论文标题

由高阶磁性多物控制的热星的磁层的光度特征

Photometric signatures of corotating magnetospheres of hot stars governed by higher-order magnetic multipoles

论文作者

Krticka, J., Mikulasek, Z., Kurfurst, P., Oksala, M. E.

论文摘要

磁性化学特征恒星的光曲线通常显示出由于表面斑点而引起的周期性变化,在大多数情况下,可以通过低阶谐波膨胀来建模。但是,高精度卫星光度法揭示了其中一些恒星的光曲线中很小的复杂特征,这些特征很难解释,这是在合理假设下由表面现象引起的。这些特征可能起源于在持续的磁层云中的光消失,该磁层云由以高阶多物体为主的复杂磁场支撑。我们旨在了解由高阶多物控制的持续磁层的光度特征。我们从磁场线的最小值中确定了磁层云的位置,沿着磁场线的有效电位线及其组合确定了磁层云的位置。从衍生的磁层密度分布中,我们计算了光曲线,这些光曲线考虑了光的吸收和随后发射。对于轴对称多物,刚性旋转的磁层模型只有当高阶多尔尔不仅在恒星表面,而且在开普勒半径处占主导地位时,才能解释光曲线中观察到的微小特征。但是,即使是相对较弱的非轴对称成分,也会导致平衡表面的翘曲。这引入了可以解释化学奇特恒星光曲线中观察到的微小特征的结构。仅当在磁层中吸收大量的光线时,光发射才会导致光变化。

The light curves of magnetic, chemically peculiar stars typically show periodic variability due to surface spots that in most cases can be modeled by low-order harmonic expansion. However, high-precision satellite photometry reveals tiny complex features in the light curves of some of these stars that are difficult to explain as caused by a surface phenomenon under reasonable assumptions. These features might originate from light extinction in corotating magnetospheric clouds supported by a complex magnetic field dominated by higher-order multipoles. We aim to understand the photometric signatures of corotating magnetospheres that are governed by higher-order multipoles. We determined the location of magnetospheric clouds from the minima of the effective potential along the magnetic field lines for different orders of multipoles and their combination. From the derived magnetospheric density distribution, we calculated light curves accounting for absorption and subsequent emission of light. For axisymmetric multipoles, the rigidly rotating magnetosphere model is able to explain the observed tiny features in the light curves only when the higher-order multipoles dominate the magnetic field not only at the stellar surface, but even at the Kepler radius. However, even a relatively weak nonaxisymmetric component leads to warping of equilibrium surfaces. This introduces structures that can explain the tiny features observed in the light curves of chemically peculiar stars. The light emission contributes to the light variability only if a significant fraction of light is absorbed in the magnetosphere.

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