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Practical alignment method for X-ray spectral measurement in micro-CT system based on 3D printing technology

机译:基于3D打印技术的微CT系统中X射线光谱测量的实用对准方法

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摘要

This study presents a practical alignment method for X-ray spectral measurement in a rotating gantry based micro-computed tomography (micro-CT) system using three-dimensional (3D) printing technology. In order to facilitate the spectrometer placement inside the gantry, supporting structures including a cover and a stand were dedicatedly designed and printed using a 3D printer. According to the relative position between the spectrometer and the stand, the upright projection of the spectrometer collimator onto the stand was determined and then marked by a tungsten pinhole. Thus, a visible alignment indicator of the X-ray central beam and the spectrometer collimator represented by the pinhole was established in the micro-CT live mode. Then, a rough alignment could be achieved through repeatedly adjusting and imaging the stand until the pinhole was located at the center of the acquired projection image. With the spectrometer being positioned back onto the stand, the precise alignment was completed by slightly translating the spectrometer-stand assembly around the rough location, until finding a “sweet spot” with the highest photon rate and proper distribution of the X-ray photons in the resultant spectrum. The spectra were acquired under precise alignment and misalignment of approximately 0.2, 0.5, and 1.0mm away from the precise alignment position, and then were compared in qualitative and quantitative analyses. Qualitative analysis results show that, with slight misalignment, the photon rate is reduced from 1302 to 1098, 1031, and 416 photons/second (p/s), respectively, and the characteristic peaks in the acquired spectra are gradually deteriorated. Quantitative analysis indicates that the energy resolutions for characteristic peak of Kα1 were calculated as 1.56% for precise alignment, while were 1.84% and 2.40% for slight misalignment of 0.2mm and 0.5mm. The mean energies were reduced from 43.93keV under precise alignment condition to 40.97, 39.63 and 37.78keV when misaligned. Accurate spectral measurements in micro-CT systems are significantly influenced by the alignment precision. This practical alignment method using 3D printing technology could be readily applied to other rotating gantry based micro-CT systems with modified design of the supporting structures and careful considerations of the spectrometer and gantry dimensions.
机译:这项研究提出了一种实用的对准方法,用于使用三维(3D)打印技术的基于旋转龙门的微型计算机断层摄影(micro-CT)系统中的X射线光谱测量。为了便于将光谱仪放置在龙门架内,专门设计了包括盖和支架的支撑结构,并使用3D打印机进行了打印。根据光谱仪和支架之间的相对位置,确定光谱仪准直器在支架上的垂直投影,然后用钨针孔标记。因此,在微型CT实时模式下,建立了以针孔为代表的X射线中心光束和光谱仪准直仪的可见对准指示器。然后,可以通过反复调整支架并对其进行成像,直到针孔位于获取的投影图像的中心,来实现粗略的对齐。将光谱仪放回支架上,通过在粗糙的位置上稍微平移光谱仪支架组件,直到找到一个具有最高光子速率和X射线光子正确分布的“最佳点”,从而完成精确对准。结果谱。在距精确对准位置约0.2、0.5和1.0mm的精确对准和未对准下获取光谱,然后在定性和定量分析中进行比较。定性分析结果表明,轻微的未对准,光子速率分别从1302降低到1098、1031和416光子/秒(p / s),并且所采集光谱中的特征峰逐渐劣化。定量分析表明,对于精确对准,Kα1特征峰的能量分辨率计算为1.56%,而对于0.2mm和0.5mm的轻微对准,则分别为1.84%和2.40%。当未对准时,平均能量从精确对准条件下的43.93keV降至40.97、39.63和37.78keV。微型CT系统中准确的光谱测量会受到对准精度的显着影响。这种使用3D打印技术的实际对准方法可以很容易地应用于其他基于旋转龙门的微型CT系统,该系统具有改进的支撑结构设计以及对光谱仪和龙门尺寸的仔细考虑。

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