留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

基于PARSEC曲线和遗传算法的自然层流短舱的优化设计

耿雪 俞松林 李程鸿

耿雪, 俞松林, 李程鸿. 基于PARSEC曲线和遗传算法的自然层流短舱的优化设计[J]. 航空动力学报, 2023, 38(5):1133-1142 doi: 10.13224/j.cnki.jasp.20220809
引用本文: 耿雪, 俞松林, 李程鸿. 基于PARSEC曲线和遗传算法的自然层流短舱的优化设计[J]. 航空动力学报, 2023, 38(5):1133-1142 doi: 10.13224/j.cnki.jasp.20220809
GENG Xue, YÜ Songlin, LI Chenghong. Optimization design of natural laminar flow nacelle based on PARSEC curve and genetic algorithm[J]. Journal of Aerospace Power, 2023, 38(5):1133-1142 doi: 10.13224/j.cnki.jasp.20220809
Citation: GENG Xue, YÜ Songlin, LI Chenghong. Optimization design of natural laminar flow nacelle based on PARSEC curve and genetic algorithm[J]. Journal of Aerospace Power, 2023, 38(5):1133-1142 doi: 10.13224/j.cnki.jasp.20220809

基于PARSEC曲线和遗传算法的自然层流短舱的优化设计

doi: 10.13224/j.cnki.jasp.20220809
详细信息
    作者简介:

    耿雪(1985-),女,工程师,硕士,主要从事短舱气动设计方向研究

  • 中图分类号: V231.3

Optimization design of natural laminar flow nacelle based on PARSEC curve and genetic algorithm

  • 摘要:

    为提升短舱外罩层流区域面积以降低阻力,基于PARSEC(parametric section)曲线的型线参数化方法,同时采用遗传算法,以推后短舱外罩转捩位置为优化目标,对短舱特征型线进行优化。同时,研究不同来流马赫数下短舱型面优化结果;对比分析优化前后型面的气动性能与阻力发散特性。结果表明:优化后短舱型面较优化前在设计点阻力降低2.25×10−3,但在高来流马赫数的非设计点工况,阻力恶化现象较为严重,导致优化后短舱在较低马赫数即产生阻力发散。

     

  • 图 1  短舱外型面包络成型

    Figure 1.  Envelop of nacelle profile

    图 2  短舱型线参数化造型方法

    Figure 2.  Parametric modeling method of nacelle profile

    图 3  短舱计算模型block及网格划分

    Figure 3.  Block and grid division of nacelle calculation model

    图 4  NFL(1)-0416层流翼型转捩模拟网格划分及计算结果

    Figure 4.  NFL (1)-0416 simulation grid division and calculation results of laminar airfoil transition

    图 5  层流短舱型面优化设计方法

    Figure 5.  Optimization design method of laminar flow nacelle profile

    图 6  设计点优化种群分布

    Figure 6.  Optimized population distribution at design point

    图 7  短舱特征型线优化前后几何对比

    Figure 7.  Comparison of geometry before and after optimization of nacelle characteristic profile

    图 8  优化前后短舱转捩情况对比

    Figure 8.  Comparison of nacelle transition before and after optimization

    图 9  优化前后短舱各型线压力分布对比

    Figure 9.  Comparison of pressure distribution of nacelle profiles before and after optimization

    图 10  不同上型线曲率半径$ {r}_{\mathrm{l}\mathrm{e}\mathrm{u}\mathrm{p}} $的短舱特征型线压力分布及转捩位置情况

    Figure 10.  Pressure distribution and transition position of nacelle characteristic profile with different curvature radius of upper profile $ {r}_{\mathrm{l}\mathrm{e}\mathrm{u}\mathrm{p}} $

    图 11  不同最大厚度位置曲率半径$ {r}_{\mathrm{x}\mathrm{x}\mathrm{u}\mathrm{p}} $的短舱特征型线压力分布情况

    Figure 11.  Pressure distribution and transition position of nacelle characteristic profile with different curvature radius of maximum thickness point ($ {r_{{\text{xxup}}}} $

    图 12  不同最大厚度点轴向坐标$ {X}_{\mathrm{u}\mathrm{p}} $的短舱特征型线压力分布情况

    Figure 12.  Pressure distribution of nacelle characteristic profile at axial coordinates $ {X}_{\mathrm{u}\mathrm{p}} $ of different maximum thickness points

    图 13  不同最大厚度点径向坐标$ {Y}_{\mathrm{u}\mathrm{p}} $的短舱特征型线压力分布情况

    Figure 13.  Pressure distribution of nacelle characteristic profile at radial coordinates $ {Y}_{\mathrm{u}\mathrm{p}} $ of different maximum thickness points

    图 14  优化前后短舱阻力发散特性对比

    Figure 14.  Comparison of drag divergence characteristics of nacelle before and after optimization

    图 15  层流优化短舱在阻力发散前后理想马赫数及转捩情况对比

    Figure 15.  Comparison of ideal Mach number and transition position of NFL nacelle before and after drag divergence

