论文标题
NGC 5972的壮观延长排放区域的反馈签名
Signatures of Feedback in the Spectacular Extended Emission Region of NGC 5972
论文作者
论文摘要
我们提出了NGC 5972的Chandra X射线观测观测值和空间望远镜成像光谱光谱,这是19个“ Voorwerpjes”星系之一。该星系包含延长的发射线区域(EELR)和一个弧形的核泡。 NGC 5972是一种褪色的AGN,EELR发光性表明L $ _ {\ textrm {bol}} $在最后一个$ \ sim5 \ sim5 \ times10^{4} $ yr中降低了2.1 dex。我们研究了鉴于长期变异性和潜在的积聚状态变化,我们研究了AGN反馈在激发EELR和泡沫中的作用。我们检测到与[OIII]气泡的宽带(0.3-8 KEV)核X射线发射,以及与EELR相一致的弥漫性软X射线发射。软核(0.5-1.5 KEV)发射的发射在空间上扩展,并且光谱与两个APEC热种群($ \ sim $ 0.80,$ \ sim $ 0.10 keV)一致。我们发现气泡年龄> 2.2 Myr,建议在当前变异性之前形成。我们发现证据表明,用L $ _ {\ textrm {kin}}/l _ {\ textrm {bol}} \ sim0.8 \%$使用L $ _ {\ textrm {\ textrm {\ textrm {\ textrm {\ textrm {\ sim0.8 \%$,可以被高估了,但给定最近的l $ _ {\ textrm {bolm {bol} $ variation。运动学表明300 km S $^{ - 1} $高离子化[OIII] - 发出气体可能是$ \ sim $ 780 km s $ s $ s $^{ - 1} $热X射线流出的视线成分,能够驱动前列材料。我们探索了解释整体喷气机,无线电叶和EELR未对准的可能性,包括双重SMBH的证据,这些证据可以支持复杂的未对准系统。
We present Chandra X-ray Observatory observations and Space Telescope Imaging Spectrograph spectra of NGC 5972, one of the 19 "Voorwerpjes" galaxies. This galaxy contains an Extended Emission Line Region (EELR) and an arc-second scale nuclear bubble. NGC 5972 is a faded AGN, with EELR luminosity suggesting a 2.1 dex decrease in L$_{\textrm{bol}}$ in the last $\sim5\times10^{4}$ yr. We investigate the role of AGN feedback in exciting the EELR and bubble given the long-term variability and potential accretion state changes. We detect broadband (0.3-8 keV) nuclear X-ray emission coincident with the [OIII] bubble, as well as diffuse soft X-ray emission coincident with the EELR. The soft nuclear (0.5-1.5 keV) emission is spatially extended and the spectra are consistent with two APEC thermal populations ($\sim$0.80,$\sim$0.10 keV). We find a bubble age >2.2 Myr, suggesting formation before the current variability. We find evidence for efficient feedback with L$_{\textrm{kin}}/L_{\textrm{bol}}\sim0.8\%$, which may be overestimated given the recent L$_{\textrm{bol}}$ variation. Kinematics suggest an out-flowing 300 km s$^{-1}$ high-ionization [OIII]-emitting gas which may be the line of sight component of a $\sim$780 km s$^{-1}$ thermal X-ray outflow capable of driving strong shocks that could photoionize the precursor material. We explore possibilities to explain the overall jet, radio lobe and EELR misalignment including evidence for a double SMBH which could support a complex misaligned system.