Amini Mohammad Hossein, Sinclair Anthony N, Coyle Thomas W
IEEE Trans Ultrason Ferroelectr Freq Control. 2016 Mar;63(3):448-55. doi: 10.1109/TUFFC.2016.2519348. Epub 2016 Jan 25.
A novel design of piezoelectric ultrasonic transducer is introduced, suitable for operation at temperatures of up to 700 °C-800 °C. Lithium niobate single crystal is chosen as the piezoelectric element primarily due to the high Curie temperature of 1200 °C. A backing element based on a porous ceramic is designed for which the pore volume fraction and average pore diameter in the ceramic matrix can be controlled in the manufacturing process; this enables the acoustic impedance and attenuation to be selected to match their optimal values as predicted by a one-dimensional transducer model of the entire transducer. Porous zirconia is selected as the ceramic matrix material of the backing element to obtain an ultrasonic signal with center frequency of 2.7-3 MHz, and 3-dB bandwidth of 90%-95% at the targeted operating temperature. Acoustic coupling of the piezocrystal to the backing element and matching layer is investigated using commercially available high-temperature adhesives and brazing alloys. The performance of the transducer as a function of temperature is studied. Stable bonding and clear signals were obtained using an aluminum brazing alloy as the bonding agent.
介绍了一种新型压电超声换能器设计,适用于高达700℃至800℃的温度环境。选择铌酸锂单晶作为压电元件,主要是因为其居里温度高达1200℃。设计了一种基于多孔陶瓷的背衬元件,在制造过程中可以控制陶瓷基体中的孔隙体积分数和平均孔径;这使得声阻抗和衰减能够根据整个换能器的一维换能器模型预测选择为匹配其最佳值。选择多孔氧化锆作为背衬元件的陶瓷基体材料,以在目标工作温度下获得中心频率为2.7 - 3MHz、3dB带宽为90% - 95%的超声信号。使用市售高温粘合剂和钎焊合金研究压电晶体与背衬元件及匹配层之间的声耦合。研究了换能器性能随温度的变化情况。使用铝钎焊合金作为粘合剂获得了稳定的粘结和清晰的信号。