<p>In this study we present a set of global,&#xa0;coupled climate model simulations with idealised geometries of the tropical ocean basins and land with a focus on important characteristics of El Niño Southern Oscillation (ENSO) type of variability and tropical basin interaction. In a series of 15 simulations, we first vary the zonal width of a single tropical ocean basin from 50° to 360°, while the rest of the tropical zone is set as land. Further we discuss different simplified configurations of two or three tropical ocean basins. The results show remarkable changes in ENSO characteristics as a function of basin width and due to the interaction with other basins that challenge our current understanding of ENSO dynamics. A single basin ENSO has an optimal basin width of about 150° (width of the Pacific) at which ENSO’s preferred period is the longest, the wind stress feedback is the strongest and variability is stronger than in all other basin widths, expect for the 350° basin. Tropical basin interactions substantially affect ENSO strength, periodicity, feedbacks, non-linearity, spatial scale and pattern. In experiments with two or three identical ocean basins we find highly synchronized ENSO modes that are identical between basins and far more energetic and oscillatory than the single basin modes. The results challenge our current understanding of core ENSO dynamics. The framework of these experiments can help to better understand the atmospheric dynamics of ENSO and should help to formulate an ENSO theory that incorporates tropical basin interactions as a core element.</p>

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El Niño southern oscillation and tropical basin interaction in idealized worlds

  • Dietmar Dommenget,
  • David K. Hutchinson

摘要

In this study we present a set of global, coupled climate model simulations with idealised geometries of the tropical ocean basins and land with a focus on important characteristics of El Niño Southern Oscillation (ENSO) type of variability and tropical basin interaction. In a series of 15 simulations, we first vary the zonal width of a single tropical ocean basin from 50° to 360°, while the rest of the tropical zone is set as land. Further we discuss different simplified configurations of two or three tropical ocean basins. The results show remarkable changes in ENSO characteristics as a function of basin width and due to the interaction with other basins that challenge our current understanding of ENSO dynamics. A single basin ENSO has an optimal basin width of about 150° (width of the Pacific) at which ENSO’s preferred period is the longest, the wind stress feedback is the strongest and variability is stronger than in all other basin widths, expect for the 350° basin. Tropical basin interactions substantially affect ENSO strength, periodicity, feedbacks, non-linearity, spatial scale and pattern. In experiments with two or three identical ocean basins we find highly synchronized ENSO modes that are identical between basins and far more energetic and oscillatory than the single basin modes. The results challenge our current understanding of core ENSO dynamics. The framework of these experiments can help to better understand the atmospheric dynamics of ENSO and should help to formulate an ENSO theory that incorporates tropical basin interactions as a core element.