Hydrogen molecules and the radiative cooling of pregalactic shocks

Paul R. Shapiro, Hyesung Kang

The Astrophysical Journal · 1987 · 300 citations · 0 references

Abstract

The nonequilibrium radiative cooling, recombination, and molecule formation behind steady state shock waves in a gas of primordial composition have been calculated in detail for a number of cases. The authors have solved the rate equations for these processes, together with the hydrodynamical conservation equations. Such shock waves are relevant to a wide range of theories of galaxy and pregalactic star formation. A purely atomic gas of H and He which is shock-heated to temperatures above 10<SUP>4</SUP>K is assumed. The results indicate that formation of H<SUB>2</SUB> molecules in the post-shock gas may be quite common for a significant range of shock velocities. The extra cooling resulting from H<SUB>2</SUB> formation greatly reduces previous estimates of the characteristic gravitational scale length and the characteristic mass subject to gravitational instability in these postshock regions.