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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Multi-layered PZT/polymer composites to increase signal-to-noise ratio and resolution for medical ultrasound transducers
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Multi-layered PZT/polymer composites to increase signal-to-noise ratio and resolution for medical ultrasound transducers

机译:多层PZT /聚合物复合材料可提高医疗超声换能器的信噪比和分辨率

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摘要

Increasing transducer bandwidth and signal-to-noise ratio (SNR) is fundamental to improving the quality of medical ultrasound images. In previous work, the authors have proposed the use of multi-layer 1-3 PZT/epoxy composites to increase both but have encountered significant fabrication challenges. These difficulties include making the bond thickness between the layers extremely small relative to the ultrasound wavelength and aligning the posts of the composite to increase the coupling coefficient. The authors have routinely achieved a bond thickness of less than 5 /spl mu/m but aligning the posts is more complicated. Finite element (PZFlex; Weidlinger, Assoc., New York, NY and Los Altos, CA) simulations show that the pulse-echo SNR and bandwidth degrade significantly with misalignment of the posts. Alignment of greater than 90% of the post pitch (i.e., tolerance of 10 to 20 /spl mu/m) is required to obtain significant increases in SNR and bandwidth relative to conventional transducer arrays. This will be a difficult tolerance for large-scale production. Thus, the authors have developed a multi-layer composite hybrid array that will not require post alignment. This structure consists of a layer of 5 MHz 1-3 composite material on top of conventional 5 MHz PZT, which will provide greater SNR relative to conventional composites and increased bandwidth over multi-layer PZT. PZFlex simulations show that for a 2 MHz linear array element, the 2 layer hybrid structure increases the pulse-echo SNR by 7.5 dB over that from a single layer PZT element. Even without a matching layer, an increase in the -6 dB pulse-echo fractional bandwidth from 22% for the PZT element to 35% for the hybrid element was also predicted. Experimentally, in a 32 element array, the authors achieved an increase of 5.2 dB in SNR and an increased -6 dB bandwidth from 23 to 30%. In vitro and in vivo images showed corresponding improvements.
机译:增加换能器带宽和信噪比(SNR)对于提高医学超声图像的质量至关重要。在先前的工作中,作者提出使用多层1-3 PZT /环氧树脂复合材料来增加两者,但遇到了严重的制造挑战。这些困难包括使层之间的结合厚度相对于超声波长极小,并使复合材料的柱对齐以增加耦合系数。作者通常已经实现了小于5 / spl mu / m的粘结厚度,但是对齐桩更加复杂。有限元(PZFlex; Weidlinger,Assoc。,纽约,NY和Los Altos,CA)的仿真显示,脉冲回波的SNR和带宽会随着柱的未对准而显着降低。相对于常规换能器阵列,需要获得大于柱间距的90%的对准(即,公差为10到20 / spl mu / m),以显着提高SNR和带宽。这对于大规模生产将是一个困难的容忍度。因此,作者开发了一种不需要后对齐的多层复合混合阵列。此结构由常规5 MHz PZT顶部的5 MHz 1-3复合材料层组成,相对于常规复合材料,该材料将提供更高的SNR,并在多层PZT上提供更高的带宽。 PZFlex仿真显示,对于2 MHz线性阵列元件,与单层PZT元件相比,2层混合结构将脉冲回波SNR提高7.5 dB。即使没有匹配层,也预计-6 dB脉冲回波分数带宽将从PZT元件的22%增加到混合元件的35%。实验上,在32个元素的阵列中,作者将SNR提高了5.2 dB,并将-6 dB带宽从23%提高到30%。体外和体内图像显示出相应的改善。

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