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      Measuring Magnetization with Rotation Measures and Velocity Centroids in Supersonic MHD Turbulence

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      The Astrophysical Journal
      American Astronomical Society

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          Abstract

          The interstellar turbulence is magnetized and thus anisotropic. The anisotropy of turbulent magnetic fields and velocities is imprinted in the related observables, rotation measures (RMs), and velocity centroids (VCs). This anisotropy provides valuable information on both the direction and strength of the magnetic field. However, its measurement is difficult, especially in highly supersonic turbulence in cold interstellar phases, due to the distortions by isotropic density fluctuations. By using 3D simulations of supersonic and sub-Alfvénic magnetohydrodynamic (MHD) turbulence, we find that the problem can be alleviated when we selectively sample the volume filling low-density regions in supersonic MHD turbulence. Our results show that in these low-density regions the anisotropy of RM and VC fluctuations depends on the Alfvénic Mach number as . This anisotropy− M A relation is theoretically expected for sub-Alfvénic MHD turbulence and confirmed by our synthetic observations of 12CO emission. It provides a new method for measuring the plane-of-the-sky magnetic fields in cold interstellar phases.

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          Electron density power spectrum in the local interstellar medium

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            Reconnection in a Weakly Stochastic Field

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              Evidence for the presence of quasi-two-dimensional nearly incompressible fluctuations in the solar wind

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                Author and article information

                Contributors
                Journal
                The Astrophysical Journal
                ApJ
                American Astronomical Society
                0004-637X
                1538-4357
                March 30 2021
                April 01 2021
                March 30 2021
                April 01 2021
                : 910
                : 2
                : 88
                Article
                10.3847/1538-4357/abe403
                3f499cae-53fc-4adf-8e9f-0f8c2a698841
                © 2021

                https://iopscience.iop.org/page/copyright

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