Papers
Topics
Authors
Recent
Detailed Answer
Quick Answer
Concise responses based on abstracts only
Detailed Answer
Well-researched responses based on abstracts and relevant paper content.
Custom Instructions Pro
Preferences or requirements that you'd like Emergent Mind to consider when generating responses
Gemini 2.5 Flash
Gemini 2.5 Flash 84 tok/s
Gemini 2.5 Pro 37 tok/s Pro
GPT-5 Medium 18 tok/s Pro
GPT-5 High 15 tok/s Pro
GPT-4o 86 tok/s Pro
GPT OSS 120B 468 tok/s Pro
Kimi K2 229 tok/s Pro
2000 character limit reached

A semi-analytical model of the outer structure of protoplanetary discs formed by the collapse of a rotating molecular cloud (2503.22831v1)

Published 28 Mar 2025 in astro-ph.EP and astro-ph.SR

Abstract: Context. Protoplanetary discs are formed due to the fragmentation and collapse of giant molecular cloud cores. The physical properties and structure of a formed disc are of great importance when studying the onset of planet formation processes. Aims. Starting from the isothermal collapse of a rotating Bonnor-Ebert sphere, and assuming the conservation of angular momentum, we look for the structure equations of the newly formed protoplanetary disc. We take into account the possible role of pressure gradient in forming the initial disc structure, and compare our results with those obtained from a Keplerian infall model. Our aim is to obtain initial conditions to numerically study the evolution of the gaseous and solid components of protoplanetary discs. Methods. The structure equations developed for protoplanetary discs have been derived analytically, while these equations have been solved numerically. Results. The surface density profiles of the newly formed protoplanetary discs strongly depend on the initial rotation state of the Bonnor-Ebert sphere. According to our results, for slow rotators, gravitational instabilities can develop in the early phases of disc formation, while for relatively fast rotators, the outermost regions of the resulting discs are gravitationally stable, quite massive and highly sub-Keplerian, allowing rapid dust transport to the inner disc and subsequent planet formation.

List To Do Tasks Checklist Streamline Icon: https://streamlinehq.com

Collections

Sign up for free to add this paper to one or more collections.

Summary

We haven't generated a summary for this paper yet.

Ai Generate Text Spark Streamline Icon: https://streamlinehq.com

Paper Prompts

Sign up for free to create and run prompts on this paper using GPT-5.

Dice Question Streamline Icon: https://streamlinehq.com

Follow-up Questions

We haven't generated follow-up questions for this paper yet.

X Twitter Logo Streamline Icon: https://streamlinehq.com

Don't miss out on important new AI/ML research

See which papers are being discussed right now on X, Reddit, and more:

“Emergent Mind helps me see which AI papers have caught fire online.”

Philip

Philip

Creator, AI Explained on YouTube