喷管几何形状对脉冲爆震发动机性能影响的数值研究

M. Amin, Hasan Z. Rouf, J. Cambier
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引用次数: 3

摘要

本文对不同喷嘴形状和工作条件对脉冲爆震发动机性能的影响进行了数值研究。利用基于Java的自动计算流体力学(CFD)软件,建立了空间上二阶精度、时间上一阶精度的非定常数值模拟模型。采用一维和二维瞬态CFD模型系统地研究了PDE在不同工况下的推进性能特性。本文介绍了喷嘴几何形状对通用PDE性能特性影响的初步研究。结果表明,能够适应循环时间和环境压力的膨胀喷嘴是优化PDE性能的理想选择。增加一个直的、发散的或收敛的喷嘴提高了性能。然而,我们观察到,为了提高性能,发散式喷管的出口面积存在一个最优值。在较低的环境压力下,增加喷嘴增加了PDE管的比脉冲。还可以看出,在低环境压力下,发散喷嘴比收敛-发散喷嘴更有效。研究表明,增加反应燃料混合物的体积对PDE性能有负面影响。结果表明,反应燃料混合物减少25%,导致比冲值增加约18%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical investigation on the effects of nozzle geometry on the performance of a pulse detonation engine
A numerical study is presented on the effects of various nozzle geometries and operating conditions on the performance of a Pulse Detonation Engine (PDE). An unsteady numerical simulation model, which is second order accurate in space and first order accurate in time, using an automated Java based computational fluid dynamics (CFD) software is presented. One- and two-dimensional transient CFD models were employed in a systematic manner to study the propulsive performance characteristics of the PDE under different operating conditions. Preliminary studies of the effects of nozzle geometry on the performance characteristics of a generic PDE are presented. The results indicate that an expanding nozzle, capable of adapting with the cycle time and the ambient pressure, is very suitable for optimizing the PDE performance. Addition of a straight, diverging or converging nozzle improves the performance. However, it is observed that there is an optimum value of the exit area of a divergent nozzle for performance improvement. At low ambient pressure addition of a nozzle increases the specific impulse of the PDE tube. It is also seen that a diverging nozzle is more effective than a converging-diverging nozzle at low ambient pressure. The study indicates that increased volume of the reacting fuel mixture has a negative effect on the PDE performance. The results show that a 25% reduction of the reacting fuel mixture leads to approximately 18% increase in the value of the specific impulse.
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