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Smart cymbal transducers with nitinol end caps tunable to multiple operating frequencies

机译:带有镍钛合金端盖的智能钹式传感器可调节到多个工作频率

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摘要

Cymbal flextensional transducers have principally been adopted for sensing and actuation and their performance in higher power applications has only recently been investigated. Nitinol is a shape-memory alloy (SMA) with excellent strain recovery, durability, corrosion resistance, and fatigue strength. Although it has been incorporated in many applications, the implementation of nitinol, or any of the SMAs, in power ultrasonic applications is limited. Nitinol exhibits two phenomena, the first being the superelastic effect and the second being the shape-memory effect (SME). This paper assesses two cymbal transducers, one assembled with superelastic nitinol end caps and the other with shape-memory nitinol end caps. Characterization of the nitinol alloy before the design of such transducers is vital, so that they can be tuned to the desired operating frequencies. It is shown this can be achieved for shape-memory nitinol using differential scanning calorimetry (DSC); however, it is also shown that characterizing superelastic nitinol with DSC is problematic. Two transducers are assembled whose two operating frequencies can be tuned, and their dynamic behaviors are compared. Both transducers are shown to be tunable, with limitation for high-power applications largely being associated with the bond layer.
机译:屈伸换能器主要用于感测和致动,其在高功率应用中的性能直到最近才被研究。镍钛诺是一种形状记忆合金(SMA),具有出色的应变恢复,耐用性,耐腐蚀性和疲劳强度。尽管已将其集成到许多应用程序中,但是在功率超声应用中镍钛诺或任何SMA的实现受到限制。镍钛诺表现出两种现象,第一种是超弹性效应,第二种是形状记忆效应(SME)。本文评估了两个c换能器,一个用超弹性镍钛合金端盖组装,另一个用形状记忆镍钛合金端盖组装。在设计这种换能器之前,对镍钛诺合金进行表征至关重要,因此可以将其调整到所需的工作频率。结果表明,使用差示扫描量热法(DSC)可以对形状记忆镍钛合金实现这一目标。然而,还表明用DSC表征超弹性镍钛合金是有问题的。组装了两个传感器,它们的两个工作频率可以调整,并且可以比较它们的动态性能。这两个换能器均显示为可调谐的,对于大功率应用的限制主要与粘结层有关。

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