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Acoustic Field Characterization of Medical Array Transducers Based on Unfocused Transmits and Single-Plane Hydrophone Measurements

机译:基于非聚焦发射和单平面水听器测量的医疗阵列换能器声场表征

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摘要

Medical ultrasonic arrays are typically characterized in controlled water baths using measurements by a hydrophone, which can be translated with a positioning stage. Characterization of 3D acoustic fields conventionally requires measurements at each spatial location, which is tedious and time-consuming, and may be prohibitive given limitations of experimental setup (e.g., the bath and stage) and measurement equipment (i.e., the hydrophone). Moreover, with the development of new ultrasound sequences and modalities, multiple measurements are often required to characterize each imaging mode to ensure performance and clinical safety. Acoustic holography allows efficient characterization of source transducer fields based on single plane measurements. In this work, we explore the applicability of a re-radiation method based on the Rayleigh–Sommerfeld integral to medical imaging array characterization. We show that source fields can be reconstructed at single crystal level at wavelength resolution, based on far-field measurements. This is herein presented for three practical application scenarios: for identifying faulty transducer elements; for characterizing acoustic safety parameters in focused ultrasound sequences from 2D planar measurements; and for estimating arbitrary focused fields based on calibration from an unfocused sound field and software beamforming. The results experimentally show that the acquired pressure fields closely match those estimated using our technique.
机译:医用超声阵列的典型特征是使用水听器进行测量以控制水浴,水听器可以通过定位台进行平移。传统上,对3D声场进行表征需要在每个空间位置进行测量,这既繁琐又费时,并且在实验设置(例如浴池和工作台)和测量设备(例如水听器)受到限制的情况下可能会被禁止。此外,随着新的超声序列和模态的发展,通常需要多次测量以表征每种成像模式,以确保性能和临床安全性。声全息术允许基于单平面测量有效地表征源换能器场。在这项工作中,我们探索基于Rayleigh-Sommerfeld积分的再辐射方法在医学成像阵列表征中的适用性。我们表明,基于远场测量,可以在单晶体级以波长分辨率重建源场。本文针对三种实际应用场景进行介绍:用于识别故障的换能器元件;从二维平面测量中表征聚焦超声序列中的声安全参数;以及基于未聚焦声场和软件波束形成的校准来估计任意聚焦场。实验结果表明,获得的压力场与使用我们的技术估算的压力场非常匹配。

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