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Optimization of un-tethered, low voltage, 20-100 kHz flexural transducers for biomedical ultrasonics applications

机译:针对生物医学超声应用的非束缚,低压,20-100 kHz挠曲传感器的优化

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This paper describes optimization of un-tethered, low voltage, 20-100 kHz flexural transducers for biomedical ultrasonics applications. The goal of this work was to design a fully wearable, low weight (<100 g), battery operated, piezoelectric ultrasound applicator providing maximum output pressure amplitude at the minimum excitation voltage. Such implementation of ultrasound applicators that can operate at the excitation voltages on the order of only 10-25 V is needed in view of the emerging evidence that spatial-peak temporal-peak ultrasound intensity (I SPTP) on the order of 100 mW/cm ~2 delivered at frequencies below 100 kHz can have beneficial therapeutic effects. The beneficial therapeutic applications include wound management of chronic ulcers and non-invasive transdermal delivery of insulin and liposome encapsulated drugs. The early prototypes of the 20 and 100 kHz applicators were optimized using the maximum electrical power transfer theorem, which required a punctilious analysis of the complex impedance of the piezoelectric disks mounted in appropriately shaped metal housings. In the implementation tested, the optimized ultrasound transducer applicators were driven by portable, customized electronics, which controlled the excitation voltage amplitude and facilitated operation in continuous wave (CW) or pulsed mode with adjustable (10-90%) duty cycle. The driver unit was powered by remotely located rechargeable lithium (Li) polymer batteries. This was done to further minimize the weight of the applicator unit making it wearable. With DC voltage of approximately 15 V the prototypes were capable of delivering pressure amplitudes of about 55 kPa or 100 mW/cm ~2 (I SPTP). This level of acoustic output was chosen as it is considered safe and side effects free, even at prolonged exposure.
机译:本文介绍了针对生物医学超声应用的非束缚,低电压,20-100 kHz挠曲传感器的优化。这项工作的目标是设计一种完全可穿戴,重量轻(<100克),电池供电的压电超声施加器,以最小的激励电压提供最大的输出压力幅度。鉴于新出现的证据表明空间峰值时空峰值超声强度(I SPTP)约为100 mW / cm,因此需要这种可以在仅10-25 V的激励电压下工作的超声施加器的实施方式以低于100 kHz的频率传送的〜2可能具有有益的治疗效果。有益的治疗应用包括慢性溃疡的伤口处理以及胰岛素和脂质体包裹的药物的非侵入性透皮递送。使用最大功率传递定理对20和100 kHz施加器的早期原型进行了优化,这需要对安装在适当形状的金属外壳中的压电盘的复阻抗进行精确分析。在测试的实施方案中,优化的超声换能器施加器由便携式的定制电子设备驱动,该电子设备控制激励电压幅度,并以占空比(10-90%)可调的连续波(CW)或脉冲模式进行操作。驱动器单元由位于远端的可充电锂(Li)聚合物电池供电。这样做是为了进一步减小施加器单元的重量,使其可穿戴。在大约15 V的直流电压下,原型能够提供大约55 kPa或100 mW / cm〜2(I SPTP)的压力幅度。选择此水平的声音输出是因为即使在长时间暴露下也被认为是安全的并且没有副作用。

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