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- W3094877309 abstract "In traditional shock physics, the determination of density variations are inferred by applying the standard Rankine- Hugoniot jump conditions although proton radiography allows the direct measurement of density. The reintroduction of the 40-mm powder driven gas gun in 2017 allows us to deliver well characterized shock profiles into a variety of materials. In this particular experiment, we show that the densities obtained agree well with a recently developed two-phase Mie-Gruneisen model for cerium. The model had been tuned using several double shock experiments which showed a slowing down of the shock wave speed. A brief look at the model and comparison of the resulting volume densities determined from the radiographic images. Although there was a low proton transmission through the cerium, we show that in this particular experiment that there is a good agreement between the calculated and the experimental densities." @default.
- W3094877309 created "2020-11-09" @default.
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- W3094877309 date "2020-01-01" @default.
- W3094877309 modified "2023-10-16" @default.
- W3094877309 title "Proton radiography of a double shock into cerium to get densities of the second shock" @default.
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- W3094877309 doi "https://doi.org/10.1063/12.0000836" @default.
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