TY - GEN
T1 - Characterizing Oxidizer Chemistry in Metallic Additives for Polymer-Bound Explosives
AU - Bansal, Lakshay
AU - Valluri, Siva Kumar
AU - Dreizin, Edward L.
AU - Dlott, Dana D.
N1 - Publisher Copyright:
© 2026, American Institute of Aeronautics and Astronautics Inc, AIAA. All rights reserved.
PY - 2026
Y1 - 2026
N2 - The energy density of plastic-bonded explosives (PBX) like octogen (HMX) can be increased by adding aluminum powders. However, when shocked, aluminum powders react more slowly than HMX as they need to mix and react with extrinsic oxidizers. Aluminum reduces the detonation pressure but enhances the subsequent blast. Arrested reactive milling (ARM) is a promising method to produce more powerful PBX by fabricating composite aluminum microparticles containing finely dispersed nanometric oxidizer. ARM involves several process variables, such as milling time, ball-to-powder mass ratio, etc., so optimizing composites is accomplished with high-throughput tabletop shock testing of multiple batches. We use laser-launched 4 km/s flyer plates to shock tiny HMX-based PBX samples with chosen composites and measure thermal emission spectral radiance, which gives the energy release rate and the temperature. Superior additives produce longer-lived nanosecond hot spots, hotter than HMX (~4300K) and improved deflagration characteristics. Here, we answer the question, can a thermodynamically inferior composition (Al/CuO) that has been optimized outperform a thermodynamically superior but unoptimized composition (Al/MoO3 with 5 wt.% KNO3). The answer is yes. The PBX with optimized Al/CuO had higher emissive power and temperatures. This result confirms the need for high-throughput shock testing to produce the most powerful aluminized additives.
AB - The energy density of plastic-bonded explosives (PBX) like octogen (HMX) can be increased by adding aluminum powders. However, when shocked, aluminum powders react more slowly than HMX as they need to mix and react with extrinsic oxidizers. Aluminum reduces the detonation pressure but enhances the subsequent blast. Arrested reactive milling (ARM) is a promising method to produce more powerful PBX by fabricating composite aluminum microparticles containing finely dispersed nanometric oxidizer. ARM involves several process variables, such as milling time, ball-to-powder mass ratio, etc., so optimizing composites is accomplished with high-throughput tabletop shock testing of multiple batches. We use laser-launched 4 km/s flyer plates to shock tiny HMX-based PBX samples with chosen composites and measure thermal emission spectral radiance, which gives the energy release rate and the temperature. Superior additives produce longer-lived nanosecond hot spots, hotter than HMX (~4300K) and improved deflagration characteristics. Here, we answer the question, can a thermodynamically inferior composition (Al/CuO) that has been optimized outperform a thermodynamically superior but unoptimized composition (Al/MoO3 with 5 wt.% KNO3). The answer is yes. The PBX with optimized Al/CuO had higher emissive power and temperatures. This result confirms the need for high-throughput shock testing to produce the most powerful aluminized additives.
UR - https://www.scopus.com/pages/publications/105030333647
UR - https://www.scopus.com/pages/publications/105030333647#tab=citedBy
U2 - 10.2514/6.2026-0054
DO - 10.2514/6.2026-0054
M3 - Conference contribution
AN - SCOPUS:105030333647
SN - 9781624107658
T3 - AIAA Science and Technology Forum and Exposition, AIAA SciTech Forum 2026
BT - AIAA Science and Technology Forum and Exposition, AIAA SciTech Forum 2026
PB - American Institute of Aeronautics and Astronautics Inc, AIAA
T2 - AIAA Science and Technology Forum and Exposition, AIAA SciTech Forum 2026
Y2 - 12 January 2026 through 16 January 2026
ER -