A Rotational Disruption Crisis for Zodiacal Dust

Fuente: arXiv
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Main Authors: Silsbee, Kedron, Hensley, Brandon S., Szalay, Jamey R., Pokorný, Petr, Kim, Jeong-Gyu
Format: Preprint
Published: 2025
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author Silsbee, Kedron
Hensley, Brandon S.
Szalay, Jamey R.
Pokorný, Petr
Kim, Jeong-Gyu
author_facet Silsbee, Kedron
Hensley, Brandon S.
Szalay, Jamey R.
Pokorný, Petr
Kim, Jeong-Gyu
contents A systematic torque from anisotropic radiation can rapidly spin up irregular grains to the point of breakup. We apply the standard theory of rotational disruption from radiative torques to solar system grains, finding that grains with radii $\sim$0.03 --3 $μ$m at 1 a.u. from the Sun are spun to the point of breakup on timescales $\lesssim1$ yr even when assuming them to have an unrealistically high tensile strength of pure meteoritic iron. Such a rapid disruption timescale is incompatible with both the abundance of micron-sized grains detected in the inner solar system and with the low production rate of $β$ meteoroids. We suggest the possibility that zodiacal grains have a strong propensity to attain rotational equilibrium at low angular velocity (a so-called low-$J$ attractor) and that the efficacy of rotational disruption in the Solar System -- and likely elsewhere -- has been greatly overestimated.
format Preprint
id arxiv_https___arxiv_org_abs_2503_13591
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A Rotational Disruption Crisis for Zodiacal Dust
Silsbee, Kedron
Hensley, Brandon S.
Szalay, Jamey R.
Pokorný, Petr
Kim, Jeong-Gyu
Earth and Planetary Astrophysics
A systematic torque from anisotropic radiation can rapidly spin up irregular grains to the point of breakup. We apply the standard theory of rotational disruption from radiative torques to solar system grains, finding that grains with radii $\sim$0.03 --3 $μ$m at 1 a.u. from the Sun are spun to the point of breakup on timescales $\lesssim1$ yr even when assuming them to have an unrealistically high tensile strength of pure meteoritic iron. Such a rapid disruption timescale is incompatible with both the abundance of micron-sized grains detected in the inner solar system and with the low production rate of $β$ meteoroids. We suggest the possibility that zodiacal grains have a strong propensity to attain rotational equilibrium at low angular velocity (a so-called low-$J$ attractor) and that the efficacy of rotational disruption in the Solar System -- and likely elsewhere -- has been greatly overestimated.
title A Rotational Disruption Crisis for Zodiacal Dust
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2503.13591