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首页> 外文期刊>Ultrasonics, Ferroelectrics and Frequency Control, IEEE Transactions on >Optimizing frequency and pulse shape for ultrasound current source density imaging
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Optimizing frequency and pulse shape for ultrasound current source density imaging

机译:优化超声电流源密度成像的频率和脉冲形状

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摘要

Electric field mapping is commonly used to identify irregular conduction pathways in the heart (e.g., arrhythmia) and brain (e.g., epilepsy). Ultrasound current source density imaging (UCSDI), based on the acoustoelectric (AE) effect, is a promising new technique for mapping electrical current in four dimensions with enhanced resolution. The frequency and pulse shape of the ultrasound beam affect the sensitivity and spatial resolution of UCSDI. In this study, we explore the effects of ultrasound transducer frequency bandwidth and coded excitation pulses for UCSDI and the inherent tradeoff between sensitivity and spatial resolution. We used both simulations and bench-top experiments to image a time-varying electrical dipole in 0.9% NaCl solution. To study the effects of ultrasound bandwidth, we chose two ultrasound transducers with different center frequencies (1.0 and 2.25 MHz). For coded excitation, we measured the AE voltage signal with different chirp excitations. As expected, higher bandwidth correlated with improved spatial resolution at the cost of sensitivity. On the other hand, chirp excitation significantly improved sensitivity (3.5 ??V/mA) compared with conventional square pulse excitation (1.6 ??V/mA) at 1 MHz. Pulse compression achieved spatial resolution similar to that obtained using square pulse excitation, demonstrating enhanced detection sensitivity without loss of resolution. Optimization of the time duration of the chirp pulse and frequency sweep rate can be further used to improve the quality of UCSDI.
机译:电场作图通常用于识别心脏(例如心律不齐)和大脑(例如癫痫)的不规则传导路径。基于声电(AE)效应的超声电流源密度成像(UCSDI)是一种有前途的新技术,可用于以增强的分辨率在四个维度上绘制电流。超声波束的频率和脉冲形状会影响UCSDI的灵敏度和空间分辨率。在这项研究中,我们探索了超声换能器的频率带宽和编码的激励脉冲对UCSDI的影响以及灵敏度和空间分辨率之间的固有权衡。我们使用仿真和台式实验对在0.9%NaCl溶液中随时间变化的电偶极子进行成像。为了研究超声带宽的影响,我们选择了两个具有不同中心频率(1.0和2.25 MHz)的超声换能器。对于编码激励,我们用不同的线性调频激励测量了AE电压信号。如预期的那样,更高的带宽与提高的空间分辨率相关联,但以灵敏度为代价。另一方面,与传统的方波激励在1 MHz下的激励(1.6?V / mA)相比,chi激励显着提高了灵敏度(3.5?V / mA)。脉冲压缩获得的空间分辨率类似于使用方形脉冲激励获得的空间分辨率,从而证明了增强的检测灵敏度而不会降低分辨率。线性调频脉冲持续时间和扫频速率的优化可以进一步用于提高UCSDI的质量。

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