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某民用飞机辅助动力装置进气受地面尾风影响研究

张子松 吕金华 蓝天 王晗 张强

张子松, 吕金华, 蓝天, 等. 某民用飞机辅助动力装置进气受地面尾风影响研究[J]. 航空动力学报, 2026, 41(3):20250390 doi: 10.13224/j.cnki.jasp.20250390
引用本文: 张子松, 吕金华, 蓝天, 等. 某民用飞机辅助动力装置进气受地面尾风影响研究[J]. 航空动力学报, 2026, 41(3):20250390 doi: 10.13224/j.cnki.jasp.20250390
ZHANG Zisong, LYU Jinhua, LAN Tian, et al. Study of ground tailwind impact on a civil auxiliary power unit inlet[J]. Journal of Aerospace Power, 2026, 41(3):20250390 doi: 10.13224/j.cnki.jasp.20250390
Citation: ZHANG Zisong, LYU Jinhua, LAN Tian, et al. Study of ground tailwind impact on a civil auxiliary power unit inlet[J]. Journal of Aerospace Power, 2026, 41(3):20250390 doi: 10.13224/j.cnki.jasp.20250390

某民用飞机辅助动力装置进气受地面尾风影响研究

doi: 10.13224/j.cnki.jasp.20250390
详细信息
    作者简介:

    张子松(1996-),男,工程师,硕士,主要从事民用飞机APU进排气设计与验证研究。E-mail:zhangzisong1@comac.cc

  • 中图分类号: V228

Study of ground tailwind impact on a civil auxiliary power unit inlet

  • 摘要:

    针对某民用飞机辅助动力装置(APU),采用数值模拟方法研究了5节到45节地面尾风条件下,进气旋流畸变指数和进气总压恢复系数的变化规律,并在25节地面尾风条件下开展试验对进气旋流畸变指数和进气总压恢复系数的变化规律进行了对比验证,数值模拟与试验吻合较好。研究结果表明:在地面尾风条件下,进气旋流畸变指数绝对值与APU负载呈弱正相关,进气总压恢复系数与APU负载呈负相关,APU高负载工况可以表征全APU负载范围内的最严酷情况;地面尾风会加剧负向进气旋流畸变和进气总压损失,地面尾风风速越大,进气旋流畸变指数绝对值越大,进气总压恢复系数越小,但均存在较大裕度,地面尾风非APU进气的严酷工况。

     

  • 图 1  APU进气系统机上位置

    Figure 1.  Location of APU inlet on aircraft

    图 2  AIP位置

    Figure 2.  Location of AIP

    图 3  网格数量与计算精度相关性验证

    Figure 3.  Correlation verification between mesh quantity and computational accuracy

    图 4  APU进气网格

    Figure 4.  Mesh of APU inlet

    图 5  AIP内探针分布示意图

    Figure 5.  Diagram of probe distribution at AIP

    图 6  进气旋流畸变示意图

    Figure 6.  Diagram of inlet swirl distortion

    图 7  无量纲进气旋流畸变指数随APU电负载变化曲线

    Figure 7.  Curve of dimensionless inlet swirl distortion index and APU electrical load

    图 8  无量纲进气旋流畸变指数随APU气负载变化曲线

    Figure 8.  Curve of dimensionless inlet swirl distortion index and APU pneumatic load

    图 9  APU高负载工况下无量纲进气旋流畸变指数随地面尾风风速变化曲线

    Figure 9.  Curve of dimensionless inlet swirl distortion index and ground tailwind velocity under high APU load condition

    图 10  APU高负载工况下AIP内马赫数分布

    Figure 10.  Mach number distribution at AIP under high APU load condition

    图 11  无量纲进气总压恢复系数随APU电负载变化曲线

    Figure 11.  Curve of dimensionless inlet total pressure recovery coefficient and APU electrical load

    图 12  无量纲进气总压恢复系数随APU气负载变化曲线

    Figure 12.  Curve of dimensionless inlet total pressure recovery coefficient and APU pneumatic load

    图 13  APU高负载工况下无量纲进气总压恢复系数随地面尾风风速变化曲线

    Figure 13.  Curve of dimensionless inlet total pressure recovery coefficient and ground tailwind velocity under high APU load condition

    图 14  AIP内传感器模型图

    Figure 14.  Model diagram of instrumentation at AIP

    图 15  AIP内传感器示意图

    Figure 15.  Diagram of instrumentation at AIP

    图 16  25 kt(46.3 km/h)地面尾风条件下无量纲进气旋流畸变指数计算值与试验值对比

    Figure 16.  Comparison between CFD result and test result of dimensionless inlet swirl distortion index under 25 kt (46.3 km/h) ground tailwind condition

    图 17  25 kt(46.3 km/h)地面尾风条件下无量纲进气总压恢复系数计算值与试验值对比

    Figure 17.  Comparison between CFD result and test result of dimensionless inlet total pressure coefficient under 25 kt (46.3 km/h) ground tailwind condition

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  • 收稿日期:  2025-08-20
  • 网络出版日期:  2025-12-24

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