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101.
在国内,首次阐述了"纯球坐标系内各项重力校正值的计算方案和计算过程".该计算方案有如下优点:①以观测点P为中心,以球面距离am=am-1+Δa·bm-1(m=2,3,...,M)为半径将计算区划分为M个环带,再以Δλ0为由P点出发射线的角度间隔将所有环带等分为N (整数)份的计算区划分方案是最严密拼接,因而校正值的计算精度相当高.②在地形复杂和相对高差大的情况下,通过减小Δa、b和Δλ0 数值,可进一步提高计算精度.③可以直接采用带有经、纬度坐标的高程数据,进行大面积测区的各项重力校正值计算,而不受6°带和标准图幅限制. 相似文献
102.
103.
Sergey N. Vorobyev Oleg S. Pokrovsky Larisa G. Kolesnichenko Rinat M. Manasypov Liudmila S. Shirokova Jan Karlsson Sergey N. Kirpotin 《水文研究》2019,33(11):1579-1594
Detailed knowledge of the flood period of Arctic rivers remains one of the few factors impeding rigorous prediction of the effect of climate change on carbon and related element fluxes from the land to the Arctic Ocean. In order to test the temporal and spatial variability of element concentration in the Ob River (western Siberia) water during flood period and to quantify the contribution of spring flood period to the annual element export, we sampled the main channel year round in 2014–2017 for dissolved C, major, and trace element concentrations. We revealed high stability (approximately ≤10% relative variation) of dissolved C, major, and trace element concentrations in the Ob River during spring flood period over a 1‐km section of the river channel and over 3 days continuous monitoring (3‐hr frequency). We identified two groups of elements with contrasting relationship to discharge: (a) DIC and soluble elements (Cl, SO4, Li, B, Na, Mg, Ca, P, V, Cr, Mn, As, Rb, Sr, Mo, Ba, W, and U) negatively correlated (p < 0.05) with discharge and exhibited minimal concentrations during spring flood and autumn high flow and (b) DOC and particle‐reactive elements (Al, Fe, Ti, Y, Zr, Nb, Cs, REEs, Hf, Tl, Pb, and Th), some nutrients (K), and metalloids (Ge, Sb, and Te), positively correlated (p < 0.05) with discharge and showed the highest concentrations during spring flood. We attribute the decreased concentration of soluble elements with discharge to dilution by groundwater feeding and increased concentration of DOC and particle‐reactive metals with discharge to leaching from surface soil, plant litter, and suspended particles. Overall, the present study provides first‐order assessment of fluxes of major and trace elements in the middle course of the Ob River, reveals their high temporal and spatial stability, and characterizes the mechanism of river water chemical composition acquisition. 相似文献
104.
105.
在大地热流密度分布的基础上,研究了塔里木盆地中库尔勒-若羌和阿克苏-叶城两条剖面岩石层热结构特征.由岩石层P波速度分布转换成生热率剖面,用二维数值模型获得了岩石层热结构和热状态特征.结果表明,塔里木盆地壳幔边界温度的高低与其埋深密切相关.居里等温面深度大,地幔热流密度较低.岩石层厚度变化与其新生代期间挠曲过程密切相关.在岩石层温度分布基础上,确定了深部脆-韧性过渡带深度和岩石层屈服强度,表明塔里木盆地岩石层相对较冷,且具有刚性的地球动力学特征. 相似文献
106.
为了查明青藏高原乌丽冻土区天然气的组分与成因,对采集自乌丽水合物试验孔ZK1井及其周边钻孔的岩心顶空气、岩心解析气以及湖水气进行了组分和碳同位素测试分析,同时对ZK1井及其周边钻孔岩心中的碳酸盐岩碳同位素进行了测试分析。测试结果显示:该区天然气主要成分为二氧化碳,其含量在98%以上,烃类气体(主要为甲烷)含量很少;二氧化碳碳同位素主频在-4‰~-6‰(VPDB)之间,少量富烃样品的甲烷碳同位素主频介于-3238‰~-2782‰(VPDB)之间,碳酸盐岩的碳同位素平均值为-387‰(VPDB)。综合分析认为,研究区二氧化碳主要为幔源成因,可能与该区强烈的构造运动和岩浆活动有关。 相似文献
107.
焦家断裂蚀变带是胶东地区最重要的控矿构造之一。该断裂带控制的矿床是创立"焦家式"金矿理论的重要实例基础。目前,焦家断裂带累计探明Au资源储量超过1200 t,并且还在不断增加,展现了深部重要的勘查和研究价值。焦家断裂带控制的矿体主要赋存在主断面下盘,断裂带发育于花岗岩中时,上盘发育钾长石化花岗岩、绢英岩化花岗岩、黄铁绢英岩化花岗质碎裂岩、(黄铁)绢英岩质碎裂岩,下盘发育黄铁绢英岩质碎裂岩、黄铁绢英岩化花岗质碎裂岩、黄铁绢英岩化花岗岩和钾化花岗岩,蚀变类型在主断面两侧呈现对称分布特征。但是在岩性特征、结构构造、蚀变强度、化学成分等方面差异明显,表现出非镜像对称特征。上盘蚀变岩厚度大于下盘,下盘花岗岩的构造破碎程度比上盘花岗岩更严重;断裂带上盘黄铁矿含量低、一般无矿化显示,下盘黄铁矿含量高,出现金矿化;断裂带上盘的中生代花岗岩中韧性变形不发育,以脆性破裂为主,下盘发育明显的韧性变形;断裂带上下盘不同蚀变带的成矿元素Au,矿化剂元素S,成矿伴生元素Ag、Pb、Zn,亲石分散元素Ba、Sr以及主量元素Na2O、MgO含量具有差异性,指示焦家断裂带主断裂面两盘经历了不同的成... 相似文献
108.
