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Piezoelectic networking for mode delocalization and vibration suppression of nearly periodic structures.

机译:压电网络,用于近周期结构的模式离域和振动抑制。

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摘要

This thesis investigates the use of piezoelectric circuitry networking technology for mode delocalization and effective vibration suppression in nearly periodic structures.; Periodic structures, such as bladed-disks in turbo-machinery, are well known to be susceptible to vibration localization effect which can be caused by the small differences (also referred to as mistuning) in the substructures. As a result of localization, vibration energy is confined to a small number of substructures, and the dynamic behavior of periodic structures can be drastically changed. Consequently, the localization effect could significantly impact the health of such nearly (mistuned) periodic structures.; Extensive studies exist concerning mode localization and forced response of nearly periodic structures. Most investigations have focused on exploring the cause of localization, developing methods to quantify the degree of localization, and predicting the maximum forced response. A few studies have explored means to reduce or eliminate localization effect. Recently, Tang and Wang (2003) proposed a new piezoelectric networking concept for mode delocalization of nearly periodic structures and have shown promising results. This thesis aims to further extend the state of the art of delocalization and vibration control of nearly periodic structures via piezoelectric networking technology.; First, piezoelectric networking for mode delocalization is further investigated analytically and experimentally. An active coupling enhancement approach via negative capacitance is proposed for improving the effectiveness of the network for mode delocalization. The analysis is conducted using the transfer matrix approach and Lyapunov exponent. A localization index is defined from the correlation between Lyapunov exponents and the localized modes of the electromechanically bi-coupled system, and is used in a comprehensive parameter study. Experiments are carried out to validate the delocalization concept on a bladed disk specimen. The effect of negative capacitance on the network's performance is also investigated. Both analysis and experiments verify that the mode localization level of mistuned periodic structures can be effectively reduced by the piezoelectric network, and the performance of the network can be further improved by the active coupling enhancement approach via negative capacitance.; The investigation on the piezoelectric networking is then extended to vibration suppression of the mistuned bladed disk. Due to the localization effect, mistuned bladed disks in turbo-machinery often suffer from large forced response. This study provides a comprehensive analysis on piezoelectric networking for effective multiple harmonic vibration suppression of mistuned bladed disks. The analysis consists of two parts. In the first part, the bladed disk is modeled as a multi-blade periodic system with disk dynamics neglected. A piezoelectric network is designed and optimized analytically after applying the U-transformation technique. The effectiveness of the optimal network for multiple harmonic vibration suppression is demonstrated and compared to the traditional absorber design. Monte Carlo simulation is performed to further examine the effectiveness of the network for mistuned bladed disk systems. Robustness issues associated with key circuitry elements are also investigated. An approach via negative capacitance to improve the system performance and robustness is explored. The analysis shows that the piezoelectric network is quite effective and robust for multiple harmonic vibration suppression of mistuned bladed disks, and the performance and robustness can be further improved by negative capacitance. Based on the analysis in the first part study, we then extend the investigations to a more complex scenario. A bladed disk model with coupled blade-disk dynamics is developed to better describe the actual system and correspondingly, a new multi-circuit piezoelectric net
机译:本文研究了压电电路网络技术在近周期性结构中的模式离域和有效振动抑制的应用。众所周知,周期性结构,例如涡轮机械中的叶片盘,容易受到振动局部化的影响,这可能是由于子结构中的微小差异(也称为雾化)引起的。作为局部化的结果,振动能量被限制在少量的子结构中,并且周期性结构的动力学行为可以大大改变。因此,本地化效应可能会严重影响这种几乎(失调)的周期性结构的健康。关于模式定位和近乎周期性结构的强制响应,存在大量研究。大多数研究都集中于探索定位的原因,开发量化定位程度的方法以及预测最大的强制响应。一些研究探索了减少或消除定位影响的方法。最近,Tang和Wang(2003)提出了一种新的压电网络概念,用于近周期性结构的模式离域,并显示出令人鼓舞的结果。本文旨在通过压电网络技术进一步扩展近周期性结构的离域和振动控制技术。首先,用于模式离域的压电网络被进一步分析和实验研究。提出了一种通过负电容的有源耦合增强方法,以提高网络对模式离域的有效性。使用转移矩阵方法和Lyapunov指数进行分析。根据Lyapunov指数与机电双耦合系统的局部模式之间的相关性定义局部化指数,并将其用于全面的参数研究。进行实验以验证在叶片盘样品上的离域概念。还研究了负电容对网络性能的影响。分析和实验均证明,压电网络可以有效地降低失谐周期结构的模式局部化水平,通过负电容的有源耦合增强方法可以进一步改善网络的性能。压电网络的研究随后扩展到了雾化叶片盘的振动抑制。由于定位的影响,涡轮机械中的叶片叶片经常受到很大的强制响应。这项研究提供了压电网络的综合分析,以有效抑制雾化叶片盘的多谐波振动。分析包括两个部分。在第一部分中,将叶片式磁盘建模为忽略叶片动力学的多叶片周期性系统。应用U变换技术后,将对压电网络进行分析设计和优化。证明了用于多重谐波振动抑制的最佳网络的有效性,并将其与传统的减震器设计进行了比较。进行了蒙特卡洛模拟,以进一步检查网络对误刀片式磁盘系统的有效性。还研究了与关键电路元件相关的稳健性问题。探索了一种通过负电容改善系统性能和鲁棒性的方法。分析表明,压电网络对于抑制误导叶片盘的多次谐波振动非常有效且鲁棒,而负电容可进一步提高性能和鲁棒性。基于第一部分研究中的分析,然后将研究扩展到更复杂的场景。建立了具有耦合叶片-磁盘动力学的叶片盘模型,以更好地描述实际系统,并相应地开发了一种新的多回路压电网

著录项

  • 作者

    Yu, Hongbiao.;

  • 作者单位

    The Pennsylvania State University.;

  • 授予单位 The Pennsylvania State University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 165 p.
  • 总页数 165
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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