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DISCOVERY OF SMALL-SCALE SPIRAL STRUCTURES IN THE DISK OF SAO 206462 (HD 135344B): IMPLICATIONS FOR THE PHYSICAL STATE OF THE DISK FROM SPIRAL DENSITY WAVE THEORY

The Astrophysical Journal Letters · 2012 · Vol. 748(2) · pp. L22–L22
Takayuki MutoC. A. GradyJun HashimotoMisato FukagawaJeremy HornbeckMichael L. SitkoR. W. RussellChelsea WerrenM. CuréThayne CurrieNagayoshi OhashiY. OkamotoMunetake MomoseMitsuhiko HondaShu‐ichiro InutsukaTaku TakeuchiRuobing DongL. AbeW. BrandnerTimothy D. BrandtJ. CarsonSebastian EgnerM. FeldtT. FukueMiwa GotoOlivier GuyonYutaka HayanoMasahiko HayashiSaeko S. HayashiThomas HenningK. W. HodappMiki IshiiMasanori IyeM. JansonRyo KandoriG. R. KnappTomoyuki KudoNobuhiko KusakabeMasayuki KuzuharaTaro MatsuoSatoshi MayamaMichael W. McElwainShoken M. MiyamaJun‐Ichi MorinoAmaya Moro‐MartínT. NishimuraTae‐Soo PyoEugene SerabynHiroshi SutoRyuji SuzukiM. TakamiN. TakatoHiroshi TeradaC. ThalmannDaigo TomonoEdwin L. TurnerMakoto WatanabeJohn P. WisniewskiTōru YamadaHideki TakamiTomonori UsudaMotohide Tamura

Abstract

We present high-resolution, H-band, imaging observations, collected with Subaru/HiCIAO, of the scattered light from the transitional disk around SAO 206462 (HD 135344B). Although previous sub-mm imagery suggested the existence of the dust-depleted cavity at r~46AU, our observations reveal the presence of scattered light components as close as 0.2" (~28AU) from the star. Moreover, we have discovered two small-scale spiral structures lying within 0.5" (~70AU). We present models for the spiral structures using the spiral density wave theory, and derive a disk aspect ratio of h~0.1, which is consistent with previous sub-mm observations. This model can potentially give estimates of the temperature and rotation profiles of the disk based on dynamical processes, independently from sub-mm observations. It also predicts the evolution of the spiral structures, which can be observable on timescales of 10-20 years, providing conclusive tests of the model. While we cannot uniquely identify the origin of these spirals, planets embedded in the disk may be capable of exciting the observed morphology. Assuming that this is the case, we can make predictions on the locations and, possibly, the masses of the unseen planets. Such planets may be detected by future multi-wavelengths observations.

Astrophysics and Star Formation StudiesStellar, planetary, and galactic studiesAstro and Planetary ScienceSpiral (railway)PhysicsPlanetDensity wave theoryAstrophysicsSpiral galaxyWavelengthObservableScale (ratio)Astronomy
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