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首页> 外文期刊>Journal of Geophysical Research, D. Atmospheres: JGR >Self-acceleration and instability of gravity wave packets: 1. Effects of temporal localization
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Self-acceleration and instability of gravity wave packets: 1. Effects of temporal localization

机译:重力波包的自加速和不稳定性:1.时间局域化的影响

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An anelastic numerical model is used to explore the dynamics accompanying the attainment of large amplitudes by gravity waves (GWs) that are localized in altitude and time. GW momentum transport induces mean flow variations accompanying a GW packet that grows exponentially with altitude, is localized in altitude, and induces significant GW phase speed, and phase, variations across the GW packet. These variations arise because the GW occupies the region undergoing accelerations, with the induced phase speed variations referred to as “self-acceleration.” Results presented here reveal that self-acceleration of a GW packet localized in time and altitude ultimately leads to stalling of the vertical propagation of the GW packet and accompanying two- and three-dimensional (2-D and 3-D) instabilities of the superposed GW and mean motion field. The altitudes at which these effects occur depend on the initial GW amplitude, intrinsic frequency, and degree of localization in time and altitude. Larger amplitudes and higher intrinsic frequencies yield strong self-acceleration effects at lower altitudes, while smaller amplitudes yield similar effects at higher altitudes, provided the Reynolds number, Re, is sufficiently large. Three-dimensional instabilities follow 2-D “self-acceleration instability” for sufficiently high Re. GW packets can also exhibit self-acceleration dynamics at more than one altitude because of continued growth of the GW packet leading edge above the previous self-acceleration event.
机译:使用非弹性数值模型来探索伴随着重力波(GWs)实现大振幅的动力学,重力波位于高度和时间。 GW动量传输引起伴随GW数据包的平均流量变化,该平均流量变化随高度呈指数增长,位于海拔高度,并在整个GW数据包中引起显着的GW相速度和相位变化。之所以会出现这些变化,是因为GW占据了经历加速的区域,而感应出的相速度变化被称为“自加速”。此处显示的结果表明,在时间和高度上局部化的GW数据包的自加速最终会导致GW数据包的垂直传播停滞,并伴随叠加的二维和三维(2-D和3-D)不稳定性毛重和平均运动场。发生这些影响的高度取决于初始GW振幅,固有频率以及时间和高度的局域化程度。如果雷诺数Re足够大,则较大的振幅和较高的固有频率会在较低的高度上产生较强的自加速效果,而较小的振幅会在较高的高度上产生类似的效果。三维不稳定性遵循二维“自加速不稳定性”以获得足够高的Re。由于GW数据包前沿在先前的自加速事件之上的持续增长,因此GW数据包还可以在一个以上的高度上展现自加速动态。

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