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A wide-beam X-ray source suitable for diffraction enhanced imaging applications

机译:适用于衍射增强成像应用的宽光束X射线源

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Research in diffraction-enhanced imaging (DEI), using a synchrotron source with an X-ray flux of 1.4 x 10~(12) ph/mm~2/s, has shown strong potential in obtaining high-resolution images as compared to conventional radiographs. This research investigates the feasibility of developing a large area circular X-ray source with fluxes comparable to a synchrotron source. The source should be capable of integration into a compact system with peak powers not to exceed 200 kW to be feasible for use in a major medical facility, industrial complex or screening facility (such as cargo or airport). A computational study of a circular concentric filament wide-beam area X-ray source has been investigated in this research. The design features are based on generating electrons from three concentric circular filaments to provide an area electron flux, with a 60 kV accelerating potential and a beam current of up to 3 A. The X-ray target is a grounded stationary oxygen-free copper target with a layer of molybdenum. This target feature differs from standard rotating X-ray targets in conventional X-ray systems. Studies of electron trajectories and their distribution on the target were conducted using the SIMION 3D code. Heat loading and thermal management were studied using heat transfer modules from the coupled FEMLAB multi-physics and MATLAB codes. The Monte Carlo code MCNP 5 was used to obtain the X-ray flux and energy distribution for aluminum and beryllium windows. This computational study shows that this target configuration generates X-rays with photon flux comparable to synchrotron source and sufficient for DEI applications. The maximum target temperature rise is 1357 K after 70 s when cooling the back of the target to liquid nitrogen temperature using cold finger contact, and 325 K for an invaded target, in which liquid nitrogen circulates inside the target.
机译:与传统技术相比,使用X射线通量为1.4 x 10〜(12)ph / mm〜2 / s的同步加速器源进行的衍射增强成像(DEI)研究显示出强大的潜力射线照相。这项研究调查了开发通量可与同步加速器源媲美的大面积圆形X射线源的可行性。该源应能够集成到峰值功率不超过200 kW的紧凑型系统中,以便在大型医疗设施,工业园区或检查设施(例如货物或机场)中使用是可行的。在这项研究中,已经研究了圆形同心灯丝宽束区域X射线源的计算研究。设计功能基于从三根同心圆形灯丝产生电子以提供面电子通量,并具有60 kV的加速电势和高达3 A的束流。X射线靶是接地的固定无氧铜靶。上面有一层钼该目标特征不同于常规X射线系统中的标准旋转X射线目标。使用SIMION 3D代码对电子轨迹及其在目标上的分布进行了研究。使用耦合的FEMLAB多物理场和MATLAB代码中的传热模块研究了热负荷和热管理。蒙特卡罗代码MCNP 5用于获得铝和铍窗的X射线通量和能量分布。这项计算研究表明,这种目标配置产生的X射线的光子通量可与同步加速器源媲美,足以用于DEI应用。当使用冷手指接触将目标背面冷却至液氮温度时,最大目标温度升高是在70 s后的1357 K,对于侵入的目标,其中液氮在目标内部循环,最高温度升高为325K。

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