Spatial distribution of quasi-biennial oscillations in high-latitude solar activity

Author:

Deng L H123,Fei Y4,Deng H5,Mei Y53,Wang F15ORCID

Affiliation:

1. Yunnan Observatories, Chinese Academy of Sciences, Kunming 650216, P.R. China

2. Chongqing University of Arts and Sciences, Chongqing 402160, China

3. CAS Key Laboratory of Solar Activity, National Astronomical Observatories, Beijing 100012, China

4. School of Statistics and Mathematics, Yunnan University of Finance and Economics, Kunming 650221, China

5. Center For Astrophysics, Guangzhou University, Guangzhou 510006, China

Abstract

ABSTRACT Quasi-biennial oscillations (QBOs) are considered to be a fundamental mode of solar magnetic activity at low latitudes (≤50°). However, the evolutionary aspect and the hemispheric distribution of solar QBOs at high latitudes (≥60°) are rarely studied. Here, we apply a relatively novel time-frequency analysis technique, called the synchrosqueezed wavelet transform, in order to extract the main components of the polar faculae in the Northern and Southern hemispheres for the time interval from 1951 August to 1998 December. We note the following. (i) Apart from the 22-yr Hale cycle, the 17-yr extended activity cycle and the 11-yr Schwabe cycle, QBOs have been estimated as a prominent time-scale of solar magnetic activity at high latitudes. (ii) The QBOs of the polar faculae are coherent in the two hemispheres, but the temporal (phase) and the spatial (amplitude) variations of solar QBOs occur unevenly on both hemispheres. (iii) For the 11-yr period mode, this begins in the Northern hemisphere three months earlier than in the Southern hemisphere. Moreover, the spatial and temporal distributions of the hemispheric QBOs differ from those of the 11-yr Schwabe cycle mode in the two hemispheres. Our findings could be helpful to improve our knowledge of the physical origin of the spatial distribution of solar QBOs at high latitudes, and could also provide more constraints on solar dynamo models introduced to characterize the different components of the solar magnetic activity cycle.

Funder

National Key Research and Development Program of China

National Astronomical Observatory of Japan

Joint Research Fund in Astronomy

National Natural Science Foundation of China

Chinese Academy of Sciences

Youth Innovation Promotion Association, CAS

Guangdong regular institutions of higher learning

Laboratory of Solar Activity

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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