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Main Authors: Noel, Majd, Khanna, Rahul, Abbassi, Shahram, Dib, Sami, Basu, Shantanu
Format: Preprint
Published: 2026
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Online Access:https://arxiv.org/abs/2602.04701
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author Noel, Majd
Khanna, Rahul
Abbassi, Shahram
Dib, Sami
Basu, Shantanu
author_facet Noel, Majd
Khanna, Rahul
Abbassi, Shahram
Dib, Sami
Basu, Shantanu
contents We study the structure and evolution of the very early protostellar disk (``protodisk'') just after protostar formation, where disk self-gravity dominates and the stellar contribution is dynamically minor. The disk redistributes angular momentum outward through outflows and gravitational torques, thereby helping to resolve the angular momentum problem of star formation. We develop a self-similar model and carry out a parameter study that examines disk stability as a function of the key drivers of early evolution, notably the infall rate from the envelope and the strength of the gravitational torques. The mass infall rate onto the disk is estimated to be that from the collapse of a Bonnor-Ebert sphere. Our results indicate that protostellar disks that form from more unstable initial cores are more likely to be Toomre-unstable. We also find that the specific angular momentum of young protostellar disks lie in the range $10^{19}\text{--}10^{20}\,{\rm cm^2\,s^{-1}}$. We find distinct power-law profiles of physical quantities in the protodisk stage, including a rotation velocity profile that is shallower than the Keplerian profile that would be established at a later stage. As a rough validity window, our assumptions are most secure during the first $\lesssim 2\times 10^{3}$\,yr after protostar formation and may plausibly extend to $\sim(0.5\text{--}1)\times 10^{4}$\,yr under weak magnetic braking and strong infall.
format Preprint
id arxiv_https___arxiv_org_abs_2602_04701
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Early Stages of Protostellar Disk Evolution: A Link to the Initial Cloud Core
Noel, Majd
Khanna, Rahul
Abbassi, Shahram
Dib, Sami
Basu, Shantanu
Solar and Stellar Astrophysics
We study the structure and evolution of the very early protostellar disk (``protodisk'') just after protostar formation, where disk self-gravity dominates and the stellar contribution is dynamically minor. The disk redistributes angular momentum outward through outflows and gravitational torques, thereby helping to resolve the angular momentum problem of star formation. We develop a self-similar model and carry out a parameter study that examines disk stability as a function of the key drivers of early evolution, notably the infall rate from the envelope and the strength of the gravitational torques. The mass infall rate onto the disk is estimated to be that from the collapse of a Bonnor-Ebert sphere. Our results indicate that protostellar disks that form from more unstable initial cores are more likely to be Toomre-unstable. We also find that the specific angular momentum of young protostellar disks lie in the range $10^{19}\text{--}10^{20}\,{\rm cm^2\,s^{-1}}$. We find distinct power-law profiles of physical quantities in the protodisk stage, including a rotation velocity profile that is shallower than the Keplerian profile that would be established at a later stage. As a rough validity window, our assumptions are most secure during the first $\lesssim 2\times 10^{3}$\,yr after protostar formation and may plausibly extend to $\sim(0.5\text{--}1)\times 10^{4}$\,yr under weak magnetic braking and strong infall.
title Early Stages of Protostellar Disk Evolution: A Link to the Initial Cloud Core
topic Solar and Stellar Astrophysics
url https://arxiv.org/abs/2602.04701