Molecular Line Emission from Multifluid Shock Waves. I. Numerical Methods and Benchmark Tests
arXiv:1303.4741 · doi:10.1088/0004-637X/768/1/78
Abstract
We describe a numerical scheme for studying time-dependent, multifluid, magnetohydrodynamic shock waves in weakly ionized interstellar clouds and cores. Shocks are modeled as propagating perpendicular to the magnetic field and consist of a neutral molecular fluid plus a fluid of ions and electrons. The scheme is based on operator splitting, wherein time integration of the governing equations is split into separate parts. In one part independent homogeneous Riemann problems for the two fluids are solved using Godunov's method. In the other equations containing the source terms for transfer of mass, momentum, and energy between the fluids are integrated using standard numerical techniques. We show that, for the frequent case where the thermal pressures of the ions and electrons are << magnetic pressure, the Riemann problems for the neutral and ion-electron fluids have a similar mathematical structure which facilitates numerical coding. Implementation of the scheme is discussed and several benchmark tests confirming its accuracy are presented, including (i) MHD wave packets ranging over orders of magnitude in length and time scales; (ii) early evolution of mulitfluid shocks caused by two colliding clouds; and (iii) a multifluid shock with mass transfer between the fluids by cosmic-ray ionization and ion-electron recombination, demonstrating the effect of ion mass loading on magnetic precursors of MHD shocks. An exact solution to a MHD Riemann problem forming the basis for an approximate numerical solver used in the homogeneous part of our scheme is presented, along with derivations of the analytic benchmark solutions and tests showing the convergence of the numerical algorithm.
To appear in The Astrophysical Journal. 70 pages including 14 figures. New update corrects some typos found when going over galley proofs
References in corpus (8)
- Evolution of Magnetic Fields in High Mass Star Formation: Linking field geometry and collapse for the W51 e2/e8 cores
- Sub-Alfvenic Non-Ideal MHD Turbulence Simulations with Ambipolar Diffusion: I. Turbulence Statistics
- Deuterium fractionation and the degree of ionisation in massive clumps within infrared dark clouds
- Revisiting the shocks in BHR71: new observational constraints and H2O predictions for Herschel
- Ambipolar Diffusion in Action: Transient C shock Structure and Prestellar Core Formation
- Time-dependent simulations of steady C-type shocks
- Driven waves in a two-fluid plasma
- SOFIA observations of CO(12-11) emission along the L1157 bipolar outflow