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281.
Petrology, geochemistry and isotopic ages of eclogites from the Dulan UHPM Terrane, the North Qaidam, NW China 总被引:35,自引:0,他引:35
The Dulan eclogite–gneiss region is located in the eastern part of the North Qaidam eclogite belt, NW China. Widespread evidence demonstrates that this region is a typical ultrahigh-pressure (UHP) metamorphic terrane. Eclogites occur as lenses or layers in both granitic and pelitic gneisses. Two distinguished sub-belts can be recognized and differ in mineralogy, petrology and geochemistry. The North Dulan Belt (NDB) has tholeiitic protoliths with high TiO2 and lower Al2O3 and MgO contents. REE patterns and trace element contents resemble those of N-type and E-type MORB. In contrast, eclogites in the South Dulan Belt (SDB) are of island arc protoliths with low TiO2, high Al2O3 and show LREE-enriched and HFSE-depleted patterns. Sm–Nd isotope analyses give isochron ages of 458–497 Ma for eclogite-facies metamorphism for the two sub-belts. The ages are similar to those of Yuka and Altun eclogites in the western extension of the North Qaidam-Altun eclogite belt. The Dulan UHP metamorphic terrane, together with several other recently recognized eclogite-bearing terrenes within the North Qaidam-Altun HP-UHP belt, constitute the key to the understanding of the tectonic evolution of the northern Tibetan Plateau. The entire UHP belt extends for more than 1000 km from the Dulan UHP terrane in the southeast to the Altun eclogite–gneiss terrane in the west. This super-belt marks an early Paleozoic continental collision zone between the Qaidam Massif and the Qilian Massif. 相似文献
282.
ZHUWenbin MARuishi GUOLingzhi SUNYan XUMingjie HUDezhao 《大地构造与成矿学(英文版)》2003,27(1):179-190
The central structure belt in Turpan-Hami basin is composed of the Huoyanshan structure and Qiketai structure formed in late Triassic-early Jurassic, and is characterized by extensional tectonics. The thickness of strata in the hanging wall of the growth fault is obviously larger than that in the footwall, and a deposition center was evolved in the Taibei sag where the hanging wall of the fault is located. In late Jurassic the collision between Lhasa block and Eurasia continent resulted in the transformation of the Turpan-Hami basin from an extensional structure into a compressional structure, and consequently in the tectonic inversion of the central structure belt of the Turpan-Hami basin from the extensional normal fault in the earlier stage to the compressive thrust fault in the later stage. The Tertiary collision between the Indian plate and the Eurasian plate occurred around 55Ma, and this Himalayan orogenic event has played a profound role in shaping the Tianshan area, only the effect of the collision to this area was delayed since it culminated here approximately in late Oligocene-early Miocene. The central structure belt was strongly deformed and thrusted above the ground as a result of this tectonic event. 相似文献
283.
Carboniferous Post-collisional Rift Volcanism of the Tianshan Mountains, Northwestern China 总被引:22,自引:0,他引:22
The Tianshan Carboniferous post-collisional rift volcanic rocks occur in northwestern China as a large igneous province. Based on petrogeochemical data, the Tianshan Carboniferous post-collisional rift basic lavas can be classified into two major magma types: (1) the low-Ti/Y type situated in the eastern-central Tianshan area, which exhibits low Ti/Y (<500), Ce/Yb (<15) and SiO2 (43-55%), and relatively high Fe2O3T (6.4-11.5%); (2) the high-Ti/Y type situated in the western Tianshan area, which has high Ti/Y (>500), Ce/Yb (>11) and SiO2 (49-55%), and relatively low Fe2O3T (5.8-7.8%). Elemental data suggest that chemical variations of the low-Ti/Y and high-Ti/Y lavas cannot be explained by fractional crystallization from a common parental magma. The Tianshan Carboniferous basic lavas originated most likely from an OIB-like asthenospheric mantle source (87Sr/86Sr(t) ≈ 0.703-0.705, εNd(t) ≈ +4 to +7). The crustal contamination and continental lithospheric mantle have also contributed significantly to the formation of the basic lavas of the Tianshan Carboniferous post-collisional rift. The silicic lavas were probably generated by partial melting of the crust. The data of this study show that spatial petrogeochemical variations exist in the Carboniferous post-collisional rift volcanics province in the Tianshan region. Occurrence of the thickest volcanics dominated by tholeiitic lavas may imply that the center of the mantle-melting anomaly (mantle plume) was in the eastern Tianshan area at that time. The basic volcanic magmas in the eastern Tianshan area were generated by a relatively high degree of partial melting of the mantle source around the spinel-garnet transition zone, whereas the alkaline basaltic lavas are of the dominant magma type in the western Tianshan area, which were generated by a low degree of partial melting of the mantle source within the stable garnet region, thus the basic lavas of the western Tianshan area might have resulted from relatively thick lithosphere and low geothermal gradient. 相似文献
284.
