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A simple approach to quantifying the noise-ENSO interaction. Part I: deducing the state-dependency of the windstress forcing using monthly mean data

机译:一种量化噪声-ENSO相互作用的简单方法。第一部分:使用月平均数据推导出风应力强迫的状态相关性

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Stochastic forcing has been used conceptually to explain ENSO irregularity. More recently, the concept of state-dependent stochastic forcing has also been explored to further explain a number of ENSO properties. Here we propose a method using monthly mean data to isolate "the stochastic part" in the zonal windstress anomalies as the residual after both the linear and low-order nonlinear parts of the deterministic ENSO signal are removed. We then further use a conditional variance approach to quantify the ENSO state-dependency in this stochastic forcing represented by this windstress residual. This methodology of isolation and quantification of state-dependent stochastic forcing is demonstrated and validated in a conceptual model and then applied to examine reanalysis and two coupled model data sets. The stochastic windstress forcing term is shown to be dependent on the ENSO state both in the reanalysis and the model data. Both of the coupled model simulations examined here have a stronger the state-dependence than in the reanalysis data. These results also reveal a threshold dependence on SST for the windstress stochastic forcing of ENSO, likely due to the nonlinearity in atmospheric convection.
机译:从概念上讲,随机强迫已被用来解释ENSO的不规则性。最近,还探索了状态相关的随机强迫的概念,以进一步解释ENSO的许多特性。在这里,我们提出了一种使用月平均数据的方法,将确定性ENSO信号的线性和低阶非线性部分都去除后,将风向异常中的“随机部分”隔离为残差。然后,我们进一步使用条件方差方法来量化由该风应力残差表示的这种随机强迫中的ENSO状态依赖性。在概念模型中验证并验证了这种基于状态的随机强迫的隔离和量化方法,然后将其应用于检查重新分析和两个耦合的模型数据集。在重新分析和模型数据中,随机风应力强迫项均取决于ENSO状态。与重新分析数据相比,这里检查的两个耦合模型仿真都具有更强的状态依赖性。这些结果还揭示了ENSO的风应力随机强迫对SST的阈值依赖性,这可能是由于大气对流的非线性所致。

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