Kim Taehoon, Shin Sangmin, Lee Hyongmin, Lee Hyunsook, Kim Heewon, Shin Eunhee, Kim Suhwan
IEEE Trans Ultrason Ferroelectr Freq Control. 2016 Feb;63(2):290-302. doi: 10.1109/TUFFC.2015.2508148. Epub 2015 Dec 11.
A flexible clinical ultrasound system must operate with different transducers, which have characteristic impulse responses and widely varying impedances. The impulse response determines the shape of the high-voltage pulse that is transmitted and the specifications of the front-end electronics that receive the echo; the impedance determines the specification of the matching network through which the transducer is connected. System-level optimization of these subsystems requires accurate modeling of pulse-echo (two-way) response, which in turn demands a unified simulation of the ultrasonics and electronics. In this paper, this is realized by combining MATLAB/Simulink models of the high-voltage transmitter, the transmission interface, the acoustic subsystem which includes wave propagation and reflection, the receiving interface, and the front-end receiver. To demonstrate the effectiveness of our simulator, the models are experimentally validated by comparing the simulation results with the measured data from a commercial ultrasound system. This simulator could be used to quickly provide system-level feedback for an optimized tuning of electronic design parameters.
一个灵活的临床超声系统必须与不同的换能器配合使用,这些换能器具有独特的脉冲响应和广泛变化的阻抗。脉冲响应决定了发射的高压脉冲的形状以及接收回波的前端电子设备的规格;阻抗决定了连接换能器的匹配网络的规格。这些子系统的系统级优化需要对脉冲回波(双向)响应进行精确建模,这反过来又需要对超声和电子设备进行统一仿真。在本文中,这是通过将高压发射器、传输接口、包括波传播和反射的声学子系统、接收接口以及前端接收器的MATLAB/Simulink模型相结合来实现的。为了证明我们模拟器的有效性,通过将模拟结果与商业超声系统的测量数据进行比较,对模型进行了实验验证。该模拟器可用于快速提供系统级反馈,以优化调整电子设计参数。