Imaging pyrometry of metal fragments initially generated during the supersonic impact of reactive metal projectiles

D Dihia Idrici (Mechanical Engineering Department, McGill University 1 , 817 Sherbrooke St. W., Montreal, Quebec H3A 0C3,) S Samuel Goroshin (Mechanical Engineering Department, McGill University 1 , 817 Sherbrooke St. W., Montreal, Quebec H3A 0C3,) J Jason Loiseau (Chemistry and Chemistry Engineering Department, Royal Military College 2 , 17 General Crerar Crescent, Kingston, Ontario K7K 7B4,) D David L. Frost (Mechanical Engineering Department, McGill University 1 , 817 Sherbrooke St. W., Montreal, Quebec H3A 0C3,)

Abstract

The early stage of the impact-initiated reaction of supersonic cylindrical reactive metal projectiles (magnesium, aluminum, titanium, and zirconium) with an inert aluminum oxide target is investigated experimentally with impact velocities from 1.1 to 1.3 km/s. A three-color imaging pyrometer is used to obtain temperature maps of the condensed fragments generated during the first few microseconds following contact between the projectile and the target. Experiments conducted in inert and oxidizing atmospheres confirm that chemical reactions initiate readily upon contact between the projectile and the target. In oxidizing atmospheres, the fragment temperatures measured for each metal are, on average, below but near the respective adiabatic temperature in air, except for Zr which produced temperatures significantly below expectations. Only the particles shed at the interface between the projectile and the target visibly react with the oxygen in the ambient atmosphere. At the impact velocities under study, only a small fraction, on the order of a few percent, of the mass of the projectile is finely fragmented during the initial impact event.

Article Details

Volume / Issue Vol. 137, Issue 2
Published January 14, 2025
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (4)

D

Dihia Idrici

Mechanical Engineering Department, McGill University 1 , 817 Sherbrooke St. W., Montreal, Quebec H3A 0C3,

S

Samuel Goroshin

Mechanical Engineering Department, McGill University 1 , 817 Sherbrooke St. W., Montreal, Quebec H3A 0C3,

J

Jason Loiseau

Chemistry and Chemistry Engineering Department, Royal Military College 2 , 17 General Crerar Crescent, Kingston, Ontario K7K 7B4,

D

David L. Frost

Mechanical Engineering Department, McGill University 1 , 817 Sherbrooke St. W., Montreal, Quebec H3A 0C3,