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Methods used at AWE to Retrieve Radiographic Dose and Spot Size From LSP Simulations of Radiographic Diodes

机译:用于检索射线照相二极管LSP模拟的射线照相剂量和光斑尺寸的方法

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AWE is developing high performance (1000R at 1 m, 2 mm spot size) flash X-ray sources to radiograph explosively driven heavy metal experiments. Intense electron beam diodes are being developed to deliver this capability from pulsed power drivers in a new hydrodynamics research facility known as the CPF [1]. The Large Scale Plasma (LSP) Particle In Cell (PIC) code [2] is being used extensively at AWE in the program to develop improved intense electron beam diodes. LSP does not currently incorporate direct methods to calculate radiographic parameters relevant to AWE such as the dose or spot size associated with a radiographic diode. There is therefore a need for methods that allow retrieval of experimentally measurable radiographic quantities from LSP simulations of radiographic diodes [3]. Two approaches are currently employed at AWE to retrieve such data. Firstly the primary output from LSP may be ported to a suitable Monte Carlo transport code such as MCNP [4]. MCNP can tally the expected Bremsstrahlung radiation from diodes and transport this radiation through simulations of experimental radiographic experiments to infer the spot size and dose from the diode. Secondly the LSP target methods may be used to gain information on the fluence and angular distributions of the electrons at the high atomic number target which may be further processed into source intensity distribution information. These methods are outlined and examples given, the methods have been found to agree with each other and with experiment to around 10%. The target method has been extended to 3D simulations and initial results from these methods are presented.
机译:AWE正在开发高性能(100r,1米,2mm尺寸)闪光X射线源,进入射线照片爆炸性地驱动的重金属实验。正在开发强度的电子束二极管以将这种能力从被称为CPF的新流体动力学研究设施中的脉冲功率驱动器提供这种能力。细胞(PIC)代码[2]中的大规模等离子体(LSP)粒子在程序中广泛使用,以开发改进的强孔电束二极管。 LSP目前尚未包含直接方法来计算与宽度相关的射线照相参数,例如与射线照相二极管相关联的剂量或斑点尺寸。因此,需要一种方法,允许从射线照相二极管的LSP模拟中检索实验可测量的射线照相量[3]。目前在敬畏中采用两种方法来检索此类数据。首先,LSP的主要输出可以移植到合适的蒙特卡罗传输代码,例如MCNP [4]。 MCNP可以将预期的Bremsstrahlung辐射从二极管中辐射进行计量,并通过模拟实验放射学实验来运输该辐射,以推断出二极管的光斑尺寸和剂量。其次,LSP目标方法可用于获得关于在高原子数目标处的电子的流量和角度分布的信息,其可以进一步处理到源强度分布信息中。概述了这些方法和给出的实施例,发现该方法彼此一致,实验约为10%。目标方法已经扩展到3D模拟,并提出了来自这些方法的初始结果。

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