2014/12/31 by Scott D Baalrud, Brett Scheiner, Benjamin Yee +2
Engineering · Physics and Astronomy · #Dust and Plasma Wave Phenomena #Magnetic confinement fusion research #Plasma Diagnostics and Applications
paper · doi:10.1088/0741-3335/57/4/044003
openalex publication_date 2015/03/20 · openalex created_date 2016/06/24 · openalex updated_date 2026/07/28
The generalized Bohm criterion is revisited in the context of incorporating kinetic effects of the electron and ion distribution functions into the theory. The underlying assumptions and results of two different approaches are compared: the conventional ‘kinetic Bohm criterion’ and a fluid-moment hierarchy approach. The former is based on the asymptotic limit of an infinitely thin sheath ( λ D / l = 0), whereas the latter is based on a perturbative expansion of a sheath that is thin compared to the plasma ( λ D / l ≪ 1). Here λ D is the Debye length, which characterizes the sheath length scale, and l is a measure of the plasma or presheath length scale. The consequences of these assumptions are discussed in terms of how they restrict the class of distribution functions to which the resulting criteria can be applied. Two examples are considered to provide concrete comparisons between the two approaches. The first is a Tonks–Langmuir model including a warm ion source (Robertson 2009 Phys. Plasmas 16 103503 ). This highlights a substantial difference between the conventional kinetic theory, which predicts slow ions dominate at the sheath edge, and the fluid moment approach, which predicts slow ions have little influence. The second example considers planar electrostatic probes biased near the plasma potential using model equations and particle-in-cell simulations. This demonstrates a situation where electron kinetic effects alter the Bohm criterion, leading to a subsonic ion flow at the sheath edge.