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151.
长江中下游夏季高温灾害机理及预测 总被引:16,自引:1,他引:16
利用我国1961-2003年夏季(6—8月)高温资料,建立长江中下游地区主要城市强高温及高温过程较完整的时间序列,探讨了该地区主要城市高温气候特征。分析该地区南京、杭州、南昌等城市夏季高温灾害机理,东亚副热带高压是造成长江中下游地区城市夏季高温的主要影响系统。在此基础上用均生函数-最佳子回归集构造预测模型,预测夏季月高温出现日数,通过42a高温资料预报检验,有较好的预测效果,值得在业务中应用。 相似文献
152.
准噶尔盆地西北缘侏罗系陆相碎屑岩储层的岩性差异较大,岩性对物性的控制作用明显。储层的孔隙类型多样,不同类型的孔隙在发育规模、丰度及有效性方面都存在显差异,次生溶蚀孔隙、原生粒间孔隙和残余粒间孔隙是最重要的有效孔隙类型。储层渗透率与孔隙度之间存在较好的半对数相关关系。通过设置一定的孔隙度和渗透率参数界线,对储层储集性能进行评价,将侏罗系储层的孔渗性能划分为5个级别,可与当前流行的砂岩储层孔渗性能分级相对应。通过对大量压汞参数样本的聚类分析,将储层的孔隙结构划分为4个类型。通过各类参数统计及曲线形态对比,对孔隙结构类型进行了定量结合定性的优劣评价。最后,结合孔渗性能级别、储集空间类型、孔隙结构类型、岩性等特征,对准噶尔盆地西北缘侏罗系储层进行了综合分类评价。 相似文献
153.
百色盆地那读组短期基准面旋回层序分析 总被引:14,自引:3,他引:14
以高分辨率层序地层学理论和技术方法为指导,运用短期基准面旋回界面的识别标志将百色盆地那读组短期基准面旋回层序划分为向上“变深”的非对称型(A 型)、向上变浅的非对称型(B 型)、向上变深复变浅的对称型(C型)等三种基本结构类型,再根据可容纳空间大小和上下两个半旋回的厚度进一步划分为七个亚类型:即低可容纳空间向上“变深”的对称型(A1型),高可容纳空间向上“变深”的非对称型(A2型),低可容纳空间向上变浅的非对称型(B1型),高可容纳空间向上变浅的非对称型(B2型),完全-近完全对称型(C1型),以上升半旋回为主的不完全对称型(C2型),以下降半旋回为主的不完全对称型(C3型)。文中详细讨论了每个基本类型和亚类型的沉积背景、叠加样式、岩性组成和沉积动力学过程,并指出有利储集砂体在每种类型中的发育部位。在此基础上,总结了短期基准面旋回层序的变化规律和分布模式,指出从陆地向湖盆,短期基准面旋回层序类型具有从A1型!A2型!C2型!C1型!C3型!B1型!B2型的变化规律,并简述了短期基准面旋回层序在油气勘探开发中的研究意义。 相似文献
154.
155.
胶莱盆地含金建造地球化学特征 总被引:2,自引:0,他引:2
胶莱盆地蓬家夼金矿床及宋家沟金矿床均赋存于下白垩统莱阳群一段含金建造中,该含金建造由砾岩、含砾砂岩、碳质泥岩及碳酸盐岩等组成,Au100.2~241.0ng/g,Ag1.50~3.73μg/g,Zn560~1021μg/g,Pb356~364μg/g,Cu60~394μg/g,As11.0~25.4μg/g,同时富硫及有机碳。含金建造K-Rb、K-Ba呈正相关,K-Sr、K-Ca不相关,Sr/Ba<1,B、V关系均显示了陆相淡水沉积特征。La/Y-REE组成显示了沉积特征。围岩、矿石及矿石中黄铁矿及磁铁矿的稀土元素分布模式相似,该含金建造是矿源层也是容矿层,是区内重要的成矿地质条件及找矿标志。 相似文献
156.
十万山盆地位于广西西南部,大地构造位置属于华南板块的西北缘,是在华南板块与杨子板块拼接的加里东运动之后,早古生代华南洋再一次打开形成被动大陆边缘。晚二叠世末,该地区变成孤后盆地,进一步转化成前陆盆地。在盆山转换过程中,经历了三次沉积-构造盆山转换过程:泥盆纪-二早叠世分地新生与被动大陆边缘拉张裂谷;晚二叠世与中三叠世间盆地构造性质转换与前陆盆地;晚三叠世至侏罗纪的晚期前陆磨拉石沉积。在碎屑岩陆架沉积阶段,生成碎屑岩烃源岩层。在碳酸盐台地沉阶段,发育硝屑灰岩、藻灰岩、礁灰岩和暴露作用生成的白云岩储集岩。因而其早期被动大陆边缘阶段构了古生新储组合。前陆盆地早期在前渊盆地内沉积了一套碎屑岩烃源岩。它与早期的储集层构成了新生古储组合。同时也对下伏地层起到了封闭作用。沉积地层逐层向克拉通斜坡上超覆,发育地层圈闭。前渊阶段中期快速沉积的巨厚的复理石沉积和晚期快速沉积形成的磨拉石沉积有利于早期沉积的迅速埋藏、成熟和保存。 相似文献
157.
