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Influence of iron oxide on thermal decomposition behavior and burning characteristics of ammonium nitrate/ammonium perchlorate-based composite propellants.

Authors :
Kohga, Makoto
Togo, Shimpei
Source :
Combustion & Flame. Jun2018, Vol. 192, p10-24. 15p.
Publication Year :
2018

Abstract

The thermal decomposition behavior and burning characteristics of ammonium nitrate(AN)/ammonium perchlorate(AP) propellants supplemented with Fe 2 O 3 were investigated. Based on these data, the performance differences between the propellants with Fe 2 O 3 and those without Fe 2 O 3 were investigated to reveal the influence of Fe 2 O 3 on the thermal decomposition behavior and burning characteristics of AN/AP-based composite propellants. TG-DTA showed the peak temperature and temperature range of thermal decomposition due to AN decomposition to be independent of the presence of Fe 2 O 3 . The peak and the offset temperature of thermal decomposition due to AP decomposition decreased owing to the addition of Fe 2 O 3 , while the onset temperature did not vary. The burning rate of the AN/AP propellant was increased by the addition of Fe 2 O 3 ; the effect of Fe 2 O 3 on increasing the burning rate was influenced by the type of oxidizer, AP content in the oxidizer ( ξ ), and AP size. Furthermore, Fe 2 O 3 allowed the suppression of the remarkable heterogeneity of the combustion wave of the AN/AP propellant without Fe 2 O 3 . The ignitability of the AN/AP propellant was improved by the addition of Fe 2 O 3 , except for the propellant with a ξ of 0.4. The cause of depressed ignitability by the addition of Fe 2 O 3 for the propellant with a ξ of 0.4 is discussed based on thermogravimetry-differential thermal analysis, the visual observations of the unignited propellant surfaces, and the decomposition phenomena of the propellants using a high-temperature observation equipment. A large quantity of AN remained on the surface of the unignited propellant at 0.5 MPa. The cause of the depressed ignitability is that AN, AP, and HTPB do not simultaneously decompose and as a result AN remains on the burning surface. Thus, the burning surface of AN did not regress simultaneously with the burning surface of the AP-filled region, the matrix of AP, and HTPB. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00102180
Volume :
192
Database :
Academic Search Index
Journal :
Combustion & Flame
Publication Type :
Academic Journal
Accession number :
130074828
Full Text :
https://doi.org/10.1016/j.combustflame.2018.01.040