2003/05/31 by Richard M. Crutcher, R. M. Crutcher, D. J. Nutter +3 · 13 citations
Physics and Astronomy · #Ambipolar diffusion #Astronomy and Astrophysical Research #Astrophysics and Star Formation Studies #Flux (metallurgy) #Magnetic field #Magnetic flux #Polarimeter #Polarimetry #Polarization (electrochemistry) #Position angle #Scientific Research and Discoveries #Star formation #astro-ph
paper · pdf · doi:10.1086/379705
published as Astrophys.J. 600 (2004) 279-285 · Version 2 has minor revisions to reflect referee comments. Paper accepted for ApJ publication
arxiv created 2003/10/07 · openalex publication_date 2004/01/01 · arxiv updated 2009/12/01 · openalex created_date 2016/06/24 · openalex updated_date 2026/08/05
We have mapped linearly polarized dust emission from L183 with the James Clerk Maxwell Telescope SCUBA polarimeter and have analyzed these and our previously published data for the prestellar cores L183, L1544, and L43, in order to estimate magnetic field strengths in the plane of the sky, B pos . The analysis used the Chandrasekhar-Fermi technique, which relates the dispersion in polarization position angles to B pos . We have used these estimates of the field strengths (neglecting the unmeasured line-of-sight component) to find the mass-to-magnetic flux ratios λ (in units of the critical ratio for magnetic support). Results are B pos ≈ 80 μG and λ ≈ 2.6 for L183, B pos ≈ 140 μG and λ ≈ 2.3 for L1544, and B pos ≈ 160 μG and λ ≈ 1.9 for L43. Hence, without correction for geometrical biases, for all three cores the mass-to-flux ratios are supercritical by a factor of ~2, and magnetic support cannot prevent collapse. However, a statistical mean correction for geometrical bias may be up to a factor of 3; this correction would reduce the individual λ's to λ cor ≈ 0.9, 0.8, and 0.6, respectively; these values are approximately critical or slightly subcritical. These data are consistent with models of star formation driven by ambipolar diffusion in a weakly turbulent medium but cannot rule out models of star formation driven by turbulence.