液体燃料冲压燃烧室中的相似性和结垢

IF 1.7 4区 工程技术 Q2 ENGINEERING, AEROSPACE
Elisabeth Riska, A. Gany
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引用次数: 0

摘要

液体燃料冲压发动机(LFRJ)由于燃烧所需的环境空气而表现出较高的比冲(与火箭相比),并依赖于可控质量流量下的可储存液体燃料。在本研究中,我们对LFRJ燃烧器进行了相似性分析,以便根据从不同规模的发动机获得的测试结果,确定可用于预测任何规模发动机性能的参数。对几何结构、传输现象、液体燃料动力学和化学进行了相似性分析。它定义了一系列导致压力-直径缩放的相似规则。使用Cantera化学动力学软件和混合化学喷气推进剂-8液体燃料反应机理、传输特性和热力学数据对缩放模型进行了评估。它将燃烧动力学模拟为完全搅拌反应器的燃烧动力学,以便通过不同停留时间的反应完成程度来确定压力和燃烧器尺寸对燃烧效率的影响。模拟证实了我们的比例预测,即对于化学动力学是影响燃烧效率的主要因素的操作条件,我们需要与燃烧器尺寸成反比的压力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Similarity and Scaling in a Liquid-Fuel Ramjet Combustor
Liquid-fuel ramjets (LFRJs) exhibit high specific impulse (compared to rockets) due to ambient air intake for combustion and rely on storable liquid fuel at controllable mass flow rates. In this investigation, we perform a similarity analysis of an LFRJ combustor in order to determine parameters that can be applied to predict the behavior of an engine of any magnitude on the basis of test results obtained from engines of different scales. Similarity analysis accounting for geometry, transport phenomena, liquid-fuel dynamics, and chemistry is conducted. It defines a series of similarity rules resulting in pressure–diameter scaling. The scaling model was evaluated using Cantera chemical kinetics software and the Hybrid Chemistry Jet Propellant-8 liquid-fuel reaction mechanism, transport properties, and thermodynamic data. It simulates the combustion dynamics as those of a perfectly stirred reactor in order to determine the effects of the pressure and combustor size on combustion efficiency via the degree of reaction completion at various residence times. The simulation confirmed our scaling prediction that, for operating conditions where chemical kinetics are the main factor affecting combustion efficiency, we require pressures that are inversely proportional to the combustor dimensions.
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来源期刊
Journal of Propulsion and Power
Journal of Propulsion and Power 工程技术-工程:宇航
CiteScore
4.20
自引率
21.10%
发文量
97
审稿时长
6.5 months
期刊介绍: This Journal is devoted to the advancement of the science and technology of aerospace propulsion and power through the dissemination of original archival papers contributing to advancements in airbreathing, electric, and advanced propulsion; solid and liquid rockets; fuels and propellants; power generation and conversion for aerospace vehicles; and the application of aerospace science and technology to terrestrial energy devices and systems. It is intended to provide readers of the Journal, with primary interests in propulsion and power, access to papers spanning the range from research through development to applications. Papers in these disciplines and the sciences of combustion, fluid mechanics, and solid mechanics as directly related to propulsion and power are solicited.
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