Sample glue layer investigation and mitigation for laser induced prompt impulse experiments
Abstract
Understanding longer timescale material reactions under dynamic stress loading is critical for applications in materials engineering, shock physics, and planetary science. Prompt impulse experiments generate lower pressures since the ablator—the material first removed by the laser—is thicker and farther from the diagnostic plane, capturing aggregate material responses from the initial shock wave, rarefaction waves, and later time effects. This complexity demands thorough material characterization and simulation support. Since traditional sample construction is specific to supported shock experiments, designing prompt impulse experiments requires reconsideration around target design and sample engineering. Here, we present sample preparation techniques, experimental investigations, and theoretical simulations to investigate glue layer impacts, aiming to standardize samples for consistent data at lower laser fluences. We find that glue layers <30 μm have a minimal impact on peak velocity and pulse shape. The peak velocity scales linearly with glue layer thickness until a glue layer of 75 μm. For glue layers >75 μm, the peak velocity no longer scales with thickness; however, the pulse shape continues to degrade as described by simulations.
Article Details
Journal Info
Journal of Applied Physics
American Institute of Physics
Authors (4)
Alison K. Ackerman
Lawrence Livermore National Laboratory 1 , Livermore, California 94550, .
Frank Jin
Lawrence Livermore National Laboratory 1 , Livermore, California 94550, .
Adam Patel
Lawrence Livermore National Laboratory 1 , Livermore, California 94550, .
Sophie E. Parsons
Lawrence Livermore National Laboratory 1 , Livermore, California 94550, .