TY - JOUR
T1 - Characterizing the turbulent multiphase haloes with periodic box simulations
AU - Mohapatra, Rajsekhar
AU - Jetti, Mrinal
AU - Sharma, Prateek
AU - Federrath, Christoph
N1 - Publisher Copyright:
© 2021 The Author(s) Published by Oxford University Press on behalf of Royal Astronomical Society.
PY - 2022/3/1
Y1 - 2022/3/1
N2 - Turbulence in the intracluster medium (ICM) is driven by active galactic nuclei (AGNs) jets, by mergers, and in the wakes of infalling galaxies. It not only governs gas motion but also plays a key role in the ICM thermodynamics. Turbulence can help seed thermal instability by generating density fluctuations, and mix the hot and cold phases together to produce intermediate temperature gas (104-107 K) with short cooling times. We conduct high resolution (3843-7683 resolution elements) idealized simulations of the multiphase ICM and study the effects of turbulence strength, characterized by fturb (0.001-1.0), the ratio of turbulent forcing power to the net radiative cooling rate. We analyse density and temperature distribution, amplitude and nature of gas perturbations, and probability of transitions across the temperature phases. We also study the effects of mass and volume weighted thermal heating and weak ICM magnetic fields. For low fturb, the gas is distribution is bimodal between the hot and cold phases. The mixing between different phases becomes more efficient with increasing fturb, producing larger amounts of the intermediate temperature gas. Strong turbulence (fturb ≥ 0.5) generates larger density fluctuations and faster cooling, The rms logarithmic pressure fluctuation scaling with Mach number σ ln bar P2≈ \ln (1+b2γ 2 M4) is unaffected by thermal instability and is the same as in hydro turbulence. In contrast, the density fluctuations characterized by σ s2 are much larger, especially for M≲ 0.5. In magnetohydrodynamic runs, magnetic fields provide significant pressure support in the cold phase but do not have any strong effects on the diffuse gas distribution, and nature and amplitude of fluctuations.
AB - Turbulence in the intracluster medium (ICM) is driven by active galactic nuclei (AGNs) jets, by mergers, and in the wakes of infalling galaxies. It not only governs gas motion but also plays a key role in the ICM thermodynamics. Turbulence can help seed thermal instability by generating density fluctuations, and mix the hot and cold phases together to produce intermediate temperature gas (104-107 K) with short cooling times. We conduct high resolution (3843-7683 resolution elements) idealized simulations of the multiphase ICM and study the effects of turbulence strength, characterized by fturb (0.001-1.0), the ratio of turbulent forcing power to the net radiative cooling rate. We analyse density and temperature distribution, amplitude and nature of gas perturbations, and probability of transitions across the temperature phases. We also study the effects of mass and volume weighted thermal heating and weak ICM magnetic fields. For low fturb, the gas is distribution is bimodal between the hot and cold phases. The mixing between different phases becomes more efficient with increasing fturb, producing larger amounts of the intermediate temperature gas. Strong turbulence (fturb ≥ 0.5) generates larger density fluctuations and faster cooling, The rms logarithmic pressure fluctuation scaling with Mach number σ ln bar P2≈ \ln (1+b2γ 2 M4) is unaffected by thermal instability and is the same as in hydro turbulence. In contrast, the density fluctuations characterized by σ s2 are much larger, especially for M≲ 0.5. In magnetohydrodynamic runs, magnetic fields provide significant pressure support in the cold phase but do not have any strong effects on the diffuse gas distribution, and nature and amplitude of fluctuations.
KW - Galaxies: clusters: intracluster medium
KW - Galaxies: haloes
KW - Hydrodynamics
KW - MHD
KW - Methods: numerical
KW - Turbulence
UR - http://www.scopus.com/inward/record.url?scp=85125687767&partnerID=8YFLogxK
U2 - 10.1093/mnras/stab3603
DO - 10.1093/mnras/stab3603
M3 - Article
SN - 0035-8711
VL - 510
SP - 3778
EP - 3793
JO - Monthly Notices of the Royal Astronomical Society
JF - Monthly Notices of the Royal Astronomical Society
IS - 3
ER -