Impacts of pure shocks in the BHR71 bipolar outflow
Antoine Gusdorf, Denise Riquelme, Sibylle Anderl, Jochen Eisloeffel,, Claudio Codella, Arturo Gomez-Ruiz, Urs Graf, Lars Kristensen, Silvia, Leurini, Berengere Parise, Migel Requena-Torres, Oliver Ricken, Rolf Guesten

TL;DR
This study compares shock models with multi-molecule observations in the BHR71 bipolar outflow to better understand shock characteristics and feedback processes during star formation.
Contribution
It provides new CO observations and updates shock parameters, offering detailed insights into the energetic and chemical feedback of star formation on Galactic scales.
Findings
Pre-shock densities of 10^4 cm^-3 and shock velocities of 20-25 km/s are confirmed.
Less than 4% of pre-shock SiO is from grain mantles.
Estimated outflow mass is 1.8x10^-2 Msun, with a momentum of 0.4 Msun km/s.
Abstract
During the formation of a star, material is ejected along powerful jets that impact the ambient material. This outflow regulates star formation by e.g. inducing turbulence and heating the surrounding gas. Understanding the associated shocks is therefore essential to the study of star formation. We present comparisons of shock models with CO, H2, and SiO observations in a 'pure' shock position in the BHR71 bipolar outflow. These comparisons provide an insight into the shock and pre-shock characteristics, and allow us to understand the energetic and chemical feedback of star formation on Galactic scales. New CO (Jup = 16, 11, 7, 6, 4, 3) observations from the shocked regions with the SOFIA and APEX telescopes are presented and combined with earlier H2 and SiO data (from the Spitzer and APEX telescopes). The integrated intensities are compared to a grid of models that were obtained from a…
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