Linking pressure gradients with the stability of molecular clouds in galactic outflows
K. M. Dasyra, G. F. Paraschos, T. Bisbas, F. Combes, J. A., Fernandez-Ontiveros

TL;DR
This study models molecular cloud stability in galactic outflows impacted by black hole jets, revealing the roles of cosmic rays and pressure changes in star formation regulation.
Contribution
It introduces a detailed astrochemical and thermal model of molecular clouds affected by jets, highlighting cosmic rays' significance and pressure dynamics in cloud stability.
Findings
Cosmic rays contribute about one-third of dense gas heating.
Jet passage increases internal cloud pressure by an order of magnitude.
External pressure can exceed internal pressure, leading to cloud expansion or evaporation.
Abstract
The jets launched by actively accreting black holes are capable of launching several of the massive (million or billion solar mass) molecular outflows observed in galaxies. These outflows could suppress or enhance star formation in galaxies. To investigate the stability of clouds capable to form stars in outflows, we modeled CO and HCO+ ALMA data of the galaxy IC5063, in which black-hole jets impact molecular clouds. Using a radiative transfer code that self-consistently performs astrochemical and thermal balance calculations based on the available gas heating sources, we found that mechanical heating and cosmic ray (CR) heating are fully capable of individually reproducing the data. In our best-fit model, CRs provide about 1/3rd of the dense gas heating at the radio lobes, emphasizing the role of this often neglected mechanism in heating the gas and potentially generating outflows. The…
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Taxonomy
TopicsCombustion and flame dynamics · Astrophysics and Star Formation Studies · Heat Transfer Mechanisms
