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Complex electromechanical coefficients of piezoelectric composites: Applications to passive vibration damping.

机译:压电复合材料的复机电系数:在被动振动阻尼中的应用。

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摘要

A modified resonance technique was used to measure the complex electromechanical property coefficients of lossy 0-3 composite samples comprised of ceramic lead zirconate titanate (PZT) powder dispersed in different polymer matrices.;An increase in the loss tangents of the dielectric, elastic and piezoelectric coefficients was observed near the glass transition temperatures of the polymer phases. In the case of a PZT-polyvinylidene fluoride (PVDF) composite, it was possible to measure the electromechanical coefficients using 31 and thickness mode resonances over a range of temperatures spanning the glass transition temperature of the polymer. The principle of time-temperature superposition was used to explain the frequency and temperature dependences of the coefficients. The relaxation behavior of the properties of 0-3 composites, predicted theoretically by a simple cubes model representing the composite structure, was found to be in partial agreement with the experimental data.;Due to electromechanical coupling, an imaginary part in a piezoelectric coefficient implies an imaginary part in a corresponding elastic coefficient which in turn implies lossy mechanical behavior. A dissipative mechanism like electrical conductivity in a piezoelectric material results in a mechanical loss tangent and associated dissipation of mechanical energy and damping of mechanical vibrations.;This concept of passive piezoelectric damping was developed and the effect of internal conductivity simulated by connecting external resistors across poled piezoceramic elements with large piezoelectric coupling. The damping characteristics of a stack specimen comprised of several such elements were optimized. The properties measured using electrical resonance and mechanical vibration experiments agreed with predictions from theory. It was possible to obtain a large mechanical stiffness coefficient (;Suggestions as to the utilization of the above damping effect have been made with respect to the design of ceramic-metal composites, inducing electrical conductivity in piezoceramics, use of active electronic circuits to enhance and obtain greater control over the damping properties and the possible use of magnetostrictive materials possessing large magnetomechanical coupling coefficients.
机译:使用改进的共振技术来测量由分散在不同聚合物基质中的陶瓷锆钛酸铅(PZT)粉末组成的有损0-3复合样品的复机电性能系数。在聚合物相的玻璃化转变温度附近观察到系数。在PZT-聚偏二氟乙烯(PVDF)复合材料的情况下,可以在跨越聚合物玻璃化转变温度的温度范围内使用31和厚度模式共振来测量机电系数。使用时间-温度叠加原理来解释系数的频率和温度依赖性。通过代表复合材料结构的简单立方体模型在理论上预测了0-3复合材料的性能的松弛行为,这与实验数据部分吻合。;由于机电耦合,压电系数中的虚部意味着相应弹性系数中的虚部,这又意味着有损的机械性能。诸如压电材料中的电导率之类的耗散机制会导致机械损耗角正切以及相关的机械能耗散和机械振动阻尼。具有大压电耦合的压电陶瓷元件。优化了由几个这样的元素组成的叠层样品的阻尼特性。使用共振和机械振动实验测得的性能与理论预测相符。有可能获得较大的机械刚度系数(;关于陶瓷-金属复合材料的设计,在压电陶瓷中诱导导电性,使用有源电子电路来增强和增强陶瓷的性能的建议)。可以更好地控制阻尼特性,并可能使用具有大磁机械耦合系数的磁致伸缩材料。

著录项

  • 作者

    Ramachandran, A. R.;

  • 作者单位

    The Pennsylvania State University.;

  • 授予单位 The Pennsylvania State University.;
  • 学科 Physics Condensed Matter.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 1992
  • 页码 299 p.
  • 总页数 299
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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