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首页> 外文期刊>Continental Shelf Research: A Companion Journal to Deep-Sea Research and Progress in Oceanography >Topographic effects on the anticyclonic vortex evolution: A modeling study
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Topographic effects on the anticyclonic vortex evolution: A modeling study

机译:地形对反气旋涡演化的影响:模型研究

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The evolution of anticyclonic vortices in the presence of topographic effects associated with continental slope steepness and orientation is investigated using the Hybrid Coordinate Ocean Model. The trajectories of the vortices are analyzed using various configurations of slope steepness and orientation, including a flat bottom. As the steepness of the slope is increased, the development and evolution of a counter-rotating subsurface vortex ('deep cyclone') is strongly dispersive resulting in strong zonal translation over the slope, although the translation is southwest with a coherent deep cyclone, in the flat bottom case. In particular, the zonal translation is faster with a gentle slope (relative to the flat bottom case) due to an upslope tilt of the deep cyclone. As the surface vortex collides with the steep topography, the deflection angle increases as the slope increases (i.e. it deflects along slope) at the same time the bottom vorticity peaks, generating a 'collision' cyclone and a slope jet south of the vortex-slope impact. In the realistic steep slope case, along slope translation is dominant when the vortex departs overear the slope, although the vortex strongly collides with (and rapidly crosses) the slope if it has strong westward inertia. During the cross-slope translation, vorticity restoration by vortex compression occurs with relatively small poleward translation. At the point of maximum bottom vorticity, rapid vortex erosion occurs horizontally and vertically, and southwestward translation is restored. Comparison of vortex translation over four different slope orientations suggests that the vortex is strongly affected by the location of adjacent cyclones which tend to propagate onshore and poleward simultaneously, and that the combined planetary and topographic beta-effect slows the vortex translation on the northern slope.
机译:使用混合坐标海洋模型研究了与大陆坡陡度和方向有关的地形影响下反气旋涡的演变。使用包括陡峭底部和倾斜度在内的各种坡度和方向配置来分析旋涡的轨迹。随着坡度陡度的增加,反向旋转的地下旋涡(“深层旋风”)的发展和演化是强烈分散的,从而导致在坡度上强烈的纬向平移,尽管平移是在西南方向进行的,具有连贯的深层旋风。平底盒。特别是,由于深层旋风分离器的上坡倾斜,纬向平移速度较快(相对于平底情况)。当表面涡旋与陡峭的地形碰撞时,偏转角随着坡度的增加而增加(即,它沿着坡度偏转),同时底部涡旋达到峰值,从而产生“碰撞”旋风和涡旋坡以南的坡面射流影响。在现实的陡坡情况下,如果涡旋在斜坡上方/附近倾斜,则沿斜坡平移是主要的,尽管如果涡旋具有强烈的向西惯性,则它会强烈碰撞(并快速穿过)斜坡。在跨坡平移过程中,通过涡旋压缩以相对较小的极向平移进行了涡度恢复。在最大底部涡度时,水平和垂直方向都会发生快速涡旋侵蚀,并且恢复了向西南的平移。比较四种不同坡度方向上的涡旋平移表明,旋涡受到相邻旋风分离器位置的强烈影响,相邻旋风分离器往往同时在陆上和极向传播,行星和地形的β效应相结合减慢了北坡上的旋涡平移。

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