浸没固体合成孔径成像中的补偿传感器衍射效应

F. Lingvall, T. Stepinski
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引用次数: 5

摘要

经典合成孔径聚焦技术(SAFT)成功应用的基本要求之一是使用发射球面(圆柱)波的换能器。对于平面换能器,如果其有效面积与波长相比过大,则会导致SAFT算法的性能下降。这是由于与换能器相关的空间脉冲响应(SIRs)不再像狄拉克函数,因为发射的波不是球形的。因此,为了实现高分辨率或有限尺寸的换能器,必须考虑到SIRs。在这里,我们提出了一种基于成像系统的离散线性模型的方法。该方法采用了一种时空反褶积技术,旨在使成像系统的均方重构误差最小化。为了证明所提出的方法的性能,我们提出了使用相控阵检查铜试样的实验。将有限孔径的反褶积方法与时域SAFT算法和聚焦相控阵的结果进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Compensating transducer diffraction effects in synthetic aperture imaging for immersed solids
One of the fundamental requirements for the successful application of the classical synthetic aperture focusing technique (SAFT) is the use of a transducer that emits spherical (cylindrical) waves. For a planar transducer, the performance of the SAFT algorithm will deteriorate if its active area becomes too large comparing to the wavelength. This is due to the spatial impulse responses (SIRs) associated with the transducer that no longer resemble Dirac functions since the emitted waves is not spherical. Therefore, to achieve a high resolution or finite-sized transducers, the SIRs must be taken into consideration. Here, we propose a method that is based on a discrete linear model of the imaging system. The method uses a spatio-temporal deconvolution technique designed to minimize the mean squared reconstruction error of the imaging system. To demonstrate the performance of the proposed method we present experiments using a phased array for the inspection of a copper specimen. The results obtained using the deconvolution method for finite apertures are compared to those obtained with a time-domain SAFT algorithm and a focused phased array.
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