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Measurement of the vapor-phase and liquid-phase fuel distributions downstream of an integrated flameholder in heated stream

机译:测量加热流中集成火焰保持器下游的气相和液相燃料分布

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摘要

Understanding the vapor-phase and liquid-phase fuel distributions are necessary for conducting combustion performance research, especially under high-temperature inflow or fuel conditions. In this study, we propose physical and optical quantitative methods for measuring the total fuel distribution in the dual-modal (after-burner/ramjet) combustor with an integrated flameholder. The vapor-phase equivalence ratio is deduced from the n-decane (C10H22) concentration (determined using an n-decane detector). Raw images of the fuel spray field are captured using a high-speed camera. The droplets Sauter mean diameter (SMD) can be obtained using an image processing technology. The liquid-phase equivalence ratio is further derived by analyzing the droplet size and distribution. Finally, the total equivalence ratio can be obtained by adding the equivalence ratios of the vapor and liquid phases. The vapor-phase and liquid-phase fuel distributions were measured on different cross-sections downstream of an integrated flameholder. The global equivalence ratio, inflow velocity, inflow temperature, and fuel temperature were set to empty set=0.3-0.6, V-1 = 50m/s, T-1 = 450K, and T-f = 373K, respectively. Further, the vapor- and liquid-phase equivalence ratios for the measurement points increased and decreased, respectively, with increasing flow distance. The flow characteristics and the vapor-phase fuel distribution were consistent behind the flameholder, confirming the rationality of deducing the vapor-phase fuel concentration from the n-decane concentration. The maximum error of the SMD obtained using the image processing technology was lower than the value reported in the literature (5.1%). Finally, the total equivalence ratio was almost conserved along the flow distance, proving the credibility of the proposed measurement methods.
机译:了解气相和液相燃料的分布对于进行燃烧性能研究是必要的,尤其是在高温流入或燃料条件下。在这项研究中,我们提出了物理和光学定量方法,用于测量带有集成式火焰保持器的双模式(后燃器/冲压喷气)燃烧器中的总燃料分布。由正癸烷(C10H22)浓度(使用正癸烷检测器确定)推导出汽相当量比。使用高速相机捕获燃油喷雾场的原始图像。液滴索特平均直径(SMD)可以使用图像处理技术获得。通过分析液滴尺寸和分布进一步推导出液相当量比。最后,总当量比可以通过将气相和液相的当量比相加而获得。在集成式火焰保持器下游的不同横截面上测量了气相和液相燃料分布。全局当量比,流入速度,流入温度和燃料温度分别设为空集= 0.3-0.6,V-1 = 50m / s,T-1 = 450K和T-f = 373K。此外,随着流动距离的增加,测量点的气相和液相当量比分别增大和减小。在火焰保持器后面的流动特性和气相燃料分布是一致的,这证实了从正癸烷浓度中减去气相燃料浓度的合理性。使用图像处理技术获得的SMD的最大误差低于文献报道的值(5.1%)。最终,总当量比沿流动距离几乎保持不变,证明了所提出测量方法的可靠性。

著录项

  • 来源
    《Fuel》 |2019年第1期|115808.1-115808.11|共11页
  • 作者单位

    Nanjing Univ Aeronaut & Astronaut, Coll Energy & Power Engn, Nanjing 210016, Jiangsu, Peoples R China;

    Nanjing Univ Aeronaut & Astronaut, Coll Energy & Power Engn, Nanjing 210016, Jiangsu, Peoples R China;

    Nanjing Univ Aeronaut & Astronaut, Coll Energy & Power Engn, Nanjing 210016, Jiangsu, Peoples R China;

  • 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

    Physical method; Optical method; Vapor-phase fuel; Liquid-phase fuel; Equivalence ratio; Sauter mean diameter (SMD);

    机译:物理方法;光学方法;气相燃料;液相燃料;等效率;燃烧器平均直径(SMD);

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