分析恒星和星际对极化的贡献:热恒星的建模方法

IF 1.8 4区 物理与天体物理 Q3 ASTRONOMY & ASTROPHYSICS
Richard Ignace, Andrew G. Fullard, Georgia V. Panopoulou, D. John Hillier, Christiana Erba, Paul A. Scowen
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引用次数: 0

摘要

由于球形光源不产生净偏振,因此对未解析恒星进行线性偏振测量是识别或限制光源及其环境几何形状的有力方法。然而,解释恒星固有偏振的一个普遍挑战是星际偏振(ISP)对信号的贡献。在这里,我们回顾了在大质量恒星的背景下区分恒星信号和星际贡献的方法。我们首先利用最近汇编的星光偏振表来描述ISP与距离的关系。几个场景涉及汤姆逊散射,快速旋转的恒星,光学厚风,相互作用的双星被特别考虑,以对比波长依赖的影响的ISP在紫外波段和光学波段。从恒星偏振位置角旋转的汤姆逊散射中可以识别出ISP。对于旋转速率接近临界的热恒星,ISP下降,而恒星连续体极化急剧增加。在相当密集的风的情况下,强烈的紫外线线追踪ISP,这在光学中并不总是如此。在二元情况下,时间和色度效应说明了ISP如何用波长取代可变偏振。本研究阐明了ISP与Polstar和poloxx等新型紫外分光光度法的关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Analyzing stellar and interstellar contributions to polarization: modeling approaches for hot stars

Analyzing stellar and interstellar contributions to polarization: modeling approaches for hot stars

Linear polarimetry of unresolved stars is a powerful method for discerning or constraining the geometry of a source and its environment, since spherical sources produce no net polarization. However, a general challenge to interpreting intrinsic stellar polarization is the contribution to the signal by interstellar polarization (ISP). Here, we review methodologies for distinguishing the stellar signal from the interstellar contribution in the context of massive stars. We first characterize ISP with distance using a recent compilation of starlight polarization catalogs. Several scenarios involving Thomson scattering, rapidly rotating stars, optically thick winds, and interacting binaries are considered specifically to contrast the wavelength-dependent effects of ISP in the ultraviolet versus optical bands. ISP is recognizable in the stellar polarization from Thomson scattering in the polarization position angle rotations. For hot stars with near-critical rotation rates, the ISP declines whereas the stellar continuum polarization sharply increases. In the case of quite dense winds, strong ultraviolet lines trace the ISP, which is not always the case in the optical. In the binary case, temporal and chromatic effects illustrate how the ISP displaces variable polarization with wavelength. This study clarifies the impacts of ISP in relation to new ultraviolet spectropolarimetry efforts such as Polstar and Pollux.

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来源期刊
Astrophysics and Space Science
Astrophysics and Space Science 地学天文-天文与天体物理
CiteScore
3.40
自引率
5.30%
发文量
106
审稿时长
2-4 weeks
期刊介绍: Astrophysics and Space Science publishes original contributions and invited reviews covering the entire range of astronomy, astrophysics, astrophysical cosmology, planetary and space science and the astrophysical aspects of astrobiology. This includes both observational and theoretical research, the techniques of astronomical instrumentation and data analysis and astronomical space instrumentation. We particularly welcome papers in the general fields of high-energy astrophysics, astrophysical and astrochemical studies of the interstellar medium including star formation, planetary astrophysics, the formation and evolution of galaxies and the evolution of large scale structure in the Universe. Papers in mathematical physics or in general relativity which do not establish clear astrophysical applications will no longer be considered. The journal also publishes topically selected special issues in research fields of particular scientific interest. These consist of both invited reviews and original research papers. Conference proceedings will not be considered. All papers published in the journal are subject to thorough and strict peer-reviewing. Astrophysics and Space Science features short publication times after acceptance and colour printing free of charge.
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