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PLUTONIUM AND MINOR ACTINIDE UTILISATION IN A PEBBLE-BED HIGH TEMPERATURE REACTOR

机译:卵圆床高温反应器中和次氯酸盐的利用

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This paper contains results of the analysis of the pebble-bed high temperature gas-cooled PUMA reactor loaded with plutonium and minor actinide (Pu/MA) fuel. Starting from knowledge and experience gained in the Euratom FP5 projects HTR-N and HTR-N1, this study aims at demonstrating the potential of high temperature reactors to utilize or transmute Pu/MA fuel. The work has been performed within the Euratom FP6 project PUMA. A number of different fuel types and fuel configurations have been analyzed and compared with respect to incineration performance and safety-related reactor parameters. The results show the excellent plutonium and minor actinide burning capabilities of the high temperature reactor. The largest degree of incineration is attained in the case of an HTR fuelled by pure plutonium fuel as it remains critical at very deep burnup of the discharged pebbles. Addition of minor actinides to the fuel leads to decrease of the achievable discharge burnup and therefore smaller fraction of actinides incinerated during reactor operation. The inert-matrix fuel design improves the transmutation performance of the reactor, while the "wallpaper" fuel does not have advantage over the standard fuel design in this respect. After 100 years of decay following the fuel discharge, the total amount of actinides remains almost unchanged for all of the fuel types considered. Among the plutonium isotopes, only the amount of Pu-241 is reduced significantly due to its relatively short half-life.
机译:本文包含分析了装有bed和次要act系元素(Pu / MA)燃料的卵石床高温气冷PUMA反应器的分析结果。从在Euratom FP5项目HTR-N和HTR-N1中获得的知识和经验开始,本研究旨在证明高温反应堆利用或转化Pu / MA燃料的潜力。该工作已在Euratom FP6项目PUMA中完成。已对多种不同的燃料类型和燃料配置进行了分析,并就焚烧性能和与安全相关的反应堆参数进行了比较。结果表明,该高温反应器具有出色的burning燃烧能力和较小的burning系元素燃烧能力。在使用纯p燃料作为燃料的高温气冷堆的情况下,可以最大程度地进行焚烧,因为它在排出的鹅卵石深度燃烧非常严重时仍然很关键。向燃料中添加次act系元素可减少可实现的放电燃尽,因此在反应堆运行期间焚化的act系元素比例较小。惰性基质燃料设计提高了反应堆的转化性能,而“墙纸”燃料在这方面没有优于标准燃料设计的优势。燃料排放后经过100年的衰变后,对于所有考虑的燃料类型,act系元素的总量几乎保持不变。在the同位素中,由于Pu-241的半衰期相对较短,因此其数量仅会显着减少。

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