生物医学多频光声内窥镜探头诊断系统的研制

Jun-Yan Huang, Hsiao-Chuan Liu, Jian-Xing Wu
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摘要

在内镜超声(EUS)成像中,通常需要高分辨率和深成像深度。然而,实现高分辨率图像需要使用更高频率的换能器,这反过来又导致成像深度降低。这种高分辨率和成像深度之间的权衡很难解决。为了解决这个问题,开发了一个由三个30 MHz不同成像深度的换能器组成的圆柱形探头。该探头能够实现高分辨率和更深深度的成像,并且发现三个换能器组合的成像结果优于单个换能器。融合图像的景深(DOF)也是单个换能器的三倍。这项技术将在未来为胃肠道疾病提供更清晰、更方便、更有效的诊断。本实验设计了三频圆柱探头,其中三种换能器元件的频率均为30 MHz,并通过嵌入深度模拟了10 MHz、20 MHz和30 MHz的不同探测深度。声场模块采用PWM-PT作为压电材料模拟,利用单频换能器产生声场,显示10 MHz、20 MHz、30 MHz不同成像深度下的成像状态和能量集中情况,检测压电材料设置尺寸是否一致。此外,为了测试换能器的性能和评估成像情况,对设计的换能器在成像深度为1 mm的情况下,在10 MHz、20 MHz和30 MHz的情况下进行了成像情况观察,结果表明,30 MHz的成像效果最好。此外,利用MATLAB将扫描猪肠获得的光声和超声图像进行融合。融合结果显示了多层组织回波信号和血红蛋白在组织中的分布。
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Development of an Multi-frequency Photoacoustic Endoscopy Probe Diagnosis System for Biomedical Applications
In endoscopic ultrasound (EUS) imaging, high-resolution and deep imaging depth are often desired. However, achieving high-resolution images requires the use of a higher frequency transducer, which in turn results in reduced imaging depth. This trade-off between high-resolution and imaging depth cannot be easily resolved. To address this issue, a cylindrical probe consisting of three 30 MHz transducers with different imaging depths was developed. This probe enables imaging with both high resolution and deeper depth, and the imaging results from the three transducers combined were found to be superior to those of a single transducer. The depth of field (DOF) of the fused images was also three times that of a single transducer. This technology will provide a clearer, more convenient, and efficient diagnosis of gastrointestinal diseases in the future. In this experiment, a triple-frequency cylindrical probe is designed, in which the frequencies of the three transducer elements are all 30 MHz, and the different detection depths of 10 MHz, 20 MHz and 30 MHz are simulated by the embedded depth. The sound field module uses PWM-PT as the piezoelectric material simulation, and a single frequency transducer is used to generate the sound field to display the imaging status and energy concentration at different imaging depths of 10 MHz, 20 MHz, and 30 MHz to detect whether the size of the piezoelectric material setup is consistent. In addition, in order to test the performance of the transducer and evaluate the imaging situation, the imaging situation of 10 MHz, 20 MHz and 30 MHz was observed at imaging depth of 1 mm for the designed transducer, and the results showed that 30 MHz had the best imaging effect. In addition, the photoacoustic and ultrasound images obtained by scanning pig intestines were fused using MATLAB. The fusion results show the multi-layered tissue echo signals and the distribution of hemoglobin in the tissue.
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