首页> 外文期刊>Journal of the Atmospheric Sciences >Delineating the Barotropic and Baroclinic Mechanisms in the Midlatitude Eddy-Driven Jet Response to Lower-Tropospheric Thermal Forcing
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Delineating the Barotropic and Baroclinic Mechanisms in the Midlatitude Eddy-Driven Jet Response to Lower-Tropospheric Thermal Forcing

机译:描绘中纬度涡动力射流对低层热强迫的正压和斜压机制

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Observations and climate models have shown that the midlatitude eddy-driven jet can exhibit an evident latitudinal shift in response to lower-tropospheric thermal forcing (e.g., the tropical SST warming during El Nino or extratropical SST anomalies associated with the atmosphere-ocean-sea ice coupling). In addition to the direct thermal wind response, the eddy feedbacksincluding baroclinic mechanisms, such as lower-level baroclinic eddy generation, and barotropic mechanisms, such as upper-level wave propagation and breakingcan all contribute to the atmospheric circulation response to lower-level thermal forcing, but their individual roles have not been well explained. In this study, using a nonlinear -plane multilevel quasigeostrophic channel model, the mechanisms through which the lower-level thermal forcing induces the jet shift are investigated. By diagnosing the finite-amplitude wave activity budget, the baroclinic and barotropic eddy feedbacks to the lower-level thermal forcing are delineated. Particularly, by examining the transient circulation response after thermal forcing is switched on, it is shown that the lower-level thermal forcing affects the eddy-driven jet rapidly by modifying the upper-level zonal thermal wind distribution and the associated meridional wave propagation and breaking. The anomalous baroclinic eddy generation, however, acts to enhance the latitudinal shift of the eddy-driven jet only in the later stage of transient response. Furthermore, the barotropic mechanism is explicated by overriding experiments in which the barotropic flow in the vorticity advection is prescribed. Unlike the conventional baroclinic view, the barotropic eddy feedback, particularly the irreversible PV mixing through barotropic vorticity advection and deformation, plays a major role in the atmospheric circulation response to the lower-level thermal forcing.
机译:观测和气候模型表明,中纬度涡旋驱动射流可响应低对流层热强迫(例如,厄尔尼诺现象期间的热带海表温度升高或与大气-海洋-海冰有关的温带海表温度异常)表现出明显的纬向偏移。耦合)。除了直接的热风响应外,包括斜压机制(如低层斜压涡旋产生)和正压机制(如上层波传播和破裂)在内的涡流反馈都可以对大气对低层热强迫的响应做出贡献。 ,但尚未很好地解释其各自的作用。在这项研究中,使用非线性平面多级准地转通道模型,研究了低级热强迫引起射流偏移的机理。通过诊断有限振幅波活动预算,描绘了对低层热强迫的斜压和正压涡流反馈。特别是,通过检查热力开启后的瞬态循环响应,可以看出,低层热力通过修改高层纬向热风分布以及相关的经向波传播和破坏而迅速影响了涡流驱动的射流。 。但是,异常斜压涡流的产生仅在瞬态响应的后期才起到增强涡流射流的横向偏移的作用。此外,通过覆盖实验说明了正压机理,在该实验中规定了涡旋对流中的正压流。与传统的斜压观点不同,正压涡流反馈,特别是通过正压涡度对流和变形引起的不可逆PV混合,在大气对低层热强迫的响应中起着重要作用。

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