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Electrostrictive materials: characterization and a

机译:电致伸缩材料:表征和

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Abstract: Electrostrictive materials, such as the ceramic PMN/PT/La, operating above T$-max$/ with a DC bias field behave as a piezoelectric ceramic materials with C$-INF$/ symmetry. The effective piezoelectric and electromechanical coupling coefficients are found to be linear as a function of the DC bias field up to about 0.5MV/m, while the elastic constant and the dielectric constant are found to have a quadratic dependence on the DC bias field. Above 0.5 MV/m the piezoelectric and the electromechanical coupling constants begin to saturate due to higher 4th order electrostriction. In essence these materials behave as tunable piezoelectric materials with the piezoelectric coefficient being directly proportional to the electrostrictive coefficient and the DC bias field up to saturation>. The properties of DC biased resonators of this material are derived from a non-linear theory based on the Taylor's series expansion of the thermodynamic potentials to 3rd and higher order terms in field and stress. The resonance equations for the DC biased length extensional resonator are presented and it is shown that DC biased resonance techniques can be used to measure the electrostrictive and other higher order coefficients at frequencies of interest to the ultrasonics community. The experimental apparatus used to measure these properties will be described and the limitations with regards to isolation of the measurement signal and the DC bias signal will be discussed. We will show that these materials, in conjunction with standard piezoelectric ceramics, offer the transducer design engineer an extra degree of freedom and the feasibility of unique transducer designs that will allow, for example, multiple beam patterns from the same circular/linear array using an adjustable DC bias profile on the array or the possible use of the field dependence of the compliance to fabricate electrically active backing materials. In conclusion we discuss how a better understanding of the macroscopic theory of piezoelectric and electrostrictive materials can benefit the transducer designer. !21
机译:摘要:电致伸缩材料(例如陶瓷PMN / PT / La)在T $ -max $ /以上且具有DC偏置场的情况下,其行为与C $ -INF $ /对称的压电陶瓷材料相同。发现有效的压电和机电耦合系数是直流偏置场的函数,线性关系高达0.5MV / m,而弹性常数和介电常数则对直流偏置场具有二次依赖性。高于0.5 MV / m时,由于较高的四阶电致伸缩性,压电和机电耦合常数开始饱和。本质上,这些材料表现为可调谐的压电材料,其压电系数与电致伸缩系数和直到饱和>的直流偏置场成正比。这种材料的直流偏置谐振器的特性是基于非线性理论得出的,该理论基于热力学势的泰勒级数展开场和应力的三阶和更高阶项。给出了直流偏置长度扩展谐振器的谐振方程,结果表明,直流偏置谐振技术可用于测量超声社区感兴趣的频率下的电致伸缩系数和其他更高阶系数。将描述用于测量这些特性的实验设备,并讨论关于隔离测量信号和直流偏置信号的限制。我们将证明,这些材料与标准压电陶瓷配合使用,可为换能器设计工程师提供额外的自由度,以及独特的换能器设计的可行性,例如,使用同一个圆形/线性阵列,可通过使用一个阵列上可调节的直流偏置曲线,或者可能使用依从性的场依赖性来制造电活性背衬材料。总之,我们讨论了如何更好地理解压电和电致伸缩材料的宏观理论可以使换能器设计人员受益。 !21

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