Diffuse X-ray Emissions from Dynamic Planetary Nebulae
arXiv:1006.2595 · doi:10.1111/j.1365-2966.2010.17126.x
Abstract
We present theoretical results of a piecewise isothermal shock wind model devised for predicting the luminosity and surface brightness profile of diffuse X-ray emissions primarily from the inner shocked downstream wind zone of a planetary nebula (PN) surrounded by self-similar shocked dense shell and outer slow AGB wind envelope involving self-gravity and compare/fit our computational model results with available observations of a few grossly spherical X-ray emitting PNe. Matching shocked piecewise isothermal self-similar void (ISSV) solutions with self-gravity of Lou & Zhai (LZ) for the outer zone and a stationary isothermal fast tenuous wind with a reverse shock for the inner zone across an expanding contact discontinuity, we can consistently construct dynamic evolution models of PNe with diffuse X-ray emissions. On the basis of such a chosen dynamic wind interaction model, both X-ray luminosity and radial X-ray brightness profile are determined by three key parameters, namely the so-called X-ray parameter , two radii and of the reverse shock and the contact discontinuity. We find that morphologies of X-ray emissions would appear in the forms of either a central luminous sphere or a bright ring embedded within optically bright shells. In contrast to previous adiabatic models, the X-ray brightness peaks around the reverse shock, instead of the contact discontinuity surface just inside the outer shocked dense shell. Diffuse X-ray emissions of a few observed PNe appear to support this wind-wind dynamic interaction scenario.
13 pages, 8 figures, accepted by Mon. Not. R. Astron. Soc. Accepted 2010 June 2. Received 2010 May 28; in original form 2010 May 4
References in corpus (14)
- A Debris Disk around the Central Star of the Helix Nebula?
- Serendipitous Chandra X-ray Detection of a Hot Bubble within the Planetary Nebula NGC 5315
- The X-Ray Spectrum of a Planetary Nebula at High Resolution: Chandra Gratings Spectroscopy of BD+30 3639
- X-ray Imaging of Planetary Nebulae with Wolf-Rayet-type Central Stars: Detection of the Hot Bubble in NGC 40
- Envelope Expansion with Core Collapse. III. Similarity Isothermal Shocks in a Magnetofluid
- Spherical Isothermal Self-Similar Shock Flows
- X-ray emission from Planetary Nebulae. I. Spherically symmetric numerical simulations
- X-Ray Emission from Jet-Wind Interaction in Planetary Nebulae
- Very Late Thermal Pulses Influenced by Accretion in Planetary Nebulae
- Self-Similar Polytropic Champagne Flows in H II Regions
- X-Ray Emission from Planetary Nebulae Calculated by 1D Spherical Numerical Simulations
- Discovery of photospheric CaX emission lines in the far-UV spectrum of the hottest known white dwarf (KPD0005+5106)
- X-Ray Emission by A Shocked Fast Wind from the Central Stars of Planetary Nebulae
- General Polytropic Magnetofluid under Self-Gravity: Voids and Shocks
Cited by in corpus (6)
- The Chandra X-ray Survey of Planetary Nebulae (ChanPlaNS): Probing Binarity, Magnetic Fields, and Wind Collisions
- Formation and X-ray emission from Hot Bubbles in Planetary Nebulae. I. Hot Bubble formation
- Formation and X-ray Emission from Hot Bubbles in Planetary Nebulae. II. Hot bubble X-ray emission
- Relativistic Self-similar Dynamic Collapses of Black Holes in General Polytropic Spherical Clouds
- Dynamic Voids Surrounded by Shocked Conventional Polytropic Gas Envelopes
- Bak--Sneppen type models and rank-driven processes