TY - JOUR
T1 - Study on the influence of TiH2‑doped aluminum powder on the thermal decomposition and metal‑driving performance of HMX/RDX‑based PBX explosives
AU - Xing, Xiwei
AU - Jin, Shaohua
AU - Chen, Kun
AU - Wang, Junfeng
N1 - Publisher Copyright:
© Akadémiai Kiadó Zrt 2026.
PY - 2026
Y1 - 2026
N2 - The thermal decomposition and metal-driving performance of four HMX/RDX-based PBXs with varying Al/TiH2 ratios (0–8 mass% TiH2) were investigated. While TiH2 addition increased particle roughness, it altered the decomposition kinetics from a first-order model to a complex function described as (− ln(1 − α))2. Although the onset decomposition temperature dropped notably, the critical Self-Accelerating Decomposition Temperature (TSADT) showed only a marginal reduction, suggesting that macroscopic thermal safety remains manageable. Cylinder tests revealed that within the investigated range, the 4 mass% TiH2 formulation (RHTL-1) enhanced the wall velocity and Gurney coefficient by 5% and 3.6% during the early expansion phase (15–30 μs), whereas higher loadings (8 mass%) shifted energy release to later stages. Consequently, comparing the metallized formulations, 4 mass% TiH2 offers the most favorable trade-off between early metal-drive capability and energy release characteristics.
AB - The thermal decomposition and metal-driving performance of four HMX/RDX-based PBXs with varying Al/TiH2 ratios (0–8 mass% TiH2) were investigated. While TiH2 addition increased particle roughness, it altered the decomposition kinetics from a first-order model to a complex function described as (− ln(1 − α))2. Although the onset decomposition temperature dropped notably, the critical Self-Accelerating Decomposition Temperature (TSADT) showed only a marginal reduction, suggesting that macroscopic thermal safety remains manageable. Cylinder tests revealed that within the investigated range, the 4 mass% TiH2 formulation (RHTL-1) enhanced the wall velocity and Gurney coefficient by 5% and 3.6% during the early expansion phase (15–30 μs), whereas higher loadings (8 mass%) shifted energy release to later stages. Consequently, comparing the metallized formulations, 4 mass% TiH2 offers the most favorable trade-off between early metal-drive capability and energy release characteristics.
KW - PBX explosives
KW - Thermal decomposition
KW - TiH-doped aluminum powder
UR - https://www.scopus.com/pages/publications/105043506630
U2 - 10.1007/s10973-026-15779-8
DO - 10.1007/s10973-026-15779-8
M3 - Article
AN - SCOPUS:105043506630
SN - 1388-6150
JO - Journal of Thermal Analysis and Calorimetry
JF - Journal of Thermal Analysis and Calorimetry
ER -