English

Prediction of shock wave configurations in compression ramp flows

Fluid Dynamics 2020-05-19 v1

Abstract

Here, we provide a theoretical framework revealing that a steady compression ramp flow must have the minimal dissipation of kinetic energy, and can be demonstrated using the least action principle. For a given inflow Mach number M0M_{0} and ramp angle α\alpha, the separation angle θs\theta_{s} manifesting flow system states can be determined based on this theory. Thus, both the shapes of shock wave configurations and pressure peak ppeakp_{peak} behind reattachment shock waves are predictable. These theoretical predictions agree excellently with both experimental data and numerical simulations, covering a wide range of M0M_{0} and α\alpha. In addition, for a large separation, the theory indicates that θs\theta_{s} only depends on M0M_{0} and α\alpha, but is independent of the Reynolds number ReRe and wall temperature TwT_{w}. These facts suggest that the proposed theoretical framework can be applied to other flow systems dominated by shock waves, which are ubiquitous in aerospace engineering.

Keywords

Cite

@article{arxiv.2005.07892,
  title  = {Prediction of shock wave configurations in compression ramp flows},
  author = {Yan-Chao Hu and Wen-Feng Zhou and Yan-Guang Yang and Zhi-Gong Tang and Zhao-Hu Qin},
  journal= {arXiv preprint arXiv:2005.07892},
  year   = {2020}
}