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Advanced Fuel Cycle Scenarios with AP1000 PWRs and VHTRs and Fission Spectrum Uncertainties

机译:带有AP1000 PWR和VHTR的先进燃料循环方案以及裂变频谱不确定性

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摘要

Minimization of HLW inventories and U consumption are key elements guaranteeing nuclear energy expansion. The integration of complex nuclear systems into a viable cycle yet constitutes a challenging multi-parametric optimization problem. The reactors and fuel cycle performance parameters may be strongly dependent on minor variations in the system's input data. Proven discrepancies in nuclear data evaluations could affect the validity of the system optimization metrics. This study first analyzes various advanced AP1000-VHTR fuel cycle scenarios by assessing their TRU destruction and their U consumption minimization capabilities, and by computing reactor performance parameters such as the time evolution of the effective multiplication factor keff, the reactors' energy spectrum or the isotopic composition/activity at EOL. The performance metrics dependence to prompt neutron fission spectrum discrepancies is then quantified to assess the viability of one strategy. Fission spectrum evaluations are indeed intensively used in reactors' calculations. Discrepancies higher than 10% have been computed among nuclear data libraries for energies above 8MeV for 235U. TRU arising from a 3wt% 235U-enriched UO2-fueled AP1000 were incinerated in a VHTR. Fuels consisting of 20%, 40% and 100% of TRU completed by UO2 were examined. MCNPX results indicate that up to 88.9% of the TRU initially present in a VHTR fueled with 20% of TRU and 80% of ThO2 were transmuted. Additionally, the use of WgPu instead of RgPu should reduce the daily consumption of 235U by 1.3 and augment core lifetime. To estimate the system metrics dependence to fission spectrum discrepancies and validate optimization studies outputs, the VTHR 235U fission spectrum distribution was altered successively in three manners. keff is at worst lowered by 1.7% of the reference value and the energy spectrum by 5% between 50meV and 2MeV when a significantly distorted fission spectrum tail is used. 233U, 236Pu and 237Pu inventories and activities are multiplied by 263, 523 and 34 but are still negligible compared to 239Pu mass or the total activity. The AP1000-VHTR system is in conclusion not dependent on the selected fission spectrum variations. TRU elimination optimization studies in AP1000-VHTR systems will be facilitated by freeing performance metrics dependency from 1 input parameter.
机译:高放废物库存和铀消耗的最小化是保证核能扩张的关键因素。将复杂的核系统整合到一个可行的循环中仍然构成了一个充满挑战的多参数优化问题。反应堆和燃料循环性能参数可能很大程度上取决于系统输入数据的微小变化。经核实的核数据评估差异可能会影响系统优化指标的有效性。这项研究首先通过评估各种先进的AP1000-VHTR燃料循环情景,评估其TRU破坏力和其U消耗最小化能力,并通过计算反应堆性能参数(例如有效倍增系数keff的时间演化,反应堆的能谱或同位素)来分析EOL的成分/活性。然后将性能指标对中子裂变谱迅速变化的依赖性进行量化,以评估一种策略的可行性。裂变谱评估的确在反应堆的计算中大量使用。对于235U,高于8MeV的能量在核数据库中计算出的差异高于10%。在VHTR中焚烧3wt%富含235U的UO2燃料的AP1000产生的TRU。检查了由UO2完成的由20%,40%和100%的TRU组成的燃料。 MCNPX结果表明,最初存在于以20%的TRU和80%的ThO2为燃料的VHTR中,高达88.9%的TRU被转化了。此外,使用WgPu代替RgPu应该将235U的每日消耗量减少1.3,并延长核心寿命。为了估计系统指标对裂变谱差异的依赖性并验证优化研究输出,以三种方式连续更改了VTHR 235U裂变谱分布。当使用明显扭曲的裂变光谱尾部时,在50meV和2MeV之间,keff最差会降低参考值的1.7%,能量谱降低5%。 233U,236Pu和237Pu的库存和活动量分别乘以263、523和34,但与239Pu质量或总活动量相比仍然可以忽略不计。总之,AP1000-VHTR系统不依赖于所选裂变谱变化。通过从1个输入参数中释放性能指标依赖性,将有助于AP1000-VHTR系统中的TRU消除优化研究。

著录项

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    Cuvelier Marie-Hermine;

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  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 en_US
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