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Effect of geometric parameters on the drag of the cavity flameholder based on the variance analysis method

机译:基于方差分析的几何参数对型腔火焰保持器阻力的影响

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摘要

Wall cavities have been widely used as flameholders in scramjet engines to prolong the residence time of the fuel and the air in supersonic flow. These devices improve the combustion efficiency of the scramjet combustor, and also impose additional drag on the engine. In this paper, the two-dimensional coupled implicit NS equations, the standard k-s turbulence model and the finite-rate/eddy-dissipation reaction model have been applied to simulate numerically the combustion flow field of a hydrogen-fueled scramjet combustor with a cavity flameholder. The effects of the geometric parameters, i.e. the upstream depth, the ratio of the length to the upstream depth, the ratio of the downstream to the upstream depth and the swept angle, on the drag force of the cavity flameholder for a heated flow are investigated using the variance analysis method. The obtained results show that the variance analysis method can be used to accurately analyze the effects of the geometric parameters on the performance of the cavity flameholder. The effects of the ratios of the length to the upstream depth and of the downstream to the upstream depth on the drag force of the cavity flameholder are substantial, and they must be foremost when considering the design of the cavity flameholder. At the same time, when the downstream depth is equal to the upstream depth, the drag force of the cavity flameholder is the largest, and on increasing the ratio of the length to the upstream depth, the drag force on the cavity flameholder varies from negative to positive. A cavity flameholder with a large ratio of the length to the upstream depth brings large drag force in the combustion flow field.
机译:壁腔已被广泛用作超燃发动机中的火焰保持器,以延长燃料和空气在超音速流中的停留时间。这些设备提高了超燃冲压燃烧器的燃烧效率,并且还给发动机带来了额外的阻力。本文采用二维耦合隐式NS方程,标准ks湍流模型和有限速率/涡流消散反应模型对带有腔火焰保持器的氢燃料超燃式燃烧器的燃烧流场进行了数值模拟。 。研究了几何参数,即上游深度,长度与上游深度之比,下游与上游深度之比以及后掠角对腔内火焰保持器热流阻力的影响。使用方差分析方法。获得的结果表明,方差分析方法可用于准确分析几何参数对型腔火焰保持器性能的影响。长度与上游深度之比和下游与上游深度之比对空腔火焰保持器的阻力的影响是很大的,并且在考虑空腔火焰保持器的设计时,它们必须是最重要的。同时,当下游深度等于上游深度时,型腔火焰保持器的拖曳力最大,而随着长度与上游深度之比的增加,对型腔火焰保持器的拖曳力从负变化。积极。长度与上游深度之比大的型腔火焰保持器在燃烧流场中带来很大的阻力。

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  • 来源
    《Aerospace science and technology》 |2012年第1期|p.24-30|共7页
  • 作者单位

    College of Aerospace and Materials Engineering, National University of Defense Technology, Changsha, Hunan 410073, China,Centre for CFD, School of Process, Environmental and Materials Engineering, University of Leeds, 132 9JT, UK,Center of Hypersonic Propulsion;

    Centre for CFD, School of Process, Environmental and Materials Engineering, University of Leeds, 132 9JT, UK,Centre for Computational Fluid Dynamics;

    Centre for CFD, School of Process, Environmental and Materials Engineering, University of Leeds, 132 9JT, UK,Centre for Computational Fluid Dynamics;

    Centre for CFD, School of Process, Environmental and Materials Engineering, University of Leeds, 132 9JT, UK,Centre for Computational Fluid Dynamics;

    College of Aerospace and Materials Engineering, National University of Defense Technology, Changsha, Hunan 410073, China,Center of Hypersonic Propulsion;

    College of Aerospace and Materials Engineering, National University of Defense Technology, Changsha, Hunan 410073, China,Center of Hypersonic Propulsion;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    aerospace propulsion system; hypersonic airbreathing engine; variance analysis; cavity flameholder; drag force; hydrogen;

    机译:航空航天推进系统;高超音速呼吸引擎;方差分析;腔式火焰保持器;阻力氢;
  • 入库时间 2022-08-18 02:35:09

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