论文标题

怪异,相对论椎间盘中的HFQPO和静态震动模式激发。 ii。磁水动力学模拟

HFQPOs and discoseismic mode excitation in eccentric, relativistic discs. II. Magnetohydrodynamic simulations

论文作者

Dewberry, Janosz W., Latter, Henrik N., Ogilvie, Gordon I., Fromang, Sebastien

论文摘要

被困的惯性振荡(R模式)为高频准周期振荡(HFQPO)提供了有希望的解释,在黑洞X射线二进制系统的发射中观察到。偏心率(或经线)可以激发R模式对大幅度,但同时振荡可能会受到磁流失动力学(MHD)的湍流阻尼,这是由磁化不稳定(MRI)驱动的。我们强制偏心率在相对论积聚盘的全球,未分层的,零网络通量MHD模拟中,发现尽管有这种阻尼,但有足够的强盘失真会产生被困的惯性波。在我们的模拟中,内盘中的偏心率高于〜0.03。除了R模式阻尼和驾驶之间的竞争外,我们还观察到较大的振幅偏心结构会改变,在某些情况下会抑制MRI湍流。鉴于能够放大R模型的各种变形(扭曲和偏心率),在我们的模拟中面对MRI湍流时,被困的惯性波激发的稳健性为HFQPOS的丝毫抗震动解释提供了支持。

Trapped inertial oscillations (r-modes) provide a promising explanation for high-frequency quasi-periodic oscillations (HFQPOs) observed in the emission from black hole X-ray binary systems. An eccentricity (or warp) can excite r-modes to large amplitudes, but concurrently the oscillations are likely damped by magnetohydrodynamic (MHD) turbulence driven by the magnetorotational instability (MRI). We force eccentricity in global, unstratified, zero-net flux MHD simulations of relativistic accretion discs, and find that a sufficiently strong disc distortion generates trapped inertial waves despite this damping. In our simulations, eccentricities above ~ 0.03 in the inner disc excite trapped waves. In addition to the competition between r-mode damping and driving, we observe that larger amplitude eccentric structures modify and in some cases suppress MRI turbulence. Given the variety of distortions (warps as well as eccentricities) capable of amplifying r-modes, the robustness of trapped inertial wave excitation in the face of MRI turbulence in our simulations provides support for a discoseismic explanation for HFQPOs.

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