论文标题

HD 172555的极化和辐射转移模型

Polarimetric and radiative transfer modelling of HD 172555

论文作者

Marshall, Jonathan P., Cotton, Daniel V., Scicluna, Peter, Bailey, Jeremy, Kedziora-Chudczer, Lucyna, Bott, Kimberly

论文摘要

HD 172555周围的碎屑盘最近由非常大的望远镜的光谱高对比度系外行星研究工具在近红外偏振光光中成像。在这里,我们通过高精度极化仪器(HIPPI)及其在盎格鲁 - 澳大利亚望远镜上的后继HIPPI-2对HD 172555进行了光圈偏振测量。我们试图通过将我们的极化测量结果与可用的红外和毫米光度法相结合,以模拟圆盘的散射光和连续发射,从而对圆盘的组成粉尘晶粒进行完善限制。我们使用3D辐射传递代码Hyperion对圆盘进行建模,假设从球体观察中获得的盘的方向和范围。校正星际培养基的贡献后,我们的多波长HIPPI/-2观察值(大小和方向)与最近的球体极化测量以及分数极化$ p = 62.4 \ pm 5.2 $ 〜ppp ppp in 722.3 nm,以及位置$θ= 67 = 67 = 67 \ pm pm 3^^^^^$ cipcy。假设天文学硅酸盐成分或3.9 $μ$ m,则可以通过紧凑的球形粉尘晶粒(即从MIE理论)进行充分复制多波长极化,或者假设从圆盘的辐射传递模型中得出的组合物,则可以通过1.2 $ $ $ m的大小复制。因此,我们能够通过单个晶粒组成模型和尺寸分布来重现空间分辨的圆盘发射和极化。

The debris disc around HD 172555 was recently imaged in near-infrared polarised scattered light by the Very Large Telescope's Spectro-Polarimetric High-contrast Exoplanet REsearch instrument. Here we present optical aperture polarisation measurements of HD 172555 by the HIgh Precision Polarimetric Instrument (HIPPI), and its successor HIPPI-2 on the Anglo-Australian Telescope. We seek to refine constraints on the disc's constituent dust grains by combining our polarimetric measurements with available infrared and millimetre photometry to model the scattered light and continuum emission from the disc. We model the disc using the 3D radiative transfer code Hyperion, assuming the orientation and extent of the disc as obtained from the SPHERE observation. After correction for the interstellar medium contribution, our multi-wavelength HIPPI/-2 observations (both magnitude and orientation) are consistent with the recent SPHERE polarisation measurement with a fractional polarisation $p = 62.4 \pm 5.2$~ppm at 722.3 nm, and a position angle $θ= 67 \pm 3^{\circ}$. The multi-wavelength polarisation can be adequately replicated by compact, spherical dust grains (i.e. from Mie theory) that are around 1.2 $μ$m in size, assuming astronomical silicate composition, or 3.9 $μ$m assuming a composition derived from radiative transfer modelling of the disc. We were thus able to reproduce both the spatially resolved disc emission and polarisation with a single grain composition model and size distribution.

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