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Numerical Modeling and Studies of Ignition Transients in End-Burning-Grain Solid Rocket Motors

机译:燃尽型固体火箭发动机点火瞬态的数值建模与研究

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摘要

The ignition-transient process in the end-burning-grain solid rocket motor has been studied. Simplified numerical models for 1) a mass-added igniter, 2) a grain-propellant combustion, 3) the opening of nozzle closure, and 4) the enhancement of heat transfer on the surface of the solid propellant have been developed. The individual influence of the input of igniters (energy strength and input time), the physical and chemical properties of propellants (critical burning temperature, burning rate, thermal conductivity, and initial temperature), and the breaking pressure of closure on the ignition transient have been systemically compared. The three stages of the ignition-transient process, namely, ignition induction, flame spreading, and chamber charging, have been successfully reproduced. The interior ballistics agrees with the ground-experimental data. The rapid generation of the initial flame and the creation of the "second peak" of the chamber pressure both contribute to a successful ignition. The results show that the factors that may accelerate the ignition transient do not always increase the second peak of the chamber pressure. The energy input of the ignition gas has greater influence on the ignition transient than do the enhancement of the heating and ignition process of the propellants. The breaking pressure of the nozzle closure has a very weak influence on the chamber pressure's second peak, but considerably increases the ignition overpressure of the initial flame.
机译:研究了端燃烧颗粒固体火箭发动机的点火瞬变过程。已开发出用于1)大量添加的点火器,2)谷物推进剂燃烧,3)喷嘴关闭的开口以及4)固体推进剂表面传热增强的简化数值模型。点火器输入(能量强度和输入时间),推进剂的物理和化学特性(临界燃烧温度,燃烧速率,热导率和初始温度)以及闭合对破裂瞬态的破坏压力的个体影响具有被系统地比较。点火瞬变过程的三个阶段,即点火感应,火焰蔓延和燃烧室充气,已成功复制。内部弹道与地面实验数据一致。初始火焰的快速产生和燃烧室压力的“第二峰值”的产生均有助于成功点火。结果表明,可能加速点火瞬变的因素并不总是会增加燃烧室压力的第二个峰值。与增强推进剂的加热和点火过程相比,点火气体的能量输入对点火瞬变的影响更大。喷嘴盖的破裂压力对燃烧室压力的第二个峰值影响很小,但会大大增加初始火焰的点火超压。

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  • 来源
    《Journal of propulsion and power》 |2016年第6期|1333-1342|共10页
  • 作者单位

    Tsinghua University, Beijing 100084, People's Republic of China;

    Tsinghua University, Beijing 100084, People's Republic of China;

    Xi'an Modern Control Technology Research Institute, Xi'an 710065, People's Republic of China;

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