English

Oblique ion collection in the drift-approximation: how magnetized Mach-probes really work

Plasma Physics 2008-10-28 v2 Space Physics

Abstract

The anisotropic fluid equations governing a frictionless obliquely-flowing plasma around an essentially arbitrarily shaped three-dimensional ion-absorbing object in a strong magnetic field are solved analytically in the quasi-neutral drift-approximation, neglecting parallel temperature gradients. The effects of transverse displacements traversing the magnetic presheath are also quantified. It is shown that the parallel collection flux density dependence upon external Mach-number is ncsexp[1(MMcotθ)]n_\infty c_s \exp[-1 -(M_{\parallel\infty}- M_\perp\cot\theta)] where θ\theta is the angle (in the plane of field and drift velocity) of the object-surface to the magnetic-field and MM_{\parallel\infty} is the external parallel flow. The perpendicular drift, \M\M_\perp, appearing here consists of the external \E\B\E\wedge\B drift plus a weighted sum of the ion and electron electron diamagnetic drifts that depends upon the total angle of the surface to the magnetic field. It is that somewhat counter-intuitive combination that an oblique (transverse) Mach probe experiment measures.

Keywords

Cite

@article{arxiv.0809.1557,
  title  = {Oblique ion collection in the drift-approximation: how magnetized Mach-probes really work},
  author = {I H Hutchinson},
  journal= {arXiv preprint arXiv:0809.1557},
  year   = {2008}
}

Comments

Revised version following refereeing for Physics of Plasmas

R2 v1 2026-06-21T11:18:21.549Z