Accelerating and Supersonic Density Fluctuations in Coronal Hole Plumes: Signature of Nascent Solar Winds

Cho, Il-Hyun and Nakariakov, Valery M. and Moon, Yong-Jae and Lee, Jin-Yi and Yu, Dae Jung and Cho, Kyung-Suk and Yurchyshyn, Vasyl and Lee, Harim (2020) Accelerating and Supersonic Density Fluctuations in Coronal Hole Plumes: Signature of Nascent Solar Winds. The Astrophysical Journal, 900 (2). L19. ISSN 2041-8213

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Abstract

Slow magnetoacoustic waves in a static background provide a seismological tool to probe the solar atmosphere in the analytic frame. By analyzing the spatiotemporal variation of the electron number density of plume structure in coronal holes above the limb for a given temperature, we find that the density perturbations accelerate with supersonic speeds in the distance range from 1.02 to 1.23 solar radii. We interpret them as slow magnetoacoustic waves propagating at about the sound speed with accelerating subsonic flows. The average sonic height of the subsonic flows is calculated to be 1.27 solar radii. The mass flux of the subsonic flows is estimated to be 44.1% relative to the global solar wind. Hence, the subsonic flow is likely to be the nascent solar wind. In other words, the evolution of the nascent solar wind in plumes at the low corona is quantified for the first time from imaging observations. Based on the interpretation, propagating density perturbations present in plumes could be used as a seismological probe of the gradually accelerating solar wind.

Item Type: Article
Subjects: Souths Book > Physics and Astronomy
Depositing User: Unnamed user with email support@southsbook.com
Date Deposited: 19 May 2023 07:34
Last Modified: 13 Sep 2024 08:02
URI: http://research.europeanlibrarypress.com/id/eprint/952

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