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首页> 外文期刊>Nuclear Technology >HETEROGENEOUS CORES FOR IMPLEMENTATION OF THORIUM-BASED FUELS IN HEAVY WATER REACTORS
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HETEROGENEOUS CORES FOR IMPLEMENTATION OF THORIUM-BASED FUELS IN HEAVY WATER REACTORS

机译:在重水反应器中实施T基燃料的异质核

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摘要

New reactor concepts to implement thorium-based fuel cycles have been explored to achieve maximum resource utilization. Pressure tube heavy water reactors (PT-HWRs) are highly advantageous for implementing thorium-based fuels because of their high neutron economy and online refueling capability. The use of heterogeneous seed/blanket core concepts in a PT-HWR where higher-fissile-content seed fuel bundles are physically separate from lower-fissile-content blanket bundles allows more flexibility and control in fuel management to maximize fissile utilization (FU) and conversion of fertile fuel. The lattice concept chosen was a 35-element bundle made with a homogeneous mixture of reactor-grade PuO_2 (~67 wt% fissile) and ThO_2, with a central zirconia rod to reduce coolant void reactivity. Several annular and checkerboard-type heterogeneous seed/blanket core concepts with plutonium-thorium-based fuels in a 700-MW(electric)-class PT-HWR were analyzed, using a once-through thorium cycle. Different combinations of seed and blanket fuel were tested to determine the impact on core-average burnup, FU, power distributions, and other performance parameters. WIMS-AECL Version 3.1 was used to perform lattice physics calculations using two-dimensional, 89-group integral neutron transport theory, while RFSP Version 3.5.1 was used to perform the core physics and fuel management calculations using three-dimensional two-group diffusion theory. Among the different core concepts investigated, there were cores where the FU was up to 30% higher than that achieved in a PT-HWR using natural uranium fuel bundles. There were cores where up to 67% of the Pu was consumed, cores where up to 43% of the energy was produced from thorium, and cores where up to 363 kg/year of ~(233)U was produced in the discharged fuel.
机译:为了实现最大的资源利用,已经探索了实施基于th的燃料循环的新反应堆概念。压力管重水反应堆(PT-HWR)具有很高的中子经济性和在线加油能力,因此在实施th基燃料方面具有很高的优势。在PT-HWR中使用异质种子/毯子核心概念,其中高易裂变含量的种子燃料束与低易裂变含量的毯形燃料束在物理上分开,从而在燃料管理中具有更大的灵活性和控制力,以最大限度地提高裂变利用率(FU)和肥沃燃料的转化。选择的晶格概念是由反应堆级PuO_2(易裂变含量约为67%)和ThO_2的均质混合物制成的35元素束,并带有中心氧化锆棒以降低冷却剂空隙反应性。使用一次th循环,分析了700兆瓦(电)级PT-HWR中几种基于---基燃料的环状和棋盘式异种种子/毯芯概念。测试了种子燃料和毯式燃料的不同组合,以确定对堆芯平均燃耗,FU,功率分配和其他性能参数的影响。 WIMS-AECL版本3.1用于使用二维,89组积分中子输运理论进行晶格物理学计算,而RFSP版本3.5.1用于使用三维二维组扩散进行核心物理和燃料管理计算理论。在所研究的不同核心概念中,有些核心的FU比使用天然铀燃料束的PT-HWR高出30%。有一些堆芯消耗了多达67%的Pu,这些堆芯消耗了43的能量高达43%,还有一些堆芯排放的燃料中产生了高达363千克/年的〜(233)U。

著录项

  • 来源
    《Nuclear Technology》 |2014年第3期|317-339|共23页
  • 作者单位

    Atomic Energy of Canada Limited, Chalk River Laboratories, Keys Building, 1 Plant Road Chalk River, Ontario, Canada K0J 1J0;

    Atomic Energy of Canada Limited, Chalk River Laboratories, Keys Building, 1 Plant Road Chalk River, Ontario, Canada K0J 1J0;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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