Understanding Thermal Stability in Energetic Materials via High-Throughput Quantum Molecular Dynamics Simulations
POSTER
Abstract
In this work, high-throughput quantum molecular dynamics (QMD) simulations are employed to investigate the onset of decomposition reactions across a diverse set of EMs. From these simulations, effective kinetic parameters are extracted and correlated with experimental decomposition temperatures. Additionally, QMD simulations provide insight into the reactions that occur at the onset of decomposition. Such reactions are analyzed in the context of proposed trigger-linkages to reveal crucial chemistries. The results of these QMD simulations also support building a large database of material properties, which are used to train AI models for inverse design of novel EMs.
Presenters
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R. Seaton S Ullberg
Theoretical Division, Los Alamos National Laboratory
Authors
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R. Seaton S Ullberg
Theoretical Division, Los Alamos National Laboratory
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Megan C Davis
Theoretical Division, Los Alamos National Laboratory
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Andrew H Salij
Theoretical Division, Los Alamos National Laboratory
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Jeremy N Schroeder
Theoretical Division, Los Alamos National Laboratory
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Romain Perriot
Theoretical Division, Los Alamos National Laboratory
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Wilton J Kort-Kamp
Theoretical Division, Los Alamos National Laboratory
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Christopher J Snyder
High Explosives and Technology, Q-5, Los Alamos National Laboratory, Los Alamos National Laboratory (LANL)
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Marc J Cawkwell
Theoretical Division, Los Alamos National Laboratory
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Ivana Gonzales
Theoretical Division, Los Alamos National Laboratory