Radiative effects of ozone waves on the Northern Hemisphere polar vortex and its modulation by the QBO.

Silverman, Vered, Harnik, Nili, Matthes, Katja , Lubis, Sandro Wellyanto and Wahl, Sebastian (2018) Radiative effects of ozone waves on the Northern Hemisphere polar vortex and its modulation by the QBO. Open Access Atmospheric Chemistry and Physics, 18 (9). pp. 6637-6659. DOI 10.5194/acp-18-6637-2018.

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Abstract

The radiative effects induced by the zonally asymmetric part of the ozone field have been shown to significantly change the temperature of the NH winter polar cap, and correspondingly the strength of the polar vortex. In this paper, we aim to understand the physical processes behind these effects using the National Center for Atmospheric Research (NCAR)'s Whole Atmosphere Community Climate Model, run with 1960s ozone-depleting substances and greenhouse gases. We find a mid-winter polar vortex influence only when considering the quasi-biennial oscillation (QBO) phases separately, since ozone waves affect the vortex in an opposite manner. Specifically, the emergence of a midlatitude QBO signal is delayed by 1–2 months when radiative ozone-wave effects are removed. The influence of ozone waves on the winter polar vortex, via their modulation of shortwave heating, is not obvious, given that shortwave heating is largest during fall, when planetary stratospheric waves are weakest. Using a novel diagnostic of wave 1 temperature amplitude tendencies and a synoptic analysis of upward planetary wave pulses, we are able to show the chain of events that lead from a direct radiative effect on weak early fall upward-propagating planetary waves to a winter polar vortex modulation. We show that an important stage of this amplification is the modulation of individual wave life cycles, which accumulate during fall and early winter, before being amplified by wave–mean flow feedbacks. We find that the evolution of these early winter upward planetary wave pulses and their induced stratospheric zonal mean flow deceleration is qualitatively different between QBO phases, providing a new mechanistic view of the extratropical QBO signal. We further show how these differences result in opposite radiative ozone-wave effects between east and west QBOs.

Document Type: Article
Keywords: QUASI-BIENNIAL OSCILLATION; PLANETARY-WAVES; STRATOSPHERIC OZONE; VARIABILITY; CIRCULATION; ATMOSPHERE; DESIGN; WINTER; MODEL
Research affiliation: OceanRep > GEOMAR > FB1 Ocean Circulation and Climate Dynamics > FB1-ME Maritime Meteorology
Refereed: Yes
Open Access Journal?: Yes
DOI etc.: 10.5194/acp-18-6637-2018
ISSN: 1680-7316
Date Deposited: 14 Aug 2017 13:27
Last Modified: 01 Feb 2019 15:05
URI: http://oceanrep.geomar.de/id/eprint/39109

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