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CMUT-based Volumetric Ultrasonic Imaging Array Design for Forward Looking ICE and IVUS Applications

机译:基于CMUT的体积超声成像阵列设计,用于前进的冰和IVUS应用

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Designing a mechanically flexible catheter based volumetric ultrasonic imaging device for intravascular and intracardiac imaging is challenging due to small transducer area and limited number of cables. With a few parallel channels, synthetic phased array processing is necessary to acquire data from a large number of transducer elements. This increases the data collection time and hence reduces frame rate and causes artifacts due to tissue-transducer motion. Some of these drawbacks can be resolved by different array designs offered by CMUT-on-CMOS approach. We recently implemented a 2.1-mm diameter single chip 10 MHz dual ring CMUT-on-CMOS array for forward looking ICE with 64-transmit and 56-receive elements along with associated electronics. These volumetric arrays have the small element size required by high operating frequencies and achieve sub mm resolution, but the system would be susceptible to motion artifacts. To enable real time imaging with high SNR, we designed novel arrays consisting of multiple defocused annular rings for transmit aperture and a single ring receive array. The annular transmit rings are utilized to act as a high power element by focusing to a virtual ring shaped line behind the aperture. In this case, image reconstruction is performed by only receive beamforming, reducing total required firing steps from 896 to 14 with a trade-off in image resolution. The SNR of system is improved more than 5 dB for the same frequency and frame rate as compared to the dual ring array, which can be utilized to achieve the same resolution by increasing the operating frequency.
机译:设计用于血管内和心内膜成像的机械柔性导管的体积超声成像装置是由于小换能器面积和有限的电缆有限的挑战。利用几个并行通道,必须从大量换能器元件获取数据来获取数据。这增加了数据收集时间,因此降低了帧速率并且由于组织传感器运动而导致伪影。这些缺点中的一些可以通过CMUT-ON-CMOS方法提供的不同阵列设计来解决。我们最近实现了2.1毫米直径的单芯片10 MHz双环CMUT-on-CMOS阵列,用于前进的冰,具有64个发射和56接收元件以及相关的电子器件。这些容量阵列具有高操作频率所需的小元件尺寸并实现亚mm分​​辨率,但系统将易于运动伪影。为了使具有高SNR的实时成像,我们设计了由多个离焦环形环组成的新型阵列,用于传递孔径和单环接收阵列。环形发射环通过聚焦到孔后面的虚拟环形线来充当高功率元件。在这种情况下,通过仅接收波束成形来执行图像重建,从896到14中减少总所需的触发步骤,在图像分辨率下进行折衷。与双环阵列相比,系统的SNR为相同的频率和帧速率提高了超过5dB,这可以通过增加工作频率来实现相同的分辨率。

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