Su Min, Zhang Zhiqiang, Hong Jiehan, Huang Yaocai, Mu Peitian, Yu Yanyan, Liu Rong, Liang Suzi, Zheng Hairong, Qiu Weibao
IEEE Trans Ultrason Ferroelectr Freq Control. 2019 Feb 11. doi: 10.1109/TUFFC.2019.2898256.
This study proposes a catheter consisting of dual-frequency transducer for intravascular ultrasound. Both ultrasonic elements with different frequencies were connected to one coaxial cable to make the connection simple. The aperture size of the ultrasound elements were 0.4×0.6 mm2 and 0.3×0.4 mm2 for the low frequency element and high frequency element, respectively. The center frequency and bandwidth of the fabricated low frequency transducer were 33.8 MHz and 49.3%, respectively. Meanwhile, the center frequency and bandwidth of the high frequency transducer were 80.6 MHz and 50.3%, respectively. Imaging evaluations of wire phantom, tissue phantom and vessel tissue demonstrated good imaging capability of the dual-frequency catheter. The spatial resolution are 19 μm axially and 128 μm laterally for the high frequency transducer, and 37 μm axially and 199 μm laterally for the low frequency transducer. Band-pass filters were designed to separate the mixed echo signals. After filtering, the images from different ultrasound elements can be successfully identified, indicating the feasibility of the proposed cable shared dual-frequency imaging strategy. The proposed method has simple structure, good imaging resolution, and large penetration depth, showing good application prospect for intravascular ultrasound.
本研究提出了一种用于血管内超声的由双频换能器组成的导管。两个不同频率的超声元件连接到一根同轴电缆上,以使连接简单。低频元件和高频元件的超声元件孔径尺寸分别为0.4×0.6平方毫米和0.3×0.4平方毫米。所制作的低频换能器的中心频率和带宽分别为33.8兆赫兹和49.3%。同时,高频换能器的中心频率和带宽分别为80.6兆赫兹和50.3%。对线阵模型、组织模型和血管组织的成像评估表明双频导管具有良好的成像能力。高频换能器的轴向空间分辨率为19微米,横向空间分辨率为128微米;低频换能器的轴向空间分辨率为37微米,横向空间分辨率为199微米。设计了带通滤波器来分离混合回波信号。滤波后,可以成功识别来自不同超声元件的图像,表明所提出的电缆共享双频成像策略的可行性。该方法结构简单,成像分辨率好,穿透深度大,在血管内超声方面具有良好的应用前景。