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基于QPSO的非壅塞固体冲压发动机一体化优化

王昭 田小涛 汤祥 黄萌 张博 陈俊屹

王昭, 田小涛, 汤祥, 等. 基于QPSO的非壅塞固体冲压发动机一体化优化[J]. 航空动力学报, 2023, 38(8):1865-1874 doi: 10.13224/j.cnki.jasp.20220520
引用本文: 王昭, 田小涛, 汤祥, 等. 基于QPSO的非壅塞固体冲压发动机一体化优化[J]. 航空动力学报, 2023, 38(8):1865-1874 doi: 10.13224/j.cnki.jasp.20220520
WANG Zhao, TIAN Xiaotao, TANG Xiang, et al. Integrated optimization of unchoked solid ramjet based on QPSO[J]. Journal of Aerospace Power, 2023, 38(8):1865-1874 doi: 10.13224/j.cnki.jasp.20220520
Citation: WANG Zhao, TIAN Xiaotao, TANG Xiang, et al. Integrated optimization of unchoked solid ramjet based on QPSO[J]. Journal of Aerospace Power, 2023, 38(8):1865-1874 doi: 10.13224/j.cnki.jasp.20220520

基于QPSO的非壅塞固体冲压发动机一体化优化

doi: 10.13224/j.cnki.jasp.20220520
详细信息
    作者简介:

    王昭(1992-),男,高级工程师,博士,主要从事人工智能在发动机中的应用研究

    通讯作者:

    黄萌(1985-),男,高级工程师,博士,主要从事冲压发动机方面的研究。E-mail:hotmoon2000@qq.com

  • 中图分类号: V435.5

Integrated optimization of unchoked solid ramjet based on QPSO

  • 摘要:

    为了对非壅塞固体冲压发动机性能进行充分优化,建立了相应的内外弹道一体化优化设计数学模型。首先构造了新的非壅塞固体冲压发动机性能预示框架。而后在此基础上,采用量子粒子群优化方法(quantum particle swarm optimization, QPSO),以巡航段和无动力下降段的总射程为优化目标,在满足推力约束的前提下,对冲压发动机的喷管喉径、进气道入口和喉部面积以及飞行攻角进行一体化优化。仿真结果表明:采用QPSO方法优化后的弹道射程较仅优化飞行攻角的方案提升18.65%,证明了一体化优化的有效性,为非壅塞固体冲压发动机的设计提供了理论基础。

     

  • 图 1  非壅塞固体冲压发动机截面示意图

    Figure 1.  Section diagram of unchoked solid ramjet

    图 2  补燃室出口参数求取流程图

    Figure 2.  Flow chart for calculating outlet parameters of supplementary combustion chamber

    图 3  性能预示流程图

    Figure 3.  Flow chart of performance prediction

    图 4  一体化优化流程图

    Figure 4.  Flow chart of integrated optimization

    图 5  求解收敛过程

    Figure 5.  Solution convergence process

    图 6  方案1和2所对应的弹道曲线

    Figure 6.  The corresponding ballistic curve of scheme 1 and 2

    图 7  方案1和2所对应的推力随时间变化曲线

    Figure 7.  The corresponding variation of thrust with time of scheme 1 and 2

    图 8  方案1和2所对应的飞行马赫数随时间变化曲线

    Figure 8.  The corresponding variation of flight Mach number with time of scheme 1 and 2

    图 9  方案1和2所对应的弹道倾角随时间变化曲线

    Figure 9.  The corresponding variation of flight path angle with time of scheme 1 and 2

    图 10  方案3和4所对应的弹道曲线

    Figure 10.  The corresponding ballistic curve of scheme 3 and 4

    图 11  方案3和4所对应的推力随时间变化曲线

    Figure 11.  The corresponding variation of thrust with time of scheme 3 and 4

    图 12  方案3和4所对应的飞行马赫数随时间变化曲线

    Figure 12.  The corresponding variation of flight Mach number with time of scheme 3 and 4

    表  1  方案1和2优化结果对比

    Table  1.   Comparison of optimization results between scheme 1 and 2

    参数数值
    方案1方案2
    飞行攻角/(o66
    喷管喉径1.561.50
    进气道入口面积0.881.17
    进气道喉部面积0.680.65
    飞行时间1.00.9085
    射程1.00.9519
    终端高度0.08340.0909
    终端马赫数2.883.21
    下载: 导出CSV

    表  2  方案3和4优化结果对比

    Table  2.   Comparison of optimization results between scheme 3 and 4

    参数数值
    方案1方案2
    巡航段飞行攻角/(o6.06.0
    无动力下降段飞行攻角/(o12.08.86
    喷管喉径1.331.50
    进气道入口面积1.331.17
    进气道喉部面积0.540.65
    飞行时间1.00.8810
    射程1.00.8428
    终端马赫数0.460.55
    巡航段工作时间0.21820.2543
    巡航段结束射程0.37630.3957
    巡航段结束高度0.05020.0378
    巡航段结束马赫数3.713.21
    下载: 导出CSV
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  • 收稿日期:  2022-07-20
  • 网络出版日期:  2023-06-20

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