Absolute EOS of molybdenum from laser-accelerated flyer-plate impacts
ORAL
Abstract
The measurement of materials’ equations of state (EOS) is relevant to a variety of applications, ranging from material science to geophysics and planetary science. Shock EOS measurements (Hugoniot) are particularly useful for developing and benchmarking models because they yield data from well-defined thermodynamic states. Impedance-matching (IM) techniques, which are most often used to determine the shock state at multi-megabar pressure, rely on the accurate knowledge of the impedance matching standard EOS and behavior upon release or reshock, which are respectively limited in pressure or difficult to measure. Here we present the concept and results of absolute (reference-free) equation of state measurements of Molybdenum (Mo), using symmetric impact of laser-accelerated flyer-plates, performed at the Omega Laser Facility at the University of Rochester, NY. VISAR (Velocity Interferometer for Any Reflector) measurements allowed us to monitor the flyer acceleration prior to impact and the shock state generated upon impact on the target, thus providing simultaneous measurement of the particle and shock velocity from which pressure and density can be obtained using the Rankine-Hugoniot relations, without the need to rely on a reference material.
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Presenters
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Federica Coppari
Lawrence Livermore National Laboratory
Authors
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Federica Coppari
Lawrence Livermore National Laboratory
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Rich London
LLNL
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Yong-Jae Kim
Lawrence Livermore National Laboratory
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Peter M Celliers
Lawrence Livermore National Laboratory
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Marius Millot
Lawrence Livermore National Laboratory
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Robert F Heeter
Lawrence Livermore National Laboratory
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Amy E Lazicki
Lawrence Livermore National Laboratory