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Numerical methodology for fluid-structure interaction analysis of nuclear fuel plates under axial flow conditions

机译:轴向流动条件下核燃料板流固耦合数值分析方法

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Shell-type fuel elements are widely used in nuclear research reactors. The nuclear fuel is contained in parallel shells, flat or curved, that are separated by narrow channels through which the fluid flows to remove the heat generated by fission reactions. A major problem of this fuel assembly design is the hydraulic instability of the shells caused by the high flow velocities. The objective of the study presented here is the development of a fluid-structure interaction methodology to investigate numerically the onset of hydroelastic instability of flat-shelltype fuel elements, also known as plate-type fuel assemblies, under axial flow conditions. The system analyzed consists of two nuclear fuel plates bounded by three-equal coolant channels. It is developed using the commercial codes ANSYS CFX for modeling the fluid flow and ANSYS Mechanical to model the plates. The fluid-structure interaction methodology predicts a behavior consistent with other theoretical and experimental works. Particularly, the maximum deflection of the plates is detected at the leading edge and it is a linear function of the square of the fluid velocity up to the Miller's theoretical value. For velocities above this value, a nonlinear relationship is observed. This relationship indicates that structural changes are taking place in the plates. Furthermore, for fluid velocities greater than the Miller's velocity, an extra deflection peak is observed near the trailing edge of the plates. Thus, structural alterations also happen along the length of the flat-shells.
机译:壳式燃料元件广泛用于核研究反应堆。核燃料包含在扁平或弯曲的平行壳中,这些平行壳由狭窄的通道隔开,流体流过这些通道,以消除裂变反应所产生的热量。这种燃料组件设计的主要问题是由高流速引起的壳体的液压不稳定性。此处提出的研究目的是开发一种流体-结构相互作用方法,以数字方式研究在轴向流动条件下平壳型燃料元件(也称为板式燃料组件)的水弹性不稳定性的发生。分析的系统由两个核燃料板组成,两个核燃料板由三个相等的冷却剂通道界定。它是使用商业代码ANSYS CFX开发的,用于对流体流动进行建模,而ANSYS Mechanical使用商业代码对板进行了建模。流体-结构相互作用方法学预测与其他理论和实验工作一致的行为。特别地,在前缘处检测到板的最大挠度,并且该挠度是流体速度直至米勒理论值的平方的线性函数。对于高于该值的速度,观察到非线性关系。这种关系表明板中正在发生结构变化。此外,对于大于米勒速度的流体速度,在板的后缘附近会观察到额外的偏转峰。因此,沿扁平壳的长度也发生结构改变。

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