Dense Cores in the Vicinity of an HII Region
Ruofei Zhang, Xing Lu, Jingwen Wu, Sihan Jiao, Hauyu Baobab Liu, Guang-Xing Li, Roberto Galván-Madrid, Aiyuan Yang, Siju Zhang, Shanghuo Li, Fengwei Xu, Xindi Tang, Yu Cheng, Weiyuan Zhang, Andrés E. Guzmán, Yuxin Lin, Yuhua Liu, Qizhou Zhang, Patricio Sanhueza, Ke Wang, Siyi Feng, Linjing Feng, Fangyuan Deng, Hao Ruan, Yuanzhen Xiong, Yuxiang Liu
Abstract
Massive stars strongly influence their surroundings through radiative and mechanical feedback, but its effects on dense gas structures at sub-pc scales remain poorly constrained. We investigate how feedback from a newly formed massive star affects dense cores in the filamentary molecular cloud IRAS 18530+0215. We analyze ALMA Band 6 observations of 1.3 mm dust continuum and DCN, N2D+, and 13CS line emission, together with VLA K-band continuum and NH3 observations. Dense cores are identified with astrodendro, and their temperatures, masses, velocity dispersions, and virial parameters are derived. The dynamical state of the ultra-compact H II region is examined through energy and pressure estimates. The H II region has a radius of 0.1 pc and an expansion velocity of 2.5 km s-1, corresponding to a shell dynamical age of 0.06 Myr. DCN and 13CS cores are concentrated near the H II region, whereas N2D+ cores preferentially lie farther away. Core temperatures and velocity dispersions decrease with projected distance from the H II region. Virial parameters increase within the inner 0.3 pc but decline sharply beyond this scale, while core masses show no significant trend with distance. Strong star formation signatures are found at 0.2 pc, whereas more distant regions still host quiescent, cold dense cores. The compact H II region appears trapped or choked within 0.1 pc, while its feedback extends to at least 0.3 pc. Within this region, feedback enhances core velocity dispersions, gas temperatures, and virial parameters, with no evidence that it promotes the formation of more massive dense cores.
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