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AUTOMATED WEIGHT-WINDOW GENERATION FOR THREAT DETECTION APPLICATIONS USING ADVANTG

机译:利用Advantg自动生成重力窗口以进行威胁检测

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Deterministic transport codes have been used for some time to generate weight-window parameters that can improve the efficiency of Monte Carlo simulations. As the use of this hybrid computational technique is becoming more widespread, the scope of applications in which it is being applied is expanding. An active source of new applications is the field of homeland security - particularly the detection of nuclear material threats. For these problems, automated hybrid methods offer an efficient alternative to trial-and-error variance reduction techniques (e.g., geometry splitting or the stochastic weight window generator). The ADVANTG code has been developed to automate the generation of weight-window parameters for MCNP using the Consistent Adjoint Driven Importance Sampling method and employs the TORT or Denovo 3-D discrete ordinates codes to generate importance maps. In this paper, we describe the application of ADVANTG to a set of threat-detection simulations. We present numerical results for an "active-interrogation" problem in which a standard cargo container is irradiated by a deuterium-tritium fusion neutron generator. We also present results for two passive detection problems in which a cargo container holding a shielded neutron or gamma source is placed near a portal monitor. For the passive detection problems, ADVANTG obtains an O(10~4) speedup and, for a detailed gamma spectrum tally, an average O(10~2) speedup relative to implicit-capture-only simulations, including the deterministic calculation time. For the active-interrogation problem, an O(10~4) speedup is obtained when compared to a simulation with angular source biasing and crude geometry splitting.
机译:确定性运输代码已经使用了一段时间来生成权重窗口参数,这些参数可以提高蒙特卡洛模拟的效率。随着这种混合计算技术的使用变得越来越广泛,正在应用它的应用范围也在扩大。国土安全领域是新应用的活跃来源,尤其是对核材料威胁的检测。对于这些问题,自动混合方法提供了一种替代反复试验减少方差的有效方法(例如,几何拆分或随机权重窗口生成器)。已开发出ADVANTG代码,以使用一致的伴随驱动重要性采样方法自动生成MCNP的权重窗口参数,并使用TORT或Denovo 3-D离散纵坐标代码生成重要性图。在本文中,我们描述了ADVANTG在一组威胁检测模拟中的应用。我们提出了一个“主动审问”问题的数值结果,在该问题中,氘tri聚变中子发生器辐照了一个标准的货柜。我们还介绍了两个被动检测问题的结果,其中将装有屏蔽中子或伽马射线源的货物集装箱放置在入口监控器附近。对于被动检测问题,ADVANTG获得O(10〜4)加速,并且对于详细的伽马光谱计数,相对于仅隐式捕获的模拟(包括确定性计算时间)获得平均O(10〜2)加速。对于主动询问问题,与带有角源偏置和粗略几何拆分的模拟相比,可获得O(10〜4)加速。

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