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Design and development of a rotating-anode x-ray tube coherent scatter projection imaging system

机译:旋转阳极X射线相干散射投影成像系统的设计与开发

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Coherent x-ray scatter is material specific, and imaging systems utilizing information from coherently scattered x rays are promising for security and medical applications requiring material identification with high sensitivity. A persistent challenge for practical implementation of these systems has been slow image acquisition. Our approach to reducing acquisition time is to develop a multibeam projection imaging system rather than a volumetric (CT or otherwise) imaging system. Previously we implemented a synchrotron-based system with five coplanar pencil beams and continuous motion of the object. Now we present a tabletop x-ray scatter imaging system built using a rotating-anode x-ray tube and a scintillating, energy-integrating flat-panel detector. A conventional source is more challenging to use than a synchrotron beam due to polychromaticity, low intensity, beam divergence, and x-ray tube thermal considerations. Simulations were performed to determine the system layout that optimized the intensity and angular resolution of scatter signals. The tube is inclined 6.1° to reduce apparent focal spot size. The primary collimation allows for an array of up to three rows by five columns of pencil beams, 3 mm diameter and 2 cm apart at the object midplane 35 cm from the source, to irradiate the object simultaneously. There is no scatter collimation and the multiplexed scatter signals are disentangled using a maximum-likelihood expectation maximization algorithm. Motorized translation stages scan the object through the beams. The system can image objects up to 10×10×10 cm~3 and 1 kg. Post-object primary beam attenuators allow for the same detector to measure transmitted and scattered x rays simultaneously. Initial images acquired with the system are presented. Using 15 beams, a 6000-pixel scatter image of a 6 cm × 10cm region was acquired in 4.6 min.
机译:相干x射线散射是特定于材料的,利用相干散射x射线信息的成像系统有望用于安全性和医疗应用,要求对材料进行高灵敏度识别。对于这些系统的实际实施而言,持续的挑战一直是缓慢的图像采集。我们减少采集时间的方法是开发多光束投影成像系统,而不是体积(CT或其他)成像系统。以前,我们实现了一个基于同步加速器的系统,该系统具有五个共面的笔形光束和物体的连续运动。现在,我们介​​绍一个台式X射线散射成像系统,该系统使用旋转阳极X射线管和闪烁的能量集成平板探测器构建。由于多色性,低强度,光束发散和X射线管的散热考虑,与同步加速器光束相比,传统光源的使用更具挑战性。执行仿真以确定优化散射信号的强度和角度分辨率的系统布局。该管倾斜6.1°,以减小表观焦点尺寸。初级准直允许在距源35 cm的物体中间平面处排列多达三行,五列的笔形光束,直径为3 mm,相距2 cm,以同时照射物体。没有散​​射准直,并且使用最大似然期望最大化算法对多路复用的散射信号进行了纠缠。电动平移台通过光束扫描物体。该系统可对最大10×10×10 cm〜3和1 kg的物体成像。物体后的主光束衰减器允许同一探测器同时测量透射和散射的X射线。展示了使用系统获取的初始图像。使用15束光,在4.6分钟内获得了一个6 cm×10cm区域的6000像素散射图像。

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