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Fracture of ferroelectric materials.

机译:铁电材料的断裂。

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摘要

Ferroelectric materials continue to find increasing use in actuator, sensor and transducer design. Questions regarding lifetime and reliability remain a concern due to the inherent low fracture toughness and complex material behavior. The poling procedure required for use in actuator and sensing devices introduces anisotropy in elastic and dielectric coefficients as well as piezoelectric coupling between the mechanical and electrical fields. This introduces complex fracture behavior which necessitates advanced analytical techniques and fracture characterization.; In this dissertation, fracture mechanics of ferroelectric materials is evaluated by employing different analytical techniques and experimental methodology. The theoretical work has focused on linear piezoelectric coupling that accounts for the influence of anisotropy and heterogeneity on fracture. A new orthotropic rescaling technique is presented that explicitly solves the anisotropic linear elastic piezoelectric crack problem in terms of material coefficients. The effects of heterogeneities on electric field induced microfracture are analyzed by implementing a crack at the edge of a heterogeneous piezoelectric inclusion. A positive, flaw-localized driving force is realized when permeable crack face boundary conditions are considered.; The experimental portion of the work evaluates fracture behavior in the ferroelectric ceramic, lead zirconate titanate (PZT), and the ferroelectric relaxor single crystal PZN-4.5%PT. Relative humidity and electric boundary conditions are shown to have significant effects on crack kinetics in PZT. Fracture anisotropy in single crystal PZN-4.5%PT is characterized using the Single-Edge V-notch Beam (SEVNB) method and Vickers indentations. Scanning electron micrographs are used to determine the crack profile which leads to a prediction of crack tip toughness and local energy release rate. A weak cleavage plane is identified in the single crystal relaxor which contains a significantly lower toughness in comparison to the ferroelectric ceramic PZT.
机译:铁电材料继续在执行器,传感器和换能器设计中得到越来越多的使用。由于其固有的低断裂韧性和复杂的材料性能,因此有关寿命和可靠性的问题仍然令人担忧。在执行器和传感设备中使用所需的极化过程会引入弹性系数和介电系数的各向异性,以及机械和电场之间的压电耦合。这就引入了复杂的断裂行为,这就需要先进的分析技术和断裂特征。本文采用不同的分析技术和实验方法对铁电材料的断裂力学进行了评价。理论工作集中在线性压电耦合上,该耦合考虑了各向异性和异质性对断裂的影响。提出了一种新的正交各向异性缩放技术,该技术从材料系数的角度明确解决了各向异性线性弹性压电裂纹问题。通过在非均质压电夹杂物的边缘实施裂纹分析了非均质性对电场诱导的微裂纹的影响。当考虑到可渗透的裂纹面边界条件时,可实现正的,局部缺陷驱动力。这项工作的实验部分评估了铁电陶瓷,锆钛酸铅(PZT)和铁电弛豫单晶PZN-4.5%PT中的断裂行为。研究表明,相对湿度和电边界条件对PZT的裂纹动力学有显着影响。使用单边V型缺口光束(SEVNB)方法和维氏压痕表征了单晶PZN-4.5%PT中的断裂各向异性。扫描电子显微照片用于确定裂纹轮廓,从而预测裂纹尖端的韧性和局部能量释放率。与铁电陶瓷PZT相比,在单晶弛豫器中发现了一个较弱的解理面,该解理面的韧性明显较低。

著录项

  • 作者

    Oates, William Sumner.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 179 p.
  • 总页数 179
  • 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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