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101.
The paper gives the distributions of the daily mean temperature of black body of satellite infrared
images from June 7 to 10, 1998 during HUAMEX and examines 14 meso-α-scale convective systems and a
number of meso-b-scale convective systems using the satellite infrared images at 1-h intervals. The mesoscale
convective systems on June 7 and 9, which resulted in severe rainstorm over the middle of Taiwan and the
estuary region of the Pearl River (Zhujiang R.), are emphatically analyzed. The serial development of mesoscale
convective systems is revealed by the distributions of the black body temperature of satellite infrared images. The
environmental conditions in which many mesoscale convective systems continuously occurred are diagnosed.
The visualizing tool, LiveView, displays the link between the upper and lower horizontal wind fields and the
vertical circulations and 3-dimensional trajectories of moist air motions, based on the data of objective analyses. 相似文献
102.
103.
圆钢管混凝土压弯构件荷载一位移滞回性能分析 总被引:6,自引:1,他引:6
在空钢管中填充混凝土可以避免或延缓钢管过早地发生局部屈曲,并有效地提高构件的延性,从而增强构件的抗震性能,本文在对圆钢管混凝土构件弯矩-曲率关系分析的基础上,分析了圆钢管混凝土压弯构件P-△滞回关系曲线,理论计算结果得到国内外大量结果的验证,基于理论分析模型,分析了各参,如构件轴压比,长细比,截面含钢率和材料强度等因素对圆钢管混凝土压变变构件P-△滞回关系曲线的影响,最后,确定了圆钢管混凝土压弯构件P-△恢复力学模型和延性系数的简化计算方法。 相似文献
104.
根据2000年在西藏措勤地区1:25万区调中,在中二叠统中发现的菊石化石Popanoceras bowmani(Boese)、Paragastrioceras jossae(Vrneuil)和Timorites curvicostatus Haniel,对菊石相的中二叠统进行了划分对比。Paragastrioceras同冈瓦纳边缘区的特征化石,Timorites是赤道特提斯区的菊石代表,二者的共存,证实了西藏在二叠纪时位于邻近冈瓦纳边缘区的赤道特提斯区内,古气候已渐转为温暖。 相似文献
105.
106.
利用NCEP/NCAR1980-1989年10年逐日00UTC、12UTC再分析资料及青藏高原降水、径流资料,研究了青藏高原雅鲁藏布江流域的水平衡特征,估算了雅鲁藏布江流域的蒸发、土壤和地下水含量。结果表明:雅鲁藏布江流域夏季是水汽辐合区,降水大于蒸发;秋末到次年春季是水汽通量辐散区,蒸发大于降水。降水主要集中在6~9月。径流的年际变化趋势同降水相近,径流主要是由降水补给的,径流峰值滞后降水峰值一个月。雅鲁藏布江流域土壤及地下含水量从1~6月逐渐减少,7月以后开始增加,10月是土壤及地下水最丰富的时段。20世纪80年代中期和后期降水、蒸发、径流等呈增长趋势,这同ENSO事件有关。 相似文献
107.
108.
东乌珠穆沁旗中铁陨石中有二种橄榄石。一种是陨石中基质橄榄石,另一种是镶嵌在陨石表面的角砾状橄榄石。电子探针成分分析结果表明,两种橄榄石中的FeO和MnO比值,包体矿物种类,包体铁纹石和镍纹石中Fe,Ni的含量等,均有较大区别。陨石中基质橄榄石矿物是本陨石中原物质,而角砾状橄榄石是宇宙中物质。他们是两块自由翱于宇宙中的物质碰撞混合而形成的东乌珠穆旗陨石中这种现象。 相似文献
109.
110.
Wyllie's time-average equation and subsequent refinements have been used for over 20 years to estimate the porosity of reservoir rocks from compressional (P)-wave velocity (or its reciprocal, transit time) recorded on a sonic log. This model, while simple, needs to be more convincingly explained in theory and improved in practice, particularly by making use of shear (S)-wave velocity. One of the most important, although often ignored, factors affecting elastic velocities in a rock is pore structure, which is also a controlling factor for transport properties of a rock. Now that S-wave information can be obtained from the sonic log, it may be used with P-waves to provide a better understanding of pore structure. A new acoustic velocities-to-porosity transform based on an elastic velocity model developed by Kuster and Toksöz is proposed. Employing an approximation to an equivalent pore aspect ratio spectrum, pore structure for reservoir rocks is taken into account, in addition to total pore volume. Equidimensional pores are approximated by spheres and rounded spheroids, while grain boundary pores and flat pores are approximated by low aspect ratio cracks. An equivalent pore aspect ratio spectrum is characterized by a power function which is determined by compressional-and shear-wave velocities, as well as by matrix and inclusion properties. As a result of this more sophisticated elastic model of porous rocks and a stricter theory of elastic wave propagation, the new method leads to a more satisfactory interpretation and fuller use of seismic and sonic log data. Calculations using the new transform on data for sedimentary rocks, obtained from published literature and laboratory measurements, are presented and compared at atmospheric pressure with those estimated from the time-average equation. Results demonstrate that, to compensate for additional complexity, the new method provides more detailed information on pore volume and pore structure of reservoir rocks. Examples are presented using a realistic self-consistent averaging scheme to consider interactions between pores, and the possibility of extending the method to complex lithologies and shaly rocks is discussed. 相似文献