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Hideo Kawai 《Journal of Oceanography》2005,61(2):235-246
At present, the barotropic buoyant stability parameter has been derived from a vertical virtual displacement of a water parcel. The barotropic inertial stability parameter in the eccentrically cyclogeostrophic, basic current field was derived in 2003 from a horizontal cross-stream virtual displacement of a parcel. By expressing acceleration of a parcel due to a virtual displacement, which is arbitrarily sloping within a vertical section across the basic current, in terms of natural coordinates, we derived the vertical component of baroclinic buoyant stability parameter B
2
2, the horizontal component of baroclinic inertial stability parameter I
2
2, the baroclinic joint stability parameter J
2, its buoyant component B
2 and its inertial component I
2. B
2 is far greater than I
2
2, and when neglecting relative vorticity except for vertical shear, a downward convex curve of J
2 plotted against the slope of a virtual displacement follows a trend of B
2 curve. If a parcel displaces along a horizontal surface or an isopycnal surface, however, B
2 vanishes, and J
2 becomes equal to I
2. Actual parcel is apt to displace not only along the bottom slope, but also along the sea surface and an isopycnal interfacial surface, which is approximately equivalent to an isentropic surface, preferred by lateral mixing and exchange of momentum. Such actual displacement makes B
2 vanishing, and grants I
2 an important role. The present analysis of I
2 examining effects due to curvature and horizontal and vertical shear vorticities are useful in deepening our understanding of baroclinic instability in actual oceanic streams. 相似文献
2.
利用常规高空地面、机场跑道自动观测系统(AWOS)、微波辐射计及FY4A新一代静止气象卫星等资料对2019年12月9~13日发生于北疆沿天山一带的一次持续性浓雾天气进行观测特征及演变分析,结果表明:(1)此次大雾天气过程是发生在500 hPa高空脊区控制,低层不断有暖平流东伸,地面位于蒙古冷高压后部均压场的大尺度环流背景下。(2)大雾发生前,地面明显升温有利于地表融雪、水汽蒸发,这为浓雾的形成和维持提供有利的水汽条件。浓雾维持期间,地面风速维持1 m.s-1左右的弱风场,温度露点差≤2℃,空气接近饱和,准噶尔盆地低洼地形均为浓雾维持提供有力环境条件。浓雾消散期间,风速增大,急剧降温,快速增湿,有利于雾滴凝结为米雪,使得浓雾消散。(3)Brunt-Vaisala(布伦特-维萨拉)指数能较好的反映浓雾期间边界层稳定度,并能提炼出相关稳定度阈值。浓雾期间相对湿度≥85%高度层主要集中在100米以下的贴地层,持续深厚的湿度层为浓雾形成和持续提供较好水汽条件,大雾期间强逆温层顶主要维持在600 m高度,当逆温层顶高度抬升时,有利于雾滴粒子、水汽粒子向上扩散,能见度好转。(4)FY4A卫星的多通道可见光及红外通道差图像能较好的监视白天及夜间大雾的形成、维持及生消变化,对于业务中短时临近预报有较好的帮助。 相似文献
3.
M. K. Rama Varma Raja G. C. Asnani P. S. Salvekar A. R. Jain D. Narayana Rao S. Venkoba Rao P. Kishore M. Hareesh 《Journal of Earth System Science》1999,108(4):287-295
Contrary to the prevalent belief that tropical region is characterized by convective clouds rather than by layer clouds, we
have suggested that deep convective clouds occur on meso-scale, but layer clouds occur on larger synoptic-scale with a relatively
small region of deep convective clouds. Sustenance of deep convective clouds is inhibited by the presence of inertio-gravity
waves, which have alternating layers of upward and downward motion in the vertical. We have also shown that inertio-gravity
waves generate regions of relatively strong horizontal velocity, vertically separated by layers of relatively weak horizontal
velocity. Layers of strong horizontal velocity are created by inertio-gravity wave system through convergence of vertical
flux of horizontal momentum. We have also suggested that horizontal convergence/divergence of moisture flux is generated by
inertio-gravity waves, giving rise to vertically alternating layers of high/low humidity, and visible or sub-visible clouds.
Layers of high humidity become layers of strong radar reflectivity at frequency of 53 MHz at which MST Radar at Gadanki, near
Tirupati, India, operates. These observations, more than 2,50,000 in number, for vertical grid points, spread over all the
months of the year, have helped us, among other observations, to arrive at these conclusions. Further, the analysis suggests
that the main source of strong MST radar reflectivity is not mechanical turbulence as is commonly believed. 相似文献
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