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Adaptive beamforming for ultrasonic phased array focusing through layered structures

机译:通过层状结构聚焦的超声相控阵自适应波束形成

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Successful realization of ultrasonic imaging through a multilayered composite barrier is hampered by scattering, attenuation, and multiple reflections of acoustic waves at and inside the barrier. These effects tend to distort the beam pattern produced by conventional phased arrays, defocusing the ultrasonic field transmitted through the barrier and causing image quality degradation and resolution loss. To compensate for the refraction and multiple reflection effects, we developed an adaptive beamforming algorithm for small-aperture linear phased arrays. After assessing the barrier's local geometry, the method calculates a new timing distribution to refocus the distorted beam at its original location. The procedure is in fact a construction of a matched filter that automatically adapts the transmission pattern of the phased array to the local geometry of the barrier and cancel its distorting effect In this work, the adaptive beamforming algorithms, in transmission mode, for the barriers in the form of a flat homogeneous layer, a layer with a smooth, randomly curved back surface and a two-layered combination of the above have been developed and experimentally verified on custom-engineered samples with prescribed acoustical properties. The algorithms were implemented on ULA-OP, an ultrasound advanced open-platform (University of Florence), controlling 64 active elements on a 128-elements phased array. Experimental measurements of original, distorted and corrected beam profiles confirm the ability of our algorithms to refocus the beam after passing through a scattering and refractive sample. Different excitation signals and windowing options introduced through ULA-OP were examined and compared.
机译:通过多层复合屏障成功实现超声成像会受到声波在屏障内部和内部的散射,衰减和多次反射的影响。这些效果往往会使常规相控阵产生的光束方向图失真,使通过屏障传输的超声场散焦,并导致图像质量下降和分辨率下降。为了补偿折射和多重反射效应,我们针对小孔径线性相控阵开发了一种自适应波束成形算法。在评估屏障的局部几何形状之后,该方法将计算新的时序分布,以将变形的光束重新聚焦在其原始位置。该过程实际上是一个匹配滤波器的构造,该滤波器可以自动将相控阵的传输模式调整为势垒的局部几何形状,并消除其失真效应。已经开发出平坦的均质层,具有光滑,随机弯曲的背面的层以及上述的两层组合的形式,并在具有指定声学特性的定制工程样品上进行了实验验证。该算法是在ULA-OP上实现的,ULA-OP是一种先进的超声先进开放平台(佛罗伦萨大学),控制128个元素相控阵上的64个有源元件。原始,扭曲和校正后的光束轮廓的实验测量结果证实了我们的算法在通过散射和折射样本后重新聚焦光束的能力。检查并比较了通过ULA-OP引入的不同激励信号和开窗选项。

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