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Generation of inertia-gravity waves in the rotating thermal annulus by a localised boundary layer instability

机译:局部边界层不稳定性在旋转热环中产生惯性重力波

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Waves with periods shorter than the inertial period exist in the atmosphere (as inertia-gravity waves) and in the oceans (as Poincaré and internal gravity waves). Such waves owe their origin to various mechanisms, but of particular interest are those arising either from local secondary instabilities or spontaneous emission due to loss of balance. These phenomena have been studied in the laboratory, both in the mechanically-forced and the thermally-forced rotating annulus. Their generation mechanisms, especially in the latter system, have not yet been fully understood, however. Here we examine short period waves in a numerical model of the rotating thermal annulus, and show how the results are consistent with those from earlier laboratory experiments. We then show how these waves are consistent with being inertia-gravity waves generated by a localised instability within the thermal boundary layer, the location of which is determined by regions of strong shear and downwelling at certain points within a large-scale baroclinic wave flow. The resulting instability launches small-scale inertia-gravity waves into the geostrophic interior of the flow. Their behaviour is captured in fully nonlinear numerical simulations in a finite-difference, 3D Boussinesq Navier-Stokes model. Such a mechanism has many similarities with those responsible for launching small- and meso-scale inertia-gravity waves in the atmosphere from fronts and local convection.
机译:周期短于惯性周期的波浪存在于大气中(作为惯性重力波),而在海洋中(作为庞加莱和内部重力波)存在。这样的波源于各种机制,但特别令人关注的是源于局部次要不稳定性或由于失去平衡而自发发射的那些。这些现象已在实验室中的机械力和热力旋转环中进行了研究。但是,它们的生成机制,特别是在后一种系统中,还没有被完全理解。在这里,我们检查了旋转热环空数值模型中的短周期波,并显示了结果与早期实验室实验的结果如何一致。然后,我们显示这些波如何与热边界层内的局部不稳定性所产生的惯性重力波一致,其位置由大规模斜压波流内某些点处的强剪切区和下涌区确定。产生的不稳定性将小规模的惯性重力波发射到流的地转内部。它们的行为在有限差分的3D Boussinesq Navier-Stokes模型中的完全非线性数值模拟中得以记录。这种机制与负责从前沿和局部对流向大气中发射小尺度和中尺度惯性重力波的机制有很多相似之处。

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