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引用次数: 1
摘要
Fritts等人(2023a)的一篇同伴论文回顾了开尔文-亥姆霍兹不稳定性(KHI)“管”和“结”(T&K)动力学在整个大气中普遍存在的证据。在这里,我们描述了多尺度重力波动力学的理想直接数值模拟结果,揭示了多个较大和较小尺度的KHI T&K事件。这些结果能够评估这些动力学产生的环境,以及它们与同步重力波破裂在驱动湍流和能量耗散方面的竞争。详细诊断了一个更大规模的事件,并揭示了在相同环境下由于重力波破裂而产生的更强烈的湍流的多样化和强烈的T&K动力学。较小尺度的事件表明,KHI T&K动力学很容易扩展到更弱、更小尺度和越来越粘滞的剪切流动。我们的研究结果表明,KHI - T&K动力学应该是广泛的,也许是无处不在的,只要叠加的重力波引起增强的剪切层,因为这样的层实际上总是存在的。第二篇论文(Fritts et al. 2023b)表明,KHI T&K动力学表现出更高的湍流产生和能量耗散率,在相关KHI尺度上,无论它们出现在哪里,都可以扩展到更小的雷诺数。这些动力被认为是整个大气湍流和混合的重要来源,目前在区域和全球模式的湍流参数化中被忽略或代表性不足。
Kelvin Helmholtz Instability “Tube” and “Knot” Dynamics, Part II: KHI T&K Dynamics in a Multi-Scale Gravity Wave Direct Numerical Simulation
A companion paper by Fritts et al. (2023a) reviews evidence for Kelvin-Helmholtz instability (KHI) “tube” and “knot” (T&K) dynamics that appear to be widespread throughout the atmosphere. Here we describe the results of an idealized direct numerical simulation of multi-scale gravity wave dynamics that reveals multiple larger- and smaller-scale KHI T&K events. The results enable assessments of the environments in which these dynamics arise and their competition with concurrent gravity wave breaking in driving turbulence and energy dissipation. A larger-scale event is diagnosed in detail and reveals diverse and intense T&K dynamics driving more intense turbulence than occurs due to gravity wave breaking in the same environment. Smaller-scale events reveal that KHI T&K dynamics readily extend to weaker, smaller-scale, and increasingly viscous shear flows. Our results suggest that KHI T&K dynamics should be widespread, perhaps ubiquitous, wherever superposed gravity waves induce intensifying shear layers, because such layers are virtually always present. A second companion paper (Fritts et al. 2023b) demonstrates that KHI T&K dynamics exhibit elevated turbulence generation and energy dissipation rates extending to smaller Reynolds numbers for relevant KHI scales wherever they arise. These dynamics are suggested to be significant sources of turbulence and mixing throughout the atmosphere that are currently ignored or under-represented in turbulence parameterizations in regional and global models.
期刊介绍:
The Journal of the Atmospheric Sciences (JAS) publishes basic research related to the physics, dynamics, and chemistry of the atmosphere of Earth and other planets, with emphasis on the quantitative and deductive aspects of the subject.
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