论文标题

追踪ESO 137-001中整个RAM压力剥离的尾巴的运动学

Tracing the kinematics of the whole ram pressure stripped tails in ESO 137-001

论文作者

Luo, Rongxin, Sun, Ming, Jáchym, Pavel, Waldron, Will, Fossati, Matteo, Fumagalli, Michele, Boselli, Alessandro, Combes, Francoise, Kenney, Jeffrey D. P., Li, Yuan, Gronke, Max

论文摘要

RAM压力剥离(RPS)是影响星系星系及其周围环境的演变的重要过程。我们为ESO 137-001及其剥离的尾巴提供了一个大型缪斯马赛克,并研究了离子气体和恒星的详细分布和运动学。从星系中检测到至少87 kpc的温暖,电离气体,并将其分成三个尾巴。有一个明显的速度梯度大致垂直于剥离方向,该方向沿着尾巴减小,并消失在$ \ sim45 $ kpc的下游。电离气体的速度分散量增加到$ \ sim80 $ km s $^{ - 1} $ at $ \ sim20 $ kpc下游,并保持平坦。银河盘中的恒星呈现正常的旋转运动,而电离气体已经被RAM压力打扰了。基于观察到的速度梯度,我们构建了尾部残留银河旋转的速度模型,并讨论其逐渐褪色的起源和含义。通过与理论研究进行比较,我们解释了由于银河唤醒中气流引起的振荡的结果,速度分散体的增加,这可能意味着那里的湍流程度增强。我们还比较了来自ALMA的电离气体和分子气的运动学特性,这表明它们正在共同移动并通过尾部混合。我们的研究表明,空间分辨光谱法在探测剥离的气体的详细运动学特性方面具有巨大的潜力,这可以为RPS的未来模拟提供重要信息。

Ram pressure stripping (RPS) is an important process to affect the evolution of cluster galaxies and their surrounding environment. We present a large MUSE mosaic for ESO 137-001 and its stripped tails, and study the detailed distributions and kinematics of the ionized gas and stars. The warm, ionized gas is detected to at least 87 kpc from the galaxy and splits into three tails. There is a clear velocity gradient roughly perpendicular to the stripping direction, which decreases along the tails and disappears beyond $\sim45$ kpc downstream. The velocity dispersion of the ionized gas increases to $\sim80$ km s$^{-1}$ at $\sim20$ kpc downstream and stays flat beyond. The stars in the galaxy disc present a regular rotation motion, while the ionized gas is already disturbed by the ram pressure. Based on the observed velocity gradient, we construct the velocity model for the residual galactic rotation in the tails and discuss the origin and implication of its fading with distance. By comparing with theoretical studies, we interpreted the increased velocity dispersion as the result of the oscillations induced by the gas flows in the galaxy wake, which may imply an enhanced degree of turbulence there. We also compare the kinematic properties of the ionized gas and molecular gas from ALMA, which shows they are co-moving and kinematically mixed through the tails. Our study demonstrates the great potential of spatially resolved spectroscopy in probing the detailed kinematic properties of the stripped gas, which can provide important information for future simulations of RPS.

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