Compressible flow in front of an axisymmetric blunt object: analytic approximation and astrophysical implications
arXiv:1611.06234 · doi:10.3847/0004-637X/830/2/147
Abstract
Compressible flows around blunt objects have diverse applications, but current analytic treatments are inaccurate and limited to narrow parameter regimes. We show that the gas-dynamic flow in front of an axisymmetric blunt body is accurately derived analytically using a low order expansion of the perpendicular gradients in terms of the parallel velocity. This reproduces both subsonic and supersonic flows measured and simulated for a sphere, including the transonic regime and the bow shock properties. Some astrophysical implications are outlined, in particular for planets in the solar wind and for clumps and bubbles in the intergalactic medium. The bow shock standoff distance normalized by the obstacle curvature is in the strong shock limit, where is the compression ratio. For a subsonic Mach number approaching unity, the thickness of an initially weak, draped magnetic layer is a few times larger than in the incompressible limit, with amplification .
9 pages, 3 figures, ApJ accepted. arXiv admin note: text overlap with arXiv:1412.8406
References in corpus (5)
- Shocks and cold fronts in galaxy clusters
- Draping of Cluster Magnetic Fields over Bullets and Bubbles -- Morphology and Dynamic Effects
- The speed of the `bullet' in the merging galaxy cluster 1E0657-56
- Magnetic draping of merging cores and radio bubbles in clusters of galaxies
- The Cluster-Merger Shock in 1E 0657-56: Faster than the Speeding Bullet?