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NEW FUEL CYCLE AND FUEL MANAGEMENT OPTIONS IN HEAVY LIQUID METAL-COOLED REACTORS

机译:重型液态金属冷却反应器中的新型燃料循环和燃料管理选项

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Fast reactors cooled by lead or lead-bismuth alloy offer new interesting fuel cycle and fuel management options by virtue of the superb neutronics and safety features of these heavy liquid metal (HLM) coolants. One option is once-for-life cores having relatively low power density. These cores are fueled in the factory; there is no refueling or fuel shuffling on site. A second option is very long-life cores being made of a fissioning zone and a natural uranium blanket zone. The fissioning zone very slowly drifts toward the blanket. A third option is multirecycling of light water reactor (LWR) discharged fuel without partitioning of transuranics (TRUs) in fuel-self-sustaining reactors. LWR spent fuel could provide the initial fuel loading after extracting fission products and ~90% of its uranium. The makeup fuel is natural or depleted uranium. A fourth option is the high-burnup once-through fuel cycle using natural or depleted uranium feed. The initial fuel loading of this reactor is a mixture of enriched and natural uranium. The natural uranium utilization is 10 to 20 times higher than that of a once-through LWR. A fifth option is transmutation of TRUs from LWRs using critical HLM-cooled reactors; such reactors could be designed to have the same high actinide burning capability of accelerator-driven systems and have comparable safety, but at a substantially lower cost. These novel reactor designs and fuel management options are hereby reviewed.
机译:铅或铅铋合金冷却的快速反应堆凭借这些重液态金属(HLM)冷却剂的出色的中子学和安全特性,提供了新的有趣的燃料循环和燃料管理选择。一种选择是具有相对低的功率密度的永久芯。这些磁芯在工厂中加油。现场没有加油或洗牌。第二种选择是由裂变区和天然铀覆盖层制成的长寿命岩心。裂变区非常缓慢地向橡皮布漂移。第三种选择是对轻水反应堆(LWR)排放的燃料进行多循环,而无需在燃料自持反应堆中分配超铀酸(TRU)。轻水堆乏燃料可以提取裂变产物和铀的90%后提供初始燃料负荷。补充燃料是天然铀或贫铀。第四个选择是使用天然或贫化铀原料的高燃耗一次性燃料循环。该反应堆的初始燃料负荷是浓缩铀和天然铀的混合物。天然铀的利用率是一次性LWR的10至20倍。第五种选择是使用临界HLM冷却反应堆将轻水堆中的TRU转化。这种反应堆可以设计成具有与加速器驱动系统相同的high系元素高燃烧能力,并具有相当的安全性,但成本却低得多。因此,对这些新颖的反应堆设计和燃料管理选项进行了回顾。

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