    图 16  层流优化短舱在不同来流马赫数下表面理想马赫数情况对比

    Figure 16.  Comparison of ideal Mach number on the laminar flow optimization nacelle at different inflow Mach numbers

    表  1  NFL(1)-0416层流翼型模拟与试验结果对比

    Table  1.   Comparison between simulation and test results of NFL (1)-0416 laminar airfoil

    类别上表面转捩位置
    xup/C
    下表面转捩位置
    xlo/C
    风洞试验值[28]0.350.6
    Lee等计算结果[29]0.3480.587
    本文计算结果0.3620.586
    下载: 导出CSV

    表  2  短舱特征型线优化前后主要型线参数对比

    Table  2.   Comparison of main profile parameters before and after optimization

    优化特征参数优化前优化后
    $ {r}_{\mathrm{l}\mathrm{e}\mathrm{u}\mathrm{p}} $3486
    $ {r}_{\mathrm{x}\mathrm{x}\mathrm{u}\mathrm{p}} $891610600
    $ {X}_{\mathrm{u}\mathrm{p}} $8901002
    $ {Y}_{\mathrm{u}\mathrm{p}} $18001867
    下载: 导出CSV
  • [1] 袁吉森, 孙爵, 李玲玉, 等. 超声速飞机层流布局设计与评估技术进展[J]. 航空学报, 2022, 43(9): 63-98.

    YUAN Jisen, SUN Jue, LI Lingyu, et al. Progress of sloersonic aircraft laminar flow layout design and evaluation technology[J]. Acta Aeronautica et Astronautica Sinica, 2022, 43(9): 63-98. (in Chinese)
    [2] SHI Y,MADER C A,HE S,et al. National laminar flow airfoil optimization design using a discrete adjoint approach[J]. AIAA Journal,2020,58(1): 4702-4722.
    [3] CARPENTER P W,LUCEY A D. Progress on the use of compliant walls for laminar flow control[J]. Journal of Aircraft,2001,38(3): 504-512. doi: 10.2514/2.2790
    [4] JOSLIN R D. Aircraft laminar flow control[J]. Annual Review of Fluid Mechanics,1998,30: 1-29. doi: 10.1146/annurev.fluid.30.1.1
    [5] 朱自强,吴宗成,丁举春. 层流流动控制技术及应用[J]. 航空学报,2011,32(5): 765-784.

    ZHU Ziqiang,WU Zongcheng,DING Juchun. Laminar flow control technology and application[J]. Acta Aeronautica et Astronautica Sinica,2011,32(5): 765-784. (in Chinese)
    [6] 李权, 段卓毅, 张彦军, 等. 民用飞机自然层流机翼研究进展[J]. 航空工程进展, 2013, 4(4): 399-406.

    LI Quan, DUAN Zhuoyi, ZHANG Yanjun, et al. Progress in research on natural laminar wing for civil aircraft[J]. Advances in Aeronautical Science and Engineering, 2013, 4(4): 399-406. (in Chinese)
    [7] 王一雯,兰夏毓,史亚云,等. 考虑吸气影响的层流翼型梯度优化设计研究[J]. 航空学报,2022,43(11): 383-400.

    WANG Yiwen,LAN Xiayu,SHI Yayun,et al. Optimization design for LFC airfoil based on discrete adjoint method[J]. Acta Aeronautica et Astronautica Sinica,2022,43(11): 383-400. (in Chinese)
    [8] 丁玉临,韩忠华,乔建领,等. 超声速民机总体气动布局设计关键技术研究进展[J]. 航空学报,2022,43(9): 20-46.

    DING Yulin,HAN Zhonghua,QIAO Jianling,et al. Research progress of key technologies for conceptual aerodynamic cofiguration design of sloersonic transport aircraft[J]. Acta Aeronautica et Astronautica Sinica,2022,43(9): 20-46. (in Chinese)
    [9] RIEDEL H,HORSTMANN K H,RONZHEIMER A,et al. Aerodynamic design of a natural laminar flow nacelle and the design validation by flight testing[J]. Aerospace Science and Technology,1998,2(1): 1-12. doi: 10.1016/S0034-1223(98)80001-8
    [10] NICHLOS D A, VUKASINOVIC B, GLEZER A, et al. Fluidic control of nacelle inlet flow in crosswind[R]. AIAA 2020-2955, 2020.
    [11] JOSLIN R D. Overview of laminar flow control[R]. NASA/TP-1998-208705, 1998.
    [12] GREEN J E. Laminar flow control-back to the future[R]. AIAA 2008-3738, 2008.
    [13] ZHANG Y,FANG X,CHEN H,et al. Sloercritical natural laminar flow airfoil optimization for regional aircraft wing design[J]. Aerospace Science and Technology,2015,43: 152-164. doi: 10.1016/j.ast.2015.02.024
    [14] ZHAO T, ZHANG Y F, CHEN H X. Multi-objective aero-dynamic optimization of sloercritical wing with substantial pressure constraints[R]. AIAA 2015-0763, 2015.
    [15] YANGHANS J L. Experimental study on natural laminar flow nacelles[R]. AIAA-84-0034, 1984.
    [16] 何雨薇, 刘沛清, 段会申, 等. 超临界翼型吸气层流减阻控制数值研究[J]. 航空动力学报, 2010 25(11): 2444-2449.

