论文标题

偏心二进制二进制1swasp J011351.29+314909.7的苔丝光曲线 - 没有证据表明非常热的M-dwarf伴侣

The TESS light curve of the eccentric eclipsing binary 1SWASP J011351.29+314909.7 -- no evidence for a very hot M-dwarf companion

论文作者

Swayne, Matthew I., Maxted, Pierre F. L., Hodžić, Vedad Kunovac, Triaud, Amaury H. M. J.

论文摘要

一项2014年对Eclipsing Binary Star 1SWASPJ011351.29+314909.7(J0113+31)的研究报告了M-Warf伴侣的有效温度出乎意料的高度温度,该温度是0.95-m $ $ _ {\ odot} $ priendar的0.95-m $ _ {\ odot} $。从次级日食深度推断出的有效温度为$ \ sim $ 600 k,比恒星模型预测的值高。这样的异常结果质疑我们对低质量恒星的理解,可能在推断出绕它们的系外行星的性质时可能表明存在重大的不确定性。我们试图使用J0113+31的光曲线最近观察到了通过过渡外球星卫星(TESS)最近观察到的M-DWARF伴侣的有效温度。我们使用Pycheops建模软件将组合的过境和Eclipse模型拟合到Tess Light曲线。为了计算次级有效温度,我们将最佳的日食深度与理论恒星模型的预测日食深度进行了比较。我们确定M Dwarf的有效温度为$ {\ rm t} _ {\ rm eff,2} $ = 3208 $ \ pm $ 43 K,假设$ \ log g_2 $ = 5,[fe/h] = $ -0.4 $,并且没有alpha-element Element Element增强。改变这些假设的变化$ {\ rm t} _ {\ rm eff,2} $ ins少于100 k。这些结果不支持观察到的和理论的低质量恒星温度之间的较大异常。

A 2014 study of the eclipsing binary star 1SWASPJ011351.29+314909.7 (J0113+31) reported an unexpectedly high effective temperature for the M-dwarf companion to the 0.95-M$_{\odot}$ primary star. The effective temperature inferred from the secondary eclipse depth was $\sim$600 K higher than the value predicted from stellar models. Such an anomalous result questions our understanding of low-mass stars and might indicate a significant uncertainty when inferring properties of exoplanets orbiting them. We seek to measure the effective temperature of the M-dwarf companion using the light curve of J0113+31 recently observed by the Transiting Exoplanet Survey Satellite (TESS). We use the pycheops modelling software to fit a combined transit and eclipse model to the TESS light curve. To calculate the secondary effective temperature, we compare the best-fit eclipse depth to the predicted eclipse depths from theoretical stellar models. We determined the effective temperature of the M dwarf to be ${\rm T}_{\rm eff,2}$ = 3208 $\pm$ 43 K, assuming $\log g_2$ = 5, [Fe/H] = $-0.4$ and no alpha-element enhancement. Varying these assumptions changes ${\rm T}_{\rm eff,2}$ by less than 100 K. These results do not support a large anomaly between observed and theoretical low-mass star temperatures.

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