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基于滑流管模型的涵道螺旋桨快速计算与优化

孙蓬勃 周洲

孙蓬勃, 周洲. 基于滑流管模型的涵道螺旋桨快速计算与优化[J]. 航空动力学报, 2024, 39(12):20220665 doi: 10.13224/j.cnki.jasp.20220665
引用本文: 孙蓬勃, 周洲. 基于滑流管模型的涵道螺旋桨快速计算与优化[J]. 航空动力学报, 2024, 39(12):20220665 doi: 10.13224/j.cnki.jasp.20220665
SUN Pengbo, ZHOU Zhou. Fast calculation and optimization of ducted propeller based on slipstream tube model[J]. Journal of Aerospace Power, 2024, 39(12):20220665 doi: 10.13224/j.cnki.jasp.20220665
Citation: SUN Pengbo, ZHOU Zhou. Fast calculation and optimization of ducted propeller based on slipstream tube model[J]. Journal of Aerospace Power, 2024, 39(12):20220665 doi: 10.13224/j.cnki.jasp.20220665

基于滑流管模型的涵道螺旋桨快速计算与优化

doi: 10.13224/j.cnki.jasp.20220665
基金项目: 陕西省自然科学基础研究计划(2022JQ-060)
详细信息
    作者简介:

    孙蓬勃(1996-),男,博士生,主要研究方向为分布式涵道推进飞行器气动设计

    通讯作者:

    周洲(1966-),女,教授、博士生导师,博士,主要从事无人机设计研究。E-mail:zhouzhou@nwpu.edu.cn

  • 中图分类号: V211

Fast calculation and optimization of ducted propeller based on slipstream tube model

  • 摘要:

    基于CFD的涵道螺旋桨计算方法在涉及迭代计算优化等工作时,所需计算资源较大。为降低此类工作在初步优化设计时的计算代价,发展了一种将面元法与螺旋桨滑流管尾迹模型耦合的涵道螺旋桨快速计算方法,并基于此方法开展了涵道风扇壁面外形快速优化设计。结果表明:发展的方法有效降低了计算资源需求,同时保留了较高的精度;发展的方法同样可应用于非圆进出口的涵道风扇快速计算;基于CFD的流场分析表明:优化后的涵道喷口扩张角减小,降低了喷口流动的逆压梯度,消除了原本存在的流动分离,并且降低了桨盘入流速度从而提高了其效率,使得涵道风扇整体推进效率提高了20.7%,说明了此套涵道风扇初步快速优化方法在寻找优化方向上的有效性。

     

  • 图 1  涵道面元模型

    Figure 1.  Panel element model of duct

    图 2  螺旋桨升力线尾迹

    Figure 2.  Propeller lifting line wake

    图 3  滑流管模型

    Figure 3.  Slipstream tube model

    图 4  切向涡诱导速度示意

    Figure 4.  Induced velocity due to the tangential vortex

    图 5  轴向涡诱导速度示意

    Figure 5.  Induced velocity due to the axial vortex

    图 6  转子尾迹分段

    Figure 6.  Segment of rotor slipstream

    图 7  耦合计算框架

    Figure 7.  Coupled computing framework

    图 8  螺旋桨叶素速度三角形

    Figure 8.  Propeller element velocity triangle

    图 9  NASA涵道风扇壁面外形

    Figure 9.  Wall shape of NASA ducted fan

    图 10  方涵道外形(单位:mm)

    Figure 10.  Shape of square duct (unit: mm)

    图 11  变形后的涵内滑流管尾迹外形

    Figure 11.  Transformed wake shape of slipstream tube inside the duct

    图 12  涵道壁剖面压力分布

    Figure 12.  Pressure distribution of profile of duct wall

    图 13  基准圆涵道风扇外形(单位:mm)

    Figure 13.  Shape of base circle ducted fan (unit: mm)

    图 14  基准涵道壁剖面外形与控制点

    Figure 14.  Shape of base duct profile and control points

    图 15  优化流程

    Figure 15.  Optimization process

    图 16  涵道剖面外形优化结果

    Figure 16.  Optimization result of duct profile shape

    图 17  涵道风扇截面流场

    Figure 17.  Flow field of section of ducted fan

    图 18  涵道壁压力分布

    Figure 18.  Pressure distribution of duct wall

    图 19  中间径向位置截面叶素局部流场

    Figure 19.  Local flow field of blade element in the middle radial section

    表  1  涵道螺旋桨快速计算,CFD计算与实验测量结果

    Table  1.   Quick calculation, CFD calculation and experimental measurement results of ducted fan

    参数 PM MRF MSM MSM-Euler EXP
    总拉力/N 87.4 77 79.3 86.9 80
    总拉力误差/% 9.25 3.75 0.86 7.73
    桨拉力/N 62.6 55.4 56.4 55.4 60
    桨拉力误差/% 4.33 7.67 6.0 7.67
    转矩/(N·m) 4.63 4.56 4.22 4.17 4.58
    转矩误差/% 1.09 0.44 7.86 8.95
    耗时/h 0.3 7 2.1 1.1
    内存占用/GB 1.2 20 3.9 3.9
    下载: 导出CSV

    表  2  涵道风扇快速计算与CFD计算结果

    Table  2.   Quick calculation and CFD calculation results of ducted fan

    参数 PM CFD时均 MSM MSM-Euler
    总拉力/N 14.62 11.17 10.73 12.52
    桨拉力/N 11.77 12.08 11.62 11.72
    转矩/(N·m) 0.823 0.821 0.831 0.819
    下载: 导出CSV

    表  3  优化外形CFD计算结果

    Table  3.   CFD calculation results of optimized shape

    参数 base opt
    总拉力/N 7.27 9.76
    桨盘拉力/N 8.62 10.34
    转矩/(N·m) 0.66 0.729
    轴功率/W 759 839
    桨盘力效/(N/W) 0.0113 0.0124
    推进效率 0.29 0.35
    下载: 导出CSV
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  • 收稿日期:  2022-09-06
  • 网络出版日期:  2024-08-02

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