TY - JOUR
T1 - Combustion mechanism of thermoplastic HTPE propellants
T2 - effects of oxidizer particle size distribution
AU - Yao, Qifa
AU - Hou, Xudong
AU - Lv, Haohao
AU - Tao, Weibin
AU - Huo, Hang
AU - Luo, Wen
AU - Yang, Desheng
AU - Yang, Fanzhi
AU - Luo, Yunjun
AU - Xia, Min
N1 - Publisher Copyright:
Copyright © 2026. Published by Elsevier Ltd.
PY - 2026/5
Y1 - 2026/5
N2 - A critical gap exists in understanding the combustion mechanism of thermoplastic hydroxyl-terminated polyether (HTPE) propellants, particularly the effects of oxidizer particle size distribution. This study innovatively demonstrates that the solid-liquid transition of HTPE binder fundamentally shifts the ignition pathway to a novel condensed-phase mechanism driven by surface reactions and liquid-phase encapsulation. By partially replacing coarse oxidizers with fine particles, we reveal their dual role: accelerating pyrolysis and enhancing condensed-phase exothermicity, while inducing non-monotonic ignition delay through competition between gas release and heat accumulation. Combustion tests show concurrent increases in burning rate and pressure exponent; with 30% fine ammonium perchlorate (AP), the burning rate rises 34.92% to 10.2 mm/s and the pressure exponent increases from 0.337 to 0.452. Furthermore, fine oxidizers significantly promote aluminum agglomeration, yielding products with d₉₀ > 1300 μm. A combustion model is established, elucidating the unique coupling among binder transition, oxidizer decomposition, and Al agglomeration. This research broadens and refines the mechanistic understanding of solid propellant ignition and combustion. It provides both experimental evidence and a theoretical foundation for regulating the energy-release behavior of HTPE propellants.
AB - A critical gap exists in understanding the combustion mechanism of thermoplastic hydroxyl-terminated polyether (HTPE) propellants, particularly the effects of oxidizer particle size distribution. This study innovatively demonstrates that the solid-liquid transition of HTPE binder fundamentally shifts the ignition pathway to a novel condensed-phase mechanism driven by surface reactions and liquid-phase encapsulation. By partially replacing coarse oxidizers with fine particles, we reveal their dual role: accelerating pyrolysis and enhancing condensed-phase exothermicity, while inducing non-monotonic ignition delay through competition between gas release and heat accumulation. Combustion tests show concurrent increases in burning rate and pressure exponent; with 30% fine ammonium perchlorate (AP), the burning rate rises 34.92% to 10.2 mm/s and the pressure exponent increases from 0.337 to 0.452. Furthermore, fine oxidizers significantly promote aluminum agglomeration, yielding products with d₉₀ > 1300 μm. A combustion model is established, elucidating the unique coupling among binder transition, oxidizer decomposition, and Al agglomeration. This research broadens and refines the mechanistic understanding of solid propellant ignition and combustion. It provides both experimental evidence and a theoretical foundation for regulating the energy-release behavior of HTPE propellants.
KW - Combustion mechanism
KW - Fine oxidizer
KW - HTPE propellant
KW - Ignition-combustion performance
UR - https://www.scopus.com/pages/publications/105044299759
U2 - 10.1016/j.applthermaleng.2026.130587
DO - 10.1016/j.applthermaleng.2026.130587
M3 - Article
AN - SCOPUS:105044299759
SN - 1359-4311
VL - 295
JO - Applied Thermal Engineering
JF - Applied Thermal Engineering
M1 - 130587
ER -