Secondary fast magnetoacoustic waves trapped in randomly structured plasmas
Ding Yuan, Bo Li, Robert W. Walsh

TL;DR
This study numerically investigates secondary fast magnetoacoustic waves in randomly structured plasmas, revealing their properties, dependence on initial conditions, and potential applications in solar atmospheric diagnostics.
Contribution
It provides a detailed analysis of secondary wave formation and properties in randomly structured plasmas, highlighting their dependence on initial pulse and plasma parameters, with implications for MHD seismology.
Findings
Secondary waves exhibit quasi-periodicities in time and space.
The average period scales linearly with correlation length.
Broader pulses produce longer-period secondary waves.
Abstract
Fast magnetoacoustic wave is an important tool for inferring solar atmospheric parameters. We numerically simulate the propagation of fast wave pulses in randomly structured plasmas mimicking the highly inhomogeneous solar corona. A network of secondary waves is formed by a series of partial reflections and transmissions. These secondary waves exhibit quasi-periodicities in both time and space. Since the temporal and spatial periods are related simply through the fast wave speed, we quantify the properties of secondary waves by examining the dependence of the average temporal period () on the initial pulse width () as well as the density contrast () and correlation length () that characterize the randomness of the equilibrium density profiles. For small-amplitude pulses, does not alter significantly. Large-amplitude pulses, on the…
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