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Production of medical radioactive isotopes using KIPT electron driven subcritical facility

机译:使用KIPT电子驱动的亚临界设备生产医用放射性同位素

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Kharkov Institute of Physics and Technology (KIPT) of Ukraine in collaboration with Argonne National Laboratory (ANL) has a plan to construct an electron accelerator driven subcritical assembly. One of the facility objectives is the production of medical radioactive isotopes. This paper presents the ANL collaborative work performed for characterizing the facility performance for producing medical radioactive isotopes. First, a preliminary assessment was performed without including the self-shielding effect of the irradiated samples. Then, more detailed investigation was carried out including the self-shielding effect, which defined the sample size and location for producing each medical isotope. In the first part, the reaction rates were calculated as the multiplication of the cross section with the unperturbed neutron nux of the facility. Over fifty isotopes have been considered and all transmutation channels are used including (n, gamma), (n, 2n), (n, p), and (gamma, n). In tile second part, the parent isotopes with high reaction rate were explicitly modeled in the calculations. Four irradiation locations were considered in the analyses to study the medical isotope production rate. The results show the self-shielding effect not only reduces the specific activity but it also changes the irradiation location that maximizes the specific activity. The axial and radial distributions of the parent capture rates have been examined to define the irradiation sample size of each parent isotope. (C) 2008 Elsevier Ltd. All rights reserved.
机译:乌克兰的哈尔科夫物理技术研究所(KIPT)与阿贡国家实验室(ANL)合作,计划建造一个由电子加速器驱动的亚临界组件。设施目标之一是生产医用放射性同位素。本文介绍了ANL合作开展的工作,以表征生产医用放射性同位素的设施性能。首先,进行了初步评估,不包括被辐照样品的自屏蔽效应。然后,进行了包括自屏蔽效应在内的更详细的研究,该效应确定了每种医学同位素的样品大小和位置。在第一部分中,将反应速率计算为横截面与设备不受干扰的中子核的乘积。已经考虑了五十多种同位素,并且使用了所有trans变通道,包括(n,γ),(n,2n),(n,p)和(γ,n)。在第二部分中,在计算中明确地建模了具有高反应速率的母同位素。分析中考虑了四个辐照位置,以研究医学同位素的生产率。结果表明自屏蔽效应不仅降低了比活度,而且还改变了使比活最大化的照射位置。已经检查了母体捕获率的轴向和径向分布,以定义每个母体同位素的辐照样品尺寸。 (C)2008 Elsevier Ltd.保留所有权利。

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