Simulation of Thermal Nonequilibrium Cycles in the Solar Wind

Fuente: arXiv
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Autores principales: Scott, Roger B., Reep, Jeffrey W., Linton, Mark G., Bradshaw, Stephen J.
Formato: Preprint
Publicado: 2024
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author Scott, Roger B.
Reep, Jeffrey W.
Linton, Mark G.
Bradshaw, Stephen J.
author_facet Scott, Roger B.
Reep, Jeffrey W.
Linton, Mark G.
Bradshaw, Stephen J.
contents Thermal nonequilibrium (TNE) is a condition of the plasma in the solar corona in which the local rate of energy loss due to radiation increases to the point that it cannot be sustained by the various heating terms acting on the plasma, precluding the existence of a steady state. The limit cycles of precipitation and evaporation that result from TNE have been simulated in 1D models of coronal loops, as well as 2D and 3D models of the solar chromosphere and lower corona. However, a careful study of TNE in the solar wind has not been performed until now. Here we demonstrate that for suitable combinations of local and global heating rates it is possible for the plasma to exhibit a TNE condition, even in the context of a transonic solar wind with appreciable mass and energy fluxes. This implies limits on the amount of foot-point heating that can be withstood under steady-state conditions in the solar wind, and may help to explain the variability of solar wind streams that emanate from regions of highly concentrated magnetic flux on the solar surface. The implications of this finding pertain to various sources of high-density solar wind, including plumes that form above regions of mixed magnetic polarity in polar coronal holes and the slow solar wind (SSW) that emanates from coronal hole boundaries.
format Preprint
id arxiv_https___arxiv_org_abs_2411_10215
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Simulation of Thermal Nonequilibrium Cycles in the Solar Wind
Scott, Roger B.
Reep, Jeffrey W.
Linton, Mark G.
Bradshaw, Stephen J.
Solar and Stellar Astrophysics
Space Physics
Thermal nonequilibrium (TNE) is a condition of the plasma in the solar corona in which the local rate of energy loss due to radiation increases to the point that it cannot be sustained by the various heating terms acting on the plasma, precluding the existence of a steady state. The limit cycles of precipitation and evaporation that result from TNE have been simulated in 1D models of coronal loops, as well as 2D and 3D models of the solar chromosphere and lower corona. However, a careful study of TNE in the solar wind has not been performed until now. Here we demonstrate that for suitable combinations of local and global heating rates it is possible for the plasma to exhibit a TNE condition, even in the context of a transonic solar wind with appreciable mass and energy fluxes. This implies limits on the amount of foot-point heating that can be withstood under steady-state conditions in the solar wind, and may help to explain the variability of solar wind streams that emanate from regions of highly concentrated magnetic flux on the solar surface. The implications of this finding pertain to various sources of high-density solar wind, including plumes that form above regions of mixed magnetic polarity in polar coronal holes and the slow solar wind (SSW) that emanates from coronal hole boundaries.
title Simulation of Thermal Nonequilibrium Cycles in the Solar Wind
topic Solar and Stellar Astrophysics
Space Physics
url https://arxiv.org/abs/2411.10215