Surfing front-end architectures for ultrasound imaging systems

P. Wang, T. Ytterdal, T. Halvorsrod
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Abstract

This paper proposes two surfing architectures of the front-end for cardiac ultrasound imaging systems by removing the high voltage (HV) transmitter/receiver (Tx/Rx) switch in traditional ultrasound imaging systems, and connecting the input and the local ground of the Rx to the output of the Tx directly. Both advantages and challenges are presented. During the emitting phase, the Rx is on reset mode and voltages at all internal nodes in the Rx will follow the transmitting pulse, and this phenomenon exhibits the Rx is in the surf as the transmitting pulse. By removing the Tx/Rx switch, the Rx can avoid saturating status during the pulse emitting phase in Tx, and can receive the reflected echo signals in an efficient way after the emitting phase. While the input of the Rx connecting to the PZT transducer directly without the Tx/Rx switch, the received echo signals will not be distorted by the Tx/Rx switch, and the switched-capacitor (SC) front-end of the Rx can be relaxed in the design. Currently the bulk CMOS technology may not support this architecture because of its intrinsic process limitation and relatively large parasitic capacitance of the PN junctions. SOI CMOS technology could be a feasible CMOS technology because its parasitic capacitance of the PN junction is much smaller and its process is different from the bulk CMOS technology. The simulation is based on an inverter-based SC amplifier in a high voltage 0.18 μm 50 V/1.8 V bulk CMOS technology, and a HV switch is based on a model which cannot be implemented in a bulk CMOS technology.
超声成像系统的冲浪前端架构
本文提出了两种用于心脏超声成像系统前端的surf架构,通过去除传统超声成像系统中的高电压(HV)发送/接收(Tx/Rx)开关,将Rx的输入端和本地地直接连接到Tx的输出端。优势和挑战并存。在发射阶段,Rx处于复位模式,Rx内部所有节点的电压都跟随发射脉冲,这一现象表明Rx作为发射脉冲处于波中。通过去掉Tx/Rx开关,Rx可以避免在Tx的脉冲发射阶段处于饱和状态,并且可以在发射阶段之后有效地接收反射回波信号。而Rx的输入端没有Tx/Rx开关直接连接到PZT传感器,接收到的回波信号不会被Tx/Rx开关畸变,并且Rx的SC前端可以在设计中放松。由于其固有的工艺限制和PN结相对较大的寄生电容,目前的批量CMOS技术可能不支持这种架构。SOI CMOS技术是一种可行的CMOS技术,因为它的PN结寄生电容要小得多,而且它的工艺不同于本体CMOS技术。该仿真基于基于逆变器的SC放大器,采用0.18 μm高压50 V/1.8 V块体CMOS技术,高压开关采用块体CMOS技术无法实现的模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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