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Matthew T. Luongo

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Open access Aug 2026

Major role for internal variability in tropical Pacific warming pattern over satellite era.

Home to El Niño, the tropical Pacific is a key player in the global climate system. While most of the planet has warmed during the satellite era of 1982-2024, the eastern tropical Pacific surface has mysteriously cooled. What is troubling is that fully coupled global climate models mostly fail to simulate this distinctive pattern. By replacing wind stress applied to the ocean with observations, here we show that climate models successfully reproduce the La Niña-like (LN) trend pattern over the satellite era as well as the opposite decadal transition observed during the 1970s. Detailed analysis reveals that the LN (El Niño-like) surface temperature pattern is associated with a multidecadal intensification (slowdown) of the trade winds and deepened (shoaled) thermocline in the western equatorial Pacific. Averaging out cyclic internal variability, longer-term trends from the 1950s are in broad agreement with the radiatively forced response in the same models, with much reduced wind and ocean temperature anomalies in the equatorial Pacific compared to those during the satellite era. These results indicate that unforced internal variability largely explains the satellite-era tropical Pacific change. As such, the LN pattern is expected to wane as tropical Pacific decadal variability transitions from its current negative phase, causing worldwide shifts in rainfall, tropical cyclones, and ocean-atmospheric circulations.

Shang‐Ping Xie, Ayumu Miyamoto, Qihua Peng et al. · 0 citations
Open access Jul 2026

Double‐ITCZ Bias Reduces Southern Hemisphere Influence on Tropics via Oceanic Pathways

Many coupled climate models exhibit an Intertropical Convergence Zone (ITCZ) south of the Equator in the annual‐mean tropical Pacific that is more pronounced than observed. This bias impacts winds, wind‐driven ocean circulation, including the meridional subtropical cells, and the zonal distribution of waters supplying the equatorial thermocline. To explore the impact of these biases, we compare particle pathways from a double‐ITCZ‐biased coupled climate simulation with those from an ocean simulation forced by atmospheric reanalysis. In the forced ocean simulation, Southern Hemisphere (SH) subducted waters travel directly to the equator in the Central and Eastern Pacific. In the coupled simulation, surface winds associated with the South Pacific Convergence Zone intensify the SH subsurface meridional potential vorticity gradient, blocking and diverting interior flow to western boundary currents. These circulation changes are accompanied by modifications of subducted water potential densities, altering equatorial water mass properties and potentially the simulation of decadal climate variability.

Cassia Cai, Matthew T. Luongo, A. Deppenmeier et al. · 0 citations