Time-dependent Stochastic Modeling of Solar Active Region Energy
M. Kanazir, M.S. Wheatland

TL;DR
This paper develops a time-dependent stochastic model for solar active region energy, capturing flare statistics and response to changes in energy input or flare rates, with applications to observed solar flare data.
Contribution
It introduces a novel time-dependent stochastic model that accounts for variations in flare productivity and energy input, extending previous static models.
Findings
Model reproduces observed flare statistics.
System adjusts to new steady states after rate changes.
Monte Carlo simulations confirm analytic predictions.
Abstract
A time-dependent model for the energy of a flaring solar active region is presented based on a stochastic jump-transition model (Wheatland and Glukhov 1998; Wheatland 2008; Wheatland 2009). The magnetic free energy of the model active region varies in time due to a prescribed (deterministic) rate of energy input and prescribed (random) flare jumps downwards in energy. The model has been shown to reproduce observed flare statistics, for specific time-independent choices for the energy input and flare transition rates. However, many solar active regions exhibit time variation in flare productivity, as exemplified by NOAA active region AR 11029 (Wheatland 2010). In this case a time-dependent model is needed. Time variation is incorporated for two cases: 1. a step change in the rates of flare jumps; and 2. a step change in the rate of energy supply to the system. Analytic arguments are…
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