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本文运用声波导的理论讨论钻井声场的共振模式问题,特别注意稳态现象和暂态现象的区别与联系.本文考察了共振模式的存在性及其在声波测井信号中的反映. 相似文献
74.
大气中低频重力波指数与西南低涡发展及其暴雨的关系 总被引:1,自引:0,他引:1
采用低频重力波指数法,对西南低涡发展演变及其暴雨强度,落区进行了诊断分析和预测。结果指出:(1)低频重力波指数Cp,Ci对西南低涡的发展及其暴雨强度,落区都有一定的预测意义,其预见期可达24小时以上;(2)低频重力波指数随时间变化与西南低涡发有较好的对应关系;(3)低频重力波指数的大小与西南低涡暴雨强度相联系;(4)西南低涡暴雨落区通常发生在Cp,Ci指数的最大负值区内和Cp等值线梯度最大的区域。 相似文献
75.
The statistical relationship between the summer monsoon rainfall over all India, northwest India and peninsular India, onset
dates of monsoon and the index of mid latitude, (35° to 70°N) meridional circulation at 500 hPa level over different sectors
and hemisphere based on 19 years (1971–1989) data, have been examined. The results indicate that (i) the summer monsoon rainfalls
over all India, northwest India and peninsular India show a significant inverse relationship with the strength of meridional
index during previous January over sector 45°W to 90°E. (ii) The summer monsoon rainfalls over all India and peninsular India
show a significant inverse relationship with the strength of meridional index during previous December over sector 90°E to
160°E, (iii) The summer monsoon rainfall over northwest India shows a significant direct relationship with the meridional
index during previous May over sector 160°E to 45°W.
Significant negative relationships are also observed between the meridional circulation indices of previous October (sector
3 and 4), previous December (sectors 1, 3 and 4), previous winter season (sector 3 and 4) and the onset dates of summer monsoon
over India. The meridional circulation index thus can have some possible use for long range forecasting of monsoon rainfall
over all India, northwest India and peninsular India, as well as the onset dates of monsoon. 相似文献
76.
Luo Zhexian 《Acta Meteorologica Sinica》1994,8(1):60-71
The computational formulae are given for single-contour constant-value vortex motion influenced by the Coriolis force in the framework of contour dynamics,by which four numerical computations are performed,the result exhibiting their validity. 相似文献
77.
A case of mesoscale convective complex(MCC)which evolved into a vortex is documented in this paper.As theMCC entered into the dissipating phase,a well-defined spirally banded structure became visible in the satellite image.The blackbody temperature(TBB)of the residual cold-cloud-shield indicates the vortex existed in the layer from 400 to250 hPa.According to the upper air analysis,the upper level vortex was an anticyclone.The MCC-generated vortex wasvisualized in the satellite images because it was located in the subtropical high where the wind field was very weak. 相似文献
78.
79.
Tao Zuyu Wang Hongqing Bai Jie Zhu Wenqin Shi Dingpu Yang Hongmei 《Acta Meteorologica Sinica》1995,9(2):184-189
A case of mesoscale convective complex(MCC) which evolved into a vortex is documented in this paper.As the MCC entered into the dissipating phase,a well-defined spirally banded structure became visible in the satellite image.The blackbody temperature(TBB) of the residual cold-cloud-shield indicates the vortex existed in the layer from 400 to 250 hPa.According to the upper air analysis,the upper level vortex was an anticyclone.The MCC-generated vortex was visualized in the satellite images because it was located in the subtropical high where the wind field was very weak. 相似文献
80.
Hydrodynamical Modeling Of Oceanic Vortices 总被引:1,自引:0,他引:1
Xavier Carton 《Surveys in Geophysics》2001,22(3):179-263
Mesoscale coherent vortices are numerous in the ocean.Though they possess various structures in temperature and salinity,they are all long-lived, fairly intense and mostly circular. Thephysical variable which best describes the rotation and the density anomaly associated with coherent vortices is potential vorticity. It is diagnostically related to velocity and pressure, when the vortex is stationary. Stationary vortices can be monopolar (circular or elliptical) or multipolar; their stability analysis shows thattransitions between the various stationary shapes are possible when they become unstable. But stable vortices can also undergo unsteady evolutions when perturbed by environmental effects, likelarge-scale shear or strain fields, -effect or topography. Changes in vortex shapes can also result from vortex interactions. such as the pairing, merger or vertical alignment of two vortices, which depend on their relative polarities and depths. Such interactions transfer energy and enstrophy between scales, and are essential in two-dimensional and in geostrophic turbulence. Finally, in relation with the observations, we describe a few mechanisms of vortex generation. 相似文献