[Observations and #simulations] In addition to #observations of protostars using #interferometers with ever-higher resolution, researchers are developing multidimensional numerical simulations.

The aim is to better understand the formation and evolution of the #protostellar disk and the #protostar through the different phases and scales of the collapse of a dense low- and high-mass core.

This Thursday, Benoît Commerçon, researcher @cnrs at the Centre de Recherche Astrophysique de Lyon (CRAL), will present to IRAPians the results obtained using “his” numerical experiments, as well as future developments ... https://www.irap.omp.eu/event/disk-and-protostar-formation-new-insights-from-3d-numerical-simulations/

Disk and Protostar Formation: New Insights from 3D Numerical Simulations – Institut de Recherche en Astrophysique et Planétologie

Effects of local cosmic inhomogeneities on the gravitational wave event rate

The local universe is highly inhomogeneous and anisotropic. We live in a relatively sparse region of the Laniakea supercluster at the edge of a large 80 Mpc-wide void. We study the effect of these inhomogeneities on the measured gravitational wave event rates. In particular, we estimate how the measured merger rate of compact binaries is biased by the local matter distribution. The effect of the inhomogeneities on the merger rate is suppressed by the low angular resolution of gravitational wave detectors coupled with their smoothly decreasing population-averaged sensitivity with distance. We estimate the effect on the compact binary coalescence event rate to be at most 6% depending of the chirp mass of the target binary system and the sensitivity and orientation of the detectors.

arXiv.org