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Nonlinear mechanical and actuation characterization of piezoceramic fiber composites.

机译:压电陶瓷纤维复合材料的非线性力学和驱动特性。

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摘要

The use of piezoelectric ceramic materials for structural actuation is a fairly well developed practice that has found use in a wide variety of applications. However, actuators with piezoceramic fibers and interdigitated electrodes have risen to the forefront of the intelligent structures community due to their increased actuation capability. However, their fiber-reinforced construction causes them to exhibit anisotropic piezomechanical properties, and the required larger driving voltages make the inherent piezoelectric nonlinearities more prevalent. In order to effectively utilize their increased performance, the more complicated behavior of these actuators must be sufficiently characterized.; The current work is intended to provide a detailed nonlinear characterization of the mechanical and piezoelectric behavior of the Macro Fiber Composite actuator, which was developed at the NASA Langley Research Center. The mechanical behavior of this planar actuation device, which is both flexible and robust, is investigated by first developing a classical lamination model to predict its short-circuit linear-elastic properties, which are then verified experimentally. The sensitivity of this model to variations in constituent material properties is also studied. Phenomenological models are then used to represent the measured nonlinear short-circuit stress-strain response to various in-plane mechanical loads. Piezoelectric characterization begins with a nonlinear actuation model whose material parameters are determined experimentally for monotonically increasing electric fields. Next, the response of the actuator to a sinusoidal electric field input is measured under various constant mechanical loads and field amplitudes. From this procedure, the common linear piezoelectric strain coefficients are presented as a function of electric field amplitude and applied stress. In addition, a Preisach model is developed that uses the collected data sets to predict the hysteretic piezoelectric behavior of the MFC. Lastly, other related topics, such as manufacturing, cure kinetics modeling and linear thermoelasticity of the Macro Fiber Composite, are covered in the appendices.
机译:压电陶瓷材料用于结构致动的使用是相当成熟的实践,已发现其可用于多种应用中。但是,具有压电陶瓷纤维和指状电极的致动器由于其增强的致动能力而已上升到智能结构领域的最前沿。但是,它们的纤维增强结构使它们表现出各向异性的压电机械性能,并且所需的较大驱动电压使固有的压电非线性更为普遍。为了有效地利用其提高的性能,必须充分表征这些致动器的更复杂的行为。当前的工作旨在提供宏观纤维复合材料致动器的机械和压电特性的详细非线性特性,该特性是在NASA兰利研究中心开发的。首先开发经典的叠层模型以预测其短路线性弹性特性,然后研究该平面致动装置的柔韧性和鲁棒性,使其机械性能得以研究。还研究了该模型对组成材料特性变化的敏感性。现象学模型随后用于表示对各种平面内机械负载的测量的非线性短路应力-应变响应。压电表征始于非线性驱动模型,其材料参数是通过实验确定单调递增电场的。接下来,在各种恒定的机械负载和磁场振幅下测量执行器对正弦电场输入的响应。通过此过程,可以将常见的线性压电应变系数表示为电场幅度和施加应力的函数。此外,还开发了Preisach模型,该模型使用收集的数据集来预测MFC的磁滞压电行为。最后,附录涵盖了其他相关主题,例如宏纤维复合材料的制造,固化动力学建模和线性热弹性。

著录项

  • 作者

    Williams, Robert Brett.;

  • 作者单位

    Virginia Polytechnic Institute and State University.;

  • 授予单位 Virginia Polytechnic Institute and State University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 361 p.
  • 总页数 361
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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