机械展开式再入飞行器气动性能分析与优化
作者:
作者单位:

北京航空航天大学宇航学院, 北京 100191

作者简介:

通讯作者:

朱浩,男,副研究员,E-mail:zhuhao@buaa.edu.cn。

中图分类号:

V423.9

基金项目:


Optimization of Aerodynamic Characteristics of Mechanical Expansion Reentry Vehicle
Author:
Affiliation:

School of Astronautics, Beihang University, Beijing 100191, China

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    摘要:

    机械展开式再入飞行器由于气动面积较大,可以有效地进行气动捕获和气动减速,但需研究分析主要气动外形参数对气动性能的影响并通过优化进一步提高减速效果。针对计算流体力学(Computational fluid dynamics, CFD)开展再入飞行器外形优化计算量大、耗时多的问题,提出了一种基于反向传播(back propagation, BP)神经网络的气动性能优化方法。在对再入飞行器参数化建模的基础上,首先采用正交试验设计生成样本,通过CFD方法进行高精度气动力性能计算,对样本计算结果进行方差分析;再利用BP神经网络对生成的样本集进行非线性拟合,构建神经网络气动性能近似模型;最后使用多岛遗传算法和BP神经网络模型开展阻力最大的气动外形设计优化,并对优化结果进行参数灵敏度分析。结果显示,该优化方法可以快速准确地求解优化模型,在保证精度的同时大幅提升了计算效率,可为未来工程设计和应用提供参考。

    Abstract:

    Mechanical deployable reentry vehicles can achieve aerocapture and decelerate effectively because of their large aerodynamic areas. The design and optimization of aerodynamic profile parameters directly affect the deceleration effect. Aiming at the large amount of computation and time consumption of computational fluid dynamics (CFD) for reentry vehicle shape optimization, an approximate calculation optimization method based on the back propagation (BP) neural network is proposed. First, based on the parametric modeling of the reentry vehicle, the orthogonal design is used to generate the samples. Second, the high-precision aerodynamic performance is calculated by CFD. Variance analysis is carried out on the results of sample calculation. Third, the nonlinear fitting for the sample set is conducted by the BP neural network, and the approximate aerodynamic performance model is built. Finally, the multi-island genetic algorithm and the BP neural network model are used to optimize the aerodynamic shape design with the greatest resistance, and the parameter sensitivity analysis is carried out for the optimization results. The results show that the optimization method can quickly and accurately solve the optimization model. The proposed approach ensures the accuracy and improves the computational efficiency, thereby provides a reference for future engineering design and application.

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引用本文

孙俊杰,朱浩,朱云松.机械展开式再入飞行器气动性能分析与优化[J].南京航空航天大学学报,2021,53(S1):1-8

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  • 收稿日期:2021-01-20
  • 最后修改日期:2021-05-11
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  • 在线发布日期: 2021-11-01
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