Combustion characteristics and mechanisms of highly ignition-sensitive Al-Si-Li/PTFE energetic materials in low-pressure environments

As aerospace technologies advance globally, the application fields of energetic materials have expanded from ground and near-ground levels to high altitudes. The decrease in ambient pressure associated with increasing altitude significantly affects the ignition reliability and stable combustion of energetic materials. In this study, an Al-Si-Li/PTFE energetic material system was prepared via a film-coating process, and its ignition reliability and combustion characteristics under low-pressure environments were investigated. Its potential combustion mechanisms were analyzed using characterization techniques including TG-DSC, SEM, XRD, and XPS. The results demonstrate that the high-activity characteristic of Li effectively improves the ignition sensitivity of the alloy fuel. Compared to Al/PTFE and Al-Si/PTFE energetic systems, the ignition success rates of Al-Li/PTFE and Al-Si-Li/PTFE energetic systems reached 90% and 100%, respectively, under identical external stimulus conditions. At a pressure of 1 kPa, the mass ratio of the Al-Si-Li alloy to PTFE is also a critical factor affecting the combustion characteristics of the system. Compared with other Al-Si-Li/PTFE formulations, the sample with a 6:4 mass ratio exhibited the highest combustion temperature (1191 °C) and the largest flame area. Furthermore, ambient pressure significantly influences the combustion temperature and burning rate of the Al-Si-Li/PTFE energetic system. Under a 0.5 kPa condition, the system exhibited the lowest combustion temperature (982 °C) and the slowest linear burning rate (< 0.1854 cm/s). In low-pressure environments, the Al-Si-Li/PTFE energetic material system enhances its combustion performance primarily through solid-solid phase reactions, showing promising application potential in energetic material fields such as propellants, pyrotechnics, and thermites.

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Publication Details

Journal
Materials Science and Engineering B
Published
2026-10-07
DOI
https://doi.org/10.1016/j.mseb.2026.119898
Primary Topic
Energetic Materials and Combustion
Type
article
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article

Combustion characteristics and mechanisms of highly ignition-sensitive Al-Si-Li/PTFE energetic materials in low-pressure environments

熊德浩, 郭凯歌, Yuyang Zeng, Yikai Wang et al.
Materials Science and Engineering B
Energetic Materials and Combustion
article

Combustion characteristics and mechanisms of highly ignition-sensitive Al-Si-Li/PTFE energetic materials in low-pressure environments

熊德浩, 郭凯歌, Yuyang Zeng, Yikai Wang, Qian Huang, Chengchen Zhang, Wenlong Ren, Mingxing Zhang, Chenguang Zhu
article en

Abstract

As aerospace technologies advance globally, the application fields of energetic materials have expanded from ground and near-ground levels to high altitudes. The decrease in ambient pressure associated with increasing altitude significantly affects the ignition reliability and stable combustion of energetic materials. In this study, an Al-Si-Li/PTFE energetic material system was prepared via a film-coating process, and its ignition reliability and combustion characteristics under low-pressure environments were investigated. Its potential combustion mechanisms were analyzed using characterization techniques including TG-DSC, SEM, XRD, and XPS. The results demonstrate that the high-activity characteristic of Li effectively improves the ignition sensitivity of the alloy fuel. Compared to Al/PTFE and Al-Si/PTFE energetic systems, the ignition success rates of Al-Li/PTFE and Al-Si-Li/PTFE energetic systems reached 90% and 100%, respectively, under identical external stimulus conditions. At a pressure of 1 kPa, the mass ratio of the Al-Si-Li alloy to PTFE is also a critical factor affecting the combustion characteristics of the system. Compared with other Al-Si-Li/PTFE formulations, the sample with a 6:4 mass ratio exhibited the highest combustion temperature (1191 °C) and the largest flame area. Furthermore, ambient pressure significantly influences the combustion temperature and burning rate of the Al-Si-Li/PTFE energetic system. Under a 0.5 kPa condition, the system exhibited the lowest combustion temperature (982 °C) and the slowest linear burning rate (< 0.1854 cm/s). In low-pressure environments, the Al-Si-Li/PTFE energetic material system enhances its combustion performance primarily through solid-solid phase reactions, showing promising application potential in energetic material fields such as propellants, pyrotechnics, and thermites.

Materials Science and Engineering BVol. 335
Nanjing University of Science and Technology (CN)
Openalex Percentile: Top 22%
Energetic Materials and Combustion
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