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Robust feedback control of flow-induced structural radiation of sound.

机译:流动引起的声音结构辐射的鲁棒反馈控制。

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摘要

A significant component of the interior noise of aircraft and automobiles is a result of turbulent boundary layer excitation of the vehicular structure. In this work, active robust feedback control of the noise due to this non-predictable excitation is investigated.;Both an analytical model and experimental investigations are used to determine the characteristics of the flow induced structural sound radiation problem. The problem is shown to be broadband in nature with large system uncertainties associated with the various operating conditions. Furthermore the delay associated with sound propagation is shown to restrict the use of microphone feedback. The state of the art control methodologies, ;A robust frequency domain controller design methodology is developed for the problem of sound radiated from turbulent flow driven plates. The control design methodology uses frequency domain sequential loop shaping techniques. System uncertainty, sound pressure level reduction performance, and actuator constraints are included in the design process. Using this design method, phase lag was added using non-minimum phase zeros such that the beneficial plant dynamics could be used. This general control approach has application to lightly damped vibration and sound radiation problems where there are high bandwidth control objectives requiring a low controller DC gain and controller order.;The controller design methodology developed in this work was verified experimentally. A multiple-input-multiple-output controller using accelerometer feedback and shaker control was able to achieve robust control up to 1000 Hz. Sound pressure level reductions of as much as 15 dB were achieved at multiple microphone locations. Overall reductions over the 100-1000 Hz band were approximately 5 dB. The controller was found to be robust to large changes in the system parameters due to speed variations from 35.8 m/s to 51.5 m/s and changes in the plate mass up to 40 percent.
机译:飞机和汽车内部噪声的重要组成部分是车辆结构边界层的湍流激发。在这项工作中,研究了由于这种不可预测的激励而对噪声进行的主动鲁棒反馈控制。;分析模型和实验研究均用于确定流动引起的结构声辐射问题的特征。从本质上看,这个问题是宽带的,与各种工作条件相关的系统不确定性很大。此外,示出了与声音传播相关的延迟来限制麦克风反馈的使用。先进的控制方法;针对湍流驱动板辐射出的声音问题,开发了鲁棒的频域控制器设计方法。控制设计方法使用频域顺序环路整形技术。系统不确定性,声压级降低性能和执行器约束都包含在设计过程中。使用这种设计方法,使用非最小相位零添加相位滞后,以便可以使用有益的植物动力学。这种通用控制方法适用于存在高带宽控制目标,要求低控制器DC增益和控制器阶数的轻阻尼振动和声音辐射问题。这项工作中开发的控制器设计方法已通过实验验证。使用加速度计反馈和振动控制的多输入多输出控制器能够实现高达1000 Hz的鲁棒控制。在多个麦克风位置,声压级降低了多达15 dB。在100-1000 Hz频段上的总体降低幅度约为5 dB。由于速度从35.8 m / s到51.5 m / s的变化以及板质量的变化高达40%,该控制器对于系统参数的大变化具有鲁棒性。

著录项

  • 作者

    Heatwole, Craig Meredith.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Engineering Mechanical.;Physics Acoustics.
  • 学位 Ph.D.
  • 年度 1997
  • 页码 181 p.
  • 总页数 181
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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