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The Mass and Size Distribution of Planetesimals Formed by the Streaming Instability. I. The Role of Self-Gravity by Simon, Jacob B.; Armitage, Philip J.; Li, Rixin; Youdin, Andrew N. is a scholarly article available to read on EtoBox.

What is The Mass and Size Distribution of Planetesimals Formed by the Streaming Instability. I. The Role of Self-Gravity about?

We study the formation of planetesimals in protoplanetary disks from the gravitational collapse of solid over-densities generated via the streaming instability. To carry out these studies, we implement and test a particle-mesh self-gravity module for the Athena code that enables the simulation of aerodynamically coupled systems of gas and collisionless self-gravitating solid particles. Upon employment of our algorithm to planetesimal formation simulations, we find that (when a direct comparison is possible) the Athena simulations yield predicted planetesimal properties that agree well with those found in prior work using different numerical techniques. In particular, the gravitational collapse of streaming-initiated clumps leads to an initial planetesimal mass function that is well-represented by a power-law, dN/dM ~ M^{-p}, with p = 1.6 +/- 0.1, which equates to a differential size distribution dN/dR ~ R^{-q}, with q = 2.8 +/- 0.1. We find no significant trends with resolution from a convergence study of up to 512^3 grid zones and Npar = 1.5x10^8 particles. Likewise, the power-law slope appears indifferent to changes in the relative strength of self-gravity and tidal shear, and to

Author
Simon, Jacob B.; Armitage, Philip J.; Li, Rixin; Youdin, Andrew N.
Published
2015
Language
EN

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