论文标题

由圆盘驱动的二元轨道进化

Binary orbital evolution driven by a circumbinary disc

论文作者

Penzlin, Anna B. T., Kley, Wilhelm, Audiffren, Hugo, Schäfer, Christoph M.

论文摘要

问题与中央二元系统的相互作用是否导致二元轨道的缩小或扩展引起了人们的极大兴趣,因为它影响了二进制黑洞的演变和在其形成阶段的演变。我们对圆盘粘度和厚度的大参数进行了循环盘的二维流体动力学模拟,以及圆形轨道上二进制的两个不同的二元质量比。对于那些,我们仔细测量了圆盘和二进制系统之间的净角动量和传质,并评估了归一化的特定角动量积聚,$ j_ \ mathrm {s} $。将此与理论,关键的特定角度动量变化$ j_ \ mathrm {s,crit} $相比,该$将收缩与扩大的案例分开,这取决于二进制的质量比和将相对积聚到两个恒星上。使用有限和无限的光盘模型,我们显示了两个设置的推断二进制演变非常相似,并确认可以使用不包括中央二进制的圆柱模拟来准确地测量$ j_ \ mathrm {s} $。但是,为了获得非等量质量二进制的恒星上的相对积聚,需要覆盖包括二进制的整个域的模拟。我们发现,对于具有宽高比$ h = 0.1 $的厚光盘,二进制文件对所有粘度进行了扩展,而$ h = 0.05 $的光盘仅适用于$α$超过$ \ sim 0.005 $的较大粘度的扩展。总体而言,二进制扩展状态扩展到比以前预期的要宽得多的参数空间,但对于较薄的低粘度光盘,轨道收缩。

The question whether the interaction of a circumbinary disc with the central binary system leads to shrinking or expansion of the binary orbit has attracted considerable interest as it impacts the evolution of binary black holes and stellar binary stars in their formation phase. We performed two-dimensional hydrodynamical simulations of circumbinary discs for a large parameter set of disc viscosities and thicknesses and two different binary mass ratios for binaries on circular orbits. For those we measured carefully the net angular momentum and mass transfer between disc and binary system, and evaluate the normalised specific angular momentum accretion, $j_\mathrm{s}$ . This is compared to the theoretical, critical specific angular momentum change $j_\mathrm{s,crit}$ that separates contracting from expanding cases which depends on the the binary's mass ratio and the relative accretion onto the two stars. Using finite and infinite disc models we show that the inferred binary evolution is very similar for both setups and confirm that $j_\mathrm{s}$ can be measured accurately with cylindrical simulations that do not include the central binary. However, to obtain the relative accretion onto the stars for non-equal mass binaries, simulations that cover the whole domain including the binary are required. We find that for thick discs with aspect ratio $h = 0.1$ the binaries expand for all viscosities, while discs with $h = 0.05$ lead to an expansion only for larger viscosities with $α$ exceeding $\sim 0.005$. Overall, the regime of binary expansion extends to a much wider parameter space than previously anticipated, but for thin, low viscosity discs the orbits shrink.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源