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采用光聚合喷射技术制作的高频超声成像 3D 打印 phantom。

3-D-Printed Phantom Fabricated by Photopolymer Jetting Technology for High-Frequency Ultrasound Imaging.

出版信息

IEEE Trans Ultrason Ferroelectr Freq Control. 2018 Jun;65(6):1048-1055. doi: 10.1109/TUFFC.2018.2823545.

DOI:10.1109/TUFFC.2018.2823545
PMID:29856722
Abstract

In the field of high-frequency ultrasound imaging ( MHz), tools for characterizing the performance of imaging systems are lacking. Indeed, commercial phantoms are often inadequate for this frequency range. The development of homemade phantoms on the laboratory scale is often required but is hindered by the difficulty in making very small structures that must be distributed with high accuracy in 3-D space. We propose investigating the use of 3-D photopolymer printing to create resolution and calibration phantoms designed for high-frequency ultrasound imaging. The quality and importance of these phantoms are discussed from the point of view of ultrasound parameters and imaging. First, the compressional wave group velocity, acoustic impedance, and attenuation of six photopolymerized materials were measured using temporal and spectral methods in a substitution experimental setup. Measurements were performed on printed samples using a broadband-focused single-element transducer covering a large frequency range (15-55 MHz). Two 3-D phantoms incorporating different shapes and dimensions were designed and printed. Finally, 3-D acoustic images were obtained using either a mechanically driven single-element transducer or a high-frequency commercial imaging system. Three-dimensional printing enabled us to generate phantoms suitable for high-frequency imaging with complex geometry inclusions and with a surrounding material having acoustic properties close to those of human skin. The calculated SNR between the inclusion and surrounding media is approximately 50 dB. In conclusion, 3-D printing is a useful tool for directly, easily, and rapidly manufacturing ultrasound phantoms for ultrasound imaging system assessments and computational calibration or validation.

摘要

在高频超声成像(MHz)领域,用于描述成像系统性能的工具尚不完善。事实上,商业性的成像模型往往无法满足该频率范围的要求。通常需要在实验室规模上开发自制的成像模型,但由于必须以高精度在 3-D 空间中分布非常小的结构,因此这会受到阻碍。我们提出研究使用 3-D 光聚合打印来创建专为高频超声成像设计的分辨率和校准成像模型。从超声参数和成像的角度讨论了这些成像模型的质量和重要性。首先,使用时间和光谱方法在替代实验装置中测量了六种光聚合材料的压缩波群速度、声阻抗和衰减。使用宽带聚焦单阵元换能器在大频率范围内(15-55MHz)对打印样本进行了测量。设计并打印了两个包含不同形状和尺寸的 3-D 成像模型。最后,使用机械驱动的单阵元换能器或高频商业成像系统获得了 3-D 声图像。3-D 打印使我们能够生成具有复杂几何内含物的适用于高频成像的成像模型,并且周围材料的声特性与人体皮肤非常接近。内含物和周围介质之间的计算 SNR 约为 50dB。总之,3-D 打印是一种有用的工具,可用于直接、轻松和快速地制造超声成像模型,以评估超声成像系统以及进行计算校准或验证。

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Recent advances on the development of phantoms using 3D printing for imaging with CT, MRI, PET, SPECT, and ultrasound.利用3D打印技术开发用于CT、MRI、PET、SPECT和超声成像的体模的最新进展。
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