The Mass Distribution of Clumpy Accretion Onto the Nearby Young Star TW Hya

dc.contributor.authorJi, Tao
dc.contributor.authorSerna, Javier
dc.contributor.authorHerczeg, Gregory J.
dc.contributor.authorTakasao, Shinsuke
dc.contributor.authorWalter, Frederick M.
dc.contributor.authorChen, Yuguang
dc.contributor.authorArmeni, Antonio
dc.contributor.authorJohnstone, Doug
dc.contributor.authorEislöffel, Jochen
dc.contributor.authorFang, Min
dc.contributor.authorMatt, Sean P.
dc.contributor.authorSiwak, Michal
dc.contributor.authorVenuti, Laura
dc.contributor.authorVioque, Miguel
dc.contributor.authorDai, Lixin
dc.date.accessioned2026-09-21T18:24:21Z
dc.date.issued2026-02-17
dc.description.abstractThe proliferation of high time resolution and decades-long monitoring of classical T Tauri stars provides a vast opportunity to test the variability of star–disk connections. However, most monitoring surveys use single broadband filters, which makes the conversion of photometric variability into accretion rate difficult. In this study, we analyze accretion bursts onto the nearby young star TW Hya over short (hours, days) and long (months, years) timescales by calibrating Transiting Exoplanet Survey Satellite (TESS) and All-Sky Automated Survey for Supernovae (ASAS-SN) g-band photometry to accretion rates with simultaneous spectroscopy. The high-cadence TESS light curve shows bursts of accretion in clumps with masses from a sensitivity limit of ∼10−13 M⊙ up to 3 × 10−11 M⊙. The average burst duration of 1.8 days is longer than a simple estimate of the thermal response timescale, supporting the interpretation that the photometric variability probes the instantaneous accretion rate. The reset timescale of 1.2–2 days derived from the structure function and previously reported quasi-periods of 3.5–4 days are consistent with bursts that may be related to the different rotation between the stellar magnetosphere and inner disk or with azimuthal asymmetries in the inner disk. The near-daily ASAS-SN light curve across 8 yr reveals some seasonal changes in brightness with a standard deviation of ∼0.13 mag, about half of the scatter seen on short timescales. This study demonstrates the importance of coordinating contemporaneous multiepoch spectroscopy with time domain surveys to interpret light curves of young stars.
dc.description.notes© 2026. The Author(s). Published by the American Astronomical Society
dc.description.peerreviewYes
dc.identifier.citationTao Ji et al 2026 ApJ 998 300
dc.identifier.doi10.3847/1538-4357/ae3189
dc.identifier.urihttps://shareok.org/handle/11244/342991
dc.languageen_US
dc.publisherIOP Publishing
dc.relation.ispartofAstrophysical Journal
dc.relation.ispartofseries998
dc.relation.urihttps://iopscience.iop.org/article/10.3847/1538-4357/ae3189
dc.rightsAttribution 4.0 International
dc.subjectClassical T Tauri stars
dc.subjectAccretion
dc.subjectTime series analysis
dc.titleThe Mass Distribution of Clumpy Accretion Onto the Nearby Young Star TW Hya
dc.typeArticle
ou.groupCollege of Arts and Sciences::Homer L. Dodge Department of Physics and Astronomy

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