DOE OSTI · 3022334
Characterizing IHE Response to Multiple Shock Loading
Abstract
The response of high explosives to shock loading is traditionally measured with a steady loading pressure. In many accident scenarios involving fragment impact, however, a loading duration that is shorter than the build up to detonation may occur. Fragments passing through multiple materials before reaching a high explosive charge may produce loading that is comprised of more than one shock wave. Additionally, the build up to detonation in high explosive corner turning loads the explosive a short duration pressure pulse, since rarefactions can often rapidly overtake the reactive wave. For these reasons, we have studied the response of the insensitive high explosive (IHE) materials PBX 9502 and LX-17 to complex loadings of varied intensity and duration. We refer to a single loading of limited duration as a “thin pulse”, whereas more complex scenarios were studied with an impactor that produces a double shock in the explosive. The following report presents experimental data and analyses of thin pulse shock initiation and double shock experiments designed to guide development of models of Insensitive High Explosives (IHEs) under controlled one-dimensional conditions relevant to accident scenarios and corner turning. Thin pulse shock initiation data on PBX 9502 and LX-17 were obtained under varied pulse duration, pressed density, and temperature conditions in order to probe various parameters essential for the development of a physics-based Cheetah reactive flow hotspot model. In situ pressure gauges provide insight into the degree of reaction in the explosive that are not obtainable with optical PDV measurements or distance measurements such as run to detonation. Double shock data was obtained to inform a Composition Aware Cheetah model which can be applied to any TATB-based IHEs. This model supports efforts to find a new IHE formulation and potentially incorporate new binders into IHE formulations. Simulations of each experiment are included to demonstrate the utility of these focused experiments to developing models of HE behavior. One-dimensional gas gun experiments are essential for characterizing shocked HE behavior and informing HE models.
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Weerakkody, Emily N. [Lawrence Livermore National Laboratory (LLNL), Livermore, CA (United States)], Christenson, Joel G. [Lawrence Livermore National Laboratory (LLNL), Livermore, CA (United States)], Chen, Che-Yu [Lawrence Livermore National Laboratory (LLNL), Livermore, CA (United States)], Beach, Kory [Lawrence Livermore National Laboratory (LLNL), Livermore, CA (United States)], Perez-Marty, Nicholas A. [Lawrence Livermore National Laboratory (LLNL), Livermore, CA (United States)], Lin, Steve [Lawrence Livermore National Laboratory (LLNL), Livermore, CA (United States)], Jones, Tyler S. [Lawrence Livermore National Laboratory (LLNL), Livermore, CA (United States)], Ruch, Aaron [Lawrence Livermore National Laboratory (LLNL), Livermore, CA (United States)], Chaos, Marcos [Lawrence Livermore National Laboratory (LLNL), Livermore, CA (United States)], Vandersall, Kevin S. [Lawrence Livermore National Laboratory (LLNL), Livermore, CA (United States)], Fried, Laurence E. [Lawrence Livermore National Laboratory (LLNL), Livermore, CA (United States)]. 2025-06-01. Characterizing IHE Response to Multiple Shock Loading. https://doi.org/10.2172/3022334
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