首页> 外文会议>ASME international mechanical engineering congress and exposition >FULLY COUPLED MULTIPHYSICS SIMULATION OF ENHANCED THERMAL CONDUCTIVITY UO_2-BEO FUEL BEHAVIOR
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FULLY COUPLED MULTIPHYSICS SIMULATION OF ENHANCED THERMAL CONDUCTIVITY UO_2-BEO FUEL BEHAVIOR

机译:UO_2-BEO燃料行为的全耦合多物理场模拟

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Commercial light water reactor fuel UO_2 has a low thermal conductivity that leads to the development of a large temperature gradient across the fuel pellet, limiting the reactor operational performance due to the effects that include thermal stresses causing pellet cladding interaction and the release of fission product gases. This study presents the development of a modeling and simulation for enhanced thermal conductivity UO_2-BeO fuel behavior in a light water reactor, using self-defined multiple physics models fully coupled based on the framework of COMSOL Multiphysics. Almost all the related physical models are considered, including heat generation and conduction, species diffusion, thermomechanics (thermal expansion, elastic strain, densification, and fission product swelling strain), grain growth, fission gas production and release, gap heat transfer, mechanical contact, gap/plenum pressure with plenum volume, cladding thermal and irradiation creep and oxidation. All the phenomenal models and materials properties are implemented into COMSOL Multiphysics finite-element platform with a 2D axisymmetric geometry of a fuel pellet and cladding. UO_2-BeO high thermal conductivity nuclear fuel would decrease fuel temperatures and facilitate a reduction in pellet cladding interaction from our simulation results through lessening thermal stresses that result in fuel cracking, relocation, and swelling, so that the safety of the reactor would be improved.
机译:商用轻水反应堆燃料UO_2具有较低的热导率,导致整个燃料芯块出现较大的温度梯度,由于包括引起芯块包壳相互作用和释放裂变产物气体的热应力的影响,限制了反应堆的运行性能。这项研究使用自定义的基于COMSOL Multiphysics框架的完全耦合的多种物理模型,提出了在轻水反应堆中增强热导率UO_2-BeO燃料行为的建模和仿真的开发。几乎所有相关的物理模型都被考虑在内,包括热量产生和传导,物质扩散,热力学(热膨胀,弹性应变,致密化和裂变产物溶胀应变),晶粒长大,裂变气体的产生和释放,间隙传热,机械接触,气室容积的气隙/气室压力,熔覆层的热,辐照蠕变和氧化。所有的现象模型和材料属性都被实现到COMSOL Multiphysics有限元平台中,该平台具有燃料球粒和包层的二维轴对称几何形状。根据我们的模拟结果,UO_2-BeO高导热率核燃料将降低燃料温度,并通过减少导致燃料裂化,重定位和溶胀的热应力,促进降低颗粒-包层相互作用,从而提高反应堆的安全性。

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