩等组成,其中蚀变辉长岩中的锆石SHRIMP U-Pb年龄为269.2±3.2 Ma,斜长岩中的锆石SHRIMP U-Pb表面年龄为282~287 Ma;侵入康古尔塔格碰撞带变形石炭系地层的恰特卡尔塔格杂岩体由蛇纹岩、含橄榄斜长岩、蚀变辉长岩和闪长岩等组成,蚀变辉长岩中的锆石SHRIMP U-Pb年龄为277.0±1.6 Ma;侵入大南湖泥盆纪活动陆缘型花岗岩的基性岩墙中的锆石SHRIMP U-Pb表面年龄为271~280 Ma,类似的基性岩墙还见于克孜尔卡拉萨依早石炭世花岗闪长岩和土屋铜矿北花岗闪长岩体.上述两个镁铁质-超镁铁质杂岩体不同岩石类型及侵入三个花岗质岩体的基性岩墙的岩石学和岩石化学特征,表明它们都是来自亏损地幔并受到地壳物质混染的岩浆活动的影响,属于东天山吐哈盆地南缘幔源岩浆杂岩带的一部分.结合已有区域地质资料的综合分析,提出了吐哈盆地南缘及天山-准噶尔-南蒙古地区、斋桑碰撞带及其两侧地区、环蒙古-鄂霍茨克造山带地区和中朝陆块北缘-北山南部地区二叠纪岩浆岩带的构造背景与成因机制都存在差异、但都是中亚地区地壳垂向生长的地质记录的新认识. 展开更多
关键词 中亚地区 吐哈盆地南缘 二叠纪幔源侵入 基性 锆石SHRIMP U-PB年龄 地壳垂向生长
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海南岛晚二叠世大岭岩体岩石成因:锆石原位Hf同位素制约 被引量:5
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作者 温淑女 庞崇进 《桂林理工大学学报》 CAS 北大核心 2018年第4期654-662,共9页
LA-ICP-MS锆石U-Pb年代学研究表明,海南岛大岭闪长质岩体形成于255. 7±1. 9 Ma,锆石的εHf(256 Ma)值为-4. 7~-0. 2,变化范围较大。计算结果表明,低εHf(256 Ma)值锆石的εNd(256 Ma)值为-5. 6,这与岩体全岩εNd(256 Ma)值(-5. 8... LA-ICP-MS锆石U-Pb年代学研究表明,海南岛大岭闪长质岩体形成于255. 7±1. 9 Ma,锆石的εHf(256 Ma)值为-4. 7~-0. 2,变化范围较大。计算结果表明,低εHf(256 Ma)值锆石的εNd(256 Ma)值为-5. 6,这与岩体全岩εNd(256 Ma)值(-5. 8)以及海南岛中-新元古代结晶基底火成岩的εNd(256 Ma)值(-7. 42~-4. 19)范围相一致;但高εHf(256 Ma)值锆石的εNd(256 Ma)值为-4. 19~-2. 25,明显高于岩体和结晶基底火成岩的εNd(256 Ma)值,暗示存在一个来自相对亏损(εHf(t)> 0)地幔源区的端元组分的贡献。结合全岩主微量元素特征,大岭闪长质岩浆很可能是相对年轻的富集交代岩石圈地幔来源的基性岩浆与中-新元古代结晶基底火成岩来源的酸性岩浆发生混合的产物。因此,壳-幔岩浆混合成因模式可以很好地解释海南岛大岭闪长岩元素地球化学特征以及锆石微区Hf同位素组成变化。 展开更多
关键词 二叠纪侵入岩 年代学 锆石HF同位素 壳-幔浆混合作用 海南岛
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Petrogenetic model of the Permian Tarim Large Igneous Province 被引量:7
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作者 YU Xing YANG ShuFeng +2 位作者 CHEN HanLin LI ZiLong LI YinQi 《Science China Earth Sciences》 SCIE EI CAS CSCD 2017年第10期1805-1816,共12页
Over the last two decades great strides have been made in characterizing the spatial distribution, time sequence,geochemical characteristics, mantle sources, and magma evolution processes for various igneous rocks in ... Over the last two decades great strides have been made in characterizing the spatial distribution, time sequence,geochemical characteristics, mantle sources, and magma evolution processes for various igneous rocks in the Early Permian Tarim Large Igneous Province(TLIP). This work has laid a solid foundation for revealing the evolutionary processes and genetic models of large igneous provinces(LIPs). This study systematically demonstrates the two-stage melting model for the TLIP based on our previous research work and predecessor achievements, and highlights the two types of magmatic rocks within the TLIP.The two-stage melting model suggests that the formation of the TLIP is mantle plume related. The early hot mantle plume caused the low-degree partial melting of the lithosphere mantle, while in the later stage, the plume partially melted due to adiabatic uplift and decompression. Therefore, this model carries signatures of both the "Parana" and "Deccan" models in terms of mantle plume activity. During the early stage, the mantle plume provided the heat required for partial melting of sub-continental lithosphere mantle(SCLM), similar to the "Parana Model", while later the plume acted as the main avenue for melting, as in the "Deccan Model". Basalts that erupted in the first stage have higher 87Sr/86 Sr, lower 143Nd/144 Nd ratios, and are enriched in large ion lithophile elements and high field strength elements, indicating a possible origin from the enriched continental lithosphere mantle,similar to the Parana type geochemical features. The basic-ultrabasic intrusive rocks in the second stage exhibit lower 87Sr/86 Sr,higher 143Nd/144 Nd ratios relative to the basalts, consistent with the involvement of a more depleted asthenospheric material,such as a mantle plume, similar to the Deccan type geochemical features. The first stage basalts can be further subdivided into two categories, i.e., Group 1 and Group 2 basalts. Group 2 basalts have lower 87Sr/86 Sr and higher 143Nd/144 Nd ratios than Group 1 basalts, and lie between compositions of the Group 1 basalts and second stage magmatism. Group 2 basalts may be the intermediate component of the TLIP, and the whole TLIP is the result of plume and lithosphere interaction. Developing this petrogenetic model for the TLIP aids in comprehensively understanding its magmatism and deep geological and geodynamic processes. Furthermore, this work enriches the theories describing the origin of large igneous province and mantle plume activity. 展开更多
关键词 Large igneous province Early Permian Two types of basalts Petrogenetic model Tarim Basin
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