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超声成像中用于大规模读出的集成混合子孔径波束形成和时分复用。

Integrated Hybrid Sub-Aperture Beamforming and Time-Division Multiplexing for Massive Readout in Ultrasound Imaging.

出版信息

IEEE Trans Biomed Circuits Syst. 2022 Oct;16(5):972-980. doi: 10.1109/TBCAS.2022.3205024. Epub 2022 Nov 30.

Abstract

This paper demonstrates hybrid sub-aperture beamforming (SAB) with time-division multiplexing (TDM) for massive interconnect reduction in ultrasound imaging systems. A single-chip front-end system prototype has been fabricated in 180-nm HV BCD technology that combines 5×1 SAB with 8×1 TDM to efficiently reduce the number of receive signal interconnects by a factor of 40. The system includes on-chip high-voltage (HV) pulsers capable of generating unipolar pulses up to 70 V in transmit (TX) mode. The receiver (RX) chain consists of a T/R switch, a variable-gain low-noise amplifier (VG-LNA) with 4-step gain control (15-32 dB) for time-gain compensation followed by a programmable switched-capacitor analog delay-and-sum beamformer. The proof-of-concept prototype operates at a 200-MHz clock frequency and the SAB provides 32-step fine delays with a maximum delay of 310 ns corresponding to better than λ/20 delay quantization at 5 MHz. With these specifications, the SAB is capable of beam steering from 0 to 45 for a 5-element subarray with 150-micron pitch ( λ/2), providing a near-ideal phased array imaging performance. The sub-aperture beamformer is followed by the TDM system where each of the 8 channels is sampled at a rate of 25 MS/s after an anti-aliasing bandpass filter. The full functionality of the prototype chip is validated through electrical and acoustic measurements on a 1-D capacitive micromachined ultrasonic transducer (CMUT) array designed for intracardiac echocardiography (ICE).

摘要

本文展示了用于超声成像系统中大规模互连减少的混合子孔径波束形成 (SAB) 与时分复用 (TDM)。已经在 180nm HV BCD 技术中制造了一个单片前端系统原型,该原型结合了 5×1 SAB 和 8×1 TDM,可将接收信号互连的数量有效减少 40 倍。该系统包括能够在发射 (TX) 模式下产生高达 70V 的单极脉冲的片上高压 (HV) 脉冲器。接收器 (RX) 链包括一个 T/R 开关、一个具有 4 步增益控制 (15-32dB) 的可变增益低噪声放大器 (VG-LNA),用于时间增益补偿,其后是可编程开关电容器模拟延迟和求和波束形成器。该概念验证原型以 200MHz 时钟频率运行,SAB 提供 32 步精细延迟,最大延迟为 310ns,对应于在 5MHz 时优于 λ/20 的延迟量化。根据这些规格,SAB 能够在 5 元素子阵中从 0 到 45 进行波束转向,子阵间距为 150 微米 ( λ/2),提供近乎理想的相控阵成像性能。子孔径波束形成器后面是 TDM 系统,其中每个 8 个通道在经过抗混叠带通滤波器后以 25MS/s 的速率进行采样。通过对专为心脏内超声心动图 (ICE) 设计的 1-D 电容式微机械超声换能器 (CMUT) 阵列进行电声测量,验证了原型芯片的全部功能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d7ba/9796796/7804ef66cf87/nihms-1854291-f0001.jpg

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In vivo real-time 3-D intracardiac echo using PMUT arrays.使用压电微机械超声换能器(PMUT)阵列的体内实时三维心内超声检查
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