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Manufacturing and electrical interconnection of piezoelectric 1-3 composite materials for phased array ultrasonic transducers

机译:压电1-3复合材料的制造和电互连,用于相控阵超声换能器

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Piezoelectric 1-3 composite material sensors are used in phased array ultrasonic testing systems. The Dice-and-Fill technique is a very flexible method to fabricate these materials for frequencies up to 10 MHz. A polarized PZT plate is cut in two directions with a dicing saw to separate the PZT pillars. The pitch of the microstructure has to be finer with increasing center frequency to suppress spurious modes. Square shaped pillars with a width of 55 μm, a distance of 30 μm and a height of more than 500 μm are realized. The required times for the dicing process and the number of defects afterwards are compared for various materials. Additionally the usability of ceramic materials for mechanical dicing is evaluated. After the dicing process the structure is filled with a passive polymer, grinded and metalized by physical vapor deposition. The different mechanical and thermal properties of the PZT ceramic and the epoxy filling result in high demands on the electrical interconnection of the composite material. Different methods are investigated. It shows that hot bar soldering is most suitable. A soldering process based on SnBi solder is optimized.
机译:压电1-3复合材料传感器用于分阶段阵列超声波检测系统。骰子和填充技术是一种非常灵活的方法,用于制造这些材料,用于频率高达10 MHz。用切割锯切割两个方向上的偏振光板,以分离PZT柱。微结构的间距必须更精细地具有增加的中心频率来抑制杂散模式。宽度为55μm的方形柱,实现了30μm的距离和大于500μm的距离。比较各种材料的切割过程的所需时间和之后的缺陷的数量。另外,评估了机械切割的陶瓷材料的可用性。在切割过程之后,该结构填充有无源聚合物,通过物理气相沉积研磨和金属化。 PZT陶瓷的不同机械和热性能和环氧树脂填充物对复合材料的电互连的要求高。调查了不同的方法。它表明热杆焊接最合适。优化了基于SNBI焊料的焊接过程。

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