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首页> 外文期刊>Physics in medicine and biology. >A dual-mode hemispherical sparse array for 3D passive acoustic mapping and skull localization within a clinical MRI guided focused ultrasound device
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A dual-mode hemispherical sparse array for 3D passive acoustic mapping and skull localization within a clinical MRI guided focused ultrasound device

机译:用于3D无源声学映射和临床MRI引导聚焦超声装置的三维无源声学映射和颅骨定位的双模半球稀疏阵列

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Previous work has demonstrated that passive acoustic imaging may be used alongside MRI for monitoring of focused ultrasound therapy. However, past implementations have generally made use of either linear arrays originally designed for diagnostic imaging or custom narrowband arrays specific to in-house therapeutic transducer designs, neither of which is fully compatible with clinical MR-guided focused ultrasound (MRgFUS) devices. Here we have designed an array which is suitable for use within an FDA-approved MR-guided transcranial focused ultrasound device, within the bore of a 3 Tesla clinical MRI scanner. The array is constructed from 5 x 0.4 mm piezoceramic disc elements arranged in pseudorandom fashion on a low-profile laser-cut acrylic frame designed to fit between the therapeutic elements of a 230 kHz InSightec ExAblate 4000 transducer. By exploiting thickness and radial resonance modes of the piezo discs the array is capable of both B-mode imaging at 5 MHz for skull localization, as well as passive reception at the second harmonic of the therapy array for detection of cavitation and 3D passive acoustic imaging. In active mode, the array was able to perform B-mode imaging of a human skull, showing the outer skull surface with good qualitative agreement with MR imaging. Extension to 3D showed the array was able to locate the skull within +/- 2 mm/2 degrees of reference points derived from MRI, which could potentially allow registration of a patient to the therapy system without the expense of real-time MRI. In passive mode, the array was able to resolve a point source in 3D within a +/- 10 mm region about each axis from the focus, detect cavitation (SNR similar to 12 dB) at burst lengths from 10 cycles to continuous wave, and produce 3D acoustic maps in a flow phantom. Finally, the array was used to detect and map cavitation associated with microbubble activity in the brain in nonhuman primates.
机译:以前的工作表明,被动声学成像可以与MRI一起使用以监测聚焦的超声治疗。然而,过去的实施通常已经利用了最初设计用于诊断成像或定制窄带阵列的线性阵列,其既不是完全兼容临床MR引导聚焦超声(MRGFU)器件。在这里,我们设计了一种适用于在3特斯拉临床MRI扫描仪的孔内的FDA批准的MR引导经颅以聚焦超声装置内使用的阵列。该阵列由5×0.4mm压电陶瓷盘元件构成,以伪随机方式布置在伪装的激光切割丙烯酸框架上,设计成适用于230 kHz Insightec展开4000换能器的治疗元件。通过利用压电盘的厚度和径向谐振模式,阵列能够在5 MHz的B模式成像,用于颅骨定位,以及在治疗阵列的第二次谐波处的被动接收,用于检测空化和3D被动声学成像。在活动模式下,阵列能够执行人颅骨的B模式成像,显示外部头骨表面,与MR成像具有良好的定性协议。扩展到3D显示阵列能够在源自MRI的+/- 2mm / 2度的参考点内定位颅骨,这可能允许患者登记治疗系统,而不需要牺牲实时MRI。在被动模式下,阵列能够从焦点从焦点左右的+/- 10mm区域内的3D中的点源解析,从10个循环到连续波,检测空化(类似于12 dB)的空化(SNR类似于12 dB)。在流动虚线中生成3D声学图。最后,该阵列用于检测和映射与非人印象中脑中的微泡活性相关的空化。

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