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A Novel Method for Characterization of Nonlinear Propagation and Spatial Averaging Effects for Ultrasound Imaging Systems

机译:一种新的超声成像系统表征非线性传播和空间平均效应的新方法

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Harmonic imaging at frequencies up to 15 MHz is now routinely used and frequencies well beyond 20 MHz are considered for diagnostic ultrasound applications. However, currently available measurement tools are not fully adequate to characterize such high frequency systems, due to the combined effects of limited frequency responses and spatial averaging. To alleviate these problems, a comprehensive wave propagation model has been developed. The model can predict the linear and nonlinear acoustic wave propagation generated by differently shaped acoustic radiators at virtually any point in the field and takes into account spatial averaging effects introduced by hydrophone probes and their associated frequency responses. The applicability of the model in hydrophone probe calibration up to 100 MHz is demonstrated. Also, a novel calibration technique termed Time-Gating Frequency Analysis (TGFA) is briefly described and calibration results in the frequency range up to 60 MHz for hydrophones having effective diameters between 150-500μm are presented. Also presented are the results of the investigation that determined the effect of using different diameters and bandwidths hydrophone probes on Pulse Intensity Integral (PII) which, in turn, affects the value of the safety indicator Thermal Index (TI). This work was supported by the NIH grant 1RO1RR16086-02.
机译:现在经常使用频率谐波成像,并且频率远远超过20 MHz,考虑用于诊断超声应用。然而,由于有限频率响应和空间平均值的综合影响,目前可用的测量工具没有完全足以表征这种高频系统。为了缓解这些问题,已经开发了一种综合波传播模型。该模型可以预测不同形状的声学辐射器在现场几乎任何点处产生的线性和非线性声波传播,并且考虑了通过水听器探针引入的空间平均效应及其相关的频率响应。展示了模型在室温技术探针校准中的适用性高达100 MHz。此外,简要描述了一种新的校准技术,使得频率分析(TGFA)被简要描述,并且校准导致高达60MHz的频率范围,对于在150-500μm之间的有效直径之间的有效直径的频率范围。还提出的是研究结果,确定使用不同直径和带宽对脉冲强度积分(PII)的带宽探针的影响,这反过来影响安全指示剂热指数(TI)的值。 NIH授予1RO1RR16086-02支持这项工作。

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