Stellar age is not disk age
astro-ph.SR, astro-ph.EP, astro-ph.GA
Submitted: 2026-09-15
Updated: 2026-09-15
Comments: 4 pages + 2 pages appendix, 2 figures in main text + 3 in appendix, accepted for publication Astronomy & Astrophysics Letters
License: http://creativecommons.org/licenses/by-sa/4.0/
The gist: Disk fractions in star-forming clusters decline with stellar age, and are routinely read as the lifetime distribution of primordial protoplanetary disks.
Terminology
Abstract
Disk fractions in star-forming clusters decline with stellar age, and are routinely read as the lifetime distribution of primordial protoplanetary disks. We argue that this reading is not warranted, because late infall can replenish or reform disks after collapse. To formalize this, we model the disk fraction as a superposition of primordial and environmentally replenished components, with region-to-region dispersion in the supply rate. Disk fractions cannot distinguish a long-lived disk from a short-lived one that is repeatedly replenished. In Sco--Cen both reproduce the data, the replenished model marginally better. Stellar age therefore need not equal disk age, and stars can host successive disk generations with distinct mass, orientation, and chemistry. A key test is whether regions of the same stellar age show a genuine spread in disk fractions, as environmental variation in the replenishment supply predicts.
Sources
- Accretion across scales: streamers, surface-layer transport, and rapid replenishment in young protoplanetary discs
- Preferential alignment of Class 0, Class I protostellar disks in multiple systems across nine nearby molecular clouds
- From streamers to stars: overcoming mass loss in protoplanetary disks
- Late-infall-induced formation of giant planets, multigenerational planetesimals, and disk substructures
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