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Multidisciplinary Design Optimization for Performance Improvement of an Axial Flow Fan Using Free-Form Deformation

机译:多学科设计优化,采用自由形状变形性能改进轴流式风扇

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摘要

This paper describes a multidisciplinary design optimization for performance improvement of an electric-ducted fan rotor using free-form deformation (FFD) and data mining techniques. A practical partitioning approach for FFD parameterization was applied in combination with engineering design parameters to optimize the fan rotor. Regression analysis was used to initially determine an approximation function for the blade static stress and subsequently integrated into a fully coupled iterative loop to optimize the blade considering two operating points. Two optimization solutions for 10 and 12 blades were performed. Percentage improvements in the efficiency of 1.05% and 1.32% were realized for 10 and 12 blades, respectively, at near peak efficiency flowrate. Also, blade static stress was reduced by percentages of 5.49% and 12.37% for 10 and 12 blades compared with the baseline. Data mining results revealed key design variable sensitivities where blade twist, sweep, chord, and hub thickness distribution were found to be the most influential for 12 blades while for 10 blades, blade lean, sweep and chord at the midspan and tip. The optimized blades were found to have a significant increase in chord from midspan to tip mimicking a wide chord fan blade particularly for 10 blades. Analysis of the flow field revealed that the axial velocity from 0.4 to 0.8 spanwise length increased significantly for the optimum blades due to the increase in blade twist and chord length at all stable operating points. However, the leakage trajectory relative to the blade chord was observed to be larger and interacted with the trailing edge wake flow downstream for the optimum blades at near-stall conditions. Furthermore, the increase in chord length and the thinning of the blade close to the trailing edge from 0.4 to 0.8 span reduced the suction-side blade loading and static stress.
机译:本文介绍了使用自由形状变形(FFD)和数据挖掘技术进行电动风扇转子性能改进的多学科设计优化。 FFD参数化的实用分区方法与工程设计参数组合应用,以优化风扇转子。回归分析用于最初确定叶片静态应力的近似函数,随后集成到完全耦合的迭代环中以考虑两个操作点来优化刀片。进行了两个和12叶片的两种优化解决方案。在近峰值效率流量的情况下,分别实现了1.05%和1.32%的效率的百分比改善,分别实现了10和12叶片。此外,与基线相比,叶片静态应力减少了10和12叶片的5.49%和12.37%。数据挖掘结果显示了叶片扭曲,扫描,和弦和轮毂厚度分布的关键设计可变敏感性是12刀片的最有影响力,而10刀片,刀片瘦,扫掠和尖端在中间和尖端。发现优化的刀片从中间沿着尖端的弦大幅增加,以模仿宽弦范围,特别是10叶片。流动场的分析显示,由于在所有稳定的操作点处的叶片扭曲和弦长的增加,轴向速度为0.4至0.8的轴向长度为最佳叶片显着增加。然而,观察到相对于叶片弦的泄漏轨迹较大并且与在近代条件下的最佳叶片下游的后缘唤醒流动相互作用。此外,弦长的增加和叶片的叶片的变薄从0.4到0.8跨度的叶片靠近0.8级,减少了吸入侧叶片装载和静态应力。

著录项

  • 来源
    《Journal of turbomachinery》 |2021年第1期|011003.1-011003.18|共18页
  • 作者单位

    Key Laboratory of Power Machinery and Engineering Gas Turbine Research Institute School of Mechanical Engineering Shanghai Jiao Tong University Shanghai 200240 China;

    School of Mechanical Engineering Shanghai Jiao Tong University Shanghai 200240 China;

    Key Laboratory of Power Machinery and Engineering Gas Turbine Research Institute School of Mechanical Engineering Shanghai Jiao Tong University Shanghai 200240 China;

    Key Laboratory of Power Machinery and Engineering Gas Turbine Research Institute School of Mechanical Engineering Shanghai Jiao Tong University Shanghai 200240 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    surrogate-based global optimization; free-form deformation; static stress; self-organizing maps; electric ducted fan;

    机译:基于代理的全局优化;自由形式变形;静态压力;自我组织地图;电动风扇;

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