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首页> 外文期刊>Ultrasonics, Ferroelectrics and Frequency Control, IEEE Transactions on >Interstitial thermal ablation with a fast rotating dual-mode transducer
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Interstitial thermal ablation with a fast rotating dual-mode transducer

机译:快速旋转双模换能器的间隙热消融

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摘要

Interstitial ultrasound applicators can be a minimally invasive alternative for treating targets that are unresectable or are inaccessible by extracorporeal methods. Dualmode transducers for ultrasound imaging and therapy were developed to address the constraints of a miniaturized applicator and real-time treatment monitoring. We propose an original treatment strategy that combines ultrasound imaging and therapy using a dual-mode transducer rotating at 8 revolutions per second. Real-time B-mode imaging was interrupted to emit high-intensity ultrasound over a selected therapy aperture. A full 360u000b0; image was taken every 8th rotation to image the therapy aperture. Numerical simulations were performed to study the effect of rotation on tissue heating, and to study the effect of the treatment sequence on transducer temperature. With the time-averaged transducer surface intensity held at 12 W/ cm2 to maintain transducer temperature below 66u000b0;C, higher field intensities and deeper lesions were produced by narrower therapy apertures. A prototype system was built and tested using in vitro samples of porcine liver. Lesions up to 8 mm were produced using a time-averaged transducer surface intensity of 12 W/cm2 applied for a period of 240 s over a therapy aperture of 40u000b0;. Apparent strain imaging of the therapy aperture improved the contrast between treated and spared tissues, which could not be differentiated on B-mode images. With appropriate limits on the transducer output, real-time imaging and deep thermal ablation are feasible and sustainable using a rotating dual-mode transducer.
机译:间隙超声施加器可以是微创的替代方案,用于治疗无法切除或无法通过体外方法到达的目标。开发了用于超声成像和治疗的双模换能器,以解决小型涂药器和实时治疗监测的局限性。我们提出了一种原始治疗策略,该技术将超声成像和治疗结合使用以每秒8转旋转的双模式换能器。实时B模式成像被中断,以在选定的治疗口径上发射高强度超声。完整的360u000b0;每旋转8圈拍摄一次图像以对治疗孔成像。进行了数值模拟,以研究旋转对组织加热的影响,并研究处理顺序对换能器温度的影响。将换能器的时间平均表面强度保持在12 W / cm2,以将换能器温度保持在66u000b0; C以下,通过更窄的治疗孔径可产生更高的场强和更深的病灶。使用猪肝的体外样品构建并测试了原型系统。在40u000b0的治疗孔径上施加240 s的时间,使用12 W / cm2的时间平均换能器表面强度,可产生8 mm的病变。治疗孔的明显应变成像改善了治疗组织和备用组织之间的对比度,这在B型图像上无法区分。通过适当限制传感器的输出,使用旋转双模传感器可以实现实时成像和深度热消融。

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