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Aeromechanical stability augmentation using semi-active friction-based lead-lag damper.

机译:使用基于半主动摩擦的超前减震器来提高气动机械稳定性。

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摘要

Lead-lag dampers are present in most rotors to provide the required level of damping in all flight conditions. These dampers are a critical component of the rotor system, but they also represent a major source of maintenance cost. In present rotor systems, both hydraulic and elastomeric lead-lag dampers have been used. Hydraulic dampers are complex mechanical components that require hydraulic fluids and have high associated maintenance costs. Elastomeric dampers are conceptually simpler and provide a "dry" rotor, but are rather costly. Furthermore, their damping characteristics can degrade with time without showing external signs of failure. Hence, the dampers must be replaced on a regular basis. A semi-active friction based lead-lag damper is proposed as a replacement for hydraulic and elastomeric dampers. Damping is provided by optimized energy dissipation due to frictional forces in semi-active joints. An actuator in the joint modulates the normal force that controls energy dissipation at the frictional interfaces, resulting in large hysteretic loops.; Various selective damping strategies are developed and tested for a simple system containing two different frequency modes in its response, one of which needs to be damped out. The system reflects the situation encountered in rotor response where 1P excitation is present along with the potentially unstable regressive lag motion. Simulation of the system response is obtained to compare their effectiveness. Next, a control law governing the actuation in the lag damper is designed to generate the desired level of damping for performing adaptive selective damping of individual blade lag motion. Further, conceptual design of a piezoelectric friction based lag damper for a full-scale rotor is presented and various factors affecting size, design and maintenance cost, damping capacity, and power requirements of the damper are discussed. The selective semi-active damping strategy is then studied in the context of classical ground resonance problem. In view of the inherent nonlinearity in the system due to friction phenomena, multiblade transformation from rotating frame to nonrotating frame is not useful. Stability analysis of the system is performed in the rotating frame to gain an understanding of the dynamic characteristics of rotor system with attached semi-active friction based lag dampers. This investigation is extended to the ground resonance stability analysis of a comprehensive UH-60 model within the framework of finite element based multibody dynamics formulations. Simulations are conducted to study the performance of several integrated lag dampers ranging from passive to semi-active ones with varying levels of selectivity. Stability analysis is performed for a nominal range of rotor speeds using Prony's method.
机译:大多数旋翼中都存在超前滞后阻尼器,以在所有飞行条件下提供所需的阻尼水平。这些阻尼器是转子系统的重要组成部分,但它们也是维护成本的主要来源。在当前的转子系统中,已经使用了液压和弹性超前滞后阻尼器。液压缓冲器是复杂的机械部件,需要液压油并且具有较高的相关维护成本。弹性体阻尼器在概念上更简单,并提供“干式”转子,但价格昂贵。此外,它们的阻尼特性会随着时间的推移而降低,而不会表现出外部故障迹象。因此,必须定期更换风门。提出了一种基于半主动摩擦的超前减振器,以替代液压和弹性减振器。通过半主动关节中的摩擦力优化的能量耗散来提供阻尼。关节中的致动器调节法向力,该法向力控制摩擦界面处的能量耗散,从而导致较大的磁滞回线。针对包含两个不同频率模式的简单系统,开发并测试了各种选择性阻尼策略,其中之一需要被衰减掉。该系统反映了转子响应中遇到的情况,其中存在1P激励以及潜在的不稳定回归滞后运动。获得系统响应的仿真结果以比较其有效性。接下来,控制滞后阻尼器中的致动的控制定律被设计为生成期望的阻尼水平,以对各个叶片滞后运动进行自适应的选择性阻尼。此外,提出了用于全尺寸转子的基于压电摩擦的滞后阻尼器的概念设计,并讨论了影响尺寸,设计和维护成本,阻尼能力以及功率需求的各种因素。然后在经典地面共振问题的背景下研究了选择性半主动阻尼策略。考虑到由于摩擦现象导致的系统固有的非线性,从旋转框架到非旋转框架的多叶片转换是没有用的。在旋转框架中执行系统的稳定性分析,以了解带有附加的基于半主动摩擦的滞后阻尼器的转子系统的动态特性。这项研究扩展到基于有限元多体动力学公式框架内的综合UH-60模型的地面共振稳定性分析。进行仿真以研究几种集成的滞后阻尼器的性能,这些滞后阻尼器的范围从选择性的变化到被动的到半主动的。使用Prony方法对额定转速范围内的转子进行稳定性分析。

著录项

  • 作者

    Agarwal, Sandeep.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Engineering Aerospace.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 198 p.
  • 总页数 198
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 航空、航天技术的研究与探索;
  • 关键词

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