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Optimization and implementation of multimode piezoelectric shunt damping systems

机译:多模压电并联阻尼系统的优化与实现

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摘要

Piezoelectric transducer (PZT) patches can be attached to a structure in order to reduce vibration. The PZT patches essentially convert vibrational mechanical energy into electrical energy. The electrical energy can be dissipated via an electrical impedance. Currently, impedance designs require experimental tuning of resistive circuit elements to provide optimal performance. A systematic method is presented for determining the resistance values by minimizing the ϰ₂ norm of the damped system. After the design process, shunt circuits are normally implemented using discrete resistors, virtual inductors and Riordian gyrators. The difficulty in constructing the shunt circuits and achieving reasonable performance has been an ongoing and unaddressed problem in shunt damping. A new approach to implementing piezoelectric shunt circuits is presented. A synthetic impedance, consisting of a voltage controlled current source and a digital signal processor system, is used to synthesize the terminal impedance of a shunt network. A two-mode shunt circuit is designed and implemented for an experimental simply supported beam. The second and third structural modes of the beam are reduced in magnitude by 22 and 18 dB.
机译:可以将压电换能器(PZT)贴片连接到结构上,以减少振动。 PZT贴片实质上将振动机械能转换为电能。可以通过电阻抗来耗散电能。当前,阻抗设计需要对电阻电路元件进行实验性调整以提供最佳性能。提出了一种通过最小化阻尼系统的system 2范数来确定电阻值的系统方法。在设计过程之后,通常使用分立电阻器,虚拟电感器和Riordian回转器实现并联电路。在并联阻尼中,构造并联电路和实现合理性能的困难一直是一个未解决的问题。提出了一种实现压电并联电路的新方法。由电压控制电流源和数字信号处理器系统组成的合成阻抗用于合成并联网络的终端阻抗。设计并实现了一种用于实验简单支撑光束的两模式并联电路。光束的第二和第三结构模式的幅度减小了22和18 dB。

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