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首页> 外文期刊>Journal of Fluid Mechanics >Physical interpretation of spiralling-columnar convection in a rapidly rotating annulus with radial propagation properties of Rossby waves
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Physical interpretation of spiralling-columnar convection in a rapidly rotating annulus with radial propagation properties of Rossby waves

机译:具有Rossby波径向传播特性的快速旋转环空中螺旋柱对流的物理解释

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摘要

To aid the physical understanding of spiralling-columnar convection emerging in rapidly rotating spheres and spherical shells, two-dimensional thermal convection in a rapidly rotating annulus is investigated through the radial propagation properties of topographic Rossby waves. Two kinds of the boundaries containing the fluid in the axial direction are considered: a convex type modelling a spherical geometry and a concave type for comparison. The linear stability of a basic state with no motion and uniformly unstable stratification is examined and spirally elongated Structures of critical convection are obtained for small Prandtl numbers. An analysis of the energy budget shows that a part of the kinetic energy generated in the region with slightly inclined boundaries is dynamically transferred and dissipates through viscosity in the region with strongly inclined boundaries. This indicates that the Rossby waves propagate from the region with slightly inclined boundaries to the region with strongly inclined boundaries. It is presented that the appearance of a spiral Structure corresponds to an Increase of the local radial wavenumber of the Rossby waves propagating in the radial direction. The flow patterns obtained using the dispersion relation of the Rossby waves coincide with those of the tailing part of the spiral structure obtained numerically. As the Prandtl number increases, the Rossby waves barely propagate because of strong Viscous dissipation, and the flow pattern is localized in the region with slightly inclined boundaries. For convex boundaries with unstable stratification concentrating near the Outer boundary and concave boundaries with unstable stratification confined near the inner boundary, the flow patterns tilt in the direction inverse to the case of uniform unstable stratification. The tilting direction of the flow pattern is not determined by the Curvature of the boundaries considered but instead by the radial propagation direction of the Rossby waves excited by thermal convection.
机译:为了帮助物理理解快速旋转的球体和球形壳中出现的螺旋-对流对流,通过地形Rossby波的径向传播特性研究了快速旋转的环空中的二维热对流。考虑在轴向上包含流体的两种边界:用于球形几何形状的凸型和用于比较的凹型。检验了基本状态的线性稳定性,该状态没有运动且均匀不稳定地分层,并且对于小Prandtl数,获得了对流的螺旋伸长结构。对能量收支的分析表明,在边界稍微倾斜的区域中生成的部分动能是动态传递的,并通过边界强烈倾斜的区域中的黏度消散。这表明罗斯比波从边界稍微倾斜的区域传播到边界强烈倾斜的区域。结果表明,螺旋结构的出现与沿径向传播的罗斯比波的局部径向波数的增加相对应。使用罗斯比波的色散关系获得的流动模式与通过数值获得的螺旋结构的尾部的流动模式一致。随着Prandtl数的增加,由于强粘性耗散,Rossby波几乎不传播,并且流动模式位于边界稍微倾斜的区域。对于分层不稳定的凸形边界集中在外边界附近,而分层不稳定的凹形边界局限于内边界附近,流型向与均匀不稳定分层相反的方向倾斜。流动模式的倾斜方向不是由所考虑的边界的曲率决定的,而是由热对流激发的罗斯比波的径向传播方向决定的。

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