Yoon Sangpil, Kim Min Gon, Williams Jay A, Yoon Changhan, Kang Bong Jin, Cabrera-Munoz Nestor, Shung K Kirk, Kim Hyung Ham
University of Southern California , Department of Biomedical Engineering, 1042 Downey Way DRB-130, Los Angeles, California 90089, United States.
University of Southern California , Department of Biomedical Engineering, 1042 Downey Way DRB-130, Los Angeles, California 90089, United States ; Analogic Corporation , 8 Centennial Drive, Peabody, Massachusetts 01960, United States.
J Med Imaging (Bellingham). 2015 Apr;2(2):027001. doi: 10.1117/1.JMI.2.2.027001. Epub 2015 Apr 13.
A dual-element needle transducer for intravascular ultrasound imaging has been developed. A low-frequency element and a high-frequency element were integrated into one device to obtain images which conveyed both low- and high-frequency information from a single scan. The low-frequency element with a center frequency of 48 MHz was fabricated from the single crystal form of lead magnesium niobate-lead titanate solid solution with two matching layers (MLs) and the high frequency element with a center frequency of 152 MHz was fabricated from lithium niobate with one ML. The measured axial and lateral resolutions were 27 and [Formula: see text], respectively, for the low-frequency element, and 14 and [Formula: see text], respectively, for the high-frequency element. The performance of the dual-element needle transducer was validated by imaging a tissue-mimicking phantom with lesion-mimicking area, and ex vivo rabbit aortas in water and rabbit whole blood. The results suggest that a low-frequency element effectively provides depth resolved images of the whole vessel and its adjacent tissue, and a high-frequency element visualizes detailed structure near the surface of the lumen wall in the presence of blood within the lumen. The advantages of a dual-element approach for intravascular imaging are also discussed.
一种用于血管内超声成像的双元件针式换能器已被研发出来。一个低频元件和一个高频元件被集成到一个设备中,以便从单次扫描中获取同时包含低频和高频信息的图像。中心频率为48MHz的低频元件由具有两个匹配层(MLs)的铌镁酸铅 - 钛酸铅固溶体单晶体制成,中心频率为152MHz的高频元件由具有一个ML的铌酸锂制成。低频元件测得的轴向分辨率和横向分辨率分别为27和[公式:见原文],高频元件测得的轴向分辨率和横向分辨率分别为14和[公式:见原文]。通过对具有模拟病变区域的组织模拟体模、水中的离体兔主动脉和兔全血进行成像,验证了双元件针式换能器的性能。结果表明,低频元件有效地提供了整个血管及其相邻组织的深度分辨图像,高频元件在管腔内存在血液的情况下可视化了管腔壁表面附近的详细结构。还讨论了双元件方法用于血管内成像的优点。