论文标题

土星气氛的全球气候建模。第三部分:高分辨率3D驱动模拟中Zonosrothic湍流的全球统计图

Global climate modeling of Saturn's atmosphere. Part III: Global statistical picture of zonostrophic turbulence in high-resolution 3D-turbulent simulations

论文作者

Simon, Cabanes, Aymeric, Spiga, Roland, Young, M. B.

论文摘要

我们对根据第二部分中的全球气候建模获得的参考高分辨率土星模拟计算出的统计流量进行了深入分析。在此参考模拟的稳定状态下,出现了强烈的能量,地球统治的大规模结构,它们随rhines尺度缩放。光谱分析揭示了动能光谱中的强各向异性,与Zonosrothic湍流状态一致。通过计算光谱能量和肠道通量,我们确认存在与2D脉冲理论相关的双级联方案的存在。为了诊断土星湍流气氛中相关的3D动力学机制,我们使用没有辐射转移的全球气候模型的理想化版本进行了四个模拟,并具有定义明确的泰勒绿色强迫和多个旋转速度(4、1、1.5和0.25倍土星的旋转率)。这使我们能够在三个独特的惯性范围内识别动力学:(1)``残留主导的''范围,其中非轴对称结构以-5/3频谱斜率占主导地位; (2)``一个``Zonostolophic惯性''范围,以轴对称喷气式为主导,其特征是堆积的强层模式较高,较陡,近-3个光谱斜率; (3)``大规模''范围,超出瑞恩斯的典型长度尺度,其中参考土星模拟和我们理想化的模拟不同。在后一个范围内,当考虑使用土星样的季节性强迫(参考模拟)时,动力学由长寿命的区域模式2和3主导,并且随着理想化的Taylor-Green强迫,急剧的能量减小。最后,瞬时光谱通量显示了在大尺度上的高档和降尺度和能量转移的共存,这是在3D气氛中特有的,特定于Zonosrophic湍流。

We conduct an in-depth analysis of statistical flow properties calculated from the reference high-resolution Saturn simulation obtained by global climate modelling in Part II. In the steady state of this reference simulation, strongly energetic, zonally dominated, large-scale structures emerge, which scale with the Rhines scale. Spectral analysis reveals a strong anisotropy in the kinetic energy spectra, consistent with the zonostrophic turbulent flow regime. By computing spectral energy and enstrophy fluxes we confirm the existence of a double cascade scenario related to 2D-turbulent theory. To diagnose the relevant 3D dynamical mechanisms in Saturn's turbulent atmosphere, we run a set of four simulations using an idealized version of our Global Climate Model devoid of radiative transfer, with a well-defined Taylor-Green forcing and over several rotation rates (4, 1, 0.5, and 0.25 times Saturn's rotation rate). This allows us to identify dynamics in three distinctive inertial ranges: (1) a ``residual-dominated'' range, in which non-axisymmetric structures dominate with a -5/3 spectral slope; (2) a ``zonostrophic inertial'' range, dominated by axisymmetric jets and characterized by the pile-up of strong zonal modes with a steeper, nearly -3, spectral slope; and (3) a ``large-scale'' range, beyond Rhines' typical length scale, in which the reference Saturn simulation and our idealized simulations differ. In the latter range, the dynamics is dominated by long-lived zonal modes 2 and 3 when a Saturn-like seasonal forcing is considered (reference simulation), and a steep energetic decrease with the idealized Taylor-Green forcing. Finally, instantaneous spectral fluxes show the coexistence of upscale and downscale enstrophy/energy transfers at large scales, specific to the regime of zonostrophic turbulence in a 3D atmosphere.

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