论北大西洋涛动年际变化的形成和维持

Yang Yang, X. Liang, Wei-Bang He
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摘要

观察到北大西洋涛动(NAO)的年际变化与季内时间尺度上发生的单个 NAO 事件的集合出现有关,人们自然想知道季内过程是如何导致年际变化的,以及多尺度相互作用的动力学基础是什么。本研究采用一种新颖的时间依赖性和空间局部化多尺度能量形式,研究了不同阶段和年际机制的NAO事件的动力学来源。对于正相位事件(NAO+),与正冬季制度(PW)相比,发生在负NAO冬季制度(NW)的NAO+在北大西洋扇区的季内尺度动能(K1)显著增强。这是由于在 NW 的 NAO+ 生命周期中,来自同步瞬变的反向级联增强和能量散布减少造成的。对于负相事件(NAO-),西北地区 NAO- 的早期和衰减阶段的 K1 明显大于 PW,而高峰阶段则相反。在西北地区NAO-的早期阶段,反向级联和气压能量转换是形成过大K1的主要驱动因素,而在西北地区NAO-的衰减阶段,只有反向级联和气压能量转换导致K1比PW地区大。平均气流的气压转移、逆级联和气压能量转换都是造成PW地区NAO-峰值阶段K1增强的原因。
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On the Formation and Maintenance of the Interannual Variability of the North Atlantic Oscillation
Motivated by the observation that the interannual variability of the North Atlantic Oscillation (NAO) is associated with the ensemble emergence of individual NAO events occurring on the intraseasonal time scale, one naturally wonders how the intraseasonal processes cause the interannual variability, and what the dynamics are underlying the multiscale interaction. Using a novel time-dependent and spatially localized multiscale energetics formalism, this study investigates the dynamical sources for the NAO events with different phases and interannual regimes. For the positive-phase events (NAO+), the intraseasonal-scale kinetic energy (K1) over the North Atlantic sector is significantly enhanced for NAO+ occurring in the negative NAO winter regime (NW), compared to those in the positive winter regime (PW). It is caused by the enhanced inverse cascading from synoptic transients and reduced energy dispersion during the life cycle of NAO+ in NW. For the negative-phase events (NAO−), K1 is significantly larger during the early and decay stages of NAO− in NW than that in PW, whereas the reverse occurs in the peak stage. Inverse cascading and baroclinic energy conversion are primary drivers in the formation of the excessive K1 during the early stage of NAO− in NW, whereas only the latter contributes to the larger K1 during the decay stage of NAO− in NW compared to that in PW. The barotropic transfer from the mean flow, inverse cascading and baroclinic energy conversion are all responsible for the strengthened K1 in the peak stage of NAO− in PW.
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