    HE Yuwei, LIU Peiqing, DUAN Huishen, et al. Numerical investigation of the laminar and drag-reduction control by using suction technology on a sloercritical airfoil[J]. Journal of Aerospace Power, 2010, 25(11): 2444-2449. (in Chinese)
    [17] 何小龙,白俊强,夏露,等. 基于EFFD方法的自然层流短舱优化设计[J]. 航空动力学报,2014,29(10): 2310-2320.

    HE Xiaolong,BAI Junqiang,XIA Lu,et al. Natural laminar flow nacelle optimization design base on EFFD method[J]. Journal of Aerospace Power,2014,29(10): 2310-2320. (in Chinese)
    [18] 曹凡,胡骁,张美芳,等. 高雷诺数下跨声速自然层流短舱优化设计[J]. 航空动力学报,2021,36(8): 1730-1739.

    CAO Fan,HU Xiao,ZHANG Meifang,et al. Transonic natural laminar flow nacelle optimization design at high Reynolds number[J]. Journal of Aerospace Power,2021,36(8): 1730-1739. (in Chinese)
    [19] 曹凡,张美芳,胡骁,等. 轴对称短舱自然层流优化及转捩敏感性分析[J]. 航空学报,2022,43(11): 401-413.

    CAO Fan,ZHANG Meifang,HU Xiao,et al. Natural laminar flow optimization and transition sensitivity analysis of axisymmetric nacelle[J]. Acta Aeronautica et Astronaut Sinica,2022,43(11): 401-413. (in Chinese)
    [20] YAO Yuan,MA Dongli,YANG Muqing,et al. Adaptive-surrogate-based robust optimization of transonic natural laminar flow nacelle[J]. Chinese Journal of Aeronautics,2021,34(10): 36-52. doi: 10.1016/j.cja.2021.01.007
    [21] SOBIECZKY H. Parametric airfoils and wings[M]. Wien: Wien Springer, 1999.
    [22] 张启鹏. 超临界自然层流翼型优化方法研究[D]. 南京: 南京航空航天大学, 2018.

    ZHANG Qipeng. Optimization methods for supercritical natural laminar airfoils[D]. Nanjing: Nanjing University of Aeronautics and Astronautics, 2018. (in Chinese)
    [23] LANGTRY R B. A correlation based transition model using local variables for unstructured parallelized CFD codes[D]. Stuttgart: University Stuttgart, 2006.
    [24] LIN Y,ROBINSON T,EARLY J,et al. Implementation of Menter’s transition model on an isolated natural laminar flow nacelle[J]. AIAA Journal,2011,49(4): 824-835. doi: 10.2514/1.J050890
    [25] LANGTRY R B. A correlation-based transition model using local variables for unstructured parallelized CFD codes[J]. Journal of Turbomachinery,2006,128(3): 424-434.
    [26] RIVERS M B,DITTBERNER A. Experimental Investigation of the NASA Common Research Model[J]. Journal of aircraft,2019,51(4): 1183-1193.
    [27] SPALART P R,RUNNY C L. Effective inflow conditons for turbulence models in aerodynamic calculation[J]. AIAA Journal,2007,45(10): 2544-2553. doi: 10.2514/1.29373
    [28] SOMERS D M. Design and experimental results for a natural laminar flow airfoil for general aviation applications[R]. NASA Technical Paper 1861, 1981.
    [29] LEE J, JAMESON A. Natural laminar flow airfoil and wing design by adjoint method and automatic transition prediction[R]. AIAA-2009- 3514, 2009.
    [30] HOLLAND J H. Adaptation in natural and artificial systems[M]. Ann Arbor, US: University of Michigan Press, 1975.
    [31] 赵欢. 基于代理模型的高效气动优化与气动稳健设计方法研究[D]. 西安: 西北工业大学, 2020.

    ZHAO Huan. Research on surrogate-based efficient aerodynamic optimization and robust aerodynamic design method[D]. Xi’an: Northwestern Poly technical University, 2020. (in Chinese)
    [32] 戴嘉. 超临界自然层流翼型鲁棒优化[D]. 南京: 南京航空航天大学, 2020.

    DAI Jia. Robust optimization of sloercritical natural laminar flow airfoils[D]. Nanjing: Nanjing University of Aeronautics and Astronautics, 2020. (in Chinese)
  • 加载中
图(16) / 表(2)
计量
  • 文章访问数:  661
  • HTML浏览量:  213
  • PDF量:  49
  • 被引次数: 0
出版历程
  • 收稿日期:  2022-10-23
  • 网络出版日期:  2023-04-13

目录

    /

    返回文章
    返回