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首页> 外文期刊>The Astrophysical journal >PHOTON-DOMINATED REGION MODELING OF THE [C I], [C II], AND CO LINE EMISSION FROM A BOUNDARY IN THE TAURUS MOLECULAR CLOUD
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PHOTON-DOMINATED REGION MODELING OF THE [C I], [C II], AND CO LINE EMISSION FROM A BOUNDARY IN THE TAURUS MOLECULAR CLOUD

机译:金牛座分子云中[C I],[C II]和CO线发射的光子定域模型

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We present [C I] and [C II] observations of a linear edge region in the Taurus molecular cloud, and model this region as a cylindrically symmetric photon-dominated region (PDR) exposed to a low-intensity UV radiation field. The sharp, long profile of the linear edge makes it an ideal case to test PDR models and determine cloud parameters. We compare observations of the [C I], 3 P 1 → 3 P 0 (492?GHz), [C I] 3 P 2 → 3 P 1 (809?GHz), and [C II] 2 P 3/2 → 2 P 1/2 (1900?GHz) transitions, as well as the lowest rotational transitions of 12CO and 13CO, with line intensities produced by the RATRAN radiative transfer code from the results of the Meudon PDR code. We constrain the density structure of the cloud by fitting a cylindrical density function to visual extinction data. We study the effects of variation of the FUV field, 12C/13C isotopic abundance ratio, sulfur depletion, cosmic ray ionization rate, and inclination of the filament relative to the sky-plane on the chemical network of the PDR model and resulting line emission. We also consider the role of suprathermal chemistry and density inhomogeneities. We find good agreement between the model and observations, and that the integrated line intensities can be explained by a PDR model with an external FUV field of 0.05 G 0, a low ratio of 12C to 13C ~43, a highly depleted sulfur abundance (by a factor of at least 50), a cosmic ray ionization rate (3-6) × 10–17?s–1, and without significant effects from inclination, clumping or suprathermal chemistry.
机译:我们目前在金牛座分子云中的线性边缘区域的[C I]和[C II]观察,并将该区域建模为暴露于低强度UV辐射场的圆柱对称光子为主区域(PDR)。线性边缘的锋利而长的轮廓使其成为测试PDR模型和确定云参数的理想案例。我们比较了[CI],3 P 1→3 P 0(492?GHz),[CI] 3 P 2→3 P 1(809?GHz)和[C II] 2 P 3/2→2的观察结果P 1/2(1900?GHz)跃迁以及12CO和13CO的最低旋转跃迁,以及根据Meudon PDR码的结果由RATRAN辐射传输码产生的线强度。我们通过将圆柱密度函数拟合到视觉消光数据来约束云的密度结构。我们研究了FUV场变化,12C / 13C同位素丰度比,硫耗竭,宇宙射线电离速率以及灯丝相对于天平面的倾斜度对PDR模型化学网络和由此产生的线发射的影响。我们还考虑了超热化学和密度不均匀性的作用。我们在模型和观测值之间找到了很好的一致性,并且可以通过外部FUV场为0.05 G 0、12C与13C〜43的比率低,硫丰度高耗尽的PDR模型来解释积分线强度。至少50倍),宇宙射线电离率(3-6)×10–17?s-1,并且不受倾斜,结块或超热化学作用的显着影响。

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