论文标题
低质量活性银核的高密度盘反射光谱
High-density disc reflection spectroscopy of low-mass active galactic nuclei
论文作者
论文摘要
标准的Alpha-DISC模型预测内部吸积盘的密度与增生率的黑洞质量时代平方之间的抗相关性,如较高的质量($ M _ {\ rm BH}> 10^{6} {6} {6} M _ {\ odot} $)活跃的银河系核(Agns)。在这项工作中,我们测试了Alpha-Disc模型的预测,并研究了低质量端的内部积聚流的特性($ M _ {\ rm BH} \大约10^{5-6} M _ {\ odot} $)。我们利用一个新的高密度盘反射模型,其中密度参数从$ n _ {\ rm e} = 10^{15} $到$ 10^{20} $ cm $^{ - 3} $,并将其应用于宽带X射线(0.3-10 kev)低mass Agn样品。这些来源跨越了各种爱丁顿的分数,与埃德丁顿或埃德丁顿附近的分数一致。 X射线光谱显示出柔软的X射线超过$ \ sim 1.5 $ keV,它是通过高密度反射从电离密度的$ n _ {\ rm e} \ sim 10^{18} $ cm $ cm $^{ - 3} $的高密度反射进行了很好的模型。结果表明,辐射压力为主导的圆盘,平均传递到电晕的盘功率的70%分数,与在较高的质量AGN中观察到的盘子一致。我们表明,当圆盘表面无法保持强磁压梯度时,盘子密度高于$ 10^{15} $ cm $^{ - 3} $。我们发现在低质量方案下黑洞旋转下降的暂定证据。
The standard alpha-disc model predicts an anti-correlation between the density of the inner accretion disc and the black hole mass times square of the accretion rate, as seen in higher mass ($M_{\rm BH}>10^{6} M_{\odot}$) active galactic nuclei (AGNs). In this work, we test the predictions of the alpha-disc model and study the properties of the inner accretion flow for the low-mass end ($M_{\rm BH}\approx 10^{5-6}M_{\odot}$) of AGNs. We utilize a new high-density disc reflection model where the density parameter varies from $n_{\rm e}=10^{15}$ to $10^{20}$ cm$^{-3}$ and apply it to the broadband X-ray (0.3-10 keV) spectra of the low-mass AGN sample. The sources span a wide range of Eddington fractions and are consistent with being sub-Eddington or near-Eddington. The X-ray spectra reveal a soft X-ray excess below $\sim 1.5$ keV which is well modeled by high-density reflection from an ionized accretion disc of density $n_{\rm e}\sim 10^{18}$ cm$^{-3}$ on average. The results suggest a radiation pressure-dominated disc with an average of 70% fraction of the disc power transferred to the corona, consistent with that observed in higher mass AGNs. We show that the disc density higher than $10^{15}$ cm$^{-3}$ can result from the radiation pressure compression when the disc surface does not hold a strong magnetic pressure gradient. We find tentative evidence for a drop in black hole spin at low-mass regimes.