Virial shocks in galactic haloes?

被引:886
作者
Birnboim, Y [1 ]
Dekel, A [1 ]
机构
[1] Hebrew Univ Jerusalem, Racah Inst Phys, IL-91904 Jerusalem, Israel
关键词
hydrodynamics; shock waves; cooling flows; galaxies : formation; galaxies : ISM; dark matter;
D O I
10.1046/j.1365-8711.2003.06955.x
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We investigate the conditions for the existence of an expanding virial shock in the gas falling within a spherical dark matter halo. The shock relies on pressure support by the shock-heated gas behind it. When the radiative cooling is efficient compared with the infall rate, the postshock gas becomes unstable; it collapses inwards and cannot support the shock. We find for a monatomic gas that the shock is stable when the post-shock pressure and density obey gamma(eff) = (d ln P dt) (d ln rho/dt) > 10/7. When expressed in terms of the pre-shock gas properties at radius r it reads as rhor Lambda (T)/u(3) < 0.0126, where ρ is the gas density, u is the infall velocity and Λ(T) is the cooling function, with the post-shock temperature T ∝ u(2). This result is confirmed by hydrodynamical simulations, using an accurate spheri-symmetric Lagrangian code. When the stability analysis is applied in cosmology, we find that a virial shock does not develop in most haloes that form before z ∼ 2, and it never forms in haloes less massive than a few 10(11) M-.. In such haloes, the infalling gas is not heated to the virial temperature until it hits the disc, thus avoiding the cooling-dominated quasi-static contraction phase. The direct collapse of the cold gas into the disc should have non-trivial effects on the star formation rate and on outflows. The soft X-ray produced by the shock-heated gas in the disc is expected to ionize the dense disc environment, and the subsequent recombination would result in a high flux of Lα emission. This may explain both the puzzling low flux of soft X-ray background and the Lα emitters observed at high redshift.
引用
收藏
页码:349 / 364
页数:16
相关论文
共 33 条
[1]   THE STATISTICS OF PEAKS OF GAUSSIAN RANDOM-FIELDS [J].
BARDEEN, JM ;
BOND, JR ;
KAISER, N ;
SZALAY, AS .
ASTROPHYSICAL JOURNAL, 1986, 304 (01) :15-61
[2]   Diffuse X-ray emission from late-type galaxy haloes [J].
Benson, AJ ;
Bower, RG ;
Frenk, CS ;
White, SDM .
MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2000, 314 (03) :557-565
[3]   SELF-SIMILAR SECONDARY INFALL AND ACCRETION IN AN EINSTEIN-DESITTER UNIVERSE [J].
BERTSCHINGER, E .
ASTROPHYSICAL JOURNAL SUPPLEMENT SERIES, 1985, 58 (01) :39-66
[4]   THE SELF-SIMILAR EVOLUTION OF HOLES IN AN EINSTEIN-DESITTER UNIVERSE [J].
BERTSCHINGER, E .
ASTROPHYSICAL JOURNAL SUPPLEMENT SERIES, 1985, 58 (01) :1-37
[5]   Statistical properties of X-ray clusters: Analytic and numerical comparisons [J].
Bryan, GL ;
Norman, ML .
ASTROPHYSICAL JOURNAL, 1998, 495 (01) :80-99
[6]   A universal angular momentum profile for galactic halos [J].
Bullock, JS ;
Dekel, A ;
Kolatt, TS ;
Kravtsov, AV ;
Klypin, AA ;
Porciani, C ;
Primack, JR .
ASTROPHYSICAL JOURNAL, 2001, 555 (01) :240-257
[7]  
CHI W, 1996, APJ, V486, P117
[8]   A RECIPE FOR GALAXY FORMATION [J].
COLE, S ;
ARAGONSALAMANCA, A ;
FRENK, CS ;
NAVARRO, JF ;
ZEPF, SE .
MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 1994, 271 (04) :781-806
[9]  
Cox J. P., 1980, Theory of Stellar Pulsation, VVol. 2, DOI 10.1515/9781400885855
[10]  
De Breuck C, 2000, ASTRON ASTROPHYS, V362, P519