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Vibroacoustic modeling of an acoustic resonator tuned by dielectric elastomer membrane with voltage control

机译:具有电压控制的介电弹性体膜调谐的声谐振器的振动声学建模

摘要

This paper investigates the acoustic properties of a duct resonator tuned by an electro-active membrane. The resonator takes the form of a side-branch cavity which is attached to a rigid duct and covered by a pre-stretched Dielectric Elastomer (DE) in the neck area. A three-dimensional, analytical model based on the sub-structuring approach is developed to characterize the complex structure-acoustic coupling between the DE membrane and its surrounding acoustic media. We show that such resonator provides sound attenuation in the medium frequency range mainly by means of sound reflection, as a result of the membrane vibration. The prediction accuracy of the proposed model is validated against experimental test. The pre-stretched DE membrane with fixed edges responds to applied voltage change with a varying inner stress and, by the same token, its natural frequency and vibrational response can be tuned to suit particular frequencies of interest. The peaks in the transmission loss (TL) curves can be shifted towards lower frequencies when the voltage applied to the DE membrane is increased. Through simulations on the effect of increasing the voltage level, the TL shifting mechanism and its possible tuning range are analyzed. This paves the way for applying such resonator device for adaptive-passive noise control.
机译:本文研究了由电活性膜调谐的管道谐振器的声学特性。谐振器采用侧支管腔的形式,该支管腔连接到刚性管道,并在颈部区域被预拉伸的介电弹性体(DE)覆盖。建立了基于子结构方法的三维分析模型,以表征DE膜与其周围声介质之间的复杂结构-声耦合。我们表明,由于膜片振动,这种谐振器主要通过声音反射在中频范围内提供声音衰减。通过实验验证了所提模型的预测精度。具有固定边缘的预拉伸DE膜以变化的内部应力响应施加的电压变化,并且出于同样的原因,可以将其固有频率和振动响应调整为适合特定的关注频率。当施加到DE膜上的电压增加时,传输损耗(TL)曲线的峰值可以移向更低的频率。通过模拟提高电压电平的效果,分析了TL移位机制及其可能的调谐范围。这为将这种谐振器装置用于自适应无源噪声控制铺平了道路。

著录项

  • 作者

    Yu X; Lu Z; Cheng L; Cui F;

  • 作者单位
  • 年度 2017
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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