Investigating Extreme Scattering Events by Volumetric Ray-tracing
arXiv:2312.02047 · doi:10.3847/1538-4357/ad11d6
Abstract
Extreme scattering events (ESEs) are observed as dramatic () drops in flux density that occur over an extended period of weeks to months. Discrete plasma lensing structures are theorized to scatter the radio waves produced by distant sources such as pulsars, causing the signature decrease in flux density and characteristic caustic spikes in ESE light curves. While plasma lens models in the extant literature have reproduced key features of ESE light curves, they have all faced the problem of being highly over-dense and over-pressured relative to the surrounding interstellar medium (ISM) by orders of magnitude. We model ESEs by numerically ray-tracing through analytic, volumetric plasma lens models by solving the eikonal equation. Delaunay triangulation connecting the rays approximates the wavefront, generating a mapping from the observer plane to the source plane to account for multiple-imaging. This eikonal method of ray-tracing is tested against known analytic solutions and is then applied to a three-dimensional Gaussian-distributed electron volume density lens, and a filament model inspired by Grafton et al. (2023). We find convergence of our numerical results with established analytic solutions validating our numerical method, and reproduce ESE-like light curves. Our numerical ray-tracing method lends itself well to exploring the lensing effects of volumetric turbulence as well as sheet-like lenses, which is currently in progress.
24 pages, 9 figures, accepted for publication in The Astrophysical Journal
References in corpus (11)
- Turbulence sets the initial conditions for star formation in high-pressure environments
- Two families of astrophysical diverging lens models
- Folded Fields as the Source of Extreme Radio-Wave Scattering in the Galactic Center
- A Scintillation Arc Survey of 22 Pulsars with Low to Moderate Dispersion Measures
- Double-lens Scintillometry: The variable scintillation of pulsar B1508+55
- Dual-Component Plasma Lens Models
- Simulation of the interstellar scintillation and the extreme scattering events of pulsars
- High Resolution VLBI Astrometry of pulsar scintillation screens with the Transform
- Magnetized Filament Models for Diverging Plasma Lenses
- Measuring lens dimensionality in extreme scattering events through wave optics
- Magnetohydrodynamic Models of Molecular Tornadoes