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首页> 外文期刊>The Astrophysical journal >THE DETECTABILITY OF TRANSIT DEPTH VARIATIONS DUE TO EXOPLANETARY OBLATENESS AND SPIN PRECESSION
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THE DETECTABILITY OF TRANSIT DEPTH VARIATIONS DUE TO EXOPLANETARY OBLATENESS AND SPIN PRECESSION

机译:外来过大和自旋偏斜引起的过渡深度变化的可检测性

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摘要

Knowledge of an exoplanet's oblateness and obliquity would give clues about its formation and internal structure. In principle, a light curve of a transiting planet bears information about the planet's shape, but previous work has shown that the oblateness-induced signal will be extremely difficult to detect. Here, we investigate the potentially larger signals due to planetary spin precession. The most readily detectable effects are transit depth variations (TδV's) in a sequence of light curves. For a planet as oblate as Jupiter or Saturn, the transit depth will undergo fractional variations of order 1%. The most promising systems are those with orbital periods of approximately 15-30 days, which are short enough for the precession period to be less than about 40 yr and long enough to avoid spin-down due to tidal friction. The detectability of the TδV signal would be enhanced by moons (which would decrease the precession period) or planetary rings (which would increase the amplitude). The Kepler mission should find several planets for which precession-induced TδV signals will be detectable. Due to modeling degeneracies, Kepler photometry would yield only a lower bound on oblateness. The degeneracy could be lifted by observing the oblateness-induced asymmetry in at least one transit light curve or by making assumptions about the planetary interior.
机译:了解系外行星的扁圆度和倾斜度将提供有关其形成和内部结构的线索。原则上,正在运行的行星的光曲线带有有关该行星形状的信息,但是先前的工作表明,扁率诱发的信号将非常难以检测。在这里,我们研究由于行星自旋进动而可能产生的更大信号。最容易检测到的影响是一系列光曲线中的渡越深度变化(TδV's)。对于像木星或土星这样扁圆的行星,过渡深度将经历1%量级的分数变化。最有希望的系统是轨道周期约为15-30天的系统,其进动周期短至小于约40年,并且足够长,可以避免由于潮汐摩擦而发生旋转。卫星(这将减少进动周期)或行星环(将增加幅度)将增强TδV信号的可检测性。开普勒任务应该找到几个行星,这些行星可以探测到旋进引起的TδV信号。由于模型的简并性,开普勒光度法仅能得出扁率的下限。可以通过观察至少一条过渡光曲线中扁圆引起的不对称性或通过对行星内部进行假设来消除退化。

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