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飞机表面过冷水膜流动特性及控制研究进展

贾滢暄 沈一洲 刘森云 许杨江山 沈汝洵

贾滢暄, 沈一洲, 刘森云, 等. 飞机表面过冷水膜流动特性及控制研究进展[J]. 航空动力学报, 2025, 40(1):20230199 doi: 10.13224/j.cnki.jasp.20230199
引用本文: 贾滢暄, 沈一洲, 刘森云, 等. 飞机表面过冷水膜流动特性及控制研究进展[J]. 航空动力学报, 2025, 40(1):20230199 doi: 10.13224/j.cnki.jasp.20230199
JIA Yingxuan, SHEN Yizhou, LIU Senyun, et al. Research progress on flow characteristics and control of supercooled water film on aircraft surface[J]. Journal of Aerospace Power, 2025, 40(1):20230199 doi: 10.13224/j.cnki.jasp.20230199
Citation: JIA Yingxuan, SHEN Yizhou, LIU Senyun, et al. Research progress on flow characteristics and control of supercooled water film on aircraft surface[J]. Journal of Aerospace Power, 2025, 40(1):20230199 doi: 10.13224/j.cnki.jasp.20230199

飞机表面过冷水膜流动特性及控制研究进展

doi: 10.13224/j.cnki.jasp.20230199
基金项目: 国家自然科学基金(52075246,U1937206); 江苏省自然基金(BK20211568); 结冰与防除冰重点实验室开放基金(IADL20200107,IADL20200407); 苏州基础研究项目(SJC2022032); 南京航空航天大学大型仪器设备共享基金
详细信息
    作者简介:

    贾滢暄(2000-),女,硕士生,主要从事表面工程方向研究。E-mail:paxsoul@nuaa.edu.cn

    通讯作者:

    沈一洲(1988-),男,教授、博士生导师,博士,主要从事表面加工工程方向研究。E-mail:shenyizhou@nuaa.edu.cn

  • 中图分类号: V259

Research progress on flow characteristics and control of supercooled water film on aircraft surface

  • 摘要:

    为深入认识飞机表面过冷水膜的流动控制对于防/除冰的重要性,从过冷水膜形成过程和水膜结冰模型两个方面阐述了过冷水膜对飞机结冰的影响,进而提出了过冷水膜流动控制的主要思路和方法。介绍了过冷水膜流动的影响因素,系统分析了风速等环境参数以及粗糙度等材料表面本征特性对过冷水膜流动的影响。在此基础上,总结了调控液滴运动间接控制过冷水膜流动的研究现状,并提出了利用梯度非润湿表面直接调控过冷水膜流动的新思路,全面展望过冷水膜流动控制发展中亟需解决的重要问题与发展趋势。

     

  • 图 1  飞机结冰生成的冰形

    Figure 1.  Aircraft icing type

    图 2  飞机积冰表面水膜的流动过程[24]

    Figure 2.  Flow process of water film on the surface of aircraft ice accumulation[24]

    图 3  结冰翼型周围自由流静态温度和局部温度场之间的差异[30]

    Figure 3.  Difference between free-flow static temperature and local temperature field around the icing airfoil[30]

    图 4  结冰模型简化示意图 [35]

    Figure 4.  Simplified schematic of the icing model[35]

    图 5  不同风速下水膜的表面波形 [37]

    Figure 5.  Surface waveform of water film at wind speeds[37]

    图 6  不同雷诺数下水膜流动形态 [38]

    Figure 6.  Flow morphology of water film under different Reynolds numbers[38]

    图 7  不同粗糙度条件下水膜形态 [40]

    Figure 7.  Water film morphology under different roughness conditions[40]

    图 8  电场驱动中固-液界面电荷积累的示意图[44]

    Figure 8.  Schematic diagram of charge accumulation at solid-liquid interface driven by electric field[44]

    图 9  磁场驱动液滴运动 [51]

    Figure 9.  Magnetic field drives droplet motion[51]

    图 10  梯度非润湿表面制备的3种思路

    Figure 10.  Three ideas for the preparation of gradient non-wetted surfaces

    图 11  沉积法制备梯度润湿表面 [60]

    Figure 11.  Preparation of gradient wetted surfaces by deposition method[60]

    图 12  梯度润湿表面 [61-62]

    Figure 12.  Gradient wetting surfaces[61-62]

    图 13  液滴自输运行为 [67]

    Figure 13.  Droplet self-infusion run[67]

    图 14  翼型表面结冰过程[69]

    Figure 14.  Ice accretion process photos[69]

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出版历程
  • 收稿日期:  2023-03-29
  • 网络出版日期:  2024-04-15

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