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Phase Aberration Correction using Ultrasound Radiation Force and Vibrometry Optimization

机译:使用超声辐射力和振动测量优化的相位像差校正

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Diagnostic ultrasound images suffer from degradation due to wave propagation through tissues with inhomogeneities in their speed of sound causing phase shifts of the propagating waves. These phase shifts serve to defocus the ultrasound beam, reducing spatial resolution and image contrast of the resulting image. Many methods have been proposed over the past two decades to address this problem. A phase aberration correction method that uses the dynamic ultrasound radiation force to harmonically excite an object using amplitude modulated continuous wave ultrasound is described. The phase of each element of an annular array transducer is adjusted to maximize the radiation force and obtain optimal focus of the ultrasound beam. The optimization of the radiation force is performed by monitoring the amplitude of the velocity of the object used as a target. Theory is presented that models the optimization process. Simulation results show the ability to regain a focused field after a phase screen with an RMS time delay of 96.8 ns is applied. Experimental validation is shown for correcting phase aberration caused by an acrylic lens aberrator placed near the face of annular array transducer. A stainless steel sphere with diameter 1.59 mm was used as a target. The radiation force magnitude was improved by 11.8 dB and resolution of the sphere at -6 dB was improved from 3.05 mm to 1.68 mm which compares well with the un-aberrated resolution of 1.51 mm. An ultrasound beam defocused by phase aberration can be focused using dynamic radiation force and monitoring the velocity of scatterers in the focal region. This method has a well-behaved cost function which allows efficient correction. Simulation and experimental results show that the focus of the beam can qualitatively and quantitatively improved with this method.
机译:诊断超声图像由于通过在其声速的速度而导致传播波的相移的组织而导致的劣化引起的劣化。这些相移用于散焦超声波束,降低所得图像的空间分辨率和图像对比度。在过去二十年中提出了许多方法来解决这个问题。描述了使用动态超声辐射力与使用幅度调制连续波超声波谐振到对象的相位像差校正方法。调节环形阵列换能器的每个元件的相位以最大化辐射力并获得超声波束的最佳焦点。通过监测用作目标的物体的速度的幅度来执行辐射力的优化。介绍了理论,模拟优化过程。仿真结果表明,在应用RMS时间延迟的相位屏幕为96.8ns的相位屏幕之后,可以重新获得聚焦场的能力。示出了实验验证,用于校正由位于环形阵列换能器的面附近的丙烯酸透镜差距引起的相位像差。使用直径为1.59mm的不锈钢球作为靶标。通过11.05mm至1.68mm提高-6 dB的球体的辐射力幅度提高了11.8dB,并从3.05mm到1.68mm的分辨率相比,不同时的分辨率为1.51mm。通过相位像差散焦的超声束可以使用动态辐射力来聚焦,并监测焦点区域中的散射仪的速度。该方法具有良好的成本函数,允许有效校正。模拟和实验结果表明,利用该方法可以定性地改善光束的焦点。

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