Models of the protostellar source, B335, are developed using axisymmetric three-dimensional models to resolve conflicts found in one-dimensional models. The models are constrained by a large number of observations, including ALMA, Herschel, and Spitzer data. Observations of the protostellar source B335 with ALMA show red-shifted absorption against a central continuum source indicative of infall in the HCO+ and HCN J=4→3 transitions. The data are combined with a new estimate of the distance to provide strong constraints to three-dimensional radiative transfer models including a rotating, infalling envelope, outflow cavities, and a very small disk. The models favor ages since the initiation of collapse between 3×104 and 4×104 yr for both the continuum and the lines, resolving a conflict found in one-dimensional models. The models under-predict the continuum emission seen by ALMA, suggesting an additional component such as a pseudo-disk. The best-fitting model is used to convert variations in the 4.5 μm flux in recent years into a model for a variation of a factor of 5-7 in luminosity over the last 8 years.
@article{arxiv.2212.03746,
title = {Models of Rotating Infall for the B335 Protostar},
author = {Neal J. Evans and Yao-Lun Yang and Joel D. Green and Bo Zhao and James Di Francesco and Jeong-Eun Lee and Jes K. Jørgensen and Minho Choi and Philip C. Myers and Diego Mardones},
journal= {arXiv preprint arXiv:2212.03746},
year = {2023}
}