Thermal Wave Instability as an Origin of Gap and Ring Structures in Protoplanetary Disks

Ueda, Takahiro and Flock, Mario and Birnstiel, Tilman (2021) Thermal Wave Instability as an Origin of Gap and Ring Structures in Protoplanetary Disks. The Astrophysical Journal Letters, 914 (2). L38. ISSN 2041-8205

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Abstract

Recent millimeter and infrared observations have shown that gap- and ring-like structures are common in both dust thermal emission and scattered light of protoplanetary disks. We investigate the impact of the so-called thermal wave instability (TWI) on the millimeter and infrared scattered light images of disks. We perform 1+1D simulations of the TWI and confirm that the TWI operates when the disk is optically thick enough for stellar light, i.e., small-grain-to-gas mass ratio of ≳0.0001. The midplane temperature varies as the waves propagate, and hence gap and ring structures can be seen in both millimeter and infrared emission. The millimeter substructures can be observed even if the disk is fully optically thick since it is induced by the temperature variation, while density-induced substructures would disappear in the optically thick regime. The fractional separation between TWI-induced ring and gap is Δr/r ∼ 0.2–0.4 at ∼10–50 au, which is comparable to those found by the Atacama Large Millimeter/submillimeter Array. Due to the temperature variation, snow lines of volatile species move radially and multiple snow lines are observed even for a single species. The wave propagation velocity is as fast as ∼0.6 au yr−1, which can be potentially detected with a multiepoch observation with a time separation of a few years.

Item Type: Article
Subjects: STM Digital > Physics and Astronomy
Depositing User: Unnamed user with email support@stmdigital.org
Date Deposited: 11 May 2023 08:08
Last Modified: 19 Sep 2024 09:50
URI: http://research.asianarticleeprint.com/id/eprint/796

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