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Simplified combustion modeling of composite propellants.

机译:复合推进剂的简化燃烧建模。

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摘要

A two-dimensional, steady state model of a burning composite propellant is developed to study the characteristics of the combustion process. The solid composite is a periodic sandwich unit comprised of two oxidizer laminates separated by a fuel binder layer. Included in the model are essential features for simulating composite propellant combustion: (1) a free surface boundary, (2) gas- and condensed-phase heat release distributions based on simplified chemical kinetics, and (3) an implicit surface regression rate (unique burning rate) determined by coupled gas-solid energy/species transport analysis. Comparisons of the model with experimental observations focus on surface geometry, flame structure and the burning rate for variations in pressure, particle size, binder width and propellant formulation. Experimentally observed trends for typical composite propellants are replicated. For example, the relative protrusion/recession of oxidizer and binder, recognized as an important feature of propellant surface topography, is correctly predicted. The simulation demonstrates the relation between gas-phase heat release and the heat-feedback driving the solid phase pyrolysis. This information is critical to predicting surface geometry and regression rate. Success was also achieved in predicting the experimental burning rate pressure sensitivity without the use of arbitrary non-integer reaction orders. The model provides a framework for future studies with more complex kinetic mechanisms, transient phenomena, and three-dimensional particulate propellants.
机译:建立了燃烧复合推进剂的二维稳态模型,以研究燃烧过程的特征。固体复合材料是一种周期性的三明治单元,由两个由燃料粘合剂层隔开的氧化剂层压板组成。该模型包括模拟复合推进剂燃烧的基本特征:(1)自由表面边界,(2)基于简化的化学动力学的气相和冷凝相放热分布,(3)隐式表面回归速率(唯一燃烧率)由气固结合/物种迁移分析确定。该模型与实验观察结果的比较着眼于表面几何形状,火焰结构和燃烧速率,以观察压力,粒径,粘合剂宽度和推进剂配方的变化。复制了实验观察到的典型复合推进剂趋势。例如,正确预测了氧化剂和粘合剂的相对突出/凹陷,这被认为是推进剂表面形貌的重要特征。模拟表明了气相放热与驱动固相热解的热反馈之间的关系。该信息对于预测表面几何形状和回归速率至关重要。在不使用任意非整数反应阶数的情况下,在预测实验燃烧速率压力敏感性方面也取得了成功。该模型为未来的研究提供了一个更复杂的动力学机制,瞬态现象和三维微粒推进剂的框架。

著录项

  • 作者

    Knott, Gregory Matthew.;

  • 作者单位

    University of Illinois at Urbana-Champaign.;

  • 授予单位 University of Illinois at Urbana-Champaign.;
  • 学科 Engineering Aerospace.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 228 p.
  • 总页数 228
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 航空、航天技术的研究与探索;
  • 关键词

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