Sf. Son et Mq. Brewster, UNSTEADY COMBUSTION OF HOMOGENEOUS ENERGETIC SOLIDS USING THE LASER-RECOIL METHOD, Combustion and flame, 100(1-2), 1995, pp. 283-291
The laser-recoil technique was used to study the unsteady burning of a
fine oxidizer AP-HTPB composite propellant (APF series) and a catalyz
ed double-base propellant (N5) at one atmosphere. Steady burning rate
and temperature measurements were performed and quasi-steady, homogene
ous, one-dimensional (QSHOD) theory implemented in order to interpret
the unsteady results. The frequency response of the fine oxidizer AP-H
TPB composite propellant exhibited two peaks that were shown to corres
pond to the condensed phase thermal layer and the condensed-phase reac
tion zone for the low- and high-frequency peaks, respectively. Several
other factors were considered and eliminated as possible causes of th
e two peaks. For the fine oxidizer AP-HTPB composite propellant, at th
ese conditions, the assumption of a quasi-steady surface reaction zone
was clearly violated at frequencies as low as 60 Hz. The effect of me
an radiant flux level on the frequency response was also investigated
for both APF and N5 propellants. N5 showed a pronounced steady-state b
urning rate plateau with radiant flux (similar to that for pressure) w
ith corresponding effects exhibited in the frequency response. The res
ults of this work show that detailed information can be obtained using
the laser-recoil method that clarifies the structure and dynamics of
burning solids. Further, the results suggest that more detailed models
that relax the quasi-steady surface reaction zone assumption should b
e developed.