Evaluation of a computational strategy to model transitory injection in rotating detonation combustors

Pierre Hellard, T. Gaillard, D. Davidenko
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Abstract

The efficiency of a Rotating Detonation Combustor (RDC) strongly depends on the transitory injection process of fresh reactants in the combustion chamber: poor propellant mixing induces losses of combustion efficiency and consequently low detonation speed and unstable detonation propagation. Moreover, dilution of fresh reactants with burnt gases during injection increases the deflagration losses and decreases the pressure gain provided by the detonation. Numerical simulation can help design an efficient injector to reduce these losses. In this study, the modeling strategy previously proposed by ONERA to simulate the transitory injection process is applied to two existing experimental RDC (from Nagoya University and TU Berlin) and one in-development RDC from ONERA. The computational domain represents only one injection element, convenient for a parametric study at low computational cost. A custom initial condition is used to model the expansion process of burnt gases past a detonation wave. The initial condition parameters are discussed and a method is proposed to correctly set them. The TU Berlin RDC is studied in more detail: mixing efficiency up to 70% is obtained, and 5% of deflagration losses are estimated according to the assumptions of the simulation. Based on the numerical results, detonation speed was evaluated at various distances from the injection plane taking into account the heterogeneities of the fresh mixture. The measured speed lies within the predicted range.
旋转爆轰燃烧室瞬态喷射模型的计算策略评价
旋转爆轰燃烧室(RDC)的效率很大程度上取决于燃烧室中新鲜反应物的短暂喷射过程:推进剂混合不良会导致燃烧效率的损失,从而导致爆速降低和爆轰传播不稳定。此外,在喷射过程中,新鲜反应物与燃烧气体的稀释增加了爆燃损失并降低了爆轰提供的压力增益。数值模拟可以帮助设计一个有效的注入器来减少这些损失。在本研究中,将ONERA先前提出的模拟瞬态注入过程的建模策略应用于两个现有的实验RDC(名古屋大学和柏林工业大学)和一个ONERA正在开发的RDC。计算域只表示一个注入单元,便于参数化研究,计算成本低。用一个自定义的初始条件来模拟燃烧气体经过爆震波时的膨胀过程。讨论了初始条件参数,并提出了一种正确设置初始条件参数的方法。对TU柏林RDC进行了更详细的研究,获得了高达70%的混合效率,并根据模拟的假设估计了5%的爆燃损失。基于数值计算结果,在考虑新鲜混合气非均质性的情况下,对距喷射面不同距离处的爆轰速度进行了计算。测得的速度在预测范围内。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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