Wu Xiaomei, Wang Qian, Ma Jinlei, Zhang Wei, Li Po, Fang Zheng
Department of Instrumental and Electrical Engineering, Xiamen University, Xiamen 361005, China.
Rev Sci Instrum. 2017 Aug;88(8):083111. doi: 10.1063/1.4998991.
X-ray computed tomography (CT) can distinguish different materials according to their absorption characteristics. The hyperspectral X-ray CT (HXCT) system proposed in the present work reconstructs each voxel according to its X-ray absorption spectral characteristics. In contrast to a dual-energy or multi-energy CT system, HXCT employs cadmium telluride (CdTe) as the x-ray detector, which provides higher spectral resolution and separate spectral lines according to the material's photon-counter working principle. In this paper, a specimen containing ten different polymer materials randomly arranged was adopted for material identification by HXCT. The filtered back-projection algorithm was applied for image and spectral reconstruction. The first step was to sort the individual material components of the specimen according to their cross-sectional image intensity. The second step was to classify materials with similar intensities according to their reconstructed spectral characteristics. The results demonstrated the feasibility of the proposed material identification process and indicated that the proposed HXCT system has good prospects for a wide range of biomedical and industrial nondestructive testing applications.
X射线计算机断层扫描(CT)可以根据不同材料的吸收特性来区分它们。本研究中提出的高光谱X射线CT(HXCT)系统根据每个体素的X射线吸收光谱特征对其进行重建。与双能或多能CT系统不同,HXCT采用碲化镉(CdTe)作为X射线探测器,根据材料的光子计数工作原理,该探测器可提供更高的光谱分辨率并分离光谱线。本文采用了一个包含十种随机排列的不同聚合物材料的样本,通过HXCT进行材料识别。滤波反投影算法用于图像和光谱重建。第一步是根据样本的横截面图像强度对各个材料成分进行排序。第二步是根据重建的光谱特征对强度相似的材料进行分类。结果证明了所提出的材料识别过程的可行性,并表明所提出的HXCT系统在广泛的生物医学和工业无损检测应用中具有良好的前景。