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基于代理模型的航空发动机部件复材化设计

祝赫 曹端兴 李少林 石多奇 杨晓光 齐红宇

祝赫, 曹端兴, 李少林, 等. 基于代理模型的航空发动机部件复材化设计[J]. 航空动力学报, 2025, 40(10):20230646 doi: 10.13224/j.cnki.jasp.20230646
引用本文: 祝赫, 曹端兴, 李少林, 等. 基于代理模型的航空发动机部件复材化设计[J]. 航空动力学报, 2025, 40(10):20230646 doi: 10.13224/j.cnki.jasp.20230646
ZHU He, CAO Duanxing, LI Shaolin, et al. Composite design of aero-engine components based on surrogate model[J]. Journal of Aerospace Power, 2025, 40(10):20230646 doi: 10.13224/j.cnki.jasp.20230646
Citation: ZHU He, CAO Duanxing, LI Shaolin, et al. Composite design of aero-engine components based on surrogate model[J]. Journal of Aerospace Power, 2025, 40(10):20230646 doi: 10.13224/j.cnki.jasp.20230646

基于代理模型的航空发动机部件复材化设计

doi: 10.13224/j.cnki.jasp.20230646
基金项目: 国家科技重大专项(2017-Ⅳ-0007-0044)
详细信息
    作者简介:

    祝赫(1998-),男,硕士生,研究方向为航空发动机结构强度、复合材料结构设计与强度分析

    通讯作者:

    齐红宇(1969-),男,教授,博士,研究方向为发动机结构强度与振动、复合材料结构设计与强度分析、高温涂层结构强度与寿命。E-mail:qhy@buaa.edu.cn

  • 中图分类号: V235.1

Composite design of aero-engine components based on surrogate model

  • 摘要:

    结构复材化是航空发动机提高推质比的重要途径。针对反推叶栅复材化设计中,叶栅中各结构铺层方案设计因铺层角度和铺层顺序多变,难以确定最优铺层方案的问题,展开复合材料反推叶栅设计。采用遗传算法设计样本点,并对不同铺层方案的复合材料结构进行有限元分析,分析其变形、强度及刚度。其次建立代理模型,以反推叶栅中各特征结构工况载荷下变形、强度及刚度为目标,优化后对不同铺层方案进行有限元分析,综合对比得到最优铺层方案。以反推叶栅中各结构最优铺层方案为优化结果建立复合材料反推叶栅模型,并与铝合金反推叶栅的变形、强度及刚度进行对比,结果表明与铝合金反推叶栅差距仅为11%左右。验证了所选混合铺层反推叶栅的优越性。

     

  • 图 1  反推叶栅设计方案

    Figure 1.  Reverse thrust cascade design scheme

    图 2  反推叶栅中各特征结构划分

    Figure 2.  Division of characteristic structures in the reverse thrust cascades

    图 3  反推叶栅中5类结构代表模型

    Figure 3.  Representative model of five types in the reverse thrust cascade

    图 4  不同反推叶栅正常工况下最大位移及最大主应力对比

    Figure 4.  Comparison of maximum displacement and maximum principal stress of different reverse thrust cascades under normal working load

    表  1  各结构受载下最大位移及最大主应力

    Table  1.   Maximum displacement and maximum principal stress of each structure under load

    区域 最大位移/mm 最大主应力/MPa
    A 3.97×10−1 2.14×101
    B 3.26×10−4 3.34×10−1
    C 1.08×10−1 8.96
    D 5.19×10−2 6.59
    E 1.58×10−1 1.27×101
    下载: 导出CSV

    表  2  各结构单向带铺设铺层方案

    Table  2.   Unidirectional composite lay-up scheme of each structure

    区域 铺层方案
    A $ {\left[45/0/{-45}_{4}/\overline {0}\right]}_{{\mathrm{s}}} $
    B $ {\left[{45}_{2}/-45/45/{-45}_{2}/{90/45}_{2}/{-45}_{2}/0/90\right]}_{{\mathrm{s}}} $
    C $ {\left[0/45/0/45/-45/0/{-45}_{2}/0\right]}_{{\mathrm{s}}} $
    D $ {\left[-45/90/{0}_{2}/-45/45/-45/{0}_{4}/\overline {0}\right]}_{{\mathrm{s}}} $
    E $ {\left[{45}_{2}/0/-45/0/-45/45/-45/\overline {90}\right]}_{{\mathrm{s}}} $
    下载: 导出CSV

