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横风条件下涵道风扇唇口流动特性及调节技术研究

王思维 王掩刚 刘汉儒 王琦允

王思维, 王掩刚, 刘汉儒, 等. 横风条件下涵道风扇唇口流动特性及调节技术研究[J]. 航空动力学报, 2025, 40(3):20220664 doi: 10.13224/j.cnki.jasp.20220664
引用本文: 王思维, 王掩刚, 刘汉儒, 等. 横风条件下涵道风扇唇口流动特性及调节技术研究[J]. 航空动力学报, 2025, 40(3):20220664 doi: 10.13224/j.cnki.jasp.20220664
WANG Siwei, WANG Yangang, LIU Hanru, et al. Research on the flow characteristics and regulation techniques of ducted fan lip in crosswind conditions[J]. Journal of Aerospace Power, 2025, 40(3):20220664 doi: 10.13224/j.cnki.jasp.20220664
Citation: WANG Siwei, WANG Yangang, LIU Hanru, et al. Research on the flow characteristics and regulation techniques of ducted fan lip in crosswind conditions[J]. Journal of Aerospace Power, 2025, 40(3):20220664 doi: 10.13224/j.cnki.jasp.20220664

横风条件下涵道风扇唇口流动特性及调节技术研究

doi: 10.13224/j.cnki.jasp.20220664
详细信息
    作者简介:

    王思维(1997-),男,博士生,研究领域为高性能叶轮机械设计技术

    通讯作者:

    王掩刚(1976-),男,教授,博士,研究领域为高性能叶轮机械设计技术、内流流动控制。E-mail:wyg704@nwpu.edu.cn

  • 中图分类号: V211

Research on the flow characteristics and regulation techniques of ducted fan lip in crosswind conditions

  • 摘要:

    以涵道风扇为动力的飞行器在低速领域中优秀的效率、安全以及噪声特性使其得到重视,如何减小横风条件下唇口的推力损失与进气畸变有待进一步探索。本文采用减小逆压梯度的优化方法对唇口几何进行了优化设计,研究了原始唇口与优化唇口在横风条件下的气动特性及流动规律。为进一步提高唇口的抗横风能力,在优化几何的基础上提出了双唇口结构,并对双唇口结构的流动控制机理进行了分析。结果表明:减小逆压梯度的优化方法可以使唇口在0~0.07的前进比范围内,无量纲推力与总压畸变系数的变化量在3%以内;双唇口结构可以进一步将唇口无量纲推力降低的前进比由0.07提高到0.44;当前进比由0增加到0.55时,采用双唇口结构可以使涵道风扇的总推力降低量由18.5%减小到6.6%。

     

  • 图 1  涵道风扇唇口段结构示意图

    Figure 1.  Lip section structure of ducted fan

    图 2  涵道唇口计算域

    Figure 2.  Domain of duct lip

    图 3  网格无关性验证 ($J = 0.11$)

    Figure 3.  Grid independence verification ($J = 0.11$)

    图 4  涵道风扇唇口优化流程

    Figure 4.  Ducted fan lip optimization process

    图 5  唇口几何参数化及优化后的曲率分布

    Figure 5.  Geometric parameterization of lip and curvature distribution after optimization

    图 6  优化收敛过程

    Figure 6.  Convergence process of optimization

    图 7  唇口表面相对压力分布沿周向分布

    Figure 7.  Relative pressure distribution on lip surface is distributed along the circumference

    图 8  唇口表面压力分布 ($J = 0.11$)

    Figure 8.  Lip surface pressure distribution ($J = 0.11$)

    图 9  无量纲推力随前进比变化规律

    Figure 9.  Variation of non-dimension thrust with advance ratio

    图 10  唇口出口截面速度分布云图

    Figure 10.  Velocity distribution cloud diagram of lip outlet section

    图 11  横风引起的总压畸变

    Figure 11.  Total pressure distortion caused by crosswind

    图 12  唇口表面压力分布随前进比变化

    Figure 12.  Pressure distribution on lip surface varies with advance ratio

    图 13  涵道风扇的双唇口结构

    Figure 13.  Double-lip structure of the ducted fan

    图 14  3种唇口的无量纲推力随前进比变化规律

    Figure 14.  Non-dimension thrust of three kinds of lips varies with advance ratio

    图 15  双唇口结构中截面速度云图

    Figure 15.  Velocity cloud diagram of cross section in double-lip structure

    图 16  3种唇口的总压畸变系数随前进比变化规律

    Figure 16.  Total pressure distortion coefficient of three kinds of lips varies with advance ratio

    图 17  双唇口结构流动分析

    Figure 17.  Flow analysis of double-lip structure

    图 18  横风条件下涵道风扇各部件推力贡献

    Figure 18.  Thrust contribution of ducted fan in crosswind

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出版历程
  • 收稿日期:  2022-09-06
  • 网络出版日期:  2024-11-27

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