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一种通过使用 3D 打印组件实现亚兆赫兹单元素压电换能器的快速成型方法。

A Rapid Prototyping Method for Sub-MHz Single-Element Piezoelectric Transducers by Using 3D-Printed Components.

机构信息

Joint Department of Biomedical Engineering, The University of North Carolina at Chapel Hill and North Carolina State University, Chapel Hill, NC 27599, USA.

出版信息

Sensors (Basel). 2022 Dec 28;23(1):313. doi: 10.3390/s23010313.

Abstract

We present a rapid prototyping method for sub-megahertz single-element piezoelectric transducers by using 3D-printed components. In most of the early research phases of applying new sonication ideas, the prototyping quickness is prioritized over the final packaging quality, since the quickness of preliminary demonstration is crucial for promptly determining specific aims and feasible research approaches. We aim to develop a rapid prototyping method for functional ultrasonic transducers to overcome the current long lead time (>a few weeks). Here, we used 3D-printed external housing parts considering a single matching layer and either air backing or epoxy-composite backing (acoustic impedance > 5 MRayl). By molding a single matching layer on the top surface of a piezoceramic in a 3D-printed housing, an entire packaging time was significantly reduced (<26 h) compared to the conventional methods with grinding, stacking, and bonding. We demonstrated this prototyping method for 590-kHz single-element, rectangular-aperture transducers for moderate pressure amplitudes (mechanical index > 1) at focus with temporal pulse controllability (maximum amplitude by <5-cycle burst). We adopted an air-backing design (Type A) for efficient pressure outputs, and bandwidth improvement was tested by a tungsten-composite-backing (Type B) design. The acoustic characterization results showed that the type A prototype provided 3.3 kPa/Vpp far-field transmitting sensitivity with 25.3% fractional bandwidth whereas the type B transducer showed 2.1 kPa/Vpp transmitting sensitivity with 43.3% fractional bandwidth. As this method provided discernable quickness and cost efficiency, this detailed rapid prototyping guideline can be useful for early-phase sonication projects, such as multi-element therapeutic ultrasound array and micro/nanomedicine testing benchtop device prototyping.

摘要

我们提出了一种通过使用 3D 打印组件来快速制作亚兆赫兹单元素压电换能器的方法。在应用新超声技术的早期研究阶段,快速原型制作的速度优先于最终的封装质量,因为初步演示的速度对于快速确定具体目标和可行的研究方法至关重要。我们旨在开发一种用于功能超声换能器的快速原型制作方法,以克服当前的长前置时间(>数周)。在这里,我们考虑到单个匹配层,并使用空气背衬或环氧复合材料背衬(声阻抗> 5 MRayl),使用 3D 打印的外部外壳零件。通过在 3D 打印外壳中的压电陶瓷的顶表面上模制单个匹配层,可以与传统的研磨、堆叠和键合方法相比,大大缩短整个封装时间(<26 小时)。我们针对 590kHz 单元素矩形孔径换能器展示了这种原型制作方法,其在焦点处具有可控制的时间脉冲(最大幅度为<5 个周期的突发),能够产生中等压力幅度(机械指数> 1)。我们采用空气背衬设计(A型)以获得高效的压力输出,并通过钨复合材料背衬(B 型)设计来测试带宽的提高。声学特性的结果表明,A型原型在 25.3%的分数带宽下提供了 3.3 kPa/Vpp 的远场发射灵敏度,而 B 型换能器在 43.3%的分数带宽下提供了 2.1 kPa/Vpp 的发射灵敏度。由于这种方法提供了明显的快速和成本效益,因此这个详细的快速原型制作指南可以用于早期超声项目,例如多元素治疗超声阵列和微/纳米医学测试台式设备原型的制作。

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