论文标题

白矮人二进制的非线性动力学潮汐

Nonlinear dynamical tides in white dwarf binaries

论文作者

Yu, Hang, Weinberg, Nevin N., Fuller, Jim

论文摘要

紧凑型白矮人(WD)二进制物是空间引力波(GW)天文台的重要来源,越来越多的ZTF调查发现了其中越来越多的数量。我们研究了这种二进制文件中非线性动力潮汐的影响。我们专注于全局三模式参数不稳定性,并表明它的阈值能量要比以前研究的局部波浪破坏条件低得多。通过整合耦合模式的网络,我们将潮汐耗散速率计算为轨道周期的函数。我们构建了与这些数值结果相匹配的现象学模型,并使用它们来评估WD二进制的自旋和光度演变。尽管在线性理论中,WD的旋转频率可以锁定到轨道频率,但我们发现当考虑到非线性效应时,无法保持这样的锁定。取而代之的是,随着轨道腐烂的速度,旋转和轨道从同步中进出。每次不同步时,潮汐加热率都会出现短暂但显着的倾斜。尽管大多数紧凑型二进制文件中的大多数WD都应具有与以前的波动波估计相似的亮度,但几个百分之几的亮度应大约是昏暗的十倍,因为它们居住在加热率下降。这为J0651中Co WD的低光度提供了潜在的解释。最后,我们考虑潮汐对GW信号的影响,并表明Lisa和Tiango可以将WD的惯性矩限制在DECI-HZ系统中的1%以上。

Compact white dwarf (WD) binaries are important sources for space-based gravitational-wave (GW) observatories, and an increasing number of them are being identified by surveys like ZTF. We study the effects of nonlinear dynamical tides in such binaries. We focus on the global three-mode parametric instability and show that it has a much lower threshold energy than the local wave-breaking condition studied previously. By integrating networks of coupled modes, we calculate the tidal dissipation rate as a function of orbital period. We construct phenomenological models that match these numerical results and use them to evaluate the spin and luminosity evolution of a WD binary. While in linear theory the WD's spin frequency can lock to the orbital frequency, we find that such a lock cannot be maintained when nonlinear effects are taken into account. Instead, as the orbit decays, the spin and orbit go in and out of synchronization. Each time they go out of synchronization, there is a brief but significant dip in the tidal heating rate. While most WDs in compact binaries should have luminosities that are similar to previous traveling-wave estimates, a few percent should be about ten times dimmer because they reside in heating rate dips. This offers a potential explanation for the low luminosity of the CO WD in J0651. Lastly, we consider the impact of tides on the GW signal and show that LISA and TianGO can constrain the WD's moment of inertia to better than 1% for deci-Hz systems.

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