复合推进剂燃烧的数值模拟

F. Miccio
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引用次数: 16

摘要

提出了一种新颖的复合推进剂燃烧二维数值模型。它考虑了推进剂拓扑结构、五种化学反应、气体分子扩散和气相传热的详细描述。引入拓扑矩阵对偏微分方程进行数值求解。推进剂表面是通过扫描拓扑矩阵和执行一系列逻辑测试来确定的。得到了温度和摩尔分数在空间域中的二维分布。在粘结剂和氧化剂区域的平均表面温度以及线性燃烧速率也进行了评估。该模型可以预测不同推进剂拓扑结构下复合材料的时间演化,与文献报道的推进剂表面实验观测结果相吻合。推进剂的拓扑结构、压力、氧化剂-粘结剂质量比和特征尺寸对表面温度和线性燃烧速率有很大影响。它们随压力增大而增大,随质量比和特征尺寸的增大而减小,并呈渐近趋势。对于增强粘合剂和氧化剂之间混合的拓扑结构,特别是当氧化剂的细球形颗粒分散在粘合剂基体中时,预测高燃烧速率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical modeling of composite propellant combustion

An innovative 2-D numerical model of composite propellant combustion is proposed. It takes into acount the detailed description of the propellant topology, five chemical reactions, gas molecular diffusion, and heat transfer in the gas phase. Partial differential equations are numerically solved introducing a topological matrix. The propellant surface is determined by scanning the topological matrix and performing a series of logical tests. The bidimensional profiles of the temperature and molar fractions in the spatial domain are obtained. The average surface temperatures are also evaluated in both binder and oxidizer regions, as well as the linear burning rate. The model can predict the time evolution of the composite for different propellant topologies in agreement with experimental observations of the propellant surface reported in the literature. The propellant topology, the pressure, the oxidizer-binder mass ratio, and the characteristic dimension play a large role on surface temperatures and linear burning rate. They increase with pressure and decrease, with asymptotic tendency, with increase of both mass ratio and characteristic size. High burning rates are predicted for topologies that enhance the mixing betwen binder and oxidizer in particular when fine spherical particles of the oxidizer are dispersed within a binder matrix.

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