Empirical constraints on the turbulence in QSO host nebulae from velocity structure function measurements
Mandy C. Chen, Hsiao-Wen Chen, Michael Rauch, Zhijie Qu, Sean D., Johnson, Jennifer I-Hsiu Li, Joop Schaye, Gwen C. Rudie, Fakhri S. Zahedy,, Erin Boettcher, Kathy L. Cooksey, and Sebastiano Cantalupo

TL;DR
This study empirically measures turbulence in the circumgalactic medium around quasars using velocity structure functions, finding one nebula consistent with classical turbulence theory and providing insights into QSO feedback mechanisms.
Contribution
First empirical measurement of turbulence in QSO host nebulae using velocity structure functions, with constraints on the turbulence energy cascade rate and comparison to Kolmogorov turbulence.
Findings
One nebula shows Kolmogorov turbulence behavior.
Turbulence energy cascade rate is approximately 0.2 cm² s⁻³.
Three nebulae have less constrained VSF slopes due to observational limitations.
Abstract
We present the first empirical constraints on the turbulent velocity field of the diffuse circumgalactic medium around four luminous QSOs at --1.1. Spatially extended nebulae of --100 physical kpc in diameter centered on the QSOs are revealed in [OII] and/or [OIII] emission lines in integral field spectroscopic observations obtained using MUSE on the VLT. We measure the second- and third-order velocity structure functions (VSFs) over a range of scales, from kpc to --50 kpc, to quantify the turbulent energy transfer between different scales in these nebulae. While no constraints on the energy injection and dissipation scales can be obtained from the current data, we show that robust constraints on the power-law slope of the VSFs can be determined after accounting for the effects of…
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Taxonomy
TopicsAdaptive optics and wavefront sensing · Stellar, planetary, and galactic studies · Astronomy and Astrophysical Research
