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A study of electromechanical properties of PMN-PT ceramics and analysis of the effects of loss on frequency response of piezoelectric ceramics.

机译:PMN-PT陶瓷的机电性能研究以及损耗对压电陶瓷频率响应的影响分析。

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摘要

Two areas of piezoelectric ceramic research are discussed. First, a study of structure-property relations in PMN-PT is presented. Then, results of a study of effects of various loss mechanisms in ceramic resonators are given.; Ceramic lead magnesium niobate-lead titanate ((1-x)PMN-xPT) of different compositions was prepared by the columbite precursor method. This study covers compositions ranging from 0.94PMN-0.06PT to 0.60PMN-0.40PT, focusing on two areas of the (1-x)PMN-xPT system: compositions that exhibit electrostrictive behavior and those that show piezoelectric behavior. Optimal electromechanical properties are obtained with the composition 0.82PMN-0.18PT, measured at T=T{dollar}rmsb{lcub}m{rcub}{dollar}=80{dollar}spcirc{dollar}C and with a DC bias of 5 kV/cm. Under these conditions the dielectric constant is 32000 and the planar coupling coefficient is 0.55. X-ray diffraction is used to study crystal structure of the (1-x)PMN-xPT system near the morphotrophic phase boundary (MPB). In this study, it is shown that the (1-x)PMN-xPT system has a compositionally wide two-phase region surrounding the MPB. The compositions 0.72PMN-0.28PT and 0.60PMN-0.40PT correspond to the rhombohedral and tetragonal single phase boundaries of the two-phase region, respectively, and 0.655PMN-0.345PT is the MPB composition. Electromechanical property evaluation shows that the optimal piezoelectric properties (d{dollar}sb{lcub}33{rcub}=720{dollar} pC/N, K = 5400, k{dollar}rmsb{lcub}p{rcub}{dollar} = 62%, and k{dollar}rmsb{lcub}t{rcub}{dollar} = 46%) are obtained at the MPB composition.; A review of work involving loss in ceramic resonators represented via complex material constants and equivalent circuits from past literature is presented. The concept of a complex electromechanical coupling coefficient is presented, and its connection to complex material constants is discussed. The complex electromechanical coupling coefficient results directly from the complex material constants from which it is comprised. As a consequence of the complex electromechanical coupling coefficient, complex resonance frequencies arise and are presented. This means that the natural resonance frequencies of a lossy piezoelectric material are in complex frequency space and, if stimulated near a complex frequency, will exhibit typical piezoelectric frequency response profiles.; An example, using computer simulation, is presented using the MPB composition of PMN-PT to show its complex resonance frequency and behavior when subject to excitation by complex frequencies. When excited with a complex frequency voltage source, the measured current response attains a maximum value at the natural (complex) resonance frequency.
机译:讨论了压电陶瓷研究的两个领域。首先,对PMN-PT中的结构-属性关系进行了研究。然后,给出了对陶瓷谐振器中各种损耗机制影响的研究结果。采用钴lum石前体法制备了不同组成的陶瓷铌酸铅镁-钛酸铅((1-x)PMN-xPT)。这项研究涵盖范围从0.94PMN-0.06PT到0.60PMN-0.40PT的成分,重点研究(1-x)PMN-xPT系统的两个领域:表现出电致伸缩行为的成分和表现出压电行为的成分。最佳的机电性能是由0.82PMN-0.18PT组成的,在T = T {dollar} rmsb {lcub} m {rcub} {dollar} = 80 {dollar} spcirc {dollar} C且直流偏置为5时测得的kV / cm。在这些条件下,介电常数为32000,平面耦合系数为0.55。 X射线衍射用于研究(1-x)PMN-xPT系统在晶型相界(MPB)附近的晶体结构。在这项研究中,表明(1-x)PMN-xPT系统在MPB周围具有组成较宽的两相区域。组成0.72PMN-0.28PT和0.60PMN-0.40PT分别对应于两相区域的菱形和四边形单相边界,而0.655PMN-0.345PT是MPB组成。机电性能评估表明,最佳压电性能(d {dollar} sb {lcub} 33 {rcub} = 720 {dollar} pC / N,K = 5400,k {dollar} rmsb {lcub} p {rcub} {dollar} = 62%,并且在MPB组成下获得k {dolrms} rmsb {lcub} t {rcub} {dollar} = 46%。本文介绍了涉及陶瓷谐振器损耗的工作,这些工作通过过去的文献中的复数材料常数和等效电路表示。提出了复数机电耦合系数的概念,并讨论了其与复数材料常数的关系。复杂的机电耦合系数直接由组成它的复杂材料常数得出。由于复杂的机电耦合系数,出现并给出了复杂的共振频率。这意味着有损耗压电材料的固有共振频率在复杂的频率空间中,如果在复杂的频率附近被激发,将表现出典型的压电频率响应曲线。给出了一个使用计算机仿真的示例,该示例使用PMN-PT的MPB组成来显示其复杂的共振频率和当受到复杂频率激发时的行为。当用复频电压源激励时,测得的电流响应在自然(复)谐振频率处达到最大值。

著录项

  • 作者

    Kelly, Joseph Martin.;

  • 作者单位

    Rutgers The State University of New Jersey - New Brunswick.;

  • 授予单位 Rutgers The State University of New Jersey - New Brunswick.;
  • 学科 Engineering Materials Science.; Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 1998
  • 页码 181 p.
  • 总页数 181
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;无线电电子学、电信技术;
  • 关键词

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