paper

Common Envelope Shaping of Planetary Nebulae. III. The Launching of Jets in Proto-Planetary Nebulae

arXiv:2104.12831 · doi:10.3847/1538-4357/abfc4e

Abstract

We compute successfully the launching of two magnetic winds from two circumbinary disks formed after a common envelope event. The launching is produced by the increase of magnetic pressure due to the collapse of the disks. The collapse is due to internal torques produced by a weak poloidal magnetic field. The first wind can be described as a wide jet, with an average mass-loss rate of \Moy\ and a maximum radial velocity of \kms. The outflow has a half-opening angle of . Narrow jets are also formed intermittently with velocities up to 3,000 \kms, with mass-loss rates of \Moy\ during short periods of time. The second wind can be described as a wide X-wind, with an average mass-loss rate of \Moy\ and a velocity of \kms. A narrow jet is also formed with a velocity of 250 \kms, and a mass-loss rates of \Moy. The computed jets are used to provide inflow boundary conditions for simulations of proto-planetary nebulae. The wide jet evolves into a molecular collimated outflow within a few astronomical units, producing proto-planetary nebulae with bipolar, elongated shapes, whose kinetic energies reach erg at 1,000 years. Similarities with observed features in W43A, OH231.8+4.2, and Hen 3-1475 are discussed. The computed wide X-wind produces proto-planetary nebulae with slower expansion velocities, with bipolar and elliptical shapes, and possible starfish type and quadrupolar morphology.

35 pages, 17 figures, accepted by the Astrophysical Journal

References in corpus (8)

Cited by in corpus (15)