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Advanced Piezoelectric Single Crystal Based Transducers for Naval Sonar Applications

机译:先进的基于压电单晶的海军声纳传感器

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TRS is developing new transducers based on single crystal piezoelectric materials such as Pb(Mg_(1/3)Nb_(2/3))_(x-1)Ti_xO_3 (PMN-PT). Single crystal piezoelectrics such as PMN-PT exhibit very high piezoelectric coefficients (d_(33) ~ 1800 to > 2000 pC/N) and electromechanical coupling factors (k_(33) > 0.9), respectively, which may be exploited for improving the performance of broad bandwidth and high frequency sonar. Apart from basic performance, much research has been done on reducing the size and increasing the output power of tonpilz transducers for sonar applications. Results are presented from two different studies. "33" mode single crystal tonpilz transducers have reduced stack lengths due to their low elastic stiffness relative to PZTs, however, this produces non-ideal aspect ratios due to large lateral dimensions. Alternative "31" resonance mode tonpilz elements are proposed to improve performance over these "33" designs. d_(32) values as high as -1600 pC/N have been observed, and since prestress is applied perpendicular to the poling direction, "31" mode Tonpilz elements exhibit lower loss and higher reliability than "33" mode designs. Planar high power tonpilz arrays are the optimum way to obtain the required acoustic pressure and bandwidth for small footprint, high power sensors. An important issue for these sensors is temperature and prestress stability, since fluctuations in tonpilz properties affects power delivery and sensing electronic design. TRS used the approach of modifying the composition of PMN-PT to improve the temperature dependence of properties of the material. Results show up to a 50% decrease in temperature change while losing minimal source level.
机译:TRS正在开发基于单晶压电材料的新换能器,例如Pb(Mg_(1/3)Nb_(2/3))_(x-1)Ti_xO_3(PMN-PT)。 PMN-PT等单晶压电体分别具有很高的压电系数(d_(33)〜1800至> 2000 pC / N)和机电耦合系数(k_(33)> 0.9),可用于改善性能。宽带和高频声纳。除了基本性能外,在减小声纳应用的tonpilz换能器的尺寸和增加其输出功率方面进行了大量研究。结果来自两项不同的研究。 “ 33”模式单晶tonpilz换能器由于相对于PZT具有较低的弹性刚度而具有减小的堆叠长度,但是,由于较大的横向尺寸,这会产生不理想的长宽比。提出了替代的“ 31”共振模式的tonpilz元件,以改善这些“ 33”设计的性能。已经观察到d_(32)值高达-1600 pC / N,并且由于垂直于极化方向施加了预应力,因此“ 31”模式的Tonpilz元件比“ 33”模式的设计具有更低的损耗和更高的可靠性。平面大功率tonpilz阵列是为小尺寸,大功率传感器获得所需声压和带宽的最佳方法。这些传感器的一个重要问题是温度和预应力稳定性,因为tonpilz属性的波动会影响功率传输和传感电子设计。 TRS使用修改PMN-PT组成的方法来改善材料性能的温度依赖性。结果显示,温度变化最多降低了50%,同时损失了最小的源水平。

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