论文标题

使用AGN Lightcurves映射积聚盘温度波动

Using AGN lightcurves to map accretion disc temperature fluctuations

论文作者

Neustadt, J. M. M., Kochanek, C. S.

论文摘要

我们引入了一个新的模型,以了解AGN连续变异性。我们从具有稳态径向温度曲线$ t(r)$的Shakura--sunyaev薄积盘开始,并假设可变通量是由于轴对称温度扰动$ΔT(r,t)$引起的。线性化方程后,我们拟合UV光学AGN LightCurves,以确定$ΔT(R,T)$,用于七个AGN的样品。我们看到$ |ΔT/t |的多样性\ sim 0.1 $波动模式,这些模式不受以光速传播的速度来支配的“ lamppost”模型,用于解释光盘混响映射研究。相反,最常见的模式类似于慢速($ v \ ll c $)ingoing波。我们发现的一个解释是,这些ingoing波触发了充当灯柱的中央温度波动,从而产生较低的振幅温度波动以光速向外移动。灯泡以灯柱信号为主 - 即使温度波动是由具有相似可变性时间尺度的其他结构主导的 - 因为盘指数式将较慢移动($ v \ ll c $)波动的贡献呈呈呈纯净的贡献。这导致灯泡非常类似于对灯柱模型的期望,但具有缓慢的变化时间尺度。这也意味着,较长的时间尺度可变性信号将越来越多地与灯柱模型差异,因为随着其周期或空间波长的增加,较慢的移动波的平滑性会稳步下降。

We introduce a new model for understanding AGN continuum variability. We start from a Shakura--Sunyaev thin accretion disc with a steady-state radial temperature profile $T(R)$ and assume that the variable flux is due to axisymmetric temperature perturbations $δT(R,t)$. After linearizing the equations, we fit UV-optical AGN lightcurves to determine $δT(R,t)$ for a sample of seven AGNs. We see a diversity of $|δT/T| \sim 0.1$ fluctuation patterns which are not dominated by outgoing waves traveling at the speed of light as expected for the "lamppost" model used to interpret disc reverberation mapping studies. Rather, the most common pattern resembles slow ($v \ll c$) ingoing waves. An explanation for our findings is that these ingoing waves trigger central temperature fluctuations that act as a lamppost, producing lower amplitude temperature fluctuations moving outwards at the speed of light. The lightcurves are dominated by the lamppost signal -- even though the temperature fluctuations are dominated by other structures with similar variability time-scales -- because the discs exponentially smooth the contributions from the slower moving ($v \ll c$) fluctuations to the observed lightcurves. This leads to lightcurves that closely resemble the expectations for a lamppost model but with the slow variability time-scales of the ingoing waves. This also implies that longer time-scale variability signals will increasingly diverge from lamppost models because the smoothing of slower-moving waves steadily decreases as their period or spatial wavelength increases.

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