English

Thermal instability in the collisionally cooled gas

Cosmology and Nongalactic Astrophysics 2015-05-30 v1

Abstract

We have presented the non-equilibrium (time-dependent) cooling rate and ionization state calculations for a gas behind shock waves with v50150v \sim 50-150 km s1^{-1} (Ts0.56×105T_s \sim 0.5 - 6\times 10^5 K). Such shock waves do not lead to the radiative precursor formation, i.e. the thermal evolution of a gas behind the shock waves are controlled by collisions only. We have found that the cooling rate in a gas behind the shock waves with v50120v \sim 50-120 km s1^{-1} (Ts0.53×105T_s \sim 0.5 - 3\times 10^5 K) differs considerably from the cooling rate for a gas cooled from T=108T = 10^8 K. It is well-known that a gas cooled from T=108T = 10^8 K is thermally unstable for isobaric and isochoric perturbations at T\simgt2×104T \simgt 2\times 10^4 K. We have studied the thermal instability in a collisionally controlled gas for shock waves with v50150v \sim 50-150 km s1^{-1}. We have found that the temperature range, where the postshock gas is thermally unstable, is significantly modified and depends on both gas metallicity and ionic composition of a gas before shock wave. For Z\simgt0.1ZZ \simgt 0.1Z_\odot the temperature range, where the thermal instability criterion for isochoric perturbations is not fulfilled, widens in comparison with that for a gas cooled from T=108T = 10^8 K, while that for isobaric perturbations remains almost without a change. For ZZZ\sim Z_\odot a gas behind shock waves with v\simlt65v \simlt 65 km s1^{-1} (Ts\simlt105T_s \simlt 10^5 K) is thermally stable to isochoric perturbations during full its evolution. We have shown that the transition from isobaric to isochoric cooling for a gas with Z\simgt0.1ZZ \simgt 0.1Z_\odot behind shock waves with Ts=0.53×105T_s = 0.5 - 3\times 10^5 K proceeds at lower column density layer behind a shock wave than that for a gas cooled from T=108T = 10^8 K. (abridged)

Keywords

Cite

@article{arxiv.1110.3644,
  title  = {Thermal instability in the collisionally cooled gas},
  author = {Evgenii O. Vasiliev},
  journal= {arXiv preprint arXiv:1110.3644},
  year   = {2015}
}

Comments

8 pages, 10 figures, accepted to MNRAS

R2 v1 2026-06-21T19:21:17.224Z