论文标题
2型AGN NGC1068中气体云的速度内速度三维分布
Velocity-inverted three-dimensional distribution of the gas clouds in the Type 2 AGN NGC1068
论文作者
论文摘要
1-10 PC的高分辨率下,在光学/红外原子发射线和亚MM分子线的空间分辨速度图已适用于附近的许多AGN。对于前者而言,众所周知,在电离气体云的速度与内部〜100 pc区域的核之间的距离之间似乎存在线性关系,这些云在这些云中流出了。在这里,我们证明,在这种情况下,我们实际上可以直接从速度图中得出云的三维(3D)几何分布。重新访问HST为原型2 AGN NGC1068拍摄的速度图,我们实施了从地图得出的3D分布的可视化,并表明该内部窄线区域确实具有空心的结构,与先前的建模结果一致。这很可能是最近在PC尺度上的MID-IR干涉仪中看到的极性细长尘土飞扬材料的外部延伸部分。相反,推断后者的小规模几何形状具有空心的流出结构,作为上面派生的3D分布的内向延伸。掩盖“圆环”的AGN被认为是该空心孔流出的内部光学厚部分,其阴影侧可能与某些亚MM线中看到的分子流出相关。我们讨论了线性速度场的性质,这可能来自于5年前发生的〜10^的情节加速度。
Spatially-resolved velocity maps at high resolutions of 1-10 pc are becoming available for many nearby AGNs in both optical/infrared atomic emission lines and sub-mm molecular lines. For the former, it has been known that a linear relationship appears to exist between the velocity of the ionized gas clouds and the distance from the nucleus in the inner ~100 pc region, where these clouds are outflowing. Here we demonstrate that, in such a case, we can actually derive the three-dimensional (3D) geometrical distribution of the clouds directly from the velocity map. Revisiting such a velocity map taken by HST for the prototypical Type 2 AGN NGC1068, we implement the visualization of the 3D distribution derived from the map, and show that this inner narrow-line region has indeed a hollow-cone structure, consistent with previous modeling results. Quite possibly, this is the outer extended part of the polar elongated dusty material seen in the recent mid-IR interferometry at pc scale. Conversely, the latter small-scale geometry is inferred to have a hollow-cone outflowing structure as the inward extension of the derived 3D distribution above. The AGN obscuring "torus" is argued to be the inner optically thick part of this hollow-cone outflow, and its shadowed side would probably be associated with the molecular outflow seen in certain sub-mm lines. We discuss the nature of the linear velocity field, which could be from an episodic acceleration that had occurred ~10^5 years ago.