158.
The Vigny limestones: a record of Palaeocene (Danian) tectonic-sedimentary events in the Paris Basin
Danian marine sedimentation in the Paris Basin occurred between two major erosional phases. The earlier was responsible for the stripping of presumably deposited Maastrichtian sediments and of a variable thickness of Campanian chalk. The later occurred during the late Palaeocene and resulted in the erosion of almost all Danian deposits, which are now limited to small and scattered outcrops. One of these outcrops corresponds to reefal and peri‐reefal limestones of middle to late Danian age, exposed in the quarries of Vigny (NW of Paris). Danian deposits here show intricate relations with the surrounding Campanian chalk. Danian sedimentation was contemporaneous with faulting, which generated signifiant sea‐floor relief and resulted in contrasting depositional areas: topographic highs with coralgal reefs, and depressions where calcirudite channel fill accumulated. Normal faulting occurred along WNW–ESE master faults. The generation of submarine fault scarps gave rise to various types of gravity‐driven phenomena, including the sliding and slumping of large blocks of reefal limestone and the deposition of carbonate debris flows. Along with the redeposition of the Danian carbonates, flows of fluidized and reworked Campanian chalk resulted from the peculiar physical properties of the undercompacted chalks. Erosion and faulting occurred predominantly during the Palaeocene and represent a major episode in the physiographic evolution of the Paris Basin. 相似文献
159.
Multichannel seismic reflection data acquired by Marine Arctic Geological Expedition (MAGE) of Murmansk, Russia in 1990 provide the first view of the geological structure of the Arctic region between 77–80°N and 115–133°E, where the Eurasia Basin of the Arctic Ocean adjoins the passive-transform continental margin of the Laptev Sea. South of 80°N, the oceanic basement of the Eurasia Basin and continental basement of the Laptev Sea outer margin are covered by 1.5 to 8 km of sediments. Two structural sequences are distinguished in the sedimentary cover within the Laptev Sea outer margin and at the continent/ocean crust transition: the lower rift sequence, including mostly Upper Cretaceous to Lower Paleocene deposits, and the upper post-rift sequence, consisting of Cenozoic sediments. In the adjoining Eurasia Basin of the Arctic Ocean, the Cenozoic post-rift sequence consists of a few sedimentary successions deposited by several submarine fans. Based on the multichannel seismic reflection data, the structural pattern was determined and an isopach map of the sedimentary cover and tectonic zoning map were constructed. A location of the continent/ocean crust transition is tentatively defined. A buried continuation of the mid-ocean Gakkel Ridge is also detected. This study suggests that south of 78.5°N there was the cessation in the tectonic activity of the Gakkel Ridge Rift from 33–30 until 3–1 Ma and there was no sea-floor spreading in the southernmost part of the Eurasia Basin during the last 30–33 m.y. South of 78.5°N all oceanic crust of the Eurasia Basin near the continental margin of the Laptev Sea was formed from 56 to 33–30 Ma. 相似文献
160.
Geothermal gradients are estimated to vary from 31 to 43 °C/km in the Yinggehai Basin based on 99 temperature data sets compiled from oil well data. Thirty-seven thermal conductivity measurements on core samples were made and the effects of porosity and water saturation were corrected. Thermal conductivities of mudstone and sandstone range from 1.2 to 2.7 W/m K, with a mean of 2.0±0.5 W/m K after approximate correction. Heat flow at six sites in the Yinggehai Basin range from 69 to 86 mW/m2, with a mean value of 79±7 mW/m2. Thick sediments and high sedimentation rates resulted in a considerable radiogenic contribution, but also depressed the heat flow. Measurements indicate the radiogenic heat production in the sediment is 1.28 μW/m3, which contributes 20% to the surface heat flow. After subtracting radiogenic heat contribution of the sediment, and sedimentation correction, the average basal heat flow from basement is about 86 mW/m2.Three stages of extension are recognized in the subsidence history, and a kinematic model is used to study the thermal evolution of the basin since the Cenozoic era. Model results show that the peak value of basal heat flow was getting higher and higher through the Cenozoic. The maximum basal heat flow increased from 65 mW/m2 in the first stage to 75 mW/m2 in the second stage, and then 90 mW/m2 in the third stage. The present temperature field of the lithosphere of the Yinggehai Basin, which is still transient, is the result of the multistage extension, but was primarily associated with the Pliocene extension. 相似文献