TY - JOUR
T1 - Effects of fuel components and charge structure on detonation energy of emulsion explosives
AU - Zhang, Yixiao
AU - Ren, Simin
AU - Liang, Huimin
AU - Gong, Hanzheng
AU - Zhang, Qi
N1 - Publisher Copyright:
© 2025 Elsevier Ltd.
PY - 2026/5/15
Y1 - 2026/5/15
N2 - The aqueous solution of multi-component ammonium nitrate plays a crucial role in influencing the energy output of emulsion explosives. This study established a model for characterizing the detonation process of aqueous ammonium nitrate solutions, which has been validated through experimental verification. The emulsion explosive achieves a detonation pressure of 3.69 GPa, with a decay duration of approximately 10 μs, which is 50 times longer than the detonation reaction duration of 190 ns. Beyond 40 μs, the radial dispersion velocity of the detonation products stabilizes, with the angle between the lateral dispersion front of the detonation products and the detonation propagation direction stabilizing at 15°. The radial dispersion velocity of the products is approximately 0.268 times the detonation velocity. For a mixture with an NH4NO3 to H2O/C12H26 ratio of 75/25, the detonation velocity of the emulsion explosives reaches its maximum value of 4100 m/s when the H2O/C12H26 ratio is 9/1. Conversely, the detonation pressure attains its minimum value of 3.3 GPa when the H2O/C12H26 ratio is 10/0. For a mixture with an H2O to NH4NO3/C12H26 ratio of 10/90, the detonation pressure of the emulsion explosives reaches peak values at both NH4NO3/C12H26 ratios of 10/1 and 20/1. This demonstrates the dual influence of mixture density and chemical stoichiometry on the detonation energy output. The scale of air interlayers within the medium is a critical parameter influencing detonation, with 40 mm representing the critical width at which air interlayers can cause detonation quenching. The larger the confinement size, the more pronounced the constraint on the detonation products, resulting in a smaller radial dispersion velocity of the products.
AB - The aqueous solution of multi-component ammonium nitrate plays a crucial role in influencing the energy output of emulsion explosives. This study established a model for characterizing the detonation process of aqueous ammonium nitrate solutions, which has been validated through experimental verification. The emulsion explosive achieves a detonation pressure of 3.69 GPa, with a decay duration of approximately 10 μs, which is 50 times longer than the detonation reaction duration of 190 ns. Beyond 40 μs, the radial dispersion velocity of the detonation products stabilizes, with the angle between the lateral dispersion front of the detonation products and the detonation propagation direction stabilizing at 15°. The radial dispersion velocity of the products is approximately 0.268 times the detonation velocity. For a mixture with an NH4NO3 to H2O/C12H26 ratio of 75/25, the detonation velocity of the emulsion explosives reaches its maximum value of 4100 m/s when the H2O/C12H26 ratio is 9/1. Conversely, the detonation pressure attains its minimum value of 3.3 GPa when the H2O/C12H26 ratio is 10/0. For a mixture with an H2O to NH4NO3/C12H26 ratio of 10/90, the detonation pressure of the emulsion explosives reaches peak values at both NH4NO3/C12H26 ratios of 10/1 and 20/1. This demonstrates the dual influence of mixture density and chemical stoichiometry on the detonation energy output. The scale of air interlayers within the medium is a critical parameter influencing detonation, with 40 mm representing the critical width at which air interlayers can cause detonation quenching. The larger the confinement size, the more pronounced the constraint on the detonation products, resulting in a smaller radial dispersion velocity of the products.
KW - Confinement size
KW - Detonation quenching
KW - Emulsion explosives
KW - Energy conversion
KW - Fuel components
UR - https://www.scopus.com/pages/publications/105044305367
U2 - 10.1016/j.fuel.2025.138118
DO - 10.1016/j.fuel.2025.138118
M3 - Article
AN - SCOPUS:105044305367
SN - 0016-2361
VL - 412
JO - Fuel
JF - Fuel
M1 - 138118
ER -