The common envelope interaction is thought to be the gateway to all evolved compact binaries and mergers. Hydrodynamic simulations of the common envelope interaction between giant stars and their companions are restricted to the dynamical, fast, in-spiral phase. They find that the giant envelope is lifted during this phase, but remains mostly bound to the system. At the same time, the orbital separation is greatly reduced, but in most simulations it levels offat values larger than measured from observations. We conjectured that during the post-in-spiral phase the bound envelope gas will return to the system. Using hydrodynamic simulations, we generate initial conditions for our simulation that result in a fall-back disc with total mass and ...
Theoretical thesis.Bibliography: pages 57-59.1. Introduction -- 2. SPH simulations of the common env...
We evolve stellar models to study the common envelope (CE) interaction of an early asymptotic giant ...
Empirical thesis.Bibliography: pages 57-60.1. Introduction -- 2. Simulating the common envelope -- 3...
Empirical thesis.Bibliography: pages 97-100.1. Introduction -- 2. Theoretical and numerical backgrou...
This is the final version of the article. Available from Oxford University Press via the DOI in this...
The common envelope interaction between a giant star and a stellar or substellar companion is at the...
The α formalism is a common way to parametrize the common envelope interaction between a giant star ...
We present three-dimensional hydrodynamical simulations of the fast in-spiral phase of the common en...
ABSTRACT We investigate the evolution of interacting binaries where the donor star is a low-mass gia...
The energy budget in common-envelope events (CEEs) is not well understood, with substantial uncertai...
We use three-dimensional hydrodynamical simulations to study the rapid infall phase of the common en...
In the majority of population synthesis calculations of close binary stars, the common envelope (CE)...
After the initial fast spiral-in phase experienced by a common-envelope binary, the system mayenter ...
© 2018 The Author(s). We evolve stellarmodels to study the common envelope (CE) interaction of an ea...
The common envelope phase of binary star evolution plays a central role in many evolutionary pathway...
Theoretical thesis.Bibliography: pages 57-59.1. Introduction -- 2. SPH simulations of the common env...
We evolve stellar models to study the common envelope (CE) interaction of an early asymptotic giant ...
Empirical thesis.Bibliography: pages 57-60.1. Introduction -- 2. Simulating the common envelope -- 3...
Empirical thesis.Bibliography: pages 97-100.1. Introduction -- 2. Theoretical and numerical backgrou...
This is the final version of the article. Available from Oxford University Press via the DOI in this...
The common envelope interaction between a giant star and a stellar or substellar companion is at the...
The α formalism is a common way to parametrize the common envelope interaction between a giant star ...
We present three-dimensional hydrodynamical simulations of the fast in-spiral phase of the common en...
ABSTRACT We investigate the evolution of interacting binaries where the donor star is a low-mass gia...
The energy budget in common-envelope events (CEEs) is not well understood, with substantial uncertai...
We use three-dimensional hydrodynamical simulations to study the rapid infall phase of the common en...
In the majority of population synthesis calculations of close binary stars, the common envelope (CE)...
After the initial fast spiral-in phase experienced by a common-envelope binary, the system mayenter ...
© 2018 The Author(s). We evolve stellarmodels to study the common envelope (CE) interaction of an ea...
The common envelope phase of binary star evolution plays a central role in many evolutionary pathway...
Theoretical thesis.Bibliography: pages 57-59.1. Introduction -- 2. SPH simulations of the common env...
We evolve stellar models to study the common envelope (CE) interaction of an early asymptotic giant ...
Empirical thesis.Bibliography: pages 57-60.1. Introduction -- 2. Simulating the common envelope -- 3...