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Novel Configurations of Ultrahigh Frequency (= 600 MHz) Analog Frontend for High Resolution Ultrasound Measurement

机译:高分辨率超声测量的超高频率(& = 600 MHz)模拟前端的新配置

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In this article, an approach to designing and developing an ultrahigh frequency (600 MHz) ultrasound analog frontend with Golay coded excitation sequence for high resolution imaging applications is presented. For the purpose of visualizing specific structures or measuring functional responses of micron-sized biological samples, a higher frequency ultrasound is needed to obtain a decent spatial resolution while it lowers the signal-to-noise ratio, the difference in decibels between the signal level and the background noise level, due to the higher attenuation coefficient. In order to enhance the signal-to-noise ratio, conventional approach was to increase the transmit voltage level. However, it may cause damaging the extremely thin piezoelectric material in the ultrahigh frequency range. In this paper, we present a novel design of ultrahigh frequency (600 MHz) frontend system capable of performing pseudo Golay coded excitation by configuring four independently operating pulse generators in parallel and the consecutive delayed transmission from each channel. Compared with the conventional monocycle pulse approach, the signal-to-noise ratio of the proposed approach was improved by 7-9 dB without compromising the spatial resolution. The measured axial and lateral resolutions of wire targets were 16.4 mu m and 10.6 mu m by using 156 MHz 4 bit pseudo Golay coded excitation, respectively and 4.5 mu m and 7.7 mu m by using 312 MHz 4 bit pseudo Golay coded excitation, respectively.
机译:在本文中,提出了一种具有高乐编码激励序列的设计和开发超高频率(600MHz)超声模拟前端的方法,用于高分辨率成像应用。为了可视化微米尺寸的生物样品的特定结构或测量功能响应,需要更高的超声波,以获得不良的空间分辨率,而信号电平与信号电平之间的分贝的差异差异由于衰减系数越高,背景噪声水平。为了提高信噪比,传统方法是增加发射电压电平。然而,它可能导致超高频率范围内损坏极薄的压电材料。在本文中,我们提出了一种简介的超高频率(600MHz)前端系统设计,其能够通过配置四个独立的操作脉冲发生器和来自每个信道的连续延迟传输来执行伪高尔编码激励。与传统的单循环脉冲方法相比,提出了拟议方法的信噪比通过7-9dB改善而不损害空间分辨率。通过使用312MHz 4比特伪大醇编码激励,分别通过使用156MHz 4位伪型译码激发,测量的轴向和横向分辨率为16.4μm和10.6μm和4.5 mum和7.7μm。

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