Prediction of shock wave configurations in compression ramp flows
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 and ramp angle , the separation angle manifesting flow system states can be determined based on this theory. Thus, both the shapes of shock wave configurations and pressure peak behind reattachment shock waves are predictable. These theoretical predictions agree excellently with both experimental data and numerical simulations, covering a wide range of and . In addition, for a large separation, the theory indicates that only depends on and , but is independent of the Reynolds number and wall temperature . 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}
}