DOE OSTI · 2311644
Drop Interactions with the Conical Shock Structure Generated by a Mach 4.5 Projectile
Abstract
This work presents measurements of liquid drop deformation and breakup time behind approximately conical shock waves and evaluates the predictive capabilities of low-order models and correlations developed using planar shock experiments. A conical shock was approximated by firing a bullet at Mach 4.5 past a vertical column of water drops with a mean initial diameter of $192$ $\mu$m. The time-resolved drop position and maximum transverse dimension were characterized using backlit stereo images taken at 500 kHz. The gas density and velocity fields experienced by the drops were estimated using a Reynolds-averaged Navier–Stokes simulation of the bullet. Classical correlations predict drop breakup times and deformation in error by a factor of 3 or more. The Taylor analogy breakup (TAB) model predicts deformed drop diameters that agree within the confidence bounds of the ensemble-averaged experimental values using a dimensionless constant $C$ 2 = $2$ compared to the accepted value $C$ 2 = $2/3$. In conclusion, results demonstrate existing correlations are inadequate for predicting the drop response to the three-dimensional relaxation of the flowfield downstream of a conical-like shock and suggest the TAB model results represent a path toward improved predictions.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Daniel, Kyle Andreas, Guildenbecher, Daniel Robert, Delgado, Paul M., White, Glen E., Reardon, Sam Matthew, Stauffacher, Howard Lee, Beresh, Steven J.. 2023-03-01. Drop Interactions with the Conical Shock Structure Generated by a Mach 4.5 Projectile. https://doi.org/10.2514/1.j061903
Cite the original work for its findings. Save a collection to share your selection of sources.