During late phases of stellar evolution, when the nuclear fuel in the interior is almost used up, stars grow dramatically in size, and become Asymptotic Giant Branch (AGB) or Red Supergiant (RSG) stars, depending on their initial mass. They eject a significant part of their mass through stellar winds, and enrich the surrounding interstellar medium with newly-produced elements and dust grains. Low-to-intermediate mass stars (with initial masses of about 0.8–8 solar masses) turn into white dwarfs after passing through the AGB phase, while the more massive RSG stars eventually explode in core-collapse supernova events.
The overarching aim of project EXWINGS is a breakthrough in understanding the winds of cool giant and supergiant stars. An important objective is to develop a novel theoretical approach, that is, 3D global dynamical models which describe the pulsations, convection and winds of such evolved stars from first principles, and test the resulting dynamical structures against spatially resolved observations. Such models are a critical missing link in the current picture of the cosmic matter cycle and a necessary ingredient for understanding the late phases of stellar evolution. They are essential to answer long-standing questions, in particular:
• How are the winds launched and which physical processes determine their properties?
• How do the mass-loss rate and other wind properties depend on fundamental stellar parameters?
• Which types of dust are produced by AGB and RSG stars, and in which quantities?