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In-Zinerater液态包层输运燃耗数值模拟
引用本文:师学明,杨俊云,刘成安.In-Zinerater液态包层输运燃耗数值模拟[J].原子核物理评论,2014,31(2):248-252.
作者姓名:师学明  杨俊云  刘成安
作者单位:北京应用物理与计算数学研究所,北京 100088;
基金项目:国家磁约束核聚变能研究专项(2012GB106001);中国工程物理研究院基金资助项目(2011B0103030)~~
摘    要:Z-Pinch惯性约束聚变是未来一种有竞争力的能源候选方案。Z-Pinch驱动的聚变裂变混合堆可高效地嬗变反应堆乏燃料中分离出的超铀元素。对美国Sandia国家实验室提出的In-Zinerater混合堆概念进行了中子学分析和数值模拟。在三维输运燃耗耦合程序MCORGS中增加了处理在线添加燃料与去除裂变产物的功能,实现了对液态燃料燃耗过程的模拟。增加6Li丰度和燃料初装量保持寿期初反应性不变,可以减缓寿期内反应性下降趋势。逐步增加包层内超铀元素装量,可以控制整个寿期内反应性基本恒定。聚变功率取20 MW,通过反应性控制,5年内包层能量放大倍数在160~180之间,氚增殖比在1.5~1.7之间,优于In-Zinerater基准设计方案。

关 键 词:Z-Pinch惯性约束聚变    裂变    超铀元素    嬗变
收稿时间:1900-01-01

Transport and Burnup Numerical Simulation on the Liquid Blanket Burnup of In-Zinerater
Institution:Institute of Applied Physics and Computational Mathematics, Beijing 100088, China;
Abstract:Z-Pinch Inertial confinement fusion is a competitive candidate for future energy solution. A fusion-fission hybrid driven by Z-Pinch can be used to transmute transuranic elements from spent fuels of reactors efficiently. Analysis and numerical simulation of blanket neutronics of In-Zinerater, which is a fusionfission hybrid concept design in Sandia National Laboratories, is given in this paper. Modification to the three dimension transport and burnup code MCORGS are done, so as to simulate continuous feeding and continuous chemical processing of the liquid fuel. Different combination of initial enrichment of 6Li and fuels loading in the blanket are selected to keep the same reactivity at begin of core. By this way, the decreasing trend of reactivity at life of the core can be lowered. The reactivity can be maintained constant by increasing the fuel loading in the core gradually as the burnup deepens. Given a 20 MW fusion power, by reactivity control, the blanket energy multiplication is around 160 ~ 180 and tritium breed ratio 1.5 ~1.7 in 5 years, which is a better resultthan Sandia’s original design.
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