Mechanisms for the Maintenance of the Wintertime Basin-Scale Atmospheric Response to Decadal SST Variability in the North Pacific Subarctic Frontal Zone

Author:

Okajima Satoru1,Nakamura Hisashi12,Nishii Kazuaki3,Miyasaka Takafumi1,Kuwano-Yoshida Akira4,Taguchi Bunmei1,Mori Masato1,Kosaka Yu1

Affiliation:

1. Research Center for Advanced Science and Technology, The University of Tokyo, Tokyo, Japan

2. Application Laboratory, JAMSTEC, Yokohama, Japan

3. Graduate School of Bioresources, Mie University, Tsu, Japan

4. Disaster Prevention Research Institute, Kyoto University, Shirahama, Japan

Abstract

Abstract Mechanisms for the maintenance of a large-scale wintertime atmospheric response to warm sea surface temperature (SST) anomalies associated with decadal-scale poleward displacement of the North Pacific subarctic frontal zone (SAFZ) are investigated through the following two ensemble experiments with an atmospheric general circulation model (AGCM): one with climatological-mean SST and the other with positive SST anomalies along the SAFZ prescribed on top of the climatological-mean SST. As actually observed, the simulated January ensemble response over the North Pacific is anticyclonic throughout the depth of the troposphere, although its amplitude is smaller. This response is maintained through energy conversion from the ensemble climatological-mean circulation realized under the climatological SST as well as feedback from anomalous transient eddy activity, suggesting that the response may have characteristics as a preferred mode of variability (or “dynamical mode”). Conversions of both available potential energy and kinetic energy from the climatological-mean state are important for the observed anomaly, while the latter is less pronounced for the model response. Net transient feedback forcing is also important for both the observed anomaly and simulated response. These results imply that a moderate-resolution (~1°) AGCM may be able to simulate a basin-scale atmospheric response to the SAFZ SST anomaly through synoptic- and basin-scale dynamical processes. Weaker PNA-like internal variability in the model may lead to the weaker response, suggesting that misrepresentation of intrinsic atmospheric variability can affect the model response to the SST anomaly.

Funder

Japan Science and Technology Agency

Japanese Ministry of Environment

Ministry of Education, Culture, Sports, Science and Technology

Japan Society for the Promotion of Science

Publisher

American Meteorological Society

Subject

Atmospheric Science

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