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On the Evaluation of the Suitability of the Materials Used to 3D Print Holographic Acoustic Lenses to Correct Transcranial Focused Ultrasound Aberrations

机译:关于用于3D打印全息声透镜校正经颅聚焦超声像差的材料的适用性评估

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摘要

The correction of transcranial focused ultrasound aberrations is a relevant topic for enhancing various non-invasive medical treatments. Presently, the most widely accepted method to improve focusing is the emission through multi-element phased arrays; however, a new disruptive technology, based on 3D printed holographic acoustic lenses, has recently been proposed, overcoming the spatial limitations of phased arrays due to the submillimetric precision of the latest generation of 3D printers. This work aims to optimize this recent solution. Particularly, the preferred acoustic properties of the polymers used for printing the lenses are systematically analyzed, paying special attention to the effect of p-wave speed and its relationship to the achievable voxel size of 3D printers. Results from simulations and experiments clearly show that, given a particular voxel size, there are optimal ranges for lens thickness and p-wave speed, fairly independent of the emitted frequency, the transducer aperture, or the transducer-target distance.
机译:经颅聚焦超声像差的校正是增强各种非侵入性医学治疗的相关主题。当前,改善聚焦的最广泛接受的方法是通过多元素相控阵发射。但是,最近提出了一种基于3D打印全息声透镜的破坏性新技术,该技术克服了由于最新一代3D打印机的亚微米精度而导致的相控阵空间限制。这项工作旨在优化此最新解决方案。特别是,系统地分析了用于印刷镜片的聚合物的优选声学特性,特别注意了p波速度的影响及其与3D打印机可获得的体素尺寸的关系。模拟和实验的结果清楚地表明,在给定特定体素大小的情况下,镜片厚度和p波速度存在最佳范围,这与发射频率,换能器孔径或换能器目标距离完全无关。

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