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Vibration reduction for smart periodic structures via periodic piezoelectric arrays with nonlinear interleaved-switched electronic networks

机译:通过具有非线性交错开关电子网络的周期压电阵列,减少智能周期结构的振动

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Smart periodic structures covered by periodically distributed piezoelectric patches have drawn more and more attention in recent years for wave propagation attenuation and corresponding structural vibration suppression. Since piezoelectric materials are special type of energy conversion materials that link mechanical characteristics with electrical characteristics, shunt circuits coupled with such materials play a key role in the wave propagation and/or vibration control performance in smart periodic structures. Conventional shunt circuit designs utilize resistive shunt (R-shunt) and resonant shunt (RL-shunt). More recently, semi-passive nonlinear approaches have also been developed for efficiently controlling the vibrations of such structures. In this paper, an innovative smart periodic beam structure with nonlinear interleaved-switched electric networks based on synchronized switching damping on inductor (SSDI) is proposed and investigated for vibration reduction and wave propagation attenuation. Different from locally resonant band gap mechanism forming narrow band gaps around the desired resonant frequencies, the proposed interleaved electrical networks can induce new broadly low-frequency stop bands and broaden primitive Bragg stop bands by virtue of unique interleaved electrical configurations and the SSDI technique which has the unique feature of realizing automatic impedance adaptation with a small inductance. Finite element modeling of a Timoshenko electromechanical beam structure is also presented for validating dispersion properties of the structure. Both theoretical and experimental results demonstrate that the proposed beam structure not only shows better vibration and wave propagation attenuation than the smart beam structure with independent switched networks, but also has technical simplicity of requiring only half of the number of switches than the independent switched network needs.
机译:近年来,由周期性分布的压电片覆盖的智能周期性结构在波传播衰减和相应的结构振动抑制方面引起了越来越多的关注。由于压电材料是将机械特性与电气特性联系起来的特殊类型的能量转换材料,因此与此类材料耦合的并联电路在智能周期结构的波传播和/或振动控制性能中起着关键作用。传统的分流电路设计利用电阻分流器(R-shunt)和谐振分流器(RL-shunt)。最近,还开发了半被动非线性方法来有效地控制这种结构的振动。本文提出了一种基于感应器上同步开关阻尼(SSDI)的,具有非线性交错开关网络的创新智能周期梁结构,并对其进行了振动减小和波传播衰减的研究。与局部谐振带隙机制不同,该机制在所需的谐振频率附近形成窄带隙,所提出的交错式网络可以通过独特的交错式电气配置和具有如下特征的SSDI技术,感应出宽泛的低频阻带并扩展原始的布拉格阻带。以小电感实现自动阻抗自适应的独特功能。还提出了Timoshenko机电梁结构的有限元建模,以验证结构的色散特性。理论和实验结果均表明,所提出的梁结构不仅比具有独立交换网络的智能梁结构表现出更好的振动和波传播衰减,而且具有技术上的简单性,仅需要比独立交换网络所需数量少一半的开关。

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