论文标题

建模旋转爆炸发动机的热力学趋势

Modeling Thermodynamic Trends of Rotating Detonation Engines

论文作者

Koch, James, Kutz, J. Nathan

论文摘要

旋转爆炸引擎(RDE)的标志性特征是许多共旋转相干燃烧波的形成。波拓扑的工程意义尚未得到充分理解或量化,尤其是在燃烧器几何形状,推进剂化学以及注入和混合方案的参数变化方面。在本文中,开发和介绍了将RDE的时间和空间尺度与工程性能指标相关的建模框架。该模型建立在背压 - 不敏感性和名义上cho的气态推进剂注入的假设下。一个维度,可压缩流体流的欧拉方程适用于沿环形型旋转爆炸发动机的周长的燃烧波动力学建模。这些适应性提供了必要的质量和能量输入和输出通道,以塑造波浪前部和衰减的尾巴。相关的注射,混合,燃烧和排气的单位过程都是成功的波传播所需的代表性时间尺度。我们发现,这些时间尺度的分离或缺乏,包括系统的行为,包括波浪共同传播和反向传播以及这些制度和波数计数之间的分叉。此外,由于没有强加波拓扑,该模型输出可用于估算封闭轨迹的净提供的机械工作输出和热力学效率,并通过压力 - 体积和温度 - 渗透空间。研究了这些指标的RDE单位物理过程的特征量表的变化。

The formation of a number of co- and counter-rotating coherent combustion wave fronts is the hallmark feature of the Rotating Detonation Engine (RDE). The engineering implications of wave topology are not well understood nor quantified, especially with respect to parametric changes in combustor geometry, propellant chemistry, and injection and mixing schemes. In this article, a modeling framework that relates the time and spacial scales of the RDE to engineering performance metrics is developed and presented. The model is built under assumptions of backpressure-insensitivity and nominally choked gaseous propellant injection. The Euler equations of inviscid, compressible fluid flow in one dimension are adapted to model the combustion wave dynamics along the circumference of an annular-type rotating detonation engine. These adaptations provide the necessary mass and energy input and output channels to shape the traveling wave fronts and decaying tails. The associated unit processes of injection, mixing, combustion, and exhaust are all assigned representative time scales necessary for successful wave propagation. We find that the separation, or lack of, these time scales are responsible for the behavior of the system, including wave co- and counter-propagation and bifurcations between these regimes and wave counts. Furthermore, as there is no imposition of wave topology, the model output is used to estimate the net available mechanical work output and thermodynamic efficiency from the closed trajectories through pressure-volume and temperature-entropy spaces. These metrics are investigated with respect to variation in the characteristic scales for the RDE unit physical processes.

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