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Active/passive optimization of helicopter rotor blades for improved vibration, noise, and performance characteristics.

机译:主动/被动优化直升机旋翼桨叶,以改善振动,噪音和性能。

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摘要

This dissertation describes an active/passive approach to optimum design of helicopter rotor blades for reduced vibration and noise levels, as well as reduced power consumption. In the active/passive approach, structurally optimized rotor blade designs obtained from surrogate based optimization (SBO) methods were augmented with active control flaps (ACFs). Multi-objective function optimization techniques were employed to obtain active/passive configurations corresponding to the best trade-offs between vibration, noise, and performance characteristics of the rotor blades in forward flight.;The focus of the initial portion of the work was on the effectiveness of SBO for vibration reduction in forward flight. It was determined that SBO methods could be used to conduct global searches of the design space for reduced vibration designs, even though the surrogates were not accurate everywhere in the design space. Subsequently, it was demonstrated that the Efficient Global Optimization (EGO) algorithm was superior to conventional SBO techniques for vibration reduction at low speed forward flight where blade-vortex interaction (BVI) induces high vibration levels, and at high speeds where dynamic stall is the dominant source of vibration. Since the best design for low speed forward flight differed from the best design for high speed flight, multi-objective function optimization techniques were necessary to find the best trade-off designs for vibration reduction over the entire flight envelope. To this end, the EGO algorithm was extended for surrogate based multi-objective function optimization and the results demonstrate that the modified EGO algorithm located a single trade-off design with vibration characteristics similar to the best designs for both flight conditions.;Finally, ACFs were used to enhance vibration, noise, and performance characteristics of structurally optimized blades. Using a closed-loop control algorithm and multi-objective function optimization based on EGO, a versatile active/passive design for reduced vibration and noise levels due to BVI was obtained. The design corresponds to 68--91% vibration reduction and a 2.3--2.7 db decrease in the maximum noise level. In addition, the active/passive approach was used for vibration reduction over the entire flight envelope, while enhancing performance at high speed flight.
机译:本文介绍了一种主动/被动方法来优化直升机旋翼桨叶的设计,以降低振动和噪声水平,并降低功耗。在主动/被动方法中,从基于替代的优化(SBO)方法获得的结构优化的转子叶片设计中增加了主动控制襟翼(ACF)。采用多目标函数优化技术来获得主动/被动配置,这些配置对应于正向飞行中转子叶片的振动,噪声和性能特征之间的最佳权衡。;工作的初始部分重点是SBO降低前向飞行的振动效果。可以确定的是,即使替代方法在设计空间中的每个地方都不准确,SBO方法仍可用于对设计空间进行全局搜索以减少振动设计。随后,证明了有效的全局优化(EGO)算法优于传统的SBO技术,该技术在叶片前涡相互作用(BVI)引起高振动水平的低速前进飞行中以及在动态失速为高速度的高速下降低振动振动的主要来源。由于低速前进飞行的最佳设计与高速飞行的最佳设计有所不同,因此需要多目标函数优化技术来找到最佳折衷设计,以减少整个飞行范围内的振动。为此,将EGO算法扩展到基于代理的多目标函数优化中,结果表明,改进的EGO算法定位了一个权衡设计,其振动特性类似于两种飞行条件下的最佳设计。用于增强结构优化叶片的振动,噪音和性能特征。使用基于EGO的闭环控制算法和多目标函数优化,获得了一种通用的主动/被动设计,以减少BVI引起的振动和噪声水平。该设计可减少68--91%的振动,最大噪音水平可降低2.3--2.7 db。此外,主动/被动方法用于降低整个飞行包线的振动,同时提高高速飞行的性能。

著录项

  • 作者

    Glaz, Bryan.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Agricultural.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 305 p.
  • 总页数 305
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 农业工程;
  • 关键词

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