Abstract
The formation of jets from a shock-accelerated cylindrical shell of particles, confined in a Hele-Shaw cell, is studied by means of numerical simulation. A number of simulations have been performed, systematically varying the coupling between the gas and solid phases in an effort to identify the primary mechanism(s) responsible for jet formation. We find that coupling through drag is sufficient for the formation of jets. Including the effect of particle volume fraction and particle collisions did not alter the general behaviour, but had some influence on the length, spacing and number of jets. Furthermore, we find that the jet selection process starts early in the dispersal process, during the initial expansion of the particle layer.
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Osnes, A. N., Vartdal, M., & Pettersson Reif, B. A. (2018). Numerical simulation of particle jet formation induced by shock wave acceleration in a Hele-Shaw cell. Shock Waves, 28(3), 451–461. https://doi.org/10.1007/s00193-017-0778-9
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