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航空替代燃料燃烧特性及碳烟生成数值模拟

杨晓军 郑佳伦 杨志衡 刘文博

杨晓军, 郑佳伦, 杨志衡, 等. 航空替代燃料燃烧特性及碳烟生成数值模拟[J]. 航空动力学报, 2023, 38(10):2317-2327 doi: 10.13224/j.cnki.jasp.20210374
引用本文: 杨晓军, 郑佳伦, 杨志衡, 等. 航空替代燃料燃烧特性及碳烟生成数值模拟[J]. 航空动力学报, 2023, 38(10):2317-2327 doi: 10.13224/j.cnki.jasp.20210374
YANG Xiaojun, ZHENG Jialun, YANG Zhiheng, et al. Numerical simulation of combustion characteristics and soot generation of aviation alternative fuel[J]. Journal of Aerospace Power, 2023, 38(10):2317-2327 doi: 10.13224/j.cnki.jasp.20210374
Citation: YANG Xiaojun, ZHENG Jialun, YANG Zhiheng, et al. Numerical simulation of combustion characteristics and soot generation of aviation alternative fuel[J]. Journal of Aerospace Power, 2023, 38(10):2317-2327 doi: 10.13224/j.cnki.jasp.20210374

航空替代燃料燃烧特性及碳烟生成数值模拟

doi: 10.13224/j.cnki.jasp.20210374
基金项目: 中国民航大学中央高校基本科研业务费项目(3122019187)
详细信息
    作者简介:

    杨晓军(1980-),男,教授、硕士生导师,博士,主要从事航空环境保护与节能减排研究。E-mail:xiaojunyoung@hotmail

    通讯作者:

    郑佳伦(1998-),男,硕士生,主要从事航空发动机燃烧室污染物生成模拟研究。E-mail:zhengjialun@foxmail.com

  • 中图分类号: V312.1

Numerical simulation of combustion characteristics and soot generation of aviation alternative fuel

  • 摘要:

    对一种生物燃油(FAME)和传统航油(Jet-A)掺混后的碳烟生成情况进行了研究,燃烧室采用贫油预混预蒸发(lean premixed prevaporized,LPP)低污染燃烧室设计,应用ANSYS fluent软件计算分析了在地面慢车,起飞工况下燃烧室内的冷态流场,热态燃烧和碳烟生成三方面内容。结果表明:FAME燃油的添加有助于降低燃烧室内生成的碳烟数量和质量,但会生成更为精细的碳烟颗粒。随着FAME掺混比的增加,燃烧场温度、碳烟前驱体含量的下降引起了碳烟生成速率的降低,主燃区中心氧化速率的上升使得碳烟初始颗粒的粒径更小,进而最终生成更为精细的碳烟颗粒。FAME燃油的添加能大幅降低慢车工况下的碳烟排放,但对起飞工况下碳烟排放的降低并不显著。

     

  • 图 1  燃烧室几何模型

    Figure 1.  Combustor geometry model

    图 2  燃烧室网格

    Figure 2.  Combustor mesh

    图 3  Z=25 mm处的截面速度分布

    Figure 3.  Cross-sectional velocity distribution of Z=25 mm

    图 4  冷态流线图(工况1)

    Figure 4.  Stream line of central section (condition 1)

    图 5  冷态流线图(工况2)

    Figure 5.  Stream line of central section (condition 2)

    图 6  头部气流速度比较

    Figure 6.  Head axial velocity contour comparison

    图 7  轴向温度云图(工况1)

    Figure 7.  Axial temperature contour (condition 1)

    图 8  轴向温度云图(工况2)

    Figure 8.  Axial temperature contour (condition 2)

    图 9  碳烟质量(Jet-A数据标准化)

    Figure 9.  Soot mass (normalized by Jet-A date)

    图 10  颗粒物数量(Jet-A数据标准化)

    Figure 10.  Particle number (normalized by Jet-A date)

    图 11  颗粒物尺寸(Jet-A数据标准化)

    Figure 11.  Particle size (normalized by Jet-A date)

    图 12  场内最高温度的变化情况

    Figure 12.  Variation of maximum temperature in the field

    图 13  乙炔最高及平均质量分数

    Figure 13.  Maximum and average acetylene mass fraction

    图 14  碳烟质量分数分布云图

    Figure 14.  Soot mass fraction distribution contour

    图 15  乙炔质量分数分布云图

    Figure 15.  Acetylene mass fraction distribution contour

    图 16  碳烟表面生长速率分布云图

    Figure 16.  Rate of soot growth contour

    图 17  碳烟氧化速率分布云图

    Figure 17.  Rate of soot oxidation contour

    图 18  碳烟氧化速率曲线(工况1)

    Figure 18.  Rate of soot oxidation (condition 1)

    图 19  初始颗粒粒径与凝聚体粒径间的关系曲线

    Figure 19.  Correlation between primary particle size and aggregate size

    表  1  冷却小孔轴向排列

    Table  1.   Axial arrangement of cooling holes

    排数间距
    0~39
    3~117
    11~176
    17~237
    23~2810
    下载: 导出CSV

    表  2  燃油化学组成

    Table  2.   Chemical composition of experiment fuels

    燃油类型质量分数/%芳烃
    体积分数/%
    Jet-A13.9018.5
    FAME12.015.80
    下载: 导出CSV

    表  3  燃油代表性物理化学性质

    Table  3.   Representative physicochemical fuel properties

    燃油类型密度/(g/cm3热值/(MJ/kg)沸点/K
    Jet-A0.79743.5250
    FAME0.86436.9294
    下载: 导出CSV

    表  4  网格无关性验证对比

    Table  4.   Validation mesh comparison

    网格数量/106
    110.5
    214.1
    316.5
    下载: 导出CSV

    表  5  计算工况

    Table  5.   Working condition

    参数设置工况1工况2
    进口总温/K515.86839
    进口总压/kPa5053250
    空气流量/(kg/s)0.55862.8082
    燃油流量/(kg/s)0.00810.0739
    油气比0.01450.0263
    副模当量比1.410.31
    下载: 导出CSV
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  • 收稿日期:  2021-07-15
  • 网络出版日期:  2023-08-22

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