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离子风推力效应的仿真研究

陈瑜航 李挺

陈瑜航, 李挺. 离子风推力效应的仿真研究[J]. 航空动力学报, 2025, 40(3):20220661 doi: 10.13224/j.cnki.jasp.20220661
引用本文: 陈瑜航, 李挺. 离子风推力效应的仿真研究[J]. 航空动力学报, 2025, 40(3):20220661 doi: 10.13224/j.cnki.jasp.20220661
CHEN Yuhang, LI Ting. Simulation study on thrust effect of ionic wind[J]. Journal of Aerospace Power, 2025, 40(3):20220661 doi: 10.13224/j.cnki.jasp.20220661
Citation: CHEN Yuhang, LI Ting. Simulation study on thrust effect of ionic wind[J]. Journal of Aerospace Power, 2025, 40(3):20220661 doi: 10.13224/j.cnki.jasp.20220661

离子风推力效应的仿真研究

doi: 10.13224/j.cnki.jasp.20220661
基金项目: 北京航空航天大学青年拔尖计划
详细信息
    作者简介:

    陈瑜航(1998-),女,硕士生,主要从事等离子体推进研究

    通讯作者:

    李挺(1981-),男,副教授,博士,主要从事等离子体助燃及激光诊断研究。E-mail:li1329@buaa.edu.cn

  • 中图分类号: V11;V43

Simulation study on thrust effect of ionic wind

  • 摘要:

    作为一种新型电推进技术,离子风推进技术能直接将电能转化为推力。为提升离子风推进效果,研究离子风推力产生原因以及影响因素,构建线-面、针-面离子风推进模型。通过有限元软件COMSOL Multiphysics研究离子风的内部情况,分析离子风速和体积力密度的变化,因为其与推力成正比。结果表明:线-面结构的体积力密度比针-面结构大,但风速更小;增大输入电压或减小电晕极直径能有效提高风速和体积力密度,进而增大推力;存在最优电极间距和集电极宽度使推力达最大。环境压力越小,推力越大。通过两种方法计算出线-面结构推力大小分别为0.046、0.042 N/m,与相关实验得到的结果相近,对离子风推进结构的设计有一定参考价值。

     

  • 图 1  常规线-铝箔结构

    Figure 1.  Conventional wire -aluminum foil structure

    图 2  计算模型

    Figure 2.  Computational model

    图 3  速度随网格划分的变化

    Figure 3.  Variation of speed with meshing

    图 4  线-翼型模型[38]

    Figure 4.  Wire-airfoil model[38]

    图 5  速度对比图

    Figure 5.  Velocity comparison diagram

    图 6  线-面结构、针-面结构电势分布图

    Figure 6.  Electric potential distribution diagram of wire-plane and needle-plane structure

    图 7  线-面结构、针-面结构电晕区随电压的变化

    Figure 7.  Variation of corona zone of wire-plane and needle-plane structure with voltage

    图 8  线-面结构、针-面结构空间电荷密度场随电压的变化

    Figure 8.  Variation of space charge density field of wire-plane and needle-plane structure with voltage

    图 9  线-面结构、针-面结构速度场随电压的变化

    Figure 9.  Variation of velocity field of wire-plane and needle-plane structure with voltage

    图 10  线-面结构、针-面结构体积力密度分布图

    Figure 10.  Volume force density distribution diagram of wire-plane and needle-plane structure

    图 11  最大速度和最大体积力密度随电压变化图

    Figure 11.  Variation of maximum velocity and maximum volume force density with voltage

    图 12  最大速度和最大体积力密度随线电极直径变化图

    Figure 12.  Variation of maximum velocity and maximum volume force density with wire electrode diameter

    图 13  最大速度和最大体积力密度随电极间距变化图

    Figure 13.  Variation of maximum velocity and maximum volume force density with electrode spacing

    图 14  最大速度和最大体积力密度随集电极宽度变化图

    Figure 14.  Variation of maximum velocity and maximum volume force density with collector width

    图 15  最大速度随环境压力变化图

    Figure 15.  Variation of maximum velocity with environmental pressure

    图 16  单位电极长度推力对比图

    Figure 16.  Comparison of thrust per unit electrode length

    表  1  边界条件设置

    Table  1.   Boundary condition setting

    位置 电场 电荷场 流场
    电晕极 V = V1 q = q0 无滑移
    集电极 V = 0 无通量 无滑移
    入口 零电荷 无通量 U = U0
    出口 零电荷 无通量 p = 0
    其余 零电荷 无通量 开放边界
    下载: 导出CSV
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  • 收稿日期:  2022-09-06
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