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Transient flame-wall interactions: Experimental analysis using spectroscopic temperature and CO concentration measurements

机译:瞬态火焰壁相互作用:使用光谱温度和CO浓度测量进行实验分析

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摘要

This paper reports on simultaneous measurement of temperature and CO concentration in atmospheric methane/air jet flames impinging vertically against a water-cooled stainless-steel wall. Flame-wall interactions are investigated for statistically stationary flames and propagating flames, representing the recognized case of head-on quenching. Instantaneous temperatures are determined using nanosecond coherent anti-Stokes Raman spectroscopy of nitrogen (CARS); CO concentrations are measured using two-photon laser-induced fluorescence (LIF). Statistically stationary flames are investigated in a parametric study for equivalence ratios (0.83 < Φ < 1.2) and two turbulence intensities. Surface temperatures were measured using phosphor thermometry (TP). Extrapolation of the gas phase to the wall temperature allows estimation of the error in determining the wall position. For transient flame-wall interactions flames are initiated by a laser-spark 27 mm below the wall and propagate against the wall. Head-on flame quenching is studied in these cases for 0.83 < Φ < 1.0. Quenching distances and maximum wall heat fluxes are derived from the quantitatively measured gas phase temperatures. Conditional statistics are deduced from 200 individual quenching events and are analyzed for distance from the wall. Enthalpy losses of the flame to the wall severely impact the thermo-chemical state, causing significant deviation from stationary conditions. Spatial and temporal profiles of the transient flames are also investigated. The quenching layer is found to be in the range of 0.17-0.32 mm with corresponding dimensionless quenching distances between 0.38 and 0.68. During transient flame quenching the wall heat flux is enhanced by a factor of two and reaches values ranging from 0.24 to 0.48 MW/m~ 2. The normalized quenching heat flux is found to be 0.29 for lean and 0.52 for stoichiometric methane/air flames. These values are in agreement with experimental studies that used very different measurement techniques and with results from direct numerical simulations (DNS) reported in the literature.
机译:本文报道了同时测量垂直撞击水冷不锈钢壁的甲烷/空气喷射火焰中的温度和一氧化碳浓度的报告。针对统计上固定的火焰和传播的火焰,研究了火焰-壁相互作用,这是公认的正面淬火情况。瞬时温度是使用纳秒相干氮的反斯托克斯拉曼光谱法(CARS)确定的;使用两光子激光诱导的荧光(LIF)测量CO浓度。在参数研究中对统计上稳定的火焰进行了研究,以得出当量比(0.83 <Φ<1.2)和两种湍流强度。使用磷光体温度法(TP)测量表面温度。将气相外推到壁温可以估算出确定壁位置时的误差。对于短暂的火焰-壁相互作用,火焰是由位于壁下方27 mm的激光火花引发的,并在壁上传播。在这种情况下,针对0.83 <Φ<1.0进行了正面火焰淬火研究。淬火距离和最大壁热通量由定量测量的气相温度得出。从200个单独的淬火事件中得出条件统计数据,并分析与壁的距离。火焰到壁的焓损失严重影响了热化学状态,导致与静止状态的明显偏离。还研究了瞬态火焰的时空分布。发现淬火层在0.17-0.32mm的范围内,相应的无因次淬火距离在0.38至0.68之间。在瞬态火焰淬火过程中,壁的热通量增加了两倍,并且达到0.24到0.48 MW / m〜2的值。对于稀薄空气,化学计量甲烷/空气火焰的归一化淬火热通量为0.29。这些值与使用非常不同的测量技术的实验研究以及文献中报道的直接数值模拟(DNS)的结果一致。

著录项

  • 来源
    《Combustion and Flame》 |2014年第9期|2371-2386|共16页
  • 作者单位

    Fachgebiet Reaktive Stroemungen und Messtechnik, Center of Smart Interfaces, TU Darmstadt, Jovanka-Bontschits-Str. 2, 64287 Darmstadt, Germany;

    Fachgebiet Reaktive Stroemungen und Messtechnik, Center of Smart Interfaces, TU Darmstadt, Jovanka-Bontschits-Str. 2, 64287 Darmstadt, Germany;

    Fachgebiet Reaktive Stroemungen und Messtechnik, Center of Smart Interfaces, TU Darmstadt, Jovanka-Bontschits-Str. 2, 64287 Darmstadt, Germany;

    Fachgebiet Energie- und Kraftwerkstechnik, TU Darmstadt, Jovanka-Bontschits-Str. 2, 64287 Darmstadt, Germany;

    Fachgebiet Reaktive Stroemungen und Messtechnik, Center of Smart Interfaces, TU Darmstadt, Jovanka-Bontschits-Str. 2, 64287 Darmstadt, Germany;

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

    Flame-wall interaction; CARS; CO LIF;

    机译:火焰壁相互作用;汽车;CO LIF;

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