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Influence of parameterized small-scale gravity waves on the migrating diurnal tide in Earth's thermosphere

机译:参数化的小规模的重力的影响在迁移全日潮波在地球热大气层

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Effects of subgrid-scale gravity waves (GWs) on the diurnal migrating tides are investigated from the mesosphere to the upper thermosphere for September equinox conditions, using a general circulation model coupled with the extended spectral nonlinear GW parameterization of Yi?it et al. (2008). Simulations with GW effects cut off above the turbopause and included in the entire thermosphere have been conducted. GWs appreciably impact the mean circulation and cool the thermosphere down by up to 12-18%. GWs significantly affect the winds modulated by the diurnal migrating tide, in particular, in the low-latitude mesosphere and lower thermosphere and in the high-latitude thermosphere. These effects depend on the mutual correlation of the diurnal phases of the GW forcing and tides: GWs can either enhance or reduce the tidal amplitude. In the low-latitude MLT, the correlation between the direction of the deposited GW momentum and the tidal phase is positive due to propagation of a broad spectrum of GW harmonics through the alternating winds. In the Northern Hemisphere high-latitude thermosphere, GWs act against the tide due to an anticorrelation of tidal wind and GW momentum, while in the Southern high-latitudes they weakly enhance the tidal amplitude via a combination of a partial correlation of phases and GW-induced changes of the circulation. The variable nature of GW effects on the thermal tide can be captured in GCMs provided that a GW parameterization (1) considers a broad spectrum of harmonics, (2) properly describes their propagation, and (3) correctly accounts for the physics of wave breaking/saturation. Plain Language Summary Atmospheric waves generated by meteorological processes in the lower atmosphere influence the state and evolution of the atmosphere at higher altitudes. Using a three-dimensional model of the atmosphere, we study the effects of small-scale gravity waves on the large-scale tides. In addition to the study of the interaction of these waves in the mesosphere and lower thermosphere region of the atmosphere, we explore gravity wave effects even at much higher altitudes in the thermosphere (up to about 300 km). Our results show that gravity waves strengthen the tide in the lower thermosphere. In the upper thermosphere, gravity waves can either enhance or damp the tides. The underlying mechanisms are investigated.
机译:subgrid-scale重力波的影响(千瓦)日迁移研究了潮汐中间层上热大气层9月equinox条件,使用一般再加上扩展循环模型光谱非线性GW参数化,咦?et al。(2008)。turbopause和包含在上面整个热大气层进行。明显影响平均环流和酷热大气层减少了12 - 18%。显著影响风的调制特别是日迁移潮,低纬度中间层和降低热大气层在高纬度地区热大气层。依赖于相互关联的影响日瓦迫使和潮汐的阶段:千瓦可以提高或降低潮汐振幅。在低纬度MLT,之间的关系千瓦动力和沉积的方向潮汐阶段由于传播是积极的广泛的GW谐波通过交替的风。高纬度地区热电离层,空间的反对行动由于潮汐的anticorrelation风和潮流GW的势头,而在南部中高纬度大陆地区他们弱提高潮汐振幅通过结合偏相关的阶段和GW-induced变化的循环。变量的性质GW对热潮流的影响可以捕获在全球大气环流模型提供了一个千瓦参数化(1)认为广泛的谐波,(2)正确描述他们传播,和(3)正确的账户物理波打破/饱和度。生成的语言总结大气波在低层大气气象过程影响的状态和演化在高海拔的氛围。三维模型的大气,我们研究小型重力波的影响大规模的潮汐。这些波之间的相互作用中间层和低的热电离层区域大气,甚至我们探索重力波的影响在更高海拔地区热电离层(约300公里)。波增强的潮流更低热大气层。潮汐波可以增强或抑制。潜在机制。

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