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- W2572232161 abstract "In this work, high fidelity simulations of shock induced multi-material mixing between air and SF6 in a shock tube are performed for a Mach 1.5 shock interacting with a planar material interface that is inclined with respect to the shock propagating direction. In the current configuration, unlike the classical perturbed flat interface case, the evolution of the interface is fully non-linear from early time. The simulations attempt to replicate an experiment conducted at the Georgia Tech STAML.Tight coupling between numerics and flow physics and the large range of spatial scales make this a challenging problem to simulate numerically. Often, two dimensional simulations are performed to reduce the computational cost of these simulations. We show here that the effect of small three dimensional perturbations likely to be present in an experimental setting is not negligible. Full 3D simulations would have to be performed to do a proper comparison with experiments. Effect of grid resolution is also studied in the present work. Simulations shown are conducted with an extended version of the Miranda solver developed by Cook et. al [1] which combines high-order compact finite differences [2] with localized non-linear artificial properties for shock and interface capturing [3]." @default.
- W2572232161 created "2017-01-26" @default.
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- W2572232161 date "2017-01-01" @default.
- W2572232161 modified "2023-10-12" @default.
- W2572232161 title "Numerical simulation of multi-material mixing in an inclined interface Richtmyer-Meshkov instability" @default.
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- W2572232161 doi "https://doi.org/10.1063/1.4971735" @default.
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