首页> 外文会议>14th International Conference on Nuclear Engineering 2006(ICONE14) vol.4 >THERMAL-HYDRAULIC PERFORMANCE OF CROSS-SHAPED SPIRAL FUEL IN HIGH-POWER-DENSITY BWRS
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THERMAL-HYDRAULIC PERFORMANCE OF CROSS-SHAPED SPIRAL FUEL IN HIGH-POWER-DENSITY BWRS

机译:高功率BWRS中十字形螺旋燃料的热工水力性能

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Power up-rating of existing nuclear reactors promises to be an area of great study for years to come. One of the major approaches to efficiently increasing power density is by way of advanced fuel design, and cross-shaped spiral-fuel has shown such potential in previous studies. Our work aims to model the thermal-hydraulic consequences of filling a BWR core with these spiral-shaped pins. The helically-wound pins have a cross-section resembling a 4-petaled flower. They fill an assembly in a tight bundle, their dimensions chosen carefully such that the petals of neighboring pins contact each other at their outer-most extent in a self-supporting lattice, absent of grid spacers.rnPotential advantages of this design raise much optimism from a thermal-hydraulic perspective. These spiral rods possess about 40% larger surface area than traditional rods, resulting in increased cooling and a proportional reduction in average surface heat flux. The thin petal-like extensions help by lowering thermal resistance between the hot central region of the pin and the bulk coolant flow, decreasing the maximum fuel temperature by 200℃ according to Finite Element (COSMOS) models. However, COSMOS models also predict a potential problem area at the "elbow" region of two adjoining petals, where heat flux peaking is twice that along the extensions. Preliminary VIPRE models, which account only for the surface area increase, predict a 22% increase in critical power. It is also anticipated that the spiral twist would provide the flowing coolant with an additional radial velocity component, and likely promote turbulence and mixing within an assembly. These factors are expected to provide further margin for increased power density, and are currently being incorporated into the VIPRE model. The reduction in pressure drop inherent in any core without grid-spacers is also expected to be significant in aiding core stability, though this has not yet been quantified.rnSpiral-fuel seems to be a favorable alternative to traditional pins from a thermal-hydraulic standpoint, though further study of the trends shown in this paper are required.
机译:现有核反应堆的功率提升有望成为未来几年的研究重点。有效提高功率密度的主要方法之一是通过先进的燃料设计,而十字形螺旋燃料在以前的研究中已显示出这种潜力。我们的工作旨在模拟用这些螺旋形针填充BWR芯的热工液压后果。螺旋缠绕的销的横截面类似于四瓣花。它们将组件装满一个紧密的捆束,其尺寸要谨慎选择,以使相邻销的瓣片在最外端彼此接触,形成一个自支撑的格子,而没有网格隔片。这种设计的潜在优势使人们大大乐观热工液压的观点。这些螺旋棒的表面积比传统棒大40%,从而增加了冷却,并平均降低了平均表面热通量。根据有限元素(COSMOS)模型,细薄的花瓣状延伸部分可帮助降低销的热中心区域和大量冷却液之间的热阻,从而将最高燃料温度降低200℃。但是,COSMOS模型还预测了两个相邻花瓣的“肘部”区域的潜在问题区域,在该区域中,热通量峰值是沿延伸区域的两倍。仅考虑表面积增加的初步VIPRE模型预测临界功率将增加22%。还可以预料,螺旋扭曲将为流动的冷却剂提供附加的径向速度分量,并可能促进组件内的湍流和混合。这些因素有望为功率密度的增加提供更多的余地,并且目前正被纳入VIPRE模型。尽管尚未量化,但在没有网格间隔器的情况下,任何铁心固有的压降的降低也有望在帮助铁心稳定性方面发挥重要作用。从热工液压的角度来看,螺旋燃料似乎是传统销钉的理想替代品。 ,但仍需进一步研究本文显示的趋势。

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