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Journal of Zhejiang University SCIENCE A
ISSN 1673-565X(Print), 1862-1775(Online), Monthly
2025 Vol.26 No.11 P.1114-1126
Numerical investigation of the detonation wave characteristics of boron-based gel propellant
Abstract: In this study, we aimed to investigate the detonation wave characteristics of a gel propellant with high boron content. A steady-state detonation wave model of a boron-based gel propellant considering the latent heat of phase change was proposed. The detonation wave model was validated through a comparative analysis with shock tube experiments, which revealed that the maximum deviation in the calculated peak detonation pressure was 8% based on various initial pressures. Upon iterative calculations, the eigenvalue detonation velocity of the boron-based gel propellant under default working conditions was obtained as 1831.5 m/s. Subsequently, the refined model was used to study the structure and characteristics of the detonation wave flow field. The effects of incoming flow conditions, fuel parameters, and initial operating state on the detonation wave flow field of the propellant were investigated numerically. The findings revealed that stable and self-sustaining propagation of the detonation wave can be achieved only when its propagation velocity matches the eigenvalue detonation velocity. Note that an increase in initial temperature resulted in elevated gas phase temperature, density, detonation pressure, and particle phase temperature. An increase in boron content within the gel propellant increased the gas phase temperature but decreased the gas phase density and detonation pressure. At the Chapman-Jouguet (CJ) plane, the gas phase temperature and density, along with the particle phase temperature and detonation pressure, reached their peak values when the oxidizer reacted with the propellant in accordance with the stoichiometric ratio.
Key words: Boron-based gel propellant; Detonation flow field; Polyphase detonation; Detonation wave characteristics
机构:国防科技大学,空天科学学院,中国长沙,410073
目的:凝胶推进剂集成了液体推进剂和固体推进剂的优势,而添加硼等固体颗粒可以有效提高其能量密度,所以将凝胶推进剂应用于爆震燃烧具有广阔前景。本文旨在运用经过试验验证的数值仿真模型,分析含硼凝胶推进剂爆震波内流场结构及其影响因素,获得含硼凝胶推进剂爆震波特性,为凝胶推进剂应用于爆震燃烧提供理论支撑。
创新点:1.提出将含硼凝胶推进剂应用于爆震燃烧,分析了含硼凝胶推进剂的爆震过程;2.建立并验证了含硼凝胶推进剂爆震模型,获得了含硼凝胶推进剂爆震波特性。
方法:1.通过理论推导,分析含硼凝胶推进剂爆震波传播过程,并构建含硼凝胶推进剂爆震模型(图1,公式(1)~(7));2.通过试验分析,获得对应工况下含硼凝胶推进剂爆震试验值与模拟值的偏差,验证所建立模型的准确性(图4);3.通过仿真模拟,分析不同工况下含硼凝胶推进剂爆震波内流场参数分布情况,揭示其爆震波传播特性(图5~10)。
结论:1.本文研究条件下,含硼凝胶推进剂爆震波压强最高可达6.15 MPa,且特征值爆震速度可达1831.5 m/s;2.含硼凝胶推进剂爆震波仅在特征值爆震速度下实现自维持稳定传播;3.稳定传播爆震波声速面处的压强、气相温度与密度及颗粒相温度随来流温度的增加而下降,随推进剂硼含量的增加而上升,随反应当量比的增加先上升后下降。
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DOI:
10.1631/jzus.A2400520
CLC number:
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On-line Access:
2025-11-24
Received:
2024-11-08
Revision Accepted:
2025-03-24
Crosschecked:
2025-11-25