论文标题

恒星形成的不确定性原理-V。尘埃灭绝对恒星形成速率示踪寿命和推断的分子云生命周期的影响

An uncertainty principle for star formation -- V. The influence of dust extinction on star formation rate tracer lifetimes and the inferred molecular cloud lifecycle

论文作者

Haydon, Daniel T., Fujimoto, Yusuke, Chevance, Mélanie, Kruijssen, J. M. Diederik, Krumholz, Mark R., Longmore, Steven N.

论文摘要

旨在量化分子云生命周期的最新观察性研究需要使用已知的“参考时间尺度”将恒星形成过程不同阶段的相对持续时间转变为绝对时间尺度。我们先前以不同的恒星形成速率(SFR)示踪剂的特征发射时间尺度来限制了SFR表面密度和金属性的函数。但是,我们省略了尘埃灭绝的影响。在这里,我们使用对孤立的,乳状路的圆盘银河系的高分辨率流体动力学模拟的合成发射图来扩展我们的SFR示踪剂发射时间尺度。与观测值相比,模拟中包含的恒星反馈效率低下,这意味着它代表了一个限制案例,在这种情况下,嵌入式恒星形成的持续时间(以及灭绝的相应效果)被高估了。在我们的实验中,我们发现灭绝主要降低了SFR示踪剂发射时间尺度,根据气柱密度,将时间尺度更改为0.04-1.74的因素。与H $α$过滤器相比,紫外线过滤器受到更大的影响。我们为各种SFR示踪剂提供了限制校正因子与气柱密度和通量灵敏度极限的关系。将这些因素应用于分子云生命周期的观察性特征上会产生广泛属于引用的不确定性的变化,除非在高kPc-scale气体表面密度($σ_ {\ rm g} \ g} \ gtrsim20〜在这些条件下,校正灭绝可能会降低所测得的分子云寿命和反馈时间尺度,这进一步加强了先前的结论,即分子云在动态时间内生存,并通过早期的,苏佩诺诺娃的反馈来分散。

Recent observational studies aiming to quantify the molecular cloud lifecycle require the use of known 'reference time-scales' to turn the relative durations of different phases of the star formation process into absolute time-scales. We previously constrained the characteristic emission time-scales of different star formation rate (SFR) tracers, as a function of the SFR surface density and metallicity. However, we omitted the effects of dust extinction. Here, we extend our suite of SFR tracer emission time-scales by accounting for extinction, using synthetic emission maps of a high-resolution hydrodynamical simulation of an isolated, Milky-Way-like disc galaxy. The stellar feedback included in the simulation is inefficient compared to observations, implying that it represents a limiting case in which the duration of embedded star formation (and the corresponding effect of extinction) is overestimated. Across our experiments, we find that extinction mostly decreases the SFR tracer emission time-scale, changing the time-scales by factors of 0.04-1.74, depending on the gas column density. UV filters are more strongly affected than H$α$ filters. We provide the limiting correction factors as a function of the gas column density and flux sensitivity limit for a wide variety of SFR tracers. Applying these factors to observational characterisations of the molecular cloud lifecycle produces changes that broadly fall within the quoted uncertainties, except at high kpc-scale gas surface densities ($Σ_{\rm g}\gtrsim20~{\mathrm{M_{\odot}\,pc^{-2}}}$). Under those conditions, correcting for extinction may decrease the measured molecular cloud lifetimes and feedback time-scales, which further strengthens previous conclusions that molecular clouds live for a dynamical time and are dispersed by early, pre-supernova feedback.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源