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Three-dimensional simulations of ignition of composite solid propellants

机译:复合固体推进剂着火的三维模拟

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This paper reports three-dimensional direct numerical simulations of ignition of a composite AP (ammonium perchlorate)-HTPB (hydroxyl-terminated polybutadiene) propellant subjected to a constant flux phi. The model includes solid heat transfer, gas-phase combustion with global kinetics and explicit description of propellant microstructure. Simulations show that ignition starts from AP particles because of primary AP/binder flame. Goo-go computations reveal an unreported intermediate regime between go and no-go with apparent quenching followed by a delayed ignition. This delay is linked to a slow flame spreading from localized scattered hot spots on surface. In accordance with experiments, ignition delays deviate from classical phi(-2) scaling for high flux and low pressure conditions. For intense flux levels, simulations attest deradiation extinction upon flux termination meaning that there is a critical flux above which ignition is no longer possible. The role of AP particle shape and size distribution on ignition delay is studied and predicted to be limited. The effect of propellant surface conditions is also investigated and can lead to substantial effects on ignition delay. Finally, semi-transparent propellants are also considered and low absorption materials result in longer ignition times, reduced phi-dependence, and absence of de radiation extinction. This work eventually highlights the importance of microstructure-based details in the physics of composite propellant ignition and opens the way towards better understanding of the role of AP particles. (C) 2016 The. Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:本文报告了在恒定通量phi下复合AP(高氯酸铵)-HTPB(羟基封端的聚丁二烯)推进剂着火的三维直接数值模拟。该模型包括固体传热,具有整体动力学的气相燃烧以及对推进剂微观结构的明确描述。模拟表明,由于主要的AP /粘合剂火焰,点火从AP颗粒开始。合格/不合格计算显示了合格和不合格之间未报告的中间状态,具有明显的淬火和延迟点火。这种延迟与表面上局部分散的热点传播的缓慢火焰有关。根据实验,在高通量和低压条件下,点火延迟不同于经典的phi(-2)缩放比例。对于高通量水平,模拟证明在通量终止时已消光,这意味着存在临界通量,超过该通量不再可能点火。研究了AP颗粒形状和尺寸分布对点火延迟的作用,并预测其作用是有限的。还研究了推进剂表面条件的影响,并可能对点火延迟产生重大影响。最后,还考虑了半透明推进剂,低吸收性材料会导致更长的点火时间,降低的phi依赖性以及无辐射消光。这项工作最终强调了基于微结构的细节在复合推进剂点火物理学中的重要性,并为更好地理解AP粒子的作用开辟了道路。 (C)2016年。燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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