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Performance Analysis of Silicon Carbide Composite Clad Uranium Carbide Fuel for a Long-Life Gas-Cooled Fast Reactor Under Normal Operation-Part Ⅱ: Modeling and Simulation

机译:正常运行中长寿命气冷式快速反应器碳化硅复合铀碳化物燃料的性能分析 - Ⅱ:建模与仿真

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Fuel performance analysis was conducted for silicon carbide (SiC) composite clad uranium carbide (UC) fuel of a 500-MW(thermal) gas-cooled fast reactor, specifically the energy multiplier module (EM2) under normal operation. The analysis consists of two parts: Part Ⅰ includes a description of design bases and criteria, fuel element design specifications, and material properties and models, while Part Ⅱ (this paper) includes the fuel modeling approach, computer code, and the fuel design evaluation. In Part Ⅱ, the FRAPCON-4.0 code was updated to include material properties and models of UC fuel, SiC composite cladding, and helium coolant, and named FRAPCON-4. 0GA. The analysis was performed using the hot rod power envelope and burnup history. The results show that the present design of the EM~2 fuel element has ample margin to melting owing to the high thermal conductivity of the UC fuel and annular pellet configuration. The operating temperature of the fuel element also minimizes the radiation-induced deformation of the SiC composite cladding. The simulation results show that the hoop stress of the cladding is below its tensile stress limit, i.e., one-third of ultimate tensile stress, while the cladding hoop strain limit is reached at 22.5 year, which is less than its design life of 32 years. However, sensitivity calculations of the swelling rate and design parameters indicate that it is feasible to reduce the cladding hoop strain by accommodating the fuel swelling into the open pore. Considering uncertainties associated with the material properties and models, it is highly recommended to experimentally verify the UC swelling and SiC composite creep, which are critical properties in analyzing the long-life fuel behavior.
机译:在正常操作下,针对500mW(热)气体冷却的快电抗体的碳化硅(SiC)复合铀碳(UC)燃料进行燃料性能分析,特别是能量乘法器模块(EM2)。分析包括两部分:第一部分包括设计基地和标准,燃料元件设计规格和材料特性和型号的描述,而第Ⅱ部分(本文)包括燃料建模方法,计算机代码和燃料设计评估。在第二部分中,FRAPCON-4.0代码已更新,包括UC燃料,SIC复合包层和氦冷却剂的材料性质和模型,并命名FRAPCON-4。 0GA。使用热棒电源包络和燃烧历史进行分析。结果表明,由于UC燃料和环形颗粒构造的高导热率,EM〜2燃料元件的本设计具有充足的熔化余量。燃料元件的工作温度还最小化了SiC复合材料包层的辐射诱导的变形。仿真结果表明,包层的箍应力低于其拉伸应力极限,即最终拉伸应力的三分之一,而覆盖箍应变极限在22.5年达到32岁以下的设计寿命。然而,膨胀率和设计参数的敏感性计算表明,通过将燃料膨胀进入开放孔的燃料来减少包层箍应变是可行的。考虑到与材料特性和模型相关的不确定性,强烈建议通过实验验证UC溶胀和SIC复合蠕变,这是分析长寿命燃料行为的关键性质。

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