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首页> 外文期刊>Theoretical and Applied Mechanics Japan >Vertical Momentum and Heat Transport Induced by Wave Breaking and Cloud Feedback Heating in the Venusian Atmosphere
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Vertical Momentum and Heat Transport Induced by Wave Breaking and Cloud Feedback Heating in the Venusian Atmosphere

机译:金星大气中的波浪破碎和云反馈加热引起的垂直动量和热传输

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Upward convective heat fluxes in the Venusian low-stability layer (~55 km) become larger as wave-forcing and heating amplitudes are increased in 5.5-day wave and cloud feedback heating (CFH) experiments. In contrast, the upward heat flux is weak and insensitive to the wave-forcing amplitude in 8-day wave experiments, because the forced wave predominantly breaks below the low-stability layer. The planetary-scale wave breaking induces downward heat flux at 45-50 km. In addition, convective penetration produces downward heat fluxes near the top and bottom of the low-stability layer when the convection is fully developed. Above 60 km, vertically propagating gravity waves emitted from the low-stability layer have negative momentum fluxes. The maximum downward eddy momentum flux is proportional to the upward heat flux in the low-stability layer. Fine structures of atmospheric static stability vary between wave propagation, convective penetration, and planetary-scale wave breaking.
机译:在5.5天的波浪和云反馈加热(CFH)实验中,随着强迫和加热幅度的增加,金星低稳定层中的向上对流热通量(〜55 km)变大。相比之下,在8天的波浪实验中,向上的热通量微弱且对强迫振幅不敏感,因为强迫波主要在低稳定性层以下破裂。行星尺度的波浪破裂引起45-50 km处的向下热通量。另外,当对流充分发展时,对流穿透会在低稳定性层的顶部和底部附近产生向下的热通量。在60 km以上,从低稳定层发射的垂直传播的重力波具有负动量通量。最大向下涡动量通量与低稳定性层中的向上热通量成正比。大气静态稳定性的精细结构在波传播,对流穿透和行星尺度波浪破碎之间变化。

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