Hydrodynamical Velocity Fields in Planetary Nebulae
arXiv:0809.5263 · doi:10.1088/0004-637X/691/1/696
Abstract
Based on axi-symmetric hydrodynamical simulations and 3D reconstructions with Shape, we investigate the kinematic signatures of deviations from homologous ("Hubble-type") outflows in some typical shapes of planetary nebulae. We find that, in most situations considered in our simulations, the deviations from a Hubble-type flow are significant and observable. The deviations are systematic and a simple parameterization of them considerably improves morpho-kinematical models of the simulations. We describe such extensions to a homologous expansion law that capture the global velocity structure of hydrodynamical axi-symmetric nebulae during their wind-blown phase. It is the size of the poloidal velocity component that strongly influences the shape of the position velocity diagrams that are obtained, not so much the variation of the radial component. The deviations increase with the degree of collimation of the nebula and they are stronger at intermediate latitudes. We describe potential deformations which these deviations might produce in 3D reconstructions that assume "Hubble-type" outflows. The general conclusion is that detailed morpho-kinematic observations and modeling of planetary nebulae can reveal whether a nebula is still in a hydrodynamically active stage (windy phase) or whether it has reached ballistic expansion.
18 pages, 13 figures, accepted for publication in The Astrophysical Journal,
References in corpus (6)
- Minkowski's Footprint revisited. Planetary Nebula formation from a single sudden event?
- Shaping Planetary Nebulae by Light Jets
- Hubble-type outflows of the high-excitation, poly-polar planetary nebula NGC 6302 -- from expansion proper motions
- PPN as Explosions: Bullets vs Jets and Nebular Shaping
- The structure of Planetary Nebulae: theory vs. practice
- Kinematical Analysis of a Sample of Bipolar Planetary Nebulae
Cited by in corpus (24)
- Shape: A 3D Modeling Tool for Astrophysics
- From Bipolar to Elliptical: Simulating the Morphological Evolution of Planetary Nebulae
- A hydrodynamical study of multiple-shell planetary nebulae. III. Expansion properties and internal kinematics: Theory versus observation
- The three-dimensional structure of the Eta Carinae Homunculus
- Models of the Mass-Ejection Histories of pre Planetary Nebulae, IV. Magnetized Winds and the Origins of Jets, Bullets, and FLIERs
- The planetary nebula IC 4776 and its post-common-envelope binary central star
- Space Velocity and Time Span of Jets in Planetary Nebulae
- Forming H-shaped and barrel-shaped nebulae with interacting jets
- Morpho-kinematic analysis of the point-symmetric, bipolar planetary nebulae Hb 5 and K 3-17, a pathway to poly-polarity
- SHAPEMOL: a 3-D code for calculating CO line emission in planetary and protoplanetary nebulae. Detailed model fitting of the complex nebula NGC 6302
- "Distance mapping" and the 3-D structure of BB +30 3639
- Models of the Mass-Ejection Histories of pre Planetary Nebulae, III. The Shaping of Lobes by post-AGB Winds
- Observations and three-dimensional photoionization modelling of the Wolf-Rayet planetary nebula Abell 48
- Distinguishing post-AGB impostors in a sample of pre-main sequence stars
- Characterisation of the Planetary Nebula Tc 1 Based on VLT X-Shooter Observations
- Morpho-kinematic properties of Wolf-Rayet planetary nebulae
- Discovery of collimated bipolar outflows in the planetary nebula Th 2-A
- Tangential Motions and Spectroscopy within NGC 6720, the Ring Nebula
- Dissecting a SN impostor's circumstellar medium: MUSEing about the SHAPE of eta Car's outer ejecta
- Criss-cross mapping BD+30 3639: a new kinematic analysis technique
- History of the mass ejection in K 4-37: from the AGB to the evolved planetary nebula phase
- 3D spatio-kinematic modeling of Abell 48, a planetary nebula around a Wolf-Rayet [WN] star
- 3-D structures of planetary nebulae
- Dynamical modeling and the interactions with the ISM