位于内蒙古中西部地区的宝音图群,主要由云母片岩、斜长角闪岩、石英岩和大理岩等组成。其中云母片岩中发育典型的巴罗式递增变质带,目前对于该递增变质带的研究非常薄弱。本文对宝音图群的云母片岩开展了系统的岩相学、矿物化学、相平衡模拟以及锆石U-Pb年代学的研究。岩相学研究结果显示,三个云母片岩样品具有不同的峰期矿物组合,分别为石榴子石+白云母+黑云母+斜长石+石英,十字石+白云母+黑云母+斜长石+钛铁矿+石英,石榴子石+蓝晶石+白云母+黑云母+斜长石+钛铁矿+石英。此外,样品LS93和LS07存在晚期红柱石的叠加。相平衡模拟研究限定三个云母片岩的峰期温度压力分别为:577℃、0.73 GPa, 620℃、0.78 GPa和670℃、0.8 GPa,具有递增型特征,其峰期温度压力指示的地热梯度为18~20℃/km,为典型的中压相系;此外,三个样品的P-T轨迹均显示早期升温升压直至峰期阶段,随后降温降压的顺时针型,反映地壳加厚和后期抬升的演化过程。云母片岩中的锆石发育典型的变质边结构,变质边的Th/U=0.004~0.02,锆石U-Pb年代学结果显示该变质年龄为398±6 Ma,代表峰期或近峰期阶... 相似文献
109.
In order to acquire a better velocity structure of the crustal and uppermost mantle beneath Shanxi area, we obtain the group and phase velocities of Rayleigh wave of the periods 8s to 50s in Shanxi and adjacent area using ambient seismic noise recorded at 216 broad-band stations. All available vertical-component time series for 2014 have been cross-correlated to yield estimates of empirical Rayleigh wave Green's function. Group and phase velocity dispersion curves for Rayleigh wave are measured for each interstation path by applying frequency-time analysis. It describes finer velocity structure of the crust and upper mantle in Shanxi, which reflects the geological structure characteristics at different depths. The resolution is within 50km and the resolution of part periods can reach 40km.The Rayleigh wave group and phase speed maps at short periods(8~18s and 10~22s)show clear correlations with shallow geological structures. Mountain areas on both sides of Shanxi depression zone show apparent high-velocity anomaly, except for low-velocity anomaly in the Taiyuan Basin, Linfen-Yuncheng Basin and Weihe Basin. Especially, the areas of Youyu County-Pianguan County-Kelan County-Shuozhou City and Jingle County-Lishi District of Lüliang City in Lüliang Mountains, and Yu County-Fuping County-Yi County and Yangcheng County-Licheng County in Taihang Mountains, present higher velocity anomaly. In addition, the velocity is lowest in the Weihe Basin, and the amplitude of low velocity decreases gradually from the south to the north of the basins in Shanxi, which probably is related to the process of gradual stretching and development of the Shanxi rift zone from the southwest to the northeast. The obvious velocity difference across the latitude of 38°N exists at 18~30s period of phase and 24~35s period of group velocity maps, which is probably related to the deep and shallow Moho depth variation in the south and north of Shanxi and the suture zone of ancient blocks including "hard" southern block and "soft" northern block. At the same time, the research result of receiver function reveals that partial melting of the lower crust occurs in the northern Taihang Mountains, while the southern section remains stable(Poisson's ratio is above 0.3 in the northern Taihang Mountains and 0.25~0.26 in the southern section). The phase velocity map at 30~50s period clearly shows NW velocity gradient belt, and the low velocity anomaly in the northeast side may be related to Cenozoic volcanism. Meanwhile, the eastern border of Ordos block is the western faults of central basins in Shanxi depression zone. However, some research results indicate that the above border is Lishi Fault in the surface, inferring that the Ordos block shows a shape of wide in the upper and narrow in the lower part from the surface to deep. The Datong volcanic area at 18~45s period of phase and 24~35s period of group velocity maps shows low velocity of trumpet shape from shallow to deep, related to the upwelling of hot material from lower mantle in the Cenozoic causing a large area of intense magmatic activity. It indicates the more specific upwelling channel of Datong volcanoes simultaneously. 相似文献
110.
D. C. Mason I. J. Davenport R. A. Flather C. Gurney G. J. Robinson J. A. Smith 《Estuarine, Coastal and Shelf Science》2001,53(6):759
A sensitivity analysis of the waterline method of constructing a Digital Elevation Model (DEM) of an intertidal zone using remote sensing and hydrodynamic modelling is described. Variation in vertical height accuracy as a function of beach slope is investigated using a set of nine ERS Synthetic Aperture Radar (SAR) images of the Humber/Wash area on the English east coast acquired between 1992 and 1994. Waterlines from these images are heighted using a hydrodynamic tide-surge model and interpolated using block kriging. On 1:500 slope beaches, an average block height estimation standard deviation of 18–22 cm is achieved. This rises to 27 cm on 1:100 slope beaches, and 32 cm on 1:30 slope beaches. The average heighting error at different slopes is decomposed into components due to waterline heighting error, inadequate sensor resolution and interpolation inaccuracy. It is shown that, at 1:500 slope, waterline heighting error and interpolation inaccuracy are the main error sources, whilst at 1:30 slope, errors due to inadequate sensor resolution become dominant. The ability of the technique to generate intertidal DEMs for almost the entire coastal zone in a complete ERS SAR scene covering 100×100 km is demonstrated. 相似文献