Abstract
To predict the combustion characteristics of composite propellants in the absence of complete ini⁃ tial information,micro-CT technology was employed to obtain detailed 3D microstructural features and AP parti⁃ cle size distribution. A gas-solid coupled combustion model was established,and numerical simulations were conducted on representative two-dimensional slices. The result indicates significant variations in gas-phase tem⁃ perature distribution and burning rate at the same burning surface among different slices,with the maximum dif⁃ ference in temperature distortion index reaching 18.5% and the maximum difference in burning rate reaching 25.6% when the burning surface is located at y=0 μm. However,the average burning rate among different slices varied only by 0.07 cm/s. The average burning rate calculated using the random packing model differed from that obtained using micro-CT by no more than 1%,but micro-CT can effectively address the challenge of obtaining accurate AP particle size distribution information in random packing algorithms. This study combines high-preci⁃ sion measurement technology with numerical simulation,providing a novel approach for investigating the micro-combustion behavior of propellants.
| Translated title of the contribution | Numerical simulation of multimodal AP/HTPB composite propellant combustion based on realistic microstructure |
|---|---|
| Original language | Chinese (Traditional) |
| Article number | 202409023 |
| Journal | Tuijin Jishu/Journal of Propulsion Technology |
| Volume | 46 |
| Issue number | 10 |
| DOIs | |
| State | Published - 10 Oct 2025 |
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