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Tracing Magnetic Fields with the Gradient Technique: Spatial Filtering Effect and Use of Interferometers
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Probing magnetic fields in astrophysical environments is both important and challenging. The Gradient Technique (GT) is a new tool for tracing magnetic fields, rooted in the properties of magnetohydrodynamic (MHD) turbulence and turbulent magnetic reconnection. In this work, we examine the performance of GT when applied to synthetic synchrotron emission and spectroscopic data obtained from sub-Alfv\'enic and trans-Alfv\'enic MHD simulations. We demonstrate the improved accuracy of GT in tracing magnetic fields in the absence of low-spatial frequencies. Additionally, we apply a low-spatial frequency filter to a diffuse neutral hydrogen region selected from the GALFA-\ion{H}{1} survey. Our results show an increased alignment between the magnetic fields inferred from GT and the Planck 353 GHz polarization measurements.
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Cited by 2 Pith papers
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Statistics of Gas Density, Velocity, and Magnetic Fields in Cool-Core Galaxy Clusters
In simulations of cool-core cluster mergers, velocity and magnetic field fluctuations are anisotropic, preferentially perpendicular to the magnetic field, and the Synchrotron Intensity Gradient method traces the field...
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Tracing magnetic field in super-Alfvenic turbulence with Gradient Technique
Synchrotron and X-ray intensity gradients trace plane-of-sky magnetic fields in super-Alfvenic turbulence with alignment near 0.9 even when the Alfven scale is not resolved.
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