Chan H W, Unsworth J
Nat. Meas. Lab., Inst. of Ind. Technol., W. Lindfield, NSW.
IEEE Trans Ultrason Ferroelectr Freq Control. 1989;36(4):434-41. doi: 10.1109/58.31780.
A theoretical model is presented for combining parameters of 1-3 ultrasonic composite materials in order to predict ultrasonic characteristics such as velocity, acoustic impedance, electromechanical coupling factor, and piezoelectric coefficients. Hence, the model allows the estimation of resonance frequencies of 1-3 composite transducers. This model has been extended to cover more material parameters, and they are compared to experimental results up to PZT volume fraction nu of 0.8. The model covers calculation of piezoelectric charge constants d(33) and d(31). Values are found to be in good agreement with experimental results obtained for PZT 7A/Araldite D 1-3 composites. The acoustic velocity, acoustic impedance, and electromechanical coupling factor are predicted and found to be close to the values determined experimentally.
提出了一个理论模型,用于组合1-3型超声复合材料的参数,以预测诸如速度、声阻抗、机电耦合系数和压电系数等超声特性。因此,该模型可以估算1-3型复合换能器的共振频率。该模型已扩展到涵盖更多材料参数,并与高达0.8的PZT体积分数ν的实验结果进行了比较。该模型涵盖了压电电荷常数d(33)和d(31)的计算。结果发现这些值与PZT 7A/双酚A型环氧树脂D 1-3复合材料的实验结果吻合良好。预测了声速、声阻抗和机电耦合系数,发现它们接近实验测定的值。