NUMERICAL SIMULATIONS OF HH 211: A REFLECTION-SYMMETRIC BIPOLAR OUTFLOW
Author(s) -
Anthony Moraghan,
ChinFei Lee,
Po-Sheng Huang,
Bhargav Vaidya
Publication year - 2015
Publication title -
publications of the korean astronomical society
Language(s) - English
Resource type - Journals
eISSN - 2287-6936
pISSN - 1225-1534
DOI - 10.5303/pkas.2015.30.2.113
Subject(s) - pluto , reflection (computer programming) , binary number , jet (fluid) , physics , polygon mesh , outflow , plot (graphics) , astrophysics , computational physics , mechanics , computer science , astronomy , geometry , meteorology , mathematics , arithmetic , programming language , statistics
Recent high-resolution, high-sensitivity observations of protostellar jets have shown many to possess an underlying ‘wiggle’ structure. HH 211 is one such example where recent sub-mm observations revealed a clear reflection-symmetric wiggle. An explanation for this is that the HH211 jet source is moving as part of a protobinary system. Here we test this assumption by simulating HH211 through 3D hydrodynamic simulations using the pluto code with a molecular chemistry and cooling module, and initial conditions based on an analytical model derived from SMA observations. Molecular chemistry allows us to accurately plot synthetic molecular emission maps and position-velocity diagrams for direct comparison to observations, enabling us to test the observational assumptions and put constraints on the physical parameters of HH211. Our preliminary results show that the reflection-symmetric wiggle can be recreated through the assumption of a jet source being part of a binary system.
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