Radiative torques alignment in the presence of pinwheel torques
T. Hoang, A. Lazarian

TL;DR
This paper investigates how radiative and pinwheel torques influence grain alignment, considering thermal flipping effects, and introduces new types of pinwheel torques affecting grain dynamics in astrophysical environments.
Contribution
It extends existing models by including infrared emission and plasma interaction torques, revises the thermal flipping model, and analyzes their impact on grain alignment and flipping timescales.
Findings
Pinwheel torques can be long-lived and influence grain alignment.
Small grains tend to be thermally trapped due to rapid flipping.
Large grains can achieve higher alignment degrees with added pinwheel torques.
Abstract
We study the alignment of grains subject to both radiative torques and pinwheel torques while accounting for thermal flipping of grains. By pinwheel torques we refer to all systematic torques that are fixed in grain body axes, including the radiative torques arising from scattering and absorption of isotropic radiation. We discuss new types of pinwheel torques, which are systematic torques arising from infrared emission and torques arising from the interaction of grains with ions and electrons in hot plasma. We show that both types of torques are long-lived, i.e. may exist longer than gaseous damping time. We compare these torques with the torques introduced by E. Purcell, namely, torques due to H formation, the variation of accommodation coefficient for gaseous collisions and photoelectric emission. Furthermore, we revise the Lazarian & Draine model for grain thermal flipping. We…
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Taxonomy
TopicsAstro and Planetary Science · Solar and Space Plasma Dynamics · High-pressure geophysics and materials
