Mass Transfer in Mira-Type Binaries

Detached, symbiotic binaries are generally assumed to interact via Bondi-Hoyle-Littleton (BHL) wind accretion. However, the accretion rates and outflow geometries that result from this mass-transfer mechanism cannot adequately explain the observations of the nearest and best studied symbiotic binary...

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Main Authors: Mohamed S., Podsiadlowski Ph.
Format: Article
Language:English
Published: De Gruyter 2012-06-01
Series:Open Astronomy
Subjects:
Online Access:https://doi.org/10.1515/astro-2017-0362
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spelling doaj-33f8240402c649f7a13f8948cb99267a2021-09-06T19:40:13ZengDe GruyterOpen Astronomy2543-63762012-06-01211-2889610.1515/astro-2017-0362astro-2017-0362Mass Transfer in Mira-Type BinariesMohamed S.0Podsiadlowski Ph.1Argelander Institut für Astronomie, Auf dem Hügel 71, Bonn D-53121, GermanyArgelander Institut für Astronomie, Auf dem Hügel 71, Bonn D-53121, Germany United Kingdom of Great Britain and Northern IrelandDetached, symbiotic binaries are generally assumed to interact via Bondi-Hoyle-Littleton (BHL) wind accretion. However, the accretion rates and outflow geometries that result from this mass-transfer mechanism cannot adequately explain the observations of the nearest and best studied symbiotic binary, Mira, or the formation of some post-AGB binaries, e.g. barium stars. We propose a new mass-transfer mode for Mira-type binaries, which we call ‘wind Roche-lobe overflow’ (WRLOF), and which we demonstrate with 3D hydrodynamic simulations. Importantly, we show that the circumstellar outflows which result from WRLOF tend to be highly aspherical and strongly focused towards the binary orbital plane. Furthermore, the subsequent mass-transfer rates are at least an order of magnitude greater than the analogous BHL values. We discuss the implications of these results for the shaping of bipolar (proto)-planetary nebulae and other related systems.https://doi.org/10.1515/astro-2017-0362starsbinariessymbioticaccretionaccretion diskshydrodynamicsstarsmass losswindsoutflows
collection DOAJ
language English
format Article
sources DOAJ
author Mohamed S.
Podsiadlowski Ph.
spellingShingle Mohamed S.
Podsiadlowski Ph.
Mass Transfer in Mira-Type Binaries
Open Astronomy
stars
binaries
symbiotic
accretion
accretion disks
hydrodynamics
stars
mass loss
winds
outflows
author_facet Mohamed S.
Podsiadlowski Ph.
author_sort Mohamed S.
title Mass Transfer in Mira-Type Binaries
title_short Mass Transfer in Mira-Type Binaries
title_full Mass Transfer in Mira-Type Binaries
title_fullStr Mass Transfer in Mira-Type Binaries
title_full_unstemmed Mass Transfer in Mira-Type Binaries
title_sort mass transfer in mira-type binaries
publisher De Gruyter
series Open Astronomy
issn 2543-6376
publishDate 2012-06-01
description Detached, symbiotic binaries are generally assumed to interact via Bondi-Hoyle-Littleton (BHL) wind accretion. However, the accretion rates and outflow geometries that result from this mass-transfer mechanism cannot adequately explain the observations of the nearest and best studied symbiotic binary, Mira, or the formation of some post-AGB binaries, e.g. barium stars. We propose a new mass-transfer mode for Mira-type binaries, which we call ‘wind Roche-lobe overflow’ (WRLOF), and which we demonstrate with 3D hydrodynamic simulations. Importantly, we show that the circumstellar outflows which result from WRLOF tend to be highly aspherical and strongly focused towards the binary orbital plane. Furthermore, the subsequent mass-transfer rates are at least an order of magnitude greater than the analogous BHL values. We discuss the implications of these results for the shaping of bipolar (proto)-planetary nebulae and other related systems.
topic stars
binaries
symbiotic
accretion
accretion disks
hydrodynamics
stars
mass loss
winds
outflows
url https://doi.org/10.1515/astro-2017-0362
work_keys_str_mv AT mohameds masstransferinmiratypebinaries
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