推进用旋转爆轰燃烧室:一些基本、数值和实验方面的问题

Bruno Le Naour, D. Davidenko, T. Gaillard, P. Vidal
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摘要

基于恒压燃烧过程的推进系统在性能上已经达到成熟,接近其理论极限。开发更高效的运输系统需要技术突破,以满足当今减少环境影响和提高性能的要求。旋转爆轰发动机(RDE)是爆轰过程的一种具体实现,由于其热效率高、工作马赫数范围宽、燃烧时间短、因此紧凑性高,因此成为有希望的候选产品。在20世纪60年代首次提出概念证明之后,过去十年中,不同燃料、喷射技术、操作条件、尺寸和几何结构的实验室演示量显著增加。据报道,最近在日本和波兰分别由Kasahara教授(名古屋大学)和Wolanski教授(华沙大学)指导进行了两次火箭型rde飞行试验。现在需要工程方法来设计工业系统,其任务对效率和可靠性施加限制。后者可能使在实验室条件下开发的简化解决方案和配置失效。这需要理解与RDE相关的爆轰动力学的基本原理以及设备组件的相关优化。本文总结了作者在影响RDE效率和可靠性的基础问题和应用问题上的一些实验和数值工作。这些是爆轰反应区的结构,旋转体制下的爆轰动力学,注入配置,腔室几何形状和积分约束。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rotating detonation combustors for propulsion: Some fundamental, numerical and experimental aspects
Propulsion systems based on the constant-pressure combustion process have reached maturity in terms of performance, which is close to its theoretical limit. Technological breakthroughs are needed to develop more efficient transportation systems that meet today’s demands for reduced environmental impact and increased performance. The Rotating Detonation Engine (RDE), a specific implementation of the detonation process, appears today as a promising candidate due to its high thermal efficiency, wide operating Mach range, short combustion time and, thus, high compactness. Following the first proofs of concept presented in the 1960s, the last decade has seen a significant increase in laboratory demonstrators with different fuels, injection techniques, operating conditions, dimensions and geometric configurations. Recently, two flight tests of rocket-type RDEs have been reported in Japan and Poland, supervized by Professors Kasahara (Nagoya University) and Wolanski (Warsaw University), respectively. Engineering approaches are now required to design industrial systems whose missions impose efficiency and reliability constraints. The latter may render ineffective the simplified solutions and configurations developed under laboratory conditions. This requires understanding the fundamentals of detonation dynamics relevant to the RDE and the interrelated optimizations of the device components. This article summarizes some of the authors’ experimental and numerical work on fundamental and applied issues now considered to affect, individually or in combination, the efficiency and reliability of the RDE. These are the structure of the detonation reaction zone, the detonation dynamics for rotating regimes, the injection configurations, the chamber geometry, and the integration constraints.
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