    表  3  各结构平纹织物铺设铺层方案

    Table  3.   Plain weave fabric lay-up scheme of each structure

    区域 铺层方案
    A $ {\left[{ (+/-45) }_{2}/{ (\mathrm{0,90}) }_{2}/{ (+/-45) }_{2}/\overline { (+/-45) }\right]}_{{\mathrm{s}}} $
    B $ {\left[ (\mathrm{0,90}) /{ (+/-45) }_{4}/{ (\mathrm{0,90}) }_{4}/ (+/-45) /{ (\mathrm{0,90}) }_{2}/\overline { (+/-45) }\right]}_{{\mathrm{s}}} $
    C $ {\left[ (+/-45) /{ (\mathrm{0,90}) }_{3}/ (+/-45) /{ (\mathrm{0,90}) }_{2}/{ (+/-45) }_{2}\right]}_{{\mathrm{s}}} $
    D $ {\left[{ (\mathrm{0,90}) }_{4}/{ (+/-45) }_{7}/\overline { (+/-45) }\right]}_{{\mathrm{s}}} $
    E $ {\left[ (+/-45) / (\mathrm{0,90}) /{ (+/-45) }_{4}/ (\mathrm{0,90}) / (+/-45) /\overline { (\mathrm{0,90}) }\right]}_{{\mathrm{s}}} $
    下载: 导出CSV

    表  4  各结构斜纹织物铺设铺层方案

    Table  4.   Twill weave fabric lay-up scheme of each structure

    区域 铺层方案
    A $ {\left[{ (+/-45) }_{2}/ (\mathrm{0,90}) /{ (+/-45) }_{2}/ (\mathrm{0,90}) /\overline { (+/-45) }\right]}_{{\mathrm{s}}} $
    B $ {\left[{ (\mathrm{0,90}) }_{2}/{ (+/-45) }_{5}/ (\mathrm{0,90}) / (+/-45) /{ (\mathrm{0,90}) }_{2}/ (+/-45) / (\mathrm{0,90}) \right]}_{{\mathrm{s}}} $
    C $ {\left[{ (+/-45)/ (\mathrm{0,90}) }_{7}/(+/-45)\right]}_{{\mathrm{s}}} $
    D $ {\left[ (\mathrm{0,90}) /(+/-45)/{ (\mathrm{0,90}) }_{7}/(+/-45)/ (\mathrm{0,90}) /\overline { (\mathrm{0,90}) }\right]}_{{\mathrm{s}}} $
    E $ {\left[ (+/-45) / (\mathrm{0,90}) /{ (+/-45) }_{5}/ (\mathrm{0,90}) /\overline { (+/-45) }\right]}_{{\mathrm{s}}} $
    下载: 导出CSV

    表  5  各结构单向带和平纹织物混合铺设铺层方案

    Table  5.   Unidirectional composite and plain weave fabric mixed lay-up scheme of each structure

    区域 铺层方案
    A $ {\left[ (+/-45) /0/{ (+/-45) }_{2}/0/ (\mathrm{0,90}) /\overline {0}\right]}_{{\mathrm{s}}} $
    B $ {\left[ (+/-45) /-45/ (\mathrm{0,90}) /45/90/ (\mathrm{0,90}) /0/45/{ (+/-45) }_{2}/45/ (\mathrm{0,90}) / (+/-45) \right]}_{{\mathrm{s}}} $
    C $ {\left[{ (\mathrm{0,90}) }_{2}/ (+/-45) /0/ (+/-45) /0/{ (+/-45) }_{2}/ (\mathrm{0,90}) \right]}_{{\mathrm{s}}} $
    D $ {\left[{0}_{2}/-45/ (+/-45) /0/-45/ (\mathrm{0,90}) /0/ (+/-45) /{ (\mathrm{0,90}) }_{2}/\overline { (\mathrm{0,90}) }\right]}_{{\mathrm{s}}} $
    E $ {\left[ (+/-45) / (\mathrm{0,90}) /{45}_{2}/{ (\mathrm{0,90}) }_{2}/ (+/-45) /45/\overline {0}\right]}_{{\mathrm{s}}} $
    下载: 导出CSV

    表  6  不同材料反推叶栅正常工况载荷下最大位移及最大主应力

    Table  6.   Maximum displacement and maximum principal stress of reverse thrust cascades made of different materials under normal working load

    材料最大位移/mm最大主应力/MPa
    铝合金4.79×10−18.21×101
    单向带4.90×10−11.18×102
    平纹7.91×10−11.12×102
    斜纹1.241.17×102
    混合5.34×10−19.11×101
    实际1.011.01×102
    下载: 导出CSV

    表  7  复合材料反推叶栅相对于铝合金叶栅在工况下差距

    Table  7.   Difference between composite reverse thrust cascades and aluminum alloy cascades under working load %

    材料 最大位移 最大主应力
    单向带 2.30 44.18
    平纹 65.14 35.89
    斜纹 158.87 42.72
    混合 11.48 11.04
    实际 110.86 22.97
    下载: 导出CSV
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  • 收稿日期:  2023-10-12
  • 网络出版日期:  2025-07-13

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