EGU24-162, updated on 08 Mar 2024
https://doi.org/10.5194/egusphere-egu24-162
EGU General Assembly 2024
© Author(s) 2024. This work is distributed under
the Creative Commons Attribution 4.0 License.

Tropical Pacific Quasi-Decadal Variability Suppressed by Submesoscale Eddies 

Yushan Qu1, Shengpeng Wang2, Zhao Jing1,2, Yu Zhang1,2, Hong Wang1,2, and Lixin Wu1,2
Yushan Qu et al.
  • 1Frontier Science Center for Deep Ocean Multispheres and Earth System (FDOMES) and Key Laboratory of Physical Oceanography, Ocean University of China, Qingdao, China
  • 2Laoshan Laboratory, Qingdao, China

Tropical Pacific quasi-decadal (TPQD) climate variability is characterized by quasi-decadal sea surface temperature variations in the central Pacific. This low-frequency climate variability is suggested to influence extreme regional weather and substantially impact global climate patterns and associated socio-economy through teleconnections. Previous studies mostly attributed the TPQD climate variability to basin-scale air-sea coupling processes. However, due to the coarse resolution of the majority of the observations and climate models, the role of sub-basin-scale processes in modulating the TPQD climate variability is still unclear. Using a long-term high-resolution global climate model, we find that energetic small-scale motions with horizontal scales from tens to hundreds of kilometers (loosely referred to as equatorial submesoscale eddies) act as an important damping effect to retard the TPQD variability. During the positive TPQD events, compound increasing precipitation and warming SST in the equatorial Pacific intensifies the upper ocean stratification and weakens the temperature fronts along the Pacific cold tongue. This suppresses the growth of submesoscale eddies as well as their associated upward vertical heat transport by inhibiting baroclinic instability and frontogenesis; Conversely, during the negative TPQD events, the opposite is true. Using a series of coupled global climate models that participated in the Coupled Model Intercomparison Project Phase 6 with different oceanic resolutions, we show that the amplitude of the TPQD variability becomes smaller as the oceanic resolution becomes finer, providing evidence for the impacts of submesoscale eddies on damping the TPQD variability. Our study suggests that explicitly simulating equatorial submesoscale eddies is necessary for gaining a more robust understanding of low-frequency tropical climate variability.

How to cite: Qu, Y., Wang, S., Jing, Z., Zhang, Y., Wang, H., and Wu, L.: Tropical Pacific Quasi-Decadal Variability Suppressed by Submesoscale Eddies , EGU General Assembly 2024, Vienna, Austria, 14–19 Apr 2024, EGU24-162, https://doi.org/10.5194/egusphere-egu24-162, 2024.

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