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On the Interaction of a Bonnor–Ebert Sphere with a Stellar Wind.

Authors :
Zier, Oliver
Burkert, Andreas
Alig, Christian
Source :
Astrophysical Journal. 7/1/2021, Vol. 915 Issue 1, p1-8. 8p.
Publication Year :
2021

Abstract

The structure of protostellar cores can often be approximated by isothermal Bonnor–Ebert spheres (BES), which are stabilized by an external pressure. For the typical pressure of 104kB K cm−3 to 105kB K cm−3 found in molecular clouds, cores with masses below 1.5 M⊙ are stable against gravitational collapse. In this paper, we analyze the efficiency of triggering gravitational collapse with a nearby stellar wind, which represents an interesting scenario for triggering low-mass star formation. We analytically derive a new stability criterion for a BES compressed by a stellar wind, which depends on its initial nondimensional radius. If the stability limit is violated the wind triggers a core collapse. Otherwise, the core is destroyed by the wind. We estimate its validity range to and confirm this in simulations with the SPH-Code GADGET-3. The efficiency of triggering a gravitational collapse strongly decreases for since in this case destruction and acceleration of the whole sphere begin to dominate. We were unable to trigger a collapse for , which leads to the conclusion that a stellar wind can move the smallest unstable stellar mass to 0.5 M⊙ and that destabilizing even smaller cores would require external pressure larger than 105kB K cm−3. For the expected wind strength according to our criterion is small enough that the compression is slower than the sound speed of the BES and sound waves can be triggered. In this case our criterion somewhat underestimates the onset of collapse and detailed numerical analyses are required. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
0004637X
Volume :
915
Issue :
1
Database :
Academic Search Index
Journal :
Astrophysical Journal
Publication Type :
Academic Journal
Accession number :
151351274
Full Text :
https://doi.org/10.3847/1538-4357/abfdc8