English

Convergence properties of detonation simulations

Fluid Dynamics 2019-12-16 v2 Computational Physics

Abstract

We present a high-resolution convergence study of detonation initiated by a temperature gradient in a stoichiometric hydrogen-oxygen mixture using the Pencil Code and compare with a code that employs a fifth order weighted essentially non-oscillating (WENO) scheme. With Mach numbers reaching 10-30, a certain amount of shock viscosity is needed in the Pencil Code to remove or reduce numerical pressure oscillations on the grid scale at the position of the shock. Detonation is found to occur for intermediate values of the shock viscosity parameter. At fixed values of this parameter, the numerical error associated with those small wiggles in the pressure profile is found to decrease with decreasing mesh width δx\delta x like δx1.4\delta x^{-1.4} down to δx=0.2μ\delta x=0.2\mum. With the WENO scheme, solutions are smooth at δx=10μ\delta x=10\mum, but no detonation is obtained for δx=5μ\delta x=5\mum. This is argued to be an artifact of a decoupling between pressure and reaction fronts.

Keywords

Cite

@article{arxiv.1902.03816,
  title  = {Convergence properties of detonation simulations},
  author = {Chengeng Qian and Cheng Wang and JianNan Liu and Axel Brandenburg and Nils E. L. Haugen and Mikhail Liberman},
  journal= {arXiv preprint arXiv:1902.03816},
  year   = {2019}
}

Comments

18 pages, 10 figures, 1 table, Geophys. Astrophys. Fluid Dynam., in press, special issue "Physics and Algorithms of the Pencil Code"