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High-frequency ultrasound linear array imaging system using analog beamformer.

机译:使用模拟波束形成器的高频超声线性阵列成像系统。

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摘要

High-frequency (HF) ultrasound imaging, capable of achieving superior spatial resolution in real-time, has been shown to be useful for imaging and visualizing blood flow in ophthalmology, dermatology, small animal and intravascular imaging. The utilization of HF linear arrays along with beamformer for beam focusing can alleviate the limitations of the systems with single element transducers, such as single focal point, image degradation caused by mechanical and limited frame rate. This dissertation presents an investigation into the development of a high-frequency linear array ultrasound imaging system using analog beamformer. A HF high frame rate duplex system with 30 MHz 64-element linear arrays capable of fast B-mode image and pulsed-wave Doppler measurement was first implemented using high speed electronics to provide real-time duplex visualization for small animals cardiovascular activities. Subsequently a 64-channel analog beamformer was next developed in order to achieve better lateral resolution. In this design new passive delay line components can provide a total delay of 157 ns with 1ns resolution to support a 30 MHz 256-element linear array with 50 mum pitch. The transient effect caused by multiplexer switching was alleviated by using low charge injection multiplexers, differential circuits and time domain offsetting. An imaging system based on this beamformer was built by integrating it with the transmit beamformer, pulser/receiver, and a PC back-end controlling and processing unit implemented using a powerful and low-cost graphics processing unit (GPU). Both phantom and in-vitro experiments demonstrated that the system was able to achieve better resolution and clearly reveal the detail structures of the biological tissue samples such as excised bovine eye. High-frequency color flow imaging (CFI) using linear array was also investigated. In order address the challenge in high-frequency CFI, an adaptive clutter filter was proposed and the experimental results indicated that the adaptive filter could more effectively suppress the clutter signal under the high-frequency condition. The linear array system was then expanded to support real-time CFI, utilizing the programmable frond-end scanner and powerful GPU back-end processor. The parallel architecture and C language development interface of the GPU has enabled easy implementation of parallelism on the CFI algorithm. Experiment on flow phantom had shown that this prototype real-time CFI system could consistently visualize slow flow over a large field on view.
机译:高频(HF)超声成像能够实时实现出色的空间分辨率,已被证明可用于眼科,皮肤病学,小动物和血管内成像的血流成像和可视化。 HF线性阵列与波束形成器一起用于波束聚焦可以减轻具有单元素换能器的系统的局限性,例如单焦点,由机械引起的图像降级和有限的帧频。本文对使用模拟波束形成器的高频线性阵列超声成像系统的开发进行了研究。首先使用高速电子设备实现具有30 MHz 64元素线性阵列,能够进行快速B模式图像和脉冲多普勒测量的HF高帧频双工系统,以为小型动物的心血管活动提供实时双工可视化。随后,为了获得更好的横向分辨率,接下来开发了64通道模拟波束形成器。在这种设计中,新的无源延迟线组件可以提供总分辨率为1ns的157 ns的总延迟,以支持间距为50 mm的30 MHz 256元素线性阵列。通过使用低电荷注入多路复用器,差分电路和时域偏移,可以减轻由多路复用器切换引起的瞬态效应。通过将其与发射波束形成器,脉冲发生器/接收器以及使用功能强大且低成本的图形处理单元(GPU)实现的PC后端控制和处理单元集成在一起,构建了基于该波束形成器的成像系统。体模和体外实验均表明该系统能够实现更好的分辨率,并清楚地揭示出生物组织样品(例如牛眼)的详细结构。还研究了使用线性阵列的高频彩色流成像(CFI)。为了解决高频CFI中的挑战,提出了一种自适应杂波滤波器,实验结果表明,该自适应滤波器可以在高频条件下更有效地抑制杂波信号。然后,利用可编程的前端扫描器和强大的GPU后端处理器,将线性阵列系统扩展为支持实时CFI。 GPU的并行体系结构和C语言开发接口使在CFI算法上轻松实现并行成为可能。对流模型的实验表明,该原型实时CFI系统可以始终如一地可视化大视野上的缓慢流。

著录项

  • 作者

    Zhang, Lequan.;

  • 作者单位

    University of Southern California.;

  • 授予单位 University of Southern California.;
  • 学科 Engineering Biomedical.;Physics Acoustics.;Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 134 p.
  • 总页数 134
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:44:37

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