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High-accuracy Geant4 simulation and semi-analytical modeling of nuclear resonance fluorescence

机译:核共振荧光的高精度Geant4模拟和半分析建模

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摘要

Nuclear resonance fluorescence (NRF) is a photonuclear interaction that enables highly isotope-specific measurements in both pure and applied physics scenarios. High-accuracy design and analysis of NRF measurements in complex geometries is aided by Monte Carlo simulations of photon physics and transport, motivating Jordan and Warren (2007) to develop the G4NRF codebase for NRF simulation in Geant4. In this work, we enhance the physics accuracy of the G4NRF code and perform improved benchmarking simulations. The NRF cross section calculation in G4NRF, previously a Gaussian approximation, has been replaced with a full numerical integration for improved accuracy in thick-target scenarios. A high-accuracy semi-analytical model of expected NRF count rates in a typical NRF measurement is then constructed and compared against G4NRF simulations for both simple homogeneous and more complex heterogeneous geometries. Agreement between rates predicted by the semi-analytical model and G4NRF simulation is found at a level of similar to 1% in simple test cases and similar to 3% in more realistic scenarios, improving upon the similar to 20% level of the initial benchmarking study and establishing a highly accurate NRF framework for Geant4.
机译:核共振荧光(NRF)是一种光核相互作用,可以在纯物理和应用物理场景中进行高度同位素特定的测量。复杂几何形状中NRF测量的高精度设计和分析得到了光子物理和传输的蒙特卡洛模拟的帮助,激励Jordan和Warren(2007)开发了用于Geant4中NRF模拟的G4NRF代码库。在这项工作中,我们提高了G4NRF代码的物理精度,并执行了改进的基准测试模拟。 G4NRF中的NRF横截面计算(以前是高斯近似值)已被完整的数值积分所取代,以提高厚目标场景中的精度。然后,构建了典型NRF测量中预期NRF计数率的高精度半分析模型,并将其与G4NRF仿真进行了比较,以分析简单的均质和更复杂的异构几何体。半分析模型和G4NRF模拟预测的速率之间的一致性在简单测试用例中约为1%,在更实际的情况下约为3%,与初始基准研究的20%相似并为Geant4建立一个高度准确的NRF框架。

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