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286.
西太平洋副高脊线北抬至25°N的OLR特征及诊断分析 总被引:3,自引:3,他引:3
取西太平洋副热带高压脊线北抬至 2 5°N日期和射出长波辐射 (OLR)月平均资料为素材 ,确定副高脊线北抬至 2 5°N指数和异常年例 ,揭示异常年例的OLR特征 ,进行诊断判据分析 ;主要结果有 :(1 ) 6月东亚中低纬地区的OLR距平场由中纬向低纬若呈偏低 (高 )、偏高 (低 )、偏低 (高 )分布时 ,副高脊线北抬至 2 5°N易于偏早 (迟 ) ;(2 )在分析诊断判据时 ,上一年 1 1月侧重南半球澳大利亚地区OLR所显示的信息 ;而当年三月侧重西太平洋辐合区OLR所显示的信息。 相似文献
287.
288.
大气运动非平衡强迫与“98·7”突发性特大暴雨诊断分析 总被引:4,自引:1,他引:4
应用常规气象和卫星资料,对1998年7月21日发生在武汉附近地区的突发性特大暴雨过程进行了分析,结果显示(1)引发本次突发性特大暴雨的系统是一个中-β尺度对流云团.(2)该中-β尺度暴雨系统在对流层高低层没有独立的负、正涡度大值中心区与之对应,辐合层并不十分深厚(低于500hPa),且气流散合强度(10-4s-1)较旋转强度(10-5s-1)大一个量级(D>>ζ).(3)在暴雨发生前10余小时,大气运动已处于较强的非平衡状态,且越临近暴雨发生,U<0的非平衡性越强;而在暴雨达到强盛期后,大气运动即由U<0的非平衡态转为U>0的非平衡态.(4)对流层低层大气运动非平衡动力强迫与200hPa等压面上的中-β尺度强辐散是本例暴雨和中-β尺度暴雨系统发生发展的重要动力启动机制. 相似文献
289.
南通地区暴雪的天气条件对比分析 总被引:11,自引:0,他引:11
通过对20世纪50年代以来南通地区的四次暴雪过程的分析,试从环流形势的配置、强度及物理量场特征上,找出具有共性的暴雪的指标,以供预报参考。 相似文献
290.
1990~ 2 0 0 0年北京地区大气能见度的统计分析表明 ,大气能见度有明显的年际变化、季节变化和日变化特征。冬、春、秋三季及全年日平均年际变化表现为 2 0世纪 90年代中期能见度较好 ,前期和末期能见度较差 ,2 0 0 0年能见度迅速好转 ;夏季能见度年际变化在 1997年以前与其他季节相反 ,1995年能见度最差。大气能见度与同期地面气象条件和主要污染物浓度的相关性比较表明 ,春、夏、秋三季以空气湿度、PM10 和风速为主要影响因子 ,冬季以PM10 、SO2 、空气湿度和风速为主要影响因子。能见度与相对湿度和空气污染物浓度呈反相关 ,与风速的相关性较为复杂 (有时呈正相关 ,有时呈反相关 ) ;高湿度 (相对湿度 f≥ 80 % )、小风速 (地面风速u≤ 2m·s-1)和雾是造成低能见度的主要气象条件 ;污染物浓度对能见度的影响以冬季最为明显 ,秋季次之 ,夏季最差 相似文献