Sawant Amit, Zeman Herbert, Samant Sanjiv, Lovhoiden Gunnar, Weinberg Brent, DiBianca Frank
School of Biomedical Engineering, University of Tennessee, Health Science Center, Memphis, USA.
Med Phys. 2002 Jun;29(6):1042-53. doi: 10.1118/1.1477231.
This article discusses the design and analysis of a portal imaging system based on a thick transparent scintillator. A theoretical analysis using Monte Carlo simulation was performed to calculate the x-ray quantum detection efficiency (QDE), signal to noise ratio (SNR) and the zero frequency detective quantum efficiency [DQE(0)] of the system. A prototype electronic portal imaging device (EPID) was built, using a 12.7 mm thick, 20.32 cm diameter, Csl(Tl) scintillator, coupled to a liquid nitrogen cooled CCD TV camera. The system geometry of the prototype EPID was optimized to achieve high spatial resolution. The experimental evaluation of the prototype EPID involved the determination of contrast resolution, depth of focus, light scatter and mirror glare. Images of humanoid and contrast detail phantoms were acquired using the prototype EPID and were compared with those obtained using conventional and high contrast portal film and a commercial EPID. A theoretical analysis was also carried out for a proposed full field of view system using a large area, thinned CCD camera and a 12.7 mm thick CsI(TI) crystal. Results indicate that this proposed design could achieve DQE(0) levels up to 11%, due to its order of magnitude higher QDE compared to phosphor screen-metal plate based EPID designs, as well as significantly higher light collection compared to conventional TV camera based systems.
本文讨论了基于厚透明闪烁体的门静脉成像系统的设计与分析。利用蒙特卡罗模拟进行了理论分析,以计算该系统的X射线量子探测效率(QDE)、信噪比(SNR)和零频率探测量子效率[DQE(0)]。构建了一个原型电子门静脉成像设备(EPID),使用一块12.7毫米厚、直径20.32厘米的碘化铯(铊)闪烁体,并与一台液氮冷却的CCD电视摄像机耦合。对原型EPID的系统几何结构进行了优化,以实现高空间分辨率。对原型EPID的实验评估包括对比度分辨率、焦深、光散射和镜面眩光的测定。使用原型EPID采集了仿人模型和对比度细节体模的图像,并与使用传统高对比度门静脉片和商用EPID获得的图像进行了比较。还对一种使用大面积薄型CCD摄像机和12.7毫米厚碘化铯(铊)晶体的拟议全场系统进行了理论分析。结果表明,由于与基于磷光屏-金属板的EPID设计相比,其QDE高一个数量级,并且与基于传统电视摄像机的系统相比,光收集显著更高,该拟议设计可实现高达11%的DQE(0)水平。