论文标题

巨型射线银河NGC 315中的射流准直和加速度

Jet collimation and acceleration in the giant radio galaxy NGC 315

论文作者

Park, Jongho, Hada, Kazuhiro, Nakamura, Masanori, Asada, Keiichi, Zhao, Guang-Yao, Kino, Motoki

论文摘要

我们使用多频的基线阵列观测值和档案高灵敏度阵列和非常大的阵列数据来研究附近巨型Galaxy NGC 315中喷气机在附近巨型宽带NGC 315中的准确和加速。我们发现,射流几何形状从半抛物面形状转变为圆锥形/双曲线形状,距离为$ \^5 $重力半径。我们限制了核心的频率依赖性位置,从中定位了射流底座。抛物面区域中的喷气准则曲线与稳定的稳定的轴对称性无力电动力溶液,用于固定在赤道平面上的黑洞事件地平线上的最外层的多磁场线,类似于附近的射电星系M87和NGC 6251。在发生射流准直的地区,$γ\ sim 3 $的因子,证实了射流加速度和准入区的存在。这些结果表明,喷气机是通过周围培养基的压力准确的,并通过将poyn磁通转换为动能通量来加速。我们在有限的距离范围内发现了射流的肢体吹捧,在这些距离范围内,我们的数据的角度分辨率足以解析射流横向结构。这表明,由于与PC尺度上的周围环境相互作用,射流具有快速层和慢速层的分层速度场,或者粒子加速过程在外层中更有效。

We study the collimation and acceleration of the jets in the nearby giant radio galaxy NGC 315, using multifrequency Very Long Baseline Array observations and archival High Sensitivity Array and Very Large Array data. We find that the jet geometry transitions from a semi-parabolic shape into a conical/hyperbolic shape at a distance of $\approx10^5$ gravitational radii. We constrain the frequency-dependent position of the core, from which we locate the jet base. The jet collimation profile in the parabolic region is in good agreement with the steady axisymmetric force-free electrodynamic solution for the outermost poloidal magnetic field line anchored to the black hole event horizon on the equatorial plane, similar to the nearby radio galaxies M87 and NGC 6251. The velocity field derived from the asymmetry in brightness between the jet and counterjet shows gradual acceleration up to the bulk Lorentz factor of $Γ\sim 3$ in the region where the jet collimation occurs, confirming the presence of the jet acceleration and collimation zone. These results suggest that the jets are collimated by the pressure of the surrounding medium and accelerated by converting Poynting flux to kinetic energy flux. We discover limb-brightening of the jet in a limited distance range where the angular resolution of our data is sufficient to resolve the jet transverse structure. This indicates that either the jet has a stratified velocity field of fast-inner and slow-outer layers or the particle acceleration process is more efficient in the outer layer due to the interaction with the surroundings on pc-scales.

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