Self-consistent equilibrium models of prominence thin threads heated by Alfv\'en waves propagating from the photosphere
Lloren\c{c} Melis, Roberto Soler, Jaume Terradas

TL;DR
This paper develops self-consistent 1D models of solar prominence threads heated by Alfvén waves, revealing how wave energy flux influences the equilibrium structure and constraining conditions for stable prominence configurations.
Contribution
It introduces an iterative method to construct equilibrium prominence thread models that include Alfvén wave heating, accounting for energy balance and wave propagation.
Findings
Equilibrium models feature a cold, dense core with a thin PCTR and extended corona.
Maximum wave energy flux for equilibrium depends on prominence core temperature.
High wave flux can prevent equilibrium formation due to excessive heating.
Abstract
The fine structure of solar prominences is made by thin threads that outline the magnetic field lines. Observations show that transverse waves of Alfv\'enic nature are ubiquitous in prominence threads. These waves are driven at the photosphere and propagate to prominences suspended in the corona. Heating due to Alfv\'en wave dissipation could be a relevant mechanism in the cool and partially ionized prominence plasma. We explore the construction of 1D equilibrium models of prominence thin threads that satisfy energy balance between radiative losses, thermal conduction, and Alfv\'en wave heating. We assume the presence of a broadband driver at the photosphere that launches Alfv\'en waves towards the prominence. An iterative method is implemented, in which the energy balance equation and the Alfv\'en wave equation are consecutively solved. From the energy balance equation and considering…
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