煤油燃料双模式 Scramjet 燃烧器闭环控制实验研究

IF 1 4区 工程技术 Q4 MECHANICS
P. X. Wu, W. Y. Song, G. Q. Jiao, Q. Fu, Y. Luo, J. P. Li
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引用次数: 0

摘要

在使用煤油燃料的双模式扰流喷气燃烧器实验中,使用电阻加热纯空气超音速燃烧试验设备进行了闭环控制试验,以壁压或压力比作为控制参数。结果表明,控制喷射点下游的壁压比控制喷射点附近的壁压对煤油流量变化的响应更快。闭环控制方案实现了各种参数误差小于 2% 的目标,证明了其可重复性和广泛的适用性。在氢气单一燃烧阶段,燃烧器以超音速燃烧模式运行,而在氢气和煤油混合燃烧阶段,燃烧器以亚音速燃烧模式运行。燃烧产生的背压影响隔离器入口,在煤油单燃烧阶段,燃烧器以亚音速燃烧模式运行。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Experimental Study on Closed-Loop Control in a Dual-mode Scramjet Combustor with Kerosene Fuel

Experimental Study on Closed-Loop Control in a Dual-mode Scramjet Combustor with Kerosene Fuel

In experiments on a dual-mode scramjet combustor utilizing kerosene fuel, closed-loop control tests are conducted using the resistance-heated pure air supersonic combustion test equipment with the wall pressure or the pressure ratio as controlled parameters. The results revealed faster response to changes in the kerosene flow rate when controlling the wall pressure downstream of the injection point as compared to the near injection point. The closed-loop control scheme achieved objectives with the error smaller than 2% for various parameters, demonstrating the repeatability and the broad applicability. During the hydrogen-single combustion phase, the combustor operated in the supersonic combustion mode, while during the mixed combustion phase of hydrogen and kerosene, the combustor operated in the subsonic combustion mode. The backpressure caused by combustion affects the isolator inlet, and during the kerosene-single combustion phase, the combustor operates in the subsonic combustion mode.

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来源期刊
Fluid Dynamics
Fluid Dynamics MECHANICS-PHYSICS, FLUIDS & PLASMAS
CiteScore
1.30
自引率
22.20%
发文量
61
审稿时长
6-12 weeks
期刊介绍: Fluid Dynamics is an international peer reviewed journal that publishes theoretical, computational, and experimental research on aeromechanics, hydrodynamics, plasma dynamics, underground hydrodynamics, and biomechanics of continuous media. Special attention is given to new trends developing at the leading edge of science, such as theory and application of multi-phase flows, chemically reactive flows, liquid and gas flows in electromagnetic fields, new hydrodynamical methods of increasing oil output, new approaches to the description of turbulent flows, etc.
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