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Decay heat power of spent nuclear fuel of power reactors with high burnup at long-term storage

机译:长期储存时燃耗高的反应堆乏核燃料热能衰减

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Decay heat power of actinides and fission products from spent nuclear fuel of power VVER-1000 type reactors at long-term storage is calculated. Two modes of storage are considered: mode in which single portion of actinides or fission products is loaded in storage facility, and mode in which actinides or fission products from spent fuel of one VVER reactor are added every year in storage facility during 30 years and then accumulated nuclides are stored without addition new nuclides. Two values of fuel burnup 40 and 70 MW·d/kg are considered for the mode of storage of single fuel unloading. For the mode of accumulation of spent fuel with subsequent storage, one value of burnup of 70 MW·d/kg is considered. Very long time of storage 105 years accepted in calculations allows to simulate final geological disposal of radioactive wastes. Heat power of fission products decreases quickly after 50-100 years of storage. The power of actinides decreases very slow. In passing from 40 to 70 MW·d/kg, power of actinides increases due to accumulation of higher fraction of 244Cm. These data are important in the back end of fuel cycle when improved cooling system of the storage facility will be required along with stronger radiation protection during storage, transportation and processing.
机译:计算了长期储存时VVER-1000型反应堆乏核燃料中act系元素和裂变产物的衰变热能。考虑了两种存储方式:一种模式是将storage系元素或裂变产物的一部分装入存储设施,另一种模式是每年在30年内在存储设施中添加来自一个VVER反应堆乏燃料的act系元素或裂变产物,然后累积的核素无需添加新的核素即可存储。单一燃料卸载的存储方式考虑了40和70 MW·d / kg的燃耗值。对于乏燃料的累积方式和随后的存储方式,可以考虑燃耗值为70 MW·d / kg。计算中接受的非常长的存储时间为105年,可以模拟放射性废物的最终地质处置。裂变产物的热能在储存50-100年后迅速降低。 act系元素的力量下降非常缓慢。在从40 MW·d / kg传递到70 MW·d / kg时,由于较高的244Cm的积累,act系元素的功率增加。当需要改进存储设施的冷却系统以及在存储,运输和加工过程中提供更强的辐射防护时,这些数据对于燃料循环的后端非常重要。

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