Spectral Power-law Formation by Sequential Particle Acceleration in Multiple Flare Magnetic Islands
Silvina E. Guidoni, Judith T. Karpen, C. Richard DeVore

TL;DR
This paper introduces a first-principles model of particle acceleration in solar flares, explaining the formation of spectral power laws through sequential magnetic island accelerations, supported by MHD simulations and analytic methods.
Contribution
It presents a novel analytic framework for understanding spectral formation in flare particle acceleration, bridging MHD simulations with kinetic theory.
Findings
Power-law spectra with energy breaks are produced by sequential acceleration.
The model accurately reproduces observed flare hard X-ray spectral features.
Analytic tools enable interpretation of high-energy solar observations.
Abstract
We present a first-principles model of pitch-angle and energy distribution function evolution as particles are sequentially accelerated by multiple flare magnetic islands. Data from magnetohydrodynamic (MHD) simulations of an eruptive flare/coronal mass ejection provide ambient conditions for the evolving particle distributions. Magnetic islands, which are created by sporadic reconnection at the self-consistently formed flare current sheet, contract and accelerate the particles. The particle distributions are evolved using rules derived in our previous work. In this investigation, we assume that a prescribed fraction of particles sequentially "hops" to another accelerator and receives an additional boost in energy and anisotropy. This sequential process generates particle number spectra that obey an approximate power law at mid-range energies and presents low- and high-energy breaks. We…
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