May Karl Henrik, Mohammadzadeh Shiva, Keil Andreas, von Freymann Georg, Friederich Fabian
Fraunhofer Insititute for Industrial Mathematics ITWM, 67663 Kaiserslautern, Germany.
Department of Physics and Research Center OPTIMAS, University of Kaiserslautern-Landau, 67663 Kaiserslautern, Germany.
Sensors (Basel). 2024 Jan 15;24(2):529. doi: 10.3390/s24020529.
Terahertz tomography is a promising method among non-destructive inspection techniques to detect faults and defects in dielectric samples. Recently, image quality was improved significantly through the incorporation of information and off-axis data. However, this improvement has come at the cost of increased measurement time. To aim toward industrial applications, it is therefore necessary to speed up the measurement by parallelizing the data acquisition employing multi-channel setups. In this work, we present two tomographic frequency-modulated continuous wave (FMCW) systems working at a bandwidth of 230-320 GHz, equipped with an eight-channel detector array, and we compare their imaging results with those of a single-pixel setup. While in the first system the additional channels are used exclusively to detect radiation refracted by the sample, the second system features an f-θ lens, focusing the beam at different positions on its flat focal plane, and thus utilizing the whole detector array directly. The usage of the f-θ lens in combination with a scanning mirror eliminates the necessity of the formerly used slow translation of a single-pixel transmitter. This opens up the potential for a significant increase in acquisition speed, in our case by a factor of four to five, respectively.
太赫兹层析成像技术是无损检测技术中一种很有前景的方法,用于检测介电样品中的故障和缺陷。最近,通过合并信息和离轴数据,图像质量得到了显著提高。然而,这种改进是以增加测量时间为代价的。为了面向工业应用,因此有必要通过采用多通道设置并行化数据采集来加快测量速度。在这项工作中,我们展示了两个工作在230-320GHz带宽的层析调频连续波(FMCW)系统,配备了一个八通道探测器阵列,并将它们的成像结果与单像素设置的成像结果进行比较。在第一个系统中,额外的通道专门用于检测样品折射的辐射,而第二个系统具有一个f-θ透镜,将光束聚焦在其平面焦平面上的不同位置,从而直接利用整个探测器阵列。f-θ透镜与扫描镜结合使用,消除了以前使用的单像素发射器缓慢平移的必要性。这为大幅提高采集速度开辟了潜力,在我们的案例中,采集速度分别提高了四到五倍。