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首页> 外文期刊>Combustion and Flame >Sooting limits of non-premixed counterflow ethylene/oxygen/inert flames using LII: Effects of flow strain rate and pressure (up to 30 atm)
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Sooting limits of non-premixed counterflow ethylene/oxygen/inert flames using LII: Effects of flow strain rate and pressure (up to 30 atm)

机译:使用LII的非预混合逆流乙烯/氧气/惰性火焰的烟ot极限:流动应变率和压力(最大30 atm)的影响

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摘要

An absolute irradiance-calibrated Laser Induced Incandescence (LII) technique and a standard particle image velocimetry (PIV) technique were utilized to collect quantitative data on soot volume fraction and corresponding flow strain rates of diluted ethylene-air non-premixed counterflow flames. Pressures up to 30 atm were explored with increasing dilution with nitrogen or helium to minimize flow strain limits at which incipient soot was detected and to maintain the flame in laminar mode. For weakly strained flames considered, the species and velocity boundary conditions were used to predict the gas-phase flame structure (e.g., temperature and major species). The predicted gas properties, together with soot particle temperature decay rate measured by two-color pyrometry were used in the LII heat transfer model to extract the effective soot particle size and particle number density. Estimates of global activation energy of incipient soot yield with pressure indicated a sudden change around a pressure of 20 atm, which may be attributed to a shift in soot nucleation and growth pathways.
机译:利用绝对辐照度校准的激光诱导白炽灯(LII)技术和标准粒子图像测速仪(PIV)技术收集有关烟尘体积分数和稀释的乙烯-空气非预混逆流火焰的相应流变速率的定量数据。通过增加氮气或氦气的稀释来探索最高30atm的压力,以最小化检测到初生烟灰的流动应变极限并将火焰保持在层流模式。对于考虑的弱应变火焰,使用种类和速度边界条件来预测气相火焰结构(例如温度和主要种类)。在LII传热模型中,将预测的气体特性以及通过双色高温法测量的烟灰颗粒温度衰减率一起用于提取有效的烟灰颗粒大小和颗粒数密度。初期烟灰产量随压力的总体活化能估计表明压力在20atm附近突然变化,这可能归因于烟灰成核和生长途径